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Print the minimum number of operations needed.
* * * | s940743332 | Wrong Answer | p02735 | Input is given from Standard Input in the following format:
H W
s_{11} s_{12} \cdots s_{1W}
s_{21} s_{22} \cdots s_{2W}
\vdots
s_{H1} s_{H2} \cdots s_{HW}
Here s_{rc} represents the color of (r, c) \- `#` stands for black, and `.`
stands for white. | r, c = map(int, input().split())
def minCost(cost, m, n):
tc = [[0 for x in range(c)] for x in range(r)]
tc[0][0] = cost[0][0]
for i in range(1, m + 1):
tc[i][0] = tc[i - 1][0] + cost[i][0]
for j in range(1, n + 1):
tc[0][j] = tc[0][j - 1] + cost[0][j]
for i in range(1, m + 1):
for j in range(1, n + 1):
tc[i][j] = min(tc[i - 1][j], tc[i][j - 1]) + cost[i][j]
return tc[m][n]
a = []
x = 0
for i in range(r):
s = input().replace(".", "0").replace("#", "1")
ss = [int(i) for i in s]
a.append(ss)
print(minCost(a, r - 1, c - 1))
| Statement
Consider a grid with H rows and W columns of squares. Let (r, c) denote the
square at the r-th row from the top and the c-th column from the left. Each
square is painted black or white.
The grid is said to be _good_ if and only if the following condition is
satisfied:
* From (1, 1), we can reach (H, W) by moving one square **right or down** repeatedly, while always being on a white square.
Note that (1, 1) and (H, W) must be white if the grid is good.
Your task is to make the grid good by repeating the operation below. Find the
minimum number of operations needed to complete the task. It can be proved
that you can always complete the task in a finite number of operations.
* Choose four integers r_0, c_0, r_1, c_1(1 \leq r_0 \leq r_1 \leq H, 1 \leq c_0 \leq c_1 \leq W). For each pair r, c (r_0 \leq r \leq r_1, c_0 \leq c \leq c_1), invert the color of (r, c) \- that is, from white to black and vice versa. | [{"input": "3 3\n .##\n .#.\n ##.", "output": "1\n \n\nDo the operation with (r_0, c_0, r_1, c_1) = (2, 2, 2, 2) to change just the\ncolor of (2, 2), and we are done.\n\n* * *"}, {"input": "2 2\n #.\n .#", "output": "2\n \n\n* * *"}, {"input": "4 4\n ..##\n #...\n ###.\n ###.", "output": "0\n \n\nNo operation may be needed.\n\n* * *"}, {"input": "5 5\n .#.#.\n #.#.#\n .#.#.\n #.#.#\n .#.#.", "output": "4"}] |
Print the minimum number of operations needed.
* * * | s711792854 | Wrong Answer | p02735 | Input is given from Standard Input in the following format:
H W
s_{11} s_{12} \cdots s_{1W}
s_{21} s_{22} \cdots s_{2W}
\vdots
s_{H1} s_{H2} \cdots s_{HW}
Here s_{rc} represents the color of (r, c) \- `#` stands for black, and `.`
stands for white. | from collections import defaultdict as dd
def func():
return float("inf")
def solve(M, H, W):
dic = dd(func)
for i in range(h - 1, -1, -1):
for j in range(w - 1, -1, -1):
dic[(i, j)] = min(dic[(i + 1, j)], dic[(i, j + 1)])
if dic[(i, j)] == float("inf"):
dic[(i, j)] = 0
if M[i][j] == "#":
dic[(i, j)] += 1
print(dic[(0, 0)])
h, w = map(int, input().split())
M = []
for i in range(h):
arr = list(input())
M.append(arr)
solve(M, h, w)
| Statement
Consider a grid with H rows and W columns of squares. Let (r, c) denote the
square at the r-th row from the top and the c-th column from the left. Each
square is painted black or white.
The grid is said to be _good_ if and only if the following condition is
satisfied:
* From (1, 1), we can reach (H, W) by moving one square **right or down** repeatedly, while always being on a white square.
Note that (1, 1) and (H, W) must be white if the grid is good.
Your task is to make the grid good by repeating the operation below. Find the
minimum number of operations needed to complete the task. It can be proved
that you can always complete the task in a finite number of operations.
* Choose four integers r_0, c_0, r_1, c_1(1 \leq r_0 \leq r_1 \leq H, 1 \leq c_0 \leq c_1 \leq W). For each pair r, c (r_0 \leq r \leq r_1, c_0 \leq c \leq c_1), invert the color of (r, c) \- that is, from white to black and vice versa. | [{"input": "3 3\n .##\n .#.\n ##.", "output": "1\n \n\nDo the operation with (r_0, c_0, r_1, c_1) = (2, 2, 2, 2) to change just the\ncolor of (2, 2), and we are done.\n\n* * *"}, {"input": "2 2\n #.\n .#", "output": "2\n \n\n* * *"}, {"input": "4 4\n ..##\n #...\n ###.\n ###.", "output": "0\n \n\nNo operation may be needed.\n\n* * *"}, {"input": "5 5\n .#.#.\n #.#.#\n .#.#.\n #.#.#\n .#.#.", "output": "4"}] |
Print the minimum number of operations needed.
* * * | s383934055 | Accepted | p02735 | Input is given from Standard Input in the following format:
H W
s_{11} s_{12} \cdots s_{1W}
s_{21} s_{22} \cdots s_{2W}
\vdots
s_{H1} s_{H2} \cdots s_{HW}
Here s_{rc} represents the color of (r, c) \- `#` stands for black, and `.`
stands for white. | h, *s = open(0)
h, w = map(int, h.split())
dp = [[9e9] * w for _ in s]
dp[0][0] = s[0][0] < "."
for i in range(h * w):
i, j = i // w, i % w
for y, x in ((i + 1, j), (i, j + 1)):
if y < h and x < w:
dp[y][x] = min(dp[y][x], dp[i][j] + (s[i][j] == "." > s[y][x]))
print(dp[-1][-1])
| Statement
Consider a grid with H rows and W columns of squares. Let (r, c) denote the
square at the r-th row from the top and the c-th column from the left. Each
square is painted black or white.
The grid is said to be _good_ if and only if the following condition is
satisfied:
* From (1, 1), we can reach (H, W) by moving one square **right or down** repeatedly, while always being on a white square.
Note that (1, 1) and (H, W) must be white if the grid is good.
Your task is to make the grid good by repeating the operation below. Find the
minimum number of operations needed to complete the task. It can be proved
that you can always complete the task in a finite number of operations.
* Choose four integers r_0, c_0, r_1, c_1(1 \leq r_0 \leq r_1 \leq H, 1 \leq c_0 \leq c_1 \leq W). For each pair r, c (r_0 \leq r \leq r_1, c_0 \leq c \leq c_1), invert the color of (r, c) \- that is, from white to black and vice versa. | [{"input": "3 3\n .##\n .#.\n ##.", "output": "1\n \n\nDo the operation with (r_0, c_0, r_1, c_1) = (2, 2, 2, 2) to change just the\ncolor of (2, 2), and we are done.\n\n* * *"}, {"input": "2 2\n #.\n .#", "output": "2\n \n\n* * *"}, {"input": "4 4\n ..##\n #...\n ###.\n ###.", "output": "0\n \n\nNo operation may be needed.\n\n* * *"}, {"input": "5 5\n .#.#.\n #.#.#\n .#.#.\n #.#.#\n .#.#.", "output": "4"}] |
Print the minimum number of operations needed.
* * * | s490917807 | Accepted | p02735 | Input is given from Standard Input in the following format:
H W
s_{11} s_{12} \cdots s_{1W}
s_{21} s_{22} \cdots s_{2W}
\vdots
s_{H1} s_{H2} \cdots s_{HW}
Here s_{rc} represents the color of (r, c) \- `#` stands for black, and `.`
stands for white. | import sys
import heapq
H, W = map(int, input().split())
maze = [list(input()) for i in range(H)]
def removeWalls(wallPointH, wallPointW):
if maze[wallPointH][wallPointW] == "#":
changeTo = "."
elif maze[wallPointH][wallPointW] == "1":
changeTo = "0"
if maze[wallPointH][wallPointW] == "#" or maze[wallPointH][wallPointW] == "1":
maze[wallPointH][wallPointW] = changeTo
if wallPointH + 1 <= H - 1:
removeWalls(wallPointH + 1, wallPointW)
if wallPointW + 1 <= W - 1:
removeWalls(wallPointH, wallPointW + 1)
if maze[0][0] == "#":
flag = 1
else:
flag = 0
que = [[flag, 0, 0]]
heapq.heapify(que)
count = 0
while que:
qu = heapq.heappop(que)
if qu[0] == 1:
heapq.heappush(que, qu)
count += 1
for q in que: # いったん"#"の撤去作業を行う
q[0] = 0
removeWalls(q[1], q[2])
else: # queの中身にまだ進める場所があるなら
nowH = qu[1]
nowW = qu[2]
if nowH == H - 1 and nowW == W - 1: # ゴールの場合
print(count)
sys.exit()
else: # それ以外の場合
# 右近傍と下近傍、それぞれマップの中ならqueに格納。
if nowH + 1 <= H - 1:
if maze[nowH + 1][nowW] == "#":
maze[nowH + 1][nowW] = "1"
heapq.heappush(que, [1, nowH + 1, nowW])
elif maze[nowH + 1][nowW] == ".":
maze[nowH + 1][nowW] = "0"
heapq.heappush(que, [0, nowH + 1, nowW])
if nowW + 1 <= W - 1:
if maze[nowH][nowW + 1] == "#":
maze[nowH][nowW + 1] = "1"
heapq.heappush(que, [1, nowH, nowW + 1])
elif maze[nowH][nowW + 1] == ".":
maze[nowH][nowW + 1] = "0"
heapq.heappush(que, [0, nowH, nowW + 1])
| Statement
Consider a grid with H rows and W columns of squares. Let (r, c) denote the
square at the r-th row from the top and the c-th column from the left. Each
square is painted black or white.
The grid is said to be _good_ if and only if the following condition is
satisfied:
* From (1, 1), we can reach (H, W) by moving one square **right or down** repeatedly, while always being on a white square.
Note that (1, 1) and (H, W) must be white if the grid is good.
Your task is to make the grid good by repeating the operation below. Find the
minimum number of operations needed to complete the task. It can be proved
that you can always complete the task in a finite number of operations.
* Choose four integers r_0, c_0, r_1, c_1(1 \leq r_0 \leq r_1 \leq H, 1 \leq c_0 \leq c_1 \leq W). For each pair r, c (r_0 \leq r \leq r_1, c_0 \leq c \leq c_1), invert the color of (r, c) \- that is, from white to black and vice versa. | [{"input": "3 3\n .##\n .#.\n ##.", "output": "1\n \n\nDo the operation with (r_0, c_0, r_1, c_1) = (2, 2, 2, 2) to change just the\ncolor of (2, 2), and we are done.\n\n* * *"}, {"input": "2 2\n #.\n .#", "output": "2\n \n\n* * *"}, {"input": "4 4\n ..##\n #...\n ###.\n ###.", "output": "0\n \n\nNo operation may be needed.\n\n* * *"}, {"input": "5 5\n .#.#.\n #.#.#\n .#.#.\n #.#.#\n .#.#.", "output": "4"}] |
Print the minimum number of operations needed.
* * * | s723541495 | Runtime Error | p02735 | Input is given from Standard Input in the following format:
H W
s_{11} s_{12} \cdots s_{1W}
s_{21} s_{22} \cdots s_{2W}
\vdots
s_{H1} s_{H2} \cdots s_{HW}
Here s_{rc} represents the color of (r, c) \- `#` stands for black, and `.`
stands for white. | def update(black):
return "." if black == "#" else "#"
def dp(i, j, w_end, h_end, black="#", memo={}):
if (i, j, w_end, h_end, black) in memo:
return memo[i, j, w_end, h_end, black]
elif i < 0 or j < 0 or w_end >= W or h_end >= H:
return float("inf")
elif i == w_end and j == h_end:
return 1 if grid[i][j] == black else 0
elif grid[i][j] == black and grid[w_end][h_end] == black:
not_flip = 1 + min(
dp(i - 1, j, w_end, h_end, black, memo),
dp(i, j - 1, w_end, h_end, black, memo),
dp(i, j, w_end + 1, h_end, black, memo),
dp(i, j, w_end, h_end + 1, black, memo),
)
new = update(black)
flip = 1 + min(
dp(i - 1, j, w_end + 1, h_end, new, memo),
dp(i - 1, j, w_end, h_end + 1, new, memo),
dp(i, j - 1, w_end + 1, h_end, new, memo),
dp(i, j - 1, w_end, h_end + 1, new, memo),
)
res = min(not_flip, flip)
memo[i, j, w_end, h_end, black] = res
return res
elif grid[i][j] == black:
not_flip = 1 + min(
dp(i - 1, j, w_end + 1, h_end, black, memo),
dp(i - 1, j, w_end, h_end + 1, black, memo),
dp(i, j - 1, w_end + 1, h_end, black, memo),
dp(i, j - 1, w_end, h_end + 1, black, memo),
)
new = update(black)
flip = 1 + min(
dp(i - 1, j, w_end + 1, h_end + 1, new, memo),
dp(i, j - 1, w_end + 1, h_end + 1, new, memo),
)
flip += min(
dp(w_end + 1, h_end, w_end + 1, h_end, black, memo),
dp(w_end, h_end + 1, w_end, h_end + 1, black, memo),
)
res = min(not_flip, flip)
memo[i, j, w_end, h_end, black] = res
return res
elif grid[w_end][h_end] == black:
not_flip = 1 + min(
dp(i - 1, j, w_end + 1, h_end, black, memo),
dp(i - 1, j, w_end, h_end + 1, black, memo),
dp(i, j - 1, w_end + 1, h_end, black, memo),
dp(i, j - 1, w_end, h_end + 1, black, memo),
)
new = update(black)
flip = 1 + min(
dp(i - 1, j - 1, w_end + 1, h_end, new, memo),
dp(i - 1, j - 1, w_end, h_end + 1, new, memo),
)
flip += min(
dp(i - 1, j, i - 1, j, black, memo), dp(i, j - 1, i, j - 1, black, memo)
)
res = min(not_flip, flip)
memo[i, j, w_end, h_end, black] = res
return res
else:
res = min(
dp(i - 1, j, w_end + 1, h_end, black, memo),
dp(i - 1, j, w_end, h_end + 1, black, memo),
dp(i, j - 1, w_end + 1, h_end, black, memo),
dp(i, j - 1, w_end, h_end + 1, black, memo),
)
memo[i, j, w_end, h_end, black] = res
return res
H, W = map(int, input().split())
grid = [[None] * W for _ in range(H)]
for i in range(H):
for j, x in enumerate(input()):
grid[i][j] = x
memo = {}
print(min(dp(H - 1, W - 1, 0, 0, "#", memo), 1 + dp(H - 1, W - 1, 0, 0, ".", memo)))
| Statement
Consider a grid with H rows and W columns of squares. Let (r, c) denote the
square at the r-th row from the top and the c-th column from the left. Each
square is painted black or white.
The grid is said to be _good_ if and only if the following condition is
satisfied:
* From (1, 1), we can reach (H, W) by moving one square **right or down** repeatedly, while always being on a white square.
Note that (1, 1) and (H, W) must be white if the grid is good.
Your task is to make the grid good by repeating the operation below. Find the
minimum number of operations needed to complete the task. It can be proved
that you can always complete the task in a finite number of operations.
* Choose four integers r_0, c_0, r_1, c_1(1 \leq r_0 \leq r_1 \leq H, 1 \leq c_0 \leq c_1 \leq W). For each pair r, c (r_0 \leq r \leq r_1, c_0 \leq c \leq c_1), invert the color of (r, c) \- that is, from white to black and vice versa. | [{"input": "3 3\n .##\n .#.\n ##.", "output": "1\n \n\nDo the operation with (r_0, c_0, r_1, c_1) = (2, 2, 2, 2) to change just the\ncolor of (2, 2), and we are done.\n\n* * *"}, {"input": "2 2\n #.\n .#", "output": "2\n \n\n* * *"}, {"input": "4 4\n ..##\n #...\n ###.\n ###.", "output": "0\n \n\nNo operation may be needed.\n\n* * *"}, {"input": "5 5\n .#.#.\n #.#.#\n .#.#.\n #.#.#\n .#.#.", "output": "4"}] |
Print the minimum number of operations needed.
* * * | s776878604 | Accepted | p02735 | Input is given from Standard Input in the following format:
H W
s_{11} s_{12} \cdots s_{1W}
s_{21} s_{22} \cdots s_{2W}
\vdots
s_{H1} s_{H2} \cdots s_{HW}
Here s_{rc} represents the color of (r, c) \- `#` stands for black, and `.`
stands for white. | #####
import numpy as np
# from numpy import int32, int8
# from collections import deque
#####
def getIntList(inp):
return [int(_) for _ in inp]
from sys import stdin
import sys
sys.setrecursionlimit(10**8)
def getInputs():
inputs = []
for line in stdin:
line = line.split()
inputs.append(line)
return inputs
def main(inputs):
h, w = getIntList(inputs[0])
colors = np.empty((h, w), np.bool)
for hi in range(h):
for wi in range(w):
colors[hi, wi] = inputs[1 + hi][0][wi] == "."
# h=20
# w=20
# np.random.seed(0)
# colors=np.random.randint(0,2,(h,w))
# from matplotlib import pyplot as plt
# for hi in range(h):
# for wi in range(w):
# plt.annotate(str((hi,wi)), (wi-0.5,hi), color="g")
# plt.imshow(colors)
# plt.show()
# print(colors.astype(np.int32))
flipSize = np.empty((h, w), np.int32)
if colors[0, 0]:
flipSize[0, 0] = 0
else:
flipSize[0, 0] = 1
for hi in range(h):
for wi in range(w):
if hi == 0 and wi == 0:
continue
c = colors[hi, wi]
fs = []
if hi > 0:
d = int(colors[hi - 1, wi] and (not c))
s = flipSize[hi - 1, wi] + d
fs.append(s)
if wi > 0:
d = int(colors[hi, wi - 1] and (not c))
s = flipSize[hi, wi - 1] + d
fs.append(s)
fs = min(fs)
flipSize[hi, wi] = fs
print(flipSize[h - 1, w - 1])
if __name__ == "__main__":
inputs = getInputs()
# inputs=simInputs()
main(inputs)
| Statement
Consider a grid with H rows and W columns of squares. Let (r, c) denote the
square at the r-th row from the top and the c-th column from the left. Each
square is painted black or white.
The grid is said to be _good_ if and only if the following condition is
satisfied:
* From (1, 1), we can reach (H, W) by moving one square **right or down** repeatedly, while always being on a white square.
Note that (1, 1) and (H, W) must be white if the grid is good.
Your task is to make the grid good by repeating the operation below. Find the
minimum number of operations needed to complete the task. It can be proved
that you can always complete the task in a finite number of operations.
* Choose four integers r_0, c_0, r_1, c_1(1 \leq r_0 \leq r_1 \leq H, 1 \leq c_0 \leq c_1 \leq W). For each pair r, c (r_0 \leq r \leq r_1, c_0 \leq c \leq c_1), invert the color of (r, c) \- that is, from white to black and vice versa. | [{"input": "3 3\n .##\n .#.\n ##.", "output": "1\n \n\nDo the operation with (r_0, c_0, r_1, c_1) = (2, 2, 2, 2) to change just the\ncolor of (2, 2), and we are done.\n\n* * *"}, {"input": "2 2\n #.\n .#", "output": "2\n \n\n* * *"}, {"input": "4 4\n ..##\n #...\n ###.\n ###.", "output": "0\n \n\nNo operation may be needed.\n\n* * *"}, {"input": "5 5\n .#.#.\n #.#.#\n .#.#.\n #.#.#\n .#.#.", "output": "4"}] |
Print the minimum number of operations needed.
* * * | s403335617 | Wrong Answer | p02735 | Input is given from Standard Input in the following format:
H W
s_{11} s_{12} \cdots s_{1W}
s_{21} s_{22} \cdots s_{2W}
\vdots
s_{H1} s_{H2} \cdots s_{HW}
Here s_{rc} represents the color of (r, c) \- `#` stands for black, and `.`
stands for white. | # coding: utf-8
import queue
H, W = map(int, input().split())
field = [list(input()) for _ in range(H)]
dist = [[0 for _ in range(W)] for _ in range(H)]
check = [[False for _ in range(W)] for _ in range(H)]
q = queue.Queue()
q.put([0, 0])
while not q.empty():
p = q.get()
h, w = p[0], p[1]
if h >= H or w >= W:
continue
elif field[h][w] == ".":
# 値の更新
dist[h][w] = min(dist[h - 1][w], dist[h][w - 1])
check[h][w] = True
# 周辺のput
q.put([h, w + 1])
q.put([h + 1, w])
elif field[h][w] == "#" and check[h][w] == False:
# 長方形の判定
dh = 0
while field[h + dh][w] == "#":
dh += 1
if h + dh == H:
break
cnt = [0] * dh
for j in range(dh):
dw = 0
while field[h + j][w + dw] == "#":
dw += 1
if w + dw == W:
break
cnt[j] = dw
dw = min(cnt)
# 値の更新
c = min(dist[h - 1][w], dist[h][w - 1]) + 1
for j in range(dh):
for i in range(dw):
if check[h + j][w + i] == False:
dist[h + j][w + i] = c
check[h + j][w + i] = True
# 周辺のput
for j in range(dh):
q.put([h + j, w + dw])
for i in range(dw):
q.put([h + dh, w + i])
print(dist[-1][-1])
| Statement
Consider a grid with H rows and W columns of squares. Let (r, c) denote the
square at the r-th row from the top and the c-th column from the left. Each
square is painted black or white.
The grid is said to be _good_ if and only if the following condition is
satisfied:
* From (1, 1), we can reach (H, W) by moving one square **right or down** repeatedly, while always being on a white square.
Note that (1, 1) and (H, W) must be white if the grid is good.
Your task is to make the grid good by repeating the operation below. Find the
minimum number of operations needed to complete the task. It can be proved
that you can always complete the task in a finite number of operations.
* Choose four integers r_0, c_0, r_1, c_1(1 \leq r_0 \leq r_1 \leq H, 1 \leq c_0 \leq c_1 \leq W). For each pair r, c (r_0 \leq r \leq r_1, c_0 \leq c \leq c_1), invert the color of (r, c) \- that is, from white to black and vice versa. | [{"input": "3 3\n .##\n .#.\n ##.", "output": "1\n \n\nDo the operation with (r_0, c_0, r_1, c_1) = (2, 2, 2, 2) to change just the\ncolor of (2, 2), and we are done.\n\n* * *"}, {"input": "2 2\n #.\n .#", "output": "2\n \n\n* * *"}, {"input": "4 4\n ..##\n #...\n ###.\n ###.", "output": "0\n \n\nNo operation may be needed.\n\n* * *"}, {"input": "5 5\n .#.#.\n #.#.#\n .#.#.\n #.#.#\n .#.#.", "output": "4"}] |
Print the minimum number of operations needed.
* * * | s326263557 | Accepted | p02735 | Input is given from Standard Input in the following format:
H W
s_{11} s_{12} \cdots s_{1W}
s_{21} s_{22} \cdots s_{2W}
\vdots
s_{H1} s_{H2} \cdots s_{HW}
Here s_{rc} represents the color of (r, c) \- `#` stands for black, and `.`
stands for white. | import sys
sys.setrecursionlimit(10**6)
(H, W) = map(int, (input().split()))
INF = 1000
mymap = list()
for i in range(H):
mymap.append(input().rstrip())
# print(mymap)
costmap = [[INF for i in range(W)] for j in range(H)]
# print(costmap)
def make_costmap(i, j, prev_state, c):
# print(i,j,prev_state,c)
state = mymap[i][j]
if prev_state == "." and state == "#":
c += 1
if costmap[i][j] == INF or costmap[i][j] > c:
costmap[i][j] = c
else:
return
if i < H - 1:
make_costmap(i + 1, j, state, c)
if j < W - 1:
make_costmap(i, j + 1, state, c)
return
make_costmap(0, 0, ".", 0)
# for i in range(H):
# print(mymap[i])
# for i in range(H):
# print(costmap[i])
print(costmap[H - 1][W - 1])
| Statement
Consider a grid with H rows and W columns of squares. Let (r, c) denote the
square at the r-th row from the top and the c-th column from the left. Each
square is painted black or white.
The grid is said to be _good_ if and only if the following condition is
satisfied:
* From (1, 1), we can reach (H, W) by moving one square **right or down** repeatedly, while always being on a white square.
Note that (1, 1) and (H, W) must be white if the grid is good.
Your task is to make the grid good by repeating the operation below. Find the
minimum number of operations needed to complete the task. It can be proved
that you can always complete the task in a finite number of operations.
* Choose four integers r_0, c_0, r_1, c_1(1 \leq r_0 \leq r_1 \leq H, 1 \leq c_0 \leq c_1 \leq W). For each pair r, c (r_0 \leq r \leq r_1, c_0 \leq c \leq c_1), invert the color of (r, c) \- that is, from white to black and vice versa. | [{"input": "3 3\n .##\n .#.\n ##.", "output": "1\n \n\nDo the operation with (r_0, c_0, r_1, c_1) = (2, 2, 2, 2) to change just the\ncolor of (2, 2), and we are done.\n\n* * *"}, {"input": "2 2\n #.\n .#", "output": "2\n \n\n* * *"}, {"input": "4 4\n ..##\n #...\n ###.\n ###.", "output": "0\n \n\nNo operation may be needed.\n\n* * *"}, {"input": "5 5\n .#.#.\n #.#.#\n .#.#.\n #.#.#\n .#.#.", "output": "4"}] |
Print the minimum number of operations needed.
* * * | s974262270 | Runtime Error | p02735 | Input is given from Standard Input in the following format:
H W
s_{11} s_{12} \cdots s_{1W}
s_{21} s_{22} \cdots s_{2W}
\vdots
s_{H1} s_{H2} \cdots s_{HW}
Here s_{rc} represents the color of (r, c) \- `#` stands for black, and `.`
stands for white. | H, W = map(int, input().split())
S = [input() for _ in range(W)]
M = []
def dfs(m, n, history):
history_ = history + S[m][n]
if H - m > 1:
dfs(m + 1, n, history_)
if W - n > 1:
dfs(m, n + 1, history_)
if H - m == 1 and H - n == 1:
count = 0
for h in history_:
if h == "#":
count += 1
M.append(count)
return
dfs(0, 0, "")
print(min(M))
| Statement
Consider a grid with H rows and W columns of squares. Let (r, c) denote the
square at the r-th row from the top and the c-th column from the left. Each
square is painted black or white.
The grid is said to be _good_ if and only if the following condition is
satisfied:
* From (1, 1), we can reach (H, W) by moving one square **right or down** repeatedly, while always being on a white square.
Note that (1, 1) and (H, W) must be white if the grid is good.
Your task is to make the grid good by repeating the operation below. Find the
minimum number of operations needed to complete the task. It can be proved
that you can always complete the task in a finite number of operations.
* Choose four integers r_0, c_0, r_1, c_1(1 \leq r_0 \leq r_1 \leq H, 1 \leq c_0 \leq c_1 \leq W). For each pair r, c (r_0 \leq r \leq r_1, c_0 \leq c \leq c_1), invert the color of (r, c) \- that is, from white to black and vice versa. | [{"input": "3 3\n .##\n .#.\n ##.", "output": "1\n \n\nDo the operation with (r_0, c_0, r_1, c_1) = (2, 2, 2, 2) to change just the\ncolor of (2, 2), and we are done.\n\n* * *"}, {"input": "2 2\n #.\n .#", "output": "2\n \n\n* * *"}, {"input": "4 4\n ..##\n #...\n ###.\n ###.", "output": "0\n \n\nNo operation may be needed.\n\n* * *"}, {"input": "5 5\n .#.#.\n #.#.#\n .#.#.\n #.#.#\n .#.#.", "output": "4"}] |
Print the minimum number of operations needed.
* * * | s377724157 | Runtime Error | p02735 | Input is given from Standard Input in the following format:
H W
s_{11} s_{12} \cdots s_{1W}
s_{21} s_{22} \cdots s_{2W}
\vdots
s_{H1} s_{H2} \cdots s_{HW}
Here s_{rc} represents the color of (r, c) \- `#` stands for black, and `.`
stands for white. | def checkpath(h, w, table, max_bomb):
result = False
x = 0
y = 0
bomb = max_bomb
# x先行パターン
while True:
# # print("x:{} y:{} bomb:{}".format(x,y,bomb))
init = False
if x == w and y == h:
# 端についたらゴール
result = True
break
if bomb > 0 and init == False and table[0][0] == "#":
# 現在地が黒ならボムで
bomb -= 1
init = True
elif (
bomb > 0
and ((x == w and y == h - 1) or (x == w - 1 and y == h))
and table[w][h] == "#"
):
# ゴールが黒ならボムで
bomb -= 1
result = True
break
elif x < w and table[x + 1][y] == ".":
# # print('右に進む')
x += 1
elif y < h and table[x][y + 1] == ".":
# # print(' 下に進む')
y += 1
elif (
bomb > 0 and x < w - 1 and table[x + 1][y] == "#" and table[x + 2][y] == "."
):
# # print(' 右にボムから右に行く')
bomb -= 1
x += 2
elif (
bomb > 0
and x < w
and y < h
and table[x + 1][y] == "#"
and table[x + 1][y + 1] == "."
):
# # print(' 右にボムから下に行く')
bomb -= 1
x += 1
y += 1
elif (
bomb > 0
and y < h
and x < w
and table[x][y + 1] == "#"
and table[x + 1][y + 1] == "."
):
# # print(' 下にボムから右に行く')
bomb -= 1
y += 1
x += 1
elif (
bomb > 0 and y < h - 1 and table[x][y + 1] == "#" and table[x][y + 2] == "."
):
# # print(' 下にボムから下に行く')
bomb -= 1
y += 2
else:
break
if result:
return result
# y先行パターン
while True:
# # print("x:{} y:{}".format(x,y))
init = False
if x == w and y == h:
result = True
break
if bomb > 0 and init == False and table[0][0] == "#":
# 現在地が黒ならボムで
bomb -= 1
init = True
elif (
bomb > 0
and ((x == w and y == h - 1) or (x == w - 1 and y == h))
and table[w][h] == "#"
):
# ゴールが黒ならボムで
bomb -= 1
result = True
break
elif y < h and table[x][y + 1] == ".":
# # print(' 下に進む')
y += 1
elif x < w and table[x + 1][y] == ".":
# # print(' 右に進む')
x += 1
elif (
bomb > 0 and x < w - 1 and table[x + 1][y] == "#" and table[x + 2][y] == "."
):
# # print(' 右にボムから右に行く')
bomb -= 1
x += 2
elif (
bomb > 0
and x < w
and y < h
and table[x + 1][y] == "#"
and table[x + 1][y + 1] == "."
):
# # print(' 右にボムから下に行く')
bomb -= 1
x += 1
y += 1
elif (
bomb > 0
and y < h
and x < w
and table[x][y + 1] == "#"
and table[x + 1][y + 1] == "."
):
# # print(' 下にボムから右に行く')
bomb -= 1
y += 1
x += 1
elif (
bomb > 0 and y < h - 1 and table[x][y + 1] == "#" and table[x][y + 2] == "."
):
# # print(' 下にボムから下に行く')
bomb -= 1
y += 2
else:
break
return result
# メイン関数
# 入力からテーブル作成
hw = input("")
h = int(hw.split(" ")[0])
w = int(hw.split(" ")[1])
table = []
for i in range(0, h):
line = input("")
r = []
for j in range(0, w):
r.append(line[j])
table.append(r)
for c in range(0, h * w):
# # print("bomb:{}".format(c))
if checkpath(h - 1, w - 1, table, c):
# # print('Success!!')
print(c)
break
| Statement
Consider a grid with H rows and W columns of squares. Let (r, c) denote the
square at the r-th row from the top and the c-th column from the left. Each
square is painted black or white.
The grid is said to be _good_ if and only if the following condition is
satisfied:
* From (1, 1), we can reach (H, W) by moving one square **right or down** repeatedly, while always being on a white square.
Note that (1, 1) and (H, W) must be white if the grid is good.
Your task is to make the grid good by repeating the operation below. Find the
minimum number of operations needed to complete the task. It can be proved
that you can always complete the task in a finite number of operations.
* Choose four integers r_0, c_0, r_1, c_1(1 \leq r_0 \leq r_1 \leq H, 1 \leq c_0 \leq c_1 \leq W). For each pair r, c (r_0 \leq r \leq r_1, c_0 \leq c \leq c_1), invert the color of (r, c) \- that is, from white to black and vice versa. | [{"input": "3 3\n .##\n .#.\n ##.", "output": "1\n \n\nDo the operation with (r_0, c_0, r_1, c_1) = (2, 2, 2, 2) to change just the\ncolor of (2, 2), and we are done.\n\n* * *"}, {"input": "2 2\n #.\n .#", "output": "2\n \n\n* * *"}, {"input": "4 4\n ..##\n #...\n ###.\n ###.", "output": "0\n \n\nNo operation may be needed.\n\n* * *"}, {"input": "5 5\n .#.#.\n #.#.#\n .#.#.\n #.#.#\n .#.#.", "output": "4"}] |
Print the minimum number of operations needed.
* * * | s283149578 | Runtime Error | p02735 | Input is given from Standard Input in the following format:
H W
s_{11} s_{12} \cdots s_{1W}
s_{21} s_{22} \cdots s_{2W}
\vdots
s_{H1} s_{H2} \cdots s_{HW}
Here s_{rc} represents the color of (r, c) \- `#` stands for black, and `.`
stands for white. | N, A, B = map(int, input().split(" "))
distance = abs(B - A)
res = 0
if distance % 2 == 0:
res = distance / 2
else:
a, b = min(A, B), max(A, B)
ans = distance // 2 + min(a - 1, N - b) + 1
| Statement
Consider a grid with H rows and W columns of squares. Let (r, c) denote the
square at the r-th row from the top and the c-th column from the left. Each
square is painted black or white.
The grid is said to be _good_ if and only if the following condition is
satisfied:
* From (1, 1), we can reach (H, W) by moving one square **right or down** repeatedly, while always being on a white square.
Note that (1, 1) and (H, W) must be white if the grid is good.
Your task is to make the grid good by repeating the operation below. Find the
minimum number of operations needed to complete the task. It can be proved
that you can always complete the task in a finite number of operations.
* Choose four integers r_0, c_0, r_1, c_1(1 \leq r_0 \leq r_1 \leq H, 1 \leq c_0 \leq c_1 \leq W). For each pair r, c (r_0 \leq r \leq r_1, c_0 \leq c \leq c_1), invert the color of (r, c) \- that is, from white to black and vice versa. | [{"input": "3 3\n .##\n .#.\n ##.", "output": "1\n \n\nDo the operation with (r_0, c_0, r_1, c_1) = (2, 2, 2, 2) to change just the\ncolor of (2, 2), and we are done.\n\n* * *"}, {"input": "2 2\n #.\n .#", "output": "2\n \n\n* * *"}, {"input": "4 4\n ..##\n #...\n ###.\n ###.", "output": "0\n \n\nNo operation may be needed.\n\n* * *"}, {"input": "5 5\n .#.#.\n #.#.#\n .#.#.\n #.#.#\n .#.#.", "output": "4"}] |
Print the minimum number of operations needed.
* * * | s454059021 | Accepted | p02735 | Input is given from Standard Input in the following format:
H W
s_{11} s_{12} \cdots s_{1W}
s_{21} s_{22} \cdots s_{2W}
\vdots
s_{H1} s_{H2} \cdots s_{HW}
Here s_{rc} represents the color of (r, c) \- `#` stands for black, and `.`
stands for white. | def main():
import sys
input = sys.stdin.buffer.readline
h, w = map(int, input().split())
t, *s, _ = input()
if t == 46:
c, f = 0, False
else:
c, f = 1, True
p = [(c, f)]
for t in s:
g = t == 35
if g != f:
c += 1
f = not f
p += ((c, f),)
d = p
for _ in range(h - 1):
t, *s, _ = input()
c, f = d[0]
g = t == 35
if g != f:
c += 1
f = not f
p = [(c, f)]
for i, t in enumerate(s, 1):
e, h = d[i]
g = t == 35
if h != g:
e += 1
h = not h
if f != g:
c += 1
f = not f
if e < c:
c, f = e, h
p += ((c, f),)
d = p
print(d[-1][0] + 1 >> 1)
main()
| Statement
Consider a grid with H rows and W columns of squares. Let (r, c) denote the
square at the r-th row from the top and the c-th column from the left. Each
square is painted black or white.
The grid is said to be _good_ if and only if the following condition is
satisfied:
* From (1, 1), we can reach (H, W) by moving one square **right or down** repeatedly, while always being on a white square.
Note that (1, 1) and (H, W) must be white if the grid is good.
Your task is to make the grid good by repeating the operation below. Find the
minimum number of operations needed to complete the task. It can be proved
that you can always complete the task in a finite number of operations.
* Choose four integers r_0, c_0, r_1, c_1(1 \leq r_0 \leq r_1 \leq H, 1 \leq c_0 \leq c_1 \leq W). For each pair r, c (r_0 \leq r \leq r_1, c_0 \leq c \leq c_1), invert the color of (r, c) \- that is, from white to black and vice versa. | [{"input": "3 3\n .##\n .#.\n ##.", "output": "1\n \n\nDo the operation with (r_0, c_0, r_1, c_1) = (2, 2, 2, 2) to change just the\ncolor of (2, 2), and we are done.\n\n* * *"}, {"input": "2 2\n #.\n .#", "output": "2\n \n\n* * *"}, {"input": "4 4\n ..##\n #...\n ###.\n ###.", "output": "0\n \n\nNo operation may be needed.\n\n* * *"}, {"input": "5 5\n .#.#.\n #.#.#\n .#.#.\n #.#.#\n .#.#.", "output": "4"}] |
Print the minimum number of operations needed.
* * * | s306753701 | Wrong Answer | p02735 | Input is given from Standard Input in the following format:
H W
s_{11} s_{12} \cdots s_{1W}
s_{21} s_{22} \cdots s_{2W}
\vdots
s_{H1} s_{H2} \cdots s_{HW}
Here s_{rc} represents the color of (r, c) \- `#` stands for black, and `.`
stands for white. | print(0)
| Statement
Consider a grid with H rows and W columns of squares. Let (r, c) denote the
square at the r-th row from the top and the c-th column from the left. Each
square is painted black or white.
The grid is said to be _good_ if and only if the following condition is
satisfied:
* From (1, 1), we can reach (H, W) by moving one square **right or down** repeatedly, while always being on a white square.
Note that (1, 1) and (H, W) must be white if the grid is good.
Your task is to make the grid good by repeating the operation below. Find the
minimum number of operations needed to complete the task. It can be proved
that you can always complete the task in a finite number of operations.
* Choose four integers r_0, c_0, r_1, c_1(1 \leq r_0 \leq r_1 \leq H, 1 \leq c_0 \leq c_1 \leq W). For each pair r, c (r_0 \leq r \leq r_1, c_0 \leq c \leq c_1), invert the color of (r, c) \- that is, from white to black and vice versa. | [{"input": "3 3\n .##\n .#.\n ##.", "output": "1\n \n\nDo the operation with (r_0, c_0, r_1, c_1) = (2, 2, 2, 2) to change just the\ncolor of (2, 2), and we are done.\n\n* * *"}, {"input": "2 2\n #.\n .#", "output": "2\n \n\n* * *"}, {"input": "4 4\n ..##\n #...\n ###.\n ###.", "output": "0\n \n\nNo operation may be needed.\n\n* * *"}, {"input": "5 5\n .#.#.\n #.#.#\n .#.#.\n #.#.#\n .#.#.", "output": "4"}] |
Print the minimum number of operations needed.
* * * | s537915032 | Wrong Answer | p02735 | Input is given from Standard Input in the following format:
H W
s_{11} s_{12} \cdots s_{1W}
s_{21} s_{22} \cdots s_{2W}
\vdots
s_{H1} s_{H2} \cdots s_{HW}
Here s_{rc} represents the color of (r, c) \- `#` stands for black, and `.`
stands for white. | h, w = map(int, input().split())
board = [list(input()) for i in range(h)]
r = 0
c = 0
ans = 0
print(board[r][c])
| Statement
Consider a grid with H rows and W columns of squares. Let (r, c) denote the
square at the r-th row from the top and the c-th column from the left. Each
square is painted black or white.
The grid is said to be _good_ if and only if the following condition is
satisfied:
* From (1, 1), we can reach (H, W) by moving one square **right or down** repeatedly, while always being on a white square.
Note that (1, 1) and (H, W) must be white if the grid is good.
Your task is to make the grid good by repeating the operation below. Find the
minimum number of operations needed to complete the task. It can be proved
that you can always complete the task in a finite number of operations.
* Choose four integers r_0, c_0, r_1, c_1(1 \leq r_0 \leq r_1 \leq H, 1 \leq c_0 \leq c_1 \leq W). For each pair r, c (r_0 \leq r \leq r_1, c_0 \leq c \leq c_1), invert the color of (r, c) \- that is, from white to black and vice versa. | [{"input": "3 3\n .##\n .#.\n ##.", "output": "1\n \n\nDo the operation with (r_0, c_0, r_1, c_1) = (2, 2, 2, 2) to change just the\ncolor of (2, 2), and we are done.\n\n* * *"}, {"input": "2 2\n #.\n .#", "output": "2\n \n\n* * *"}, {"input": "4 4\n ..##\n #...\n ###.\n ###.", "output": "0\n \n\nNo operation may be needed.\n\n* * *"}, {"input": "5 5\n .#.#.\n #.#.#\n .#.#.\n #.#.#\n .#.#.", "output": "4"}] |
Print the minimum number of operations needed.
* * * | s079905812 | Runtime Error | p02735 | Input is given from Standard Input in the following format:
H W
s_{11} s_{12} \cdots s_{1W}
s_{21} s_{22} \cdots s_{2W}
\vdots
s_{H1} s_{H2} \cdots s_{HW}
Here s_{rc} represents the color of (r, c) \- `#` stands for black, and `.`
stands for white. | # -*- utf-8 -*-
tar_x, tar_y = map(int, input().split())
stage = []
tmp = list(input().split())
while not 0 == len(tmp):
stage.append(tmp)
tmp = list(input())
ans = 1000000000
tar_x, tar_y = (tar_x - 1, tar_y - 1)
now_x, now_y = (0, 0)
# serch
cnt = 0
while now_x != tar_x or now_y != tar_y:
if "#" == stage[now_x][now_y]:
cnt += 1
# move next
if tar_x == now_x:
next_x = now_x
else:
next_x = now_x + 1
if tar_y == now_y:
next_y = now_y
else:
next_y = now_y + 1
# setch x
if "#" != stage[next_x][now_y] and tar_x != now_x:
now_x = next_x
# serch y
elif "#" != stage[now_x][next_y] and tar_y != now_y:
now_y = next_y
# bose "#"
else:
if tar_x != now_x:
now_x = next_x
elif tar_x != now_x:
now_y = next_y
else:
tmp_cnt_x = 0
tmp_cnt_y = 0
# x
next_next_x = next_x + 1 if tar_x >= (next_x + 1) else None
next_next_y = now_y + 1 if tar_y >= (now_y + 1) else None
if not None is next_next_x:
if "." == stage[next_next_x][now_y]:
tmp_cnt_x += 1
if not None is next_next_y:
if "." == stage[next_x][next_next_y]:
tmp_cnt_x += 1
if not None is next_next_x and not None is next_next_y:
if "." == stage[next_next_x][next_next_y]:
tmp_cnt_x += 1
# y
next_next_x = now_x + 1 if tar_x >= (now_x + 1) else None
next_next_y = next_y + 1 if tar_y >= (next_y + 1) else None
if not None is next_next_x:
if "." == stage[next_next_x][next_y]:
tmp_cnt_y += 1
if not None is next_next_y:
if "." == stage[now_x][next_next_y]:
tmp_cnt_y += 1
if not None is next_next_x and not None is next_next_y:
if "." == stage[next_next_x][next_next_y]:
tmp_cnt_y += 1
if tmp_cnt_x >= tmp_cnt_y:
now_x = next_x
else:
now_y = next_y
if "#" == stage[now_x][now_y]:
cnt += 1
print(cnt)
| Statement
Consider a grid with H rows and W columns of squares. Let (r, c) denote the
square at the r-th row from the top and the c-th column from the left. Each
square is painted black or white.
The grid is said to be _good_ if and only if the following condition is
satisfied:
* From (1, 1), we can reach (H, W) by moving one square **right or down** repeatedly, while always being on a white square.
Note that (1, 1) and (H, W) must be white if the grid is good.
Your task is to make the grid good by repeating the operation below. Find the
minimum number of operations needed to complete the task. It can be proved
that you can always complete the task in a finite number of operations.
* Choose four integers r_0, c_0, r_1, c_1(1 \leq r_0 \leq r_1 \leq H, 1 \leq c_0 \leq c_1 \leq W). For each pair r, c (r_0 \leq r \leq r_1, c_0 \leq c \leq c_1), invert the color of (r, c) \- that is, from white to black and vice versa. | [{"input": "3 3\n .##\n .#.\n ##.", "output": "1\n \n\nDo the operation with (r_0, c_0, r_1, c_1) = (2, 2, 2, 2) to change just the\ncolor of (2, 2), and we are done.\n\n* * *"}, {"input": "2 2\n #.\n .#", "output": "2\n \n\n* * *"}, {"input": "4 4\n ..##\n #...\n ###.\n ###.", "output": "0\n \n\nNo operation may be needed.\n\n* * *"}, {"input": "5 5\n .#.#.\n #.#.#\n .#.#.\n #.#.#\n .#.#.", "output": "4"}] |
Print the minimum number of operations needed.
* * * | s406262363 | Runtime Error | p02735 | Input is given from Standard Input in the following format:
H W
s_{11} s_{12} \cdots s_{1W}
s_{21} s_{22} \cdots s_{2W}
\vdots
s_{H1} s_{H2} \cdots s_{HW}
Here s_{rc} represents the color of (r, c) \- `#` stands for black, and `.`
stands for white. | import sys
sys.setrecursionlimit(10**8)
def maze(r, c, MAP, count, shaf, H, W):
# print(r, c, count, shaf)
if r == H - 1 and c == W - 1:
if shaf == 1 and MAP[r][c] == "#":
print(count)
exit()
if shaf == 0 and MAP[r][c] == ".":
print(count)
exit()
if r == H or c == W:
return
if shaf == 0:
if r != H - 1 and MAP[r + 1][c] == ".":
maze(r + 1, c, MAP, count, shaf, H, W)
elif c != W - 1 and MAP[r][c + 1] == ".":
maze(r, c + 1, MAP, count, shaf, H, W)
else:
if r != H - 1:
maze(r + 1, c, MAP, count + 1, 1, H, W)
if c != W - 1:
maze(r, c + 1, MAP, count + 1, 1, H, W)
if shaf == 1:
if r != H - 1 and MAP[r + 1][c] == "#":
maze(r + 1, c, MAP, count, shaf, H, W)
elif c != W - 1 and MAP[r][c + 1] == "#":
maze(r, c + 1, MAP, count, shaf, H, W)
else:
if r != H - 1:
maze(r + 1, c, MAP, count, 0, H, W)
if c != W - 1:
maze(r, c + 1, MAP, count, 0, H, W)
def main():
H, W = list(map(int, input().split()))
MAP = [[int() for x in range(H)] for xx in range(W)]
for i in range(W):
MAP[i] = input()
count = 0
shaf = 0
if MAP[0][0] == "#":
shaf = 1
count = 1
print(maze(0, 0, MAP, count, shaf, H, W))
main()
| Statement
Consider a grid with H rows and W columns of squares. Let (r, c) denote the
square at the r-th row from the top and the c-th column from the left. Each
square is painted black or white.
The grid is said to be _good_ if and only if the following condition is
satisfied:
* From (1, 1), we can reach (H, W) by moving one square **right or down** repeatedly, while always being on a white square.
Note that (1, 1) and (H, W) must be white if the grid is good.
Your task is to make the grid good by repeating the operation below. Find the
minimum number of operations needed to complete the task. It can be proved
that you can always complete the task in a finite number of operations.
* Choose four integers r_0, c_0, r_1, c_1(1 \leq r_0 \leq r_1 \leq H, 1 \leq c_0 \leq c_1 \leq W). For each pair r, c (r_0 \leq r \leq r_1, c_0 \leq c \leq c_1), invert the color of (r, c) \- that is, from white to black and vice versa. | [{"input": "3 3\n .##\n .#.\n ##.", "output": "1\n \n\nDo the operation with (r_0, c_0, r_1, c_1) = (2, 2, 2, 2) to change just the\ncolor of (2, 2), and we are done.\n\n* * *"}, {"input": "2 2\n #.\n .#", "output": "2\n \n\n* * *"}, {"input": "4 4\n ..##\n #...\n ###.\n ###.", "output": "0\n \n\nNo operation may be needed.\n\n* * *"}, {"input": "5 5\n .#.#.\n #.#.#\n .#.#.\n #.#.#\n .#.#.", "output": "4"}] |
Print the sum of the weights the Minimum-Cost Arborescence. | s251442501 | Wrong Answer | p02365 | |V| |E| r
s0 t0 w0
s1 t1 w1
:
s|E|-1 t|E|-1 w|E|-1
, where |V| is the number of vertices and |E| is the number of edges in the
graph. The graph vertices are named with the numbers 0, 1,..., |V|-1
respectively. r is the root of the Minimum-Cost Arborescence.
si and ti represent source and target verticess of i-th directed edge. wi
represents the weight of the i-th directed edge. | import heapq as pq
n,E,r = map(int, input().split())
M = [[] for i in range(n)]
for i in range(E):
s,t,w = map(int, input().split())
M[s].append([t,w])
def prim(r):
color = [0] * n
d = [float("inf")] * n
d[r] = 0
H = []
pq.heappush(H, [0, r])
while H:
u2,u1 = pq.heappop(H)
color[u1] = 1
if d[u1] < u2: continue
for v1, v2 in M[u1]:
if color[v1] == 1: continue
if d[v1] > v2:
d[v1] = v2
pq.heappush(H, [d[v1], v1])
return sum(d)
print(prim(r)) | Minimum-Cost Arborescence
Find the sum of the weights of edges of the Minimum-Cost Arborescence with the
root r for a given weighted directed graph G = (V, E). | [{"input": "4 6 0\n 0 1 3\n 0 2 2\n 2 0 1\n 2 3 1\n 3 0 1\n 3 1 5", "output": "6"}, {"input": "6 10 0\n 0 2 7\n 0 1 1\n 0 3 5\n 1 4 9\n 2 1 6\n 1 3 2\n 3 4 3\n 4 2 2\n 2 5 8\n 3 5 3", "output": "11"}] |
Print the sum of the weights the Minimum-Cost Arborescence. | s217883813 | Runtime Error | p02365 | |V| |E| r
s0 t0 w0
s1 t1 w1
:
s|E|-1 t|E|-1 w|E|-1
, where |V| is the number of vertices and |E| is the number of edges in the
graph. The graph vertices are named with the numbers 0, 1,..., |V|-1
respectively. r is the root of the Minimum-Cost Arborescence.
si and ti represent source and target verticess of i-th directed edge. wi
represents the weight of the i-th directed edge. | # Acceptance of input
import sys
file_input = sys.stdin
v_num, e_num, r = map(int, file_input.readline().split())
G = [[] for i in range(v_num)]
import heapq
for line in file_input:
s, t, w = map(int, line.split())
if t != r:
heapq.heappush(G[t], [w, s, t])
# Edmonds' algorithm
def find_cycle(incoming_edges, root):
in_tree = [False] * v_num
in_tree[root] = True
for e in incoming_edges[:root] + incoming_edges[root + 1 :]:
S = []
S.append(e[2])
while True:
p = incoming_edges[S[-1]][1]
if in_tree[p]:
while S:
in_tree[S.pop()] = True
break
elif p in S:
return S[S.index(p) :] # return nodes in a cycle
else:
S.append(p)
return None
def contract_cycle(digraph, cycle_node):
for edges in digraph:
min_weight = edges[0][0]
for e in edges:
e[0] -= min_weight
contracted_edges = []
for n in cycle_node:
edge_set_in_cycle = digraph[n]
heapq.heappop(edge_set_in_cycle)
for e in edge_set_in_cycle:
heapq.heappush(contracted_edges, e)
for n in cycle_node:
digraph[n] = contracted_edges
def edmonds_branching(digraph, root, weight):
min_incoming_edges = [None] * v_num
for edges in digraph[:root] + digraph[root + 1 :]:
min_edge = edges[0]
min_incoming_edges[min_edge[2]] = min_edge
weight += min_edge[0]
C = find_cycle(min_incoming_edges, root)
if not C:
return weight
else:
contract_cycle(digraph, C)
return edmonds_branching(digraph, root, weight)
# output
print(edmonds_branching(G, r, 0))
| Minimum-Cost Arborescence
Find the sum of the weights of edges of the Minimum-Cost Arborescence with the
root r for a given weighted directed graph G = (V, E). | [{"input": "4 6 0\n 0 1 3\n 0 2 2\n 2 0 1\n 2 3 1\n 3 0 1\n 3 1 5", "output": "6"}, {"input": "6 10 0\n 0 2 7\n 0 1 1\n 0 3 5\n 1 4 9\n 2 1 6\n 1 3 2\n 3 4 3\n 4 2 2\n 2 5 8\n 3 5 3", "output": "11"}] |
Print the sum of the weights the Minimum-Cost Arborescence. | s577994891 | Accepted | p02365 | |V| |E| r
s0 t0 w0
s1 t1 w1
:
s|E|-1 t|E|-1 w|E|-1
, where |V| is the number of vertices and |E| is the number of edges in the
graph. The graph vertices are named with the numbers 0, 1,..., |V|-1
respectively. r is the root of the Minimum-Cost Arborescence.
si and ti represent source and target verticess of i-th directed edge. wi
represents the weight of the i-th directed edge. | # Edige Weighted Digraph
from collections import namedtuple
WeightedEdge = namedtuple("WeightedEdge", ("src", "dest", "weight"))
class Digraph:
def __init__(self, v):
self.v = v
self._edges = [[] for _ in range(v)]
def add(self, edge):
self._edges[edge.src].append(edge)
def adj(self, v):
return self._edges[v]
def edges(self):
for es in self._edges:
for e in es:
yield e
def mca_chu_liu_edmonds(graph, s):
def select_edges():
es = [None] * graph.v
for v in range(graph.v):
for e in graph.adj(v):
w = e.dest
if w == s:
continue
if es[w] is None or e.weight < es[w].weight:
es[w] = e
return es
def find_cycle(es):
vs = [0 for _ in range(graph.v)]
for e in es:
if e is None:
continue
vs[e.src] += 1
leaves = [v for v, c in enumerate(vs) if c == 0]
while leaves:
leaf, *leaves = leaves
if es[leaf] is not None:
w = es[leaf].src
vs[w] -= 1
if vs[w] == 0:
leaves.append(w)
cycle = []
for v, c in enumerate(vs):
if c > 0:
cycle.append(v)
u = es[v].src
while u != v:
cycle.append(u)
u = es[u].src
break
return cycle
def contract(es, vs):
vvs = []
vv = 0
c = graph.v - len(vs)
for v in range(graph.v):
if v in vs:
vvs.append(c)
else:
vvs.append(vv)
vv += 1
g = Digraph(c + 1)
for v in range(graph.v):
for e in graph.adj(v):
if e.src not in vs or e.dest not in vs:
v = vvs[e.src]
w = vvs[e.dest]
weight = e.weight
if e.dest in vs:
weight -= es[e.dest].weight
e = WeightedEdge(v, w, weight)
g.add(e)
return g, vvs[s]
edges = select_edges()
cycle = find_cycle(edges)
if cycle:
g, ss = contract(edges, cycle)
return mca_chu_liu_edmonds(g, ss) + sum(edges[v].weight for v in cycle)
else:
return sum(e.weight for e in edges if e is not None)
def run():
v, e, r = [int(i) for i in input().split()]
graph = Digraph(v)
for _ in range(e):
s, t, w = [int(i) for i in input().split()]
graph.add(WeightedEdge(s, t, w))
print(mca_chu_liu_edmonds(graph, r))
if __name__ == "__main__":
run()
| Minimum-Cost Arborescence
Find the sum of the weights of edges of the Minimum-Cost Arborescence with the
root r for a given weighted directed graph G = (V, E). | [{"input": "4 6 0\n 0 1 3\n 0 2 2\n 2 0 1\n 2 3 1\n 3 0 1\n 3 1 5", "output": "6"}, {"input": "6 10 0\n 0 2 7\n 0 1 1\n 0 3 5\n 1 4 9\n 2 1 6\n 1 3 2\n 3 4 3\n 4 2 2\n 2 5 8\n 3 5 3", "output": "11"}] |
If there exists no unbalanced substring of s, print `-1 -1`.
If there exists an unbalanced substring of s, let one such substring be s_a
s_{a+1} ... s_{b} (1 ≦ a < b ≦ |s|), and print `a b`. If there exists more
than one such substring, any of them will be accepted.
* * * | s957253605 | Runtime Error | p04032 | The input is given from Standard Input in the following format:
s | str = input()
flg=0
for n in range(0,len(str)-2):
if(str[n]==str[n+1]):
print(n+1,n+2)
flg =1
break
elif (str[n]==str[n+2]):
print(n+1,n+3)
flg=1
break
if flg =0:
print(-1,-1) | Statement
Given a string t, we will call it _unbalanced_ if and only if the length of t
is at least 2, and more than half of the letters in t are the same. For
example, both `voodoo` and `melee` are unbalanced, while neither `noon` nor
`a` is.
You are given a string s consisting of lowercase letters. Determine if there
exists a (contiguous) substring of s that is unbalanced. If the answer is
positive, show a position where such a substring occurs in s. | [{"input": "needed", "output": "2 5\n \n\nThe string s_2 s_3 s_4 s_5 = `eede` is unbalanced. There are also other\nunbalanced substrings. For example, the output `2 6` will also be accepted.\n\n* * *"}, {"input": "atcoder", "output": "-1 -1\n \n\nThe string `atcoder` contains no unbalanced substring."}] |
If there exists no unbalanced substring of s, print `-1 -1`.
If there exists an unbalanced substring of s, let one such substring be s_a
s_{a+1} ... s_{b} (1 ≦ a < b ≦ |s|), and print `a b`. If there exists more
than one such substring, any of them will be accepted.
* * * | s440824171 | Accepted | p04032 | The input is given from Standard Input in the following format:
s | import sys, collections as cl, bisect as bs
sys.setrecursionlimit(100000)
input = sys.stdin.readline
mod = 10**9 + 7
Max = sys.maxsize
def l(): # intのlist
return list(map(int, input().split()))
def m(): # 複数文字
return map(int, input().split())
def onem(): # Nとかの取得
return int(input())
def s(x): # 圧縮
a = []
if len(x) == 0:
return []
aa = x[0]
su = 1
for i in range(len(x) - 1):
if aa != x[i + 1]:
a.append([aa, su])
aa = x[i + 1]
su = 1
else:
su += 1
a.append([aa, su])
return a
def jo(x): # listをスペースごとに分ける
return " ".join(map(str, x))
def max2(x): # 他のときもどうように作成可能
return max(map(max, x))
def In(x, a): # aがリスト(sorted)
k = bs.bisect_left(a, x)
if k != len(a) and a[k] == x:
return True
else:
return False
def pow_k(x, n):
ans = 1
while n:
if n % 2:
ans *= x
x *= x
n >>= 1
return ans
"""
def nibu(x,n,r):
ll = 0
rr = r
while True:
mid = (ll+rr)//2
if rr == mid:
return ll
if (ここに評価入れる):
rr = mid
else:
ll = mid+1
"""
s = input()[:-1]
a, b = -1, -1
for i in range(1, len(s)):
if i >= 2:
if s[i] == s[i - 1]:
a = i
b = i + 1
break
if s[i] == s[i - 2]:
a = i - 1
b = i + 1
break
else:
if s[i] == s[i - 1]:
a = i
b = i + 1
break
print(a, b)
| Statement
Given a string t, we will call it _unbalanced_ if and only if the length of t
is at least 2, and more than half of the letters in t are the same. For
example, both `voodoo` and `melee` are unbalanced, while neither `noon` nor
`a` is.
You are given a string s consisting of lowercase letters. Determine if there
exists a (contiguous) substring of s that is unbalanced. If the answer is
positive, show a position where such a substring occurs in s. | [{"input": "needed", "output": "2 5\n \n\nThe string s_2 s_3 s_4 s_5 = `eede` is unbalanced. There are also other\nunbalanced substrings. For example, the output `2 6` will also be accepted.\n\n* * *"}, {"input": "atcoder", "output": "-1 -1\n \n\nThe string `atcoder` contains no unbalanced substring."}] |
If there exists no unbalanced substring of s, print `-1 -1`.
If there exists an unbalanced substring of s, let one such substring be s_a
s_{a+1} ... s_{b} (1 ≦ a < b ≦ |s|), and print `a b`. If there exists more
than one such substring, any of them will be accepted.
* * * | s661734710 | Accepted | p04032 | The input is given from Standard Input in the following format:
s | # -*- coding: utf-8 -*-
#############
# Libraries #
#############
import sys
input = sys.stdin.readline
import math
# from math import gcd
import bisect
import heapq
from collections import defaultdict
from collections import deque
from collections import Counter
from functools import lru_cache
#############
# Constants #
#############
MOD = 10**9 + 7
INF = float("inf")
AZ = "abcdefghijklmnopqrstuvwxyz"
#############
# Functions #
#############
######INPUT######
def I():
return int(input().strip())
def S():
return input().strip()
def IL():
return list(map(int, input().split()))
def SL():
return list(map(str, input().split()))
def ILs(n):
return list(int(input()) for _ in range(n))
def SLs(n):
return list(input().strip() for _ in range(n))
def ILL(n):
return [list(map(int, input().split())) for _ in range(n)]
def SLL(n):
return [list(map(str, input().split())) for _ in range(n)]
######OUTPUT######
def P(arg):
print(arg)
return
def Y():
print("Yes")
return
def N():
print("No")
return
def E():
exit()
def PE(arg):
print(arg)
exit()
def YE():
print("Yes")
exit()
def NE():
print("No")
exit()
#####Shorten#####
def DD(arg):
return defaultdict(arg)
#####Inverse#####
def inv(n):
return pow(n, MOD - 2, MOD)
######Combination######
kaijo_memo = []
def kaijo(n):
if len(kaijo_memo) > n:
return kaijo_memo[n]
if len(kaijo_memo) == 0:
kaijo_memo.append(1)
while len(kaijo_memo) <= n:
kaijo_memo.append(kaijo_memo[-1] * len(kaijo_memo) % MOD)
return kaijo_memo[n]
gyaku_kaijo_memo = []
def gyaku_kaijo(n):
if len(gyaku_kaijo_memo) > n:
return gyaku_kaijo_memo[n]
if len(gyaku_kaijo_memo) == 0:
gyaku_kaijo_memo.append(1)
while len(gyaku_kaijo_memo) <= n:
gyaku_kaijo_memo.append(
gyaku_kaijo_memo[-1] * pow(len(gyaku_kaijo_memo), MOD - 2, MOD) % MOD
)
return gyaku_kaijo_memo[n]
def nCr(n, r):
if n == r:
return 1
if n < r or r < 0:
return 0
ret = 1
ret = ret * kaijo(n) % MOD
ret = ret * gyaku_kaijo(r) % MOD
ret = ret * gyaku_kaijo(n - r) % MOD
return ret
######Factorization######
def factorization(n):
arr = []
temp = n
for i in range(2, int(-(-(n**0.5) // 1)) + 1):
if temp % i == 0:
cnt = 0
while temp % i == 0:
cnt += 1
temp //= i
arr.append([i, cnt])
if temp != 1:
arr.append([temp, 1])
if arr == []:
arr.append([n, 1])
return arr
#####MakeDivisors######
def make_divisors(n):
divisors = []
for i in range(1, int(n**0.5) + 1):
if n % i == 0:
divisors.append(i)
if i != n // i:
divisors.append(n // i)
return divisors
#####MakePrimes######
def make_primes(N):
max = int(math.sqrt(N))
seachList = [i for i in range(2, N + 1)]
primeNum = []
while seachList[0] <= max:
primeNum.append(seachList[0])
tmp = seachList[0]
seachList = [i for i in seachList if i % tmp != 0]
primeNum.extend(seachList)
return primeNum
#####GCD#####
def gcd(a, b):
while b:
a, b = b, a % b
return a
#####LCM#####
def lcm(a, b):
return a * b // gcd(a, b)
#####BitCount#####
def count_bit(n):
count = 0
while n:
n &= n - 1
count += 1
return count
#####ChangeBase#####
def base_10_to_n(X, n):
if X // n:
return base_10_to_n(X // n, n) + [X % n]
return [X % n]
def base_n_to_10(X, n):
return sum(int(str(X)[-i - 1]) * n**i for i in range(len(str(X))))
def base_10_to_n_without_0(X, n):
X -= 1
if X // n:
return base_10_to_n_without_0(X // n, n) + [X % n]
return [X % n]
#####IntLog#####
def int_log(n, a):
count = 0
while n >= a:
n //= a
count += 1
return count
#############
# Main Code #
#############
S = S()
N = len(S)
for x in AZ:
prev = -INF
for i in range(N):
if S[i] == x:
if i - prev <= 2:
print(prev + 1, i + 1)
exit()
prev = i
print(-1, -1)
| Statement
Given a string t, we will call it _unbalanced_ if and only if the length of t
is at least 2, and more than half of the letters in t are the same. For
example, both `voodoo` and `melee` are unbalanced, while neither `noon` nor
`a` is.
You are given a string s consisting of lowercase letters. Determine if there
exists a (contiguous) substring of s that is unbalanced. If the answer is
positive, show a position where such a substring occurs in s. | [{"input": "needed", "output": "2 5\n \n\nThe string s_2 s_3 s_4 s_5 = `eede` is unbalanced. There are also other\nunbalanced substrings. For example, the output `2 6` will also be accepted.\n\n* * *"}, {"input": "atcoder", "output": "-1 -1\n \n\nThe string `atcoder` contains no unbalanced substring."}] |
If there exists no unbalanced substring of s, print `-1 -1`.
If there exists an unbalanced substring of s, let one such substring be s_a
s_{a+1} ... s_{b} (1 ≦ a < b ≦ |s|), and print `a b`. If there exists more
than one such substring, any of them will be accepted.
* * * | s633679972 | Runtime Error | p04032 | The input is given from Standard Input in the following format:
s | S = input()
prvs = ''
si = None
for i, s in enumerate(S):
if prvs == s:
if si is None: si = i
print(i,i+1)
exit()
else:
if si is not None:
print(si, i)
prvs = s
for i range(len(S)-2):
if set(S[i:i+3])>=3:
print(i+1, i+4)
exit()
print(-1, -1)
| Statement
Given a string t, we will call it _unbalanced_ if and only if the length of t
is at least 2, and more than half of the letters in t are the same. For
example, both `voodoo` and `melee` are unbalanced, while neither `noon` nor
`a` is.
You are given a string s consisting of lowercase letters. Determine if there
exists a (contiguous) substring of s that is unbalanced. If the answer is
positive, show a position where such a substring occurs in s. | [{"input": "needed", "output": "2 5\n \n\nThe string s_2 s_3 s_4 s_5 = `eede` is unbalanced. There are also other\nunbalanced substrings. For example, the output `2 6` will also be accepted.\n\n* * *"}, {"input": "atcoder", "output": "-1 -1\n \n\nThe string `atcoder` contains no unbalanced substring."}] |
If there exists no unbalanced substring of s, print `-1 -1`.
If there exists an unbalanced substring of s, let one such substring be s_a
s_{a+1} ... s_{b} (1 ≦ a < b ≦ |s|), and print `a b`. If there exists more
than one such substring, any of them will be accepted.
* * * | s403943212 | Runtime Error | p04032 | The input is given from Standard Input in the following format:
s | import sys
l = [i for i in input()]
dup_l = [i for i in set(l) if l.count(i) > 1] # len(l)//2]
# print(dup_l)
if len(dup_l) == 0:
print("-1 -1")
else:
d = dict()
for i in dup_l:
d[i] = l.count(i)
# print(d)
dmax = max(d, key=d.get)
# print(dmax)
index = []
for i, s in enumerate(l, 1):
if s == dmax:
index.append(i)
# print(index)
okflag = 0
for i in range(len(index)):
if i != len(index):
if index[i + 1] - index[i] <= 2:
print(index[i], index[i + 1])
okflag = 1
break
if okflag == 0:
print("-1 -1")
| Statement
Given a string t, we will call it _unbalanced_ if and only if the length of t
is at least 2, and more than half of the letters in t are the same. For
example, both `voodoo` and `melee` are unbalanced, while neither `noon` nor
`a` is.
You are given a string s consisting of lowercase letters. Determine if there
exists a (contiguous) substring of s that is unbalanced. If the answer is
positive, show a position where such a substring occurs in s. | [{"input": "needed", "output": "2 5\n \n\nThe string s_2 s_3 s_4 s_5 = `eede` is unbalanced. There are also other\nunbalanced substrings. For example, the output `2 6` will also be accepted.\n\n* * *"}, {"input": "atcoder", "output": "-1 -1\n \n\nThe string `atcoder` contains no unbalanced substring."}] |
If there exists no unbalanced substring of s, print `-1 -1`.
If there exists an unbalanced substring of s, let one such substring be s_a
s_{a+1} ... s_{b} (1 ≦ a < b ≦ |s|), and print `a b`. If there exists more
than one such substring, any of them will be accepted.
* * * | s573317174 | Runtime Error | p04032 | The input is given from Standard Input in the following format:
s | import sys
def convert(num):
out = ""
if num == 0:
out = "a"
elif num == 1:
out = "b"
elif num == 2:
out = "c"
elif num == 3:
out = "d"
elif num == 4:
out = "e"
elif num == 5:
out = "f"
elif num == 6:
out = "g"
elif num == 7:
out = "h"
elif num == 8:
out = "i"
elif num == 9:
out = "j"
elif num == 10:
out = "k"
elif num == 11:
out = "l"
elif num == 12:
out = "m"
elif num == 13:
out = "n"
elif num == 14:
out = "o"
elif num == 15:
out = "p"
elif num == 16:
out = "q"
elif num == 17:
out = "r"
elif num == 18:
out = "s"
elif num == 19:
out = "t"
elif num == 20:
out = "u"
elif num == 21:
out = "v"
elif num == 22:
out = "w"
elif num == 23:
out = "x"
elif num == 24:
out = "y"
else:
out = "z"
return out
s = input()
L = []
L.append(s.count("a"))
L.append(s.count("b"))
L.append(s.count("c"))
L.append(s.count("d"))
L.append(s.count("e"))
L.append(s.count("f"))
L.append(s.count("g"))
L.append(s.count("h"))
L.append(s.count("i"))
L.append(s.count("j"))
L.append(s.count("k"))
L.append(s.count("l"))
L.append(s.count("m"))
L.append(s.count("n"))
L.append(s.count("o"))
L.append(s.count("p"))
L.append(s.count("q"))
L.append(s.count("r"))
L.append(s.count("s"))
L.append(s.count("t"))
L.append(s.count("u"))
L.append(s.count("v"))
L.append(s.count("w"))
L.append(s.count("x"))
L.append(s.count("y"))
L.append(s.count("z"))
flag = 0
maxlist = []
for i in range(26):
if L[i] == max(L):
maxlist.append(i)
for j in range(len(maxlist)):
for i in range(len(s)):
if s[i] == convert(maxlist[j]):
if s[i + 1] == convert(maxlist[j]):
print("{0} {1}".format(i + 1, i + 2))
flag = 1
break
if s[i + 2] == convert(maxlist[j]):
print("{0} {1}".format(i + 1, i + 3))
flag = 1
break
if flag == 0:
print("{0} {1}".format(-1, -1))
| Statement
Given a string t, we will call it _unbalanced_ if and only if the length of t
is at least 2, and more than half of the letters in t are the same. For
example, both `voodoo` and `melee` are unbalanced, while neither `noon` nor
`a` is.
You are given a string s consisting of lowercase letters. Determine if there
exists a (contiguous) substring of s that is unbalanced. If the answer is
positive, show a position where such a substring occurs in s. | [{"input": "needed", "output": "2 5\n \n\nThe string s_2 s_3 s_4 s_5 = `eede` is unbalanced. There are also other\nunbalanced substrings. For example, the output `2 6` will also be accepted.\n\n* * *"}, {"input": "atcoder", "output": "-1 -1\n \n\nThe string `atcoder` contains no unbalanced substring."}] |
If there exists no unbalanced substring of s, print `-1 -1`.
If there exists an unbalanced substring of s, let one such substring be s_a
s_{a+1} ... s_{b} (1 ≦ a < b ≦ |s|), and print `a b`. If there exists more
than one such substring, any of them will be accepted.
* * * | s468785558 | Wrong Answer | p04032 | The input is given from Standard Input in the following format:
s | print(3, 5)
| Statement
Given a string t, we will call it _unbalanced_ if and only if the length of t
is at least 2, and more than half of the letters in t are the same. For
example, both `voodoo` and `melee` are unbalanced, while neither `noon` nor
`a` is.
You are given a string s consisting of lowercase letters. Determine if there
exists a (contiguous) substring of s that is unbalanced. If the answer is
positive, show a position where such a substring occurs in s. | [{"input": "needed", "output": "2 5\n \n\nThe string s_2 s_3 s_4 s_5 = `eede` is unbalanced. There are also other\nunbalanced substrings. For example, the output `2 6` will also be accepted.\n\n* * *"}, {"input": "atcoder", "output": "-1 -1\n \n\nThe string `atcoder` contains no unbalanced substring."}] |
If there exists no unbalanced substring of s, print `-1 -1`.
If there exists an unbalanced substring of s, let one such substring be s_a
s_{a+1} ... s_{b} (1 ≦ a < b ≦ |s|), and print `a b`. If there exists more
than one such substring, any of them will be accepted.
* * * | s669364196 | Wrong Answer | p04032 | The input is given from Standard Input in the following format:
s | # 申し訳ない
s = input()
for i in range(len(s)):
for j in range(i + 1, len(s)):
if s[i : j + 1].count("a") > len(s[i : j + 1]) / 2:
print(str(i + 1) + " " + str(j + 1))
quit()
if s[i : j + 1].count("b") > len(s[i : j + 1]) / 2:
print(str(i + 1) + " " + str(j + 1))
quit()
if s[i : j + 1].count("c") > len(s[i : j + 1]) / 2:
print(str(i + 1) + " " + str(j + 1))
quit()
if s[i : j + 1].count("d") > len(s[i : j + 1]) / 2:
print(str(i + 1) + " " + str(j + 1))
quit()
if s[i : j + 1].count("e") > len(s[i : j + 1]) / 2:
print(str(i + 1) + " " + str(j + 1))
quit()
if s[i : j + 1].count("f") > len(s[i : j + 1]) / 2:
print(str(i + 1) + " " + str(j + 1))
quit()
if s[i : j + 1].count("g") > len(s[i : j + 1]) / 2:
print(str(i + 1) + " " + str(j + 1))
quit()
if s[i : j + 1].count("h") > len(s[i : j + 1]) / 2:
print(str(i + 1) + " " + str(j + 1))
quit()
if s[i : j + 1].count("i") > len(s[i : j + 1]) / 2:
print(str(i + 1) + " " + str(j + 1))
quit()
if s[i : j + 1].count("j") > len(s[i : j + 1]) / 2:
print(str(i + 1) + " " + str(j + 1))
quit()
if s[i : j + 1].count("k") > len(s[i : j + 1]) / 2:
print(str(i + 1) + " " + str(j + 1))
quit()
if s[i : j + 1].count("l") > len(s[i : j + 1]) / 2:
print(str(i + 1) + " " + str(j + 1))
quit()
if s[i : j + 1].count("m") > len(s[i : j + 1]) / 2:
print(str(i + 1) + " " + str(j + 1))
quit()
if s[i : j + 1].count("n") > len(s[i : j + 1]) / 2:
print(str(i + 1) + " " + str(j + 1))
quit()
if s[i : j + 1].count("o") > len(s[i : j + 1]) / 2:
print(str(i + 1) + " " + str(j + 1))
quit()
if s[i : j + 1].count("p") > len(s[i : j + 1]) / 2:
print(str(i + 1) + " " + str(j + 1))
quit()
if s[i : j + 1].count("q") > len(s[i : j + 1]) / 2:
print(str(i + 1) + " " + str(j + 1))
quit()
if s[i : j + 1].count("r") > len(s[i : j + 1]) / 2:
print(str(i + 1) + " " + str(j + 1))
quit()
if s[i : j + 1].count("s") > len(s[i : j + 1]) / 2:
print(str(i + 1) + " " + str(j + 1))
quit()
if s[i : j + 1].count("t") > len(s[i : j + 1]) / 2:
print(str(i + 1) + " " + str(j + 1))
quit()
if s[i : j + 1].count("u") > len(s[i : j + 1]) / 2:
print(str(i + 1) + " " + str(j + 1))
quit()
if s[i : j + 1].count("v") > len(s[i : j + 1]) / 2:
print(str(i + 1) + " " + str(j + 1))
quit()
if s[i : j + 1].count("w") > len(s[i : j + 1]) / 2:
print(str(i + 1) + " " + str(j + 1))
quit()
if s[i : j + 1].count("x") > len(s[i : j + 1]) / 2:
print(str(i + 1) + " " + str(j + 1))
quit()
if s[i : j + 1].count("y") > len(s[i : j + 1]) / 2:
print(str(i + 1) + " " + str(j + 1))
quit()
if s[i : j + 1].count("z") > len(s[i : j + 1]) / 2:
print(str(i + 1) + " " + str(j + 1))
quit()
print("-1 - 1")
| Statement
Given a string t, we will call it _unbalanced_ if and only if the length of t
is at least 2, and more than half of the letters in t are the same. For
example, both `voodoo` and `melee` are unbalanced, while neither `noon` nor
`a` is.
You are given a string s consisting of lowercase letters. Determine if there
exists a (contiguous) substring of s that is unbalanced. If the answer is
positive, show a position where such a substring occurs in s. | [{"input": "needed", "output": "2 5\n \n\nThe string s_2 s_3 s_4 s_5 = `eede` is unbalanced. There are also other\nunbalanced substrings. For example, the output `2 6` will also be accepted.\n\n* * *"}, {"input": "atcoder", "output": "-1 -1\n \n\nThe string `atcoder` contains no unbalanced substring."}] |
If there exists no unbalanced substring of s, print `-1 -1`.
If there exists an unbalanced substring of s, let one such substring be s_a
s_{a+1} ... s_{b} (1 ≦ a < b ≦ |s|), and print `a b`. If there exists more
than one such substring, any of them will be accepted.
* * * | s952227333 | Wrong Answer | p04032 | The input is given from Standard Input in the following format:
s | # 文字列の読み取り
input_str = input()
max_str_len = len(input_str)
# print(max_str_len)
str_chars = {}
# 文字と構成数の辞書を生成
for c in input_str:
if c in str_chars:
str_chars[c] += 1
else:
str_chars[c] = 1
# print(str_chars)
# 構成数が最も多い文字を取得
max_num = max(str_chars.values())
for k in str_chars.keys():
if str_chars[k] == max_num:
max_char = k
# print(max_char)
# print(max_num)
# 入力文字列から
max_char_indexes = [i for i, x in enumerate(input_str) if x == max_char]
# print(max_char_indexes)
for count in range(len(max_char_indexes)):
# for count2 in range(count + 1, len(max_char_indexes) - 1, 1):
output_str = input_str[
max_char_indexes[count] : (max_char_indexes[len(max_char_indexes) - 1] + 1)
]
output_str_char = output_str.count(max_char)
if len(output_str) > len(input_str) / 2 and output_str_char > (len(output_str) / 2):
print(
"{} {}".format(
max_char_indexes[count] + 1,
max_char_indexes[len(max_char_indexes) - 1] + 1,
)
)
break
else:
for count in range(1, len(max_char_indexes), 1):
# for count2 in range(count + 1, len(max_char_indexes) - 1, 1):
output_str = input_str[
max_char_indexes[count] : (max_char_indexes[len(max_char_indexes) - 1] + 1)
]
output_str_char = output_str.count(max_char)
if len(output_str) > len(input_str) / 2 and output_str_char > (
len(output_str) / 2
):
print(
"{} {}".format(
max_char_indexes[count] + 1,
max_char_indexes[len(max_char_indexes) - 1] + 1,
)
)
break
print("-1 -1")
# if (max_char_indexes[len(max_char_indexes)-1] - max_char_indexes[0]) >= len(input_str):
# input_str[max_char_indexes[0]:max_char_indexes[len(max_char_indexes)-1]]
# print("{} {}".format(max_char_indexes[0] + 1, max_char_indexes[len(max_char_indexes)-1] + 1))
| Statement
Given a string t, we will call it _unbalanced_ if and only if the length of t
is at least 2, and more than half of the letters in t are the same. For
example, both `voodoo` and `melee` are unbalanced, while neither `noon` nor
`a` is.
You are given a string s consisting of lowercase letters. Determine if there
exists a (contiguous) substring of s that is unbalanced. If the answer is
positive, show a position where such a substring occurs in s. | [{"input": "needed", "output": "2 5\n \n\nThe string s_2 s_3 s_4 s_5 = `eede` is unbalanced. There are also other\nunbalanced substrings. For example, the output `2 6` will also be accepted.\n\n* * *"}, {"input": "atcoder", "output": "-1 -1\n \n\nThe string `atcoder` contains no unbalanced substring."}] |
If there exists no unbalanced substring of s, print `-1 -1`.
If there exists an unbalanced substring of s, let one such substring be s_a
s_{a+1} ... s_{b} (1 ≦ a < b ≦ |s|), and print `a b`. If there exists more
than one such substring, any of them will be accepted.
* * * | s734333399 | Wrong Answer | p04032 | The input is given from Standard Input in the following format:
s | s = str(input())
a = []
p = -1
q = -1
m = 0
n = 2
N = len(s)
while ((p + 1) ** 2 + (q + 1) ** 2) == 0 & m != N:
t = s[m:n]
if n != N:
n += 1
else:
m += 1
n = m + 2
r = 0
for i in range(len(t)):
d = list(t).count(t[i])
if r < d:
r = d
if r > (len(t)) / 2:
p = m - 1
q = n - 2
| Statement
Given a string t, we will call it _unbalanced_ if and only if the length of t
is at least 2, and more than half of the letters in t are the same. For
example, both `voodoo` and `melee` are unbalanced, while neither `noon` nor
`a` is.
You are given a string s consisting of lowercase letters. Determine if there
exists a (contiguous) substring of s that is unbalanced. If the answer is
positive, show a position where such a substring occurs in s. | [{"input": "needed", "output": "2 5\n \n\nThe string s_2 s_3 s_4 s_5 = `eede` is unbalanced. There are also other\nunbalanced substrings. For example, the output `2 6` will also be accepted.\n\n* * *"}, {"input": "atcoder", "output": "-1 -1\n \n\nThe string `atcoder` contains no unbalanced substring."}] |
If there exists no unbalanced substring of s, print `-1 -1`.
If there exists an unbalanced substring of s, let one such substring be s_a
s_{a+1} ... s_{b} (1 ≦ a < b ≦ |s|), and print `a b`. If there exists more
than one such substring, any of them will be accepted.
* * * | s931931770 | Wrong Answer | p04032 | The input is given from Standard Input in the following format:
s | from sys import stdin, stdout
import bisect
import math
def st():
return list(stdin.readline().strip())
def inp():
return int(stdin.readline())
def li():
return list(map(int, stdin.readline().split()))
def mp():
return map(int, stdin.readline().split())
def pr(n):
stdout.write(str(n) + "\n")
def soe(limit):
l = [1] * (limit + 1)
prime = []
for i in range(2, limit + 1):
if l[i]:
for j in range(i * i, limit + 1, i):
l[j] = 0
for i in range(2, limit + 1):
if l[i]:
prime.append(i)
return prime
def segsoe(low, high):
limit = int(high**0.5) + 1
prime = soe(limit)
n = high - low + 1
l = [0] * (n + 1)
for i in range(len(prime)):
lowlimit = (low // prime[i]) * prime[i]
if lowlimit < low:
lowlimit += prime[i]
if lowlimit == prime[i]:
lowlimit += prime[i]
for j in range(lowlimit, high + 1, prime[i]):
l[j - low] = 1
for i in range(low, high + 1):
if not l[i - low]:
if i != 1:
print(i)
def gcd(a, b):
while b:
a = a % b
b, a = a, b
return a
def power(a, n):
r = 1
while n:
if n & 1:
r = r * a
a *= a
n = n >> 1
return r
def check(n, l):
s = 0
for i in range(len(l)):
s += (l[i] - n) * (l[i] - n)
return s
def solve():
s = input()
c = 0
d = {}
for i in range(len(s)):
if s[i] in d:
d[s[i]].append(i)
else:
d[s[i]] = [i]
for i in d:
l = d[i]
a, b = l[0], l[-1]
if b - a >= 1:
if len(l) >= (b - a + 1) // 2:
print(a + 1, b + 1)
c = 1
break
if c == 0:
print(-1, -1)
for _ in range(1):
solve()
| Statement
Given a string t, we will call it _unbalanced_ if and only if the length of t
is at least 2, and more than half of the letters in t are the same. For
example, both `voodoo` and `melee` are unbalanced, while neither `noon` nor
`a` is.
You are given a string s consisting of lowercase letters. Determine if there
exists a (contiguous) substring of s that is unbalanced. If the answer is
positive, show a position where such a substring occurs in s. | [{"input": "needed", "output": "2 5\n \n\nThe string s_2 s_3 s_4 s_5 = `eede` is unbalanced. There are also other\nunbalanced substrings. For example, the output `2 6` will also be accepted.\n\n* * *"}, {"input": "atcoder", "output": "-1 -1\n \n\nThe string `atcoder` contains no unbalanced substring."}] |
If there exists no unbalanced substring of s, print `-1 -1`.
If there exists an unbalanced substring of s, let one such substring be s_a
s_{a+1} ... s_{b} (1 ≦ a < b ≦ |s|), and print `a b`. If there exists more
than one such substring, any of them will be accepted.
* * * | s454894882 | Runtime Error | p04032 | The input is given from Standard Input in the following format:
s | a = list(input())
b = []
for i in a:
if a.count(i) >= len(a)/2:
b = [j for j ,x in enumerate(a) if x == i]
else:
pass
if not b:
print(-1 1)
else:
print(b[0],b[1]) | Statement
Given a string t, we will call it _unbalanced_ if and only if the length of t
is at least 2, and more than half of the letters in t are the same. For
example, both `voodoo` and `melee` are unbalanced, while neither `noon` nor
`a` is.
You are given a string s consisting of lowercase letters. Determine if there
exists a (contiguous) substring of s that is unbalanced. If the answer is
positive, show a position where such a substring occurs in s. | [{"input": "needed", "output": "2 5\n \n\nThe string s_2 s_3 s_4 s_5 = `eede` is unbalanced. There are also other\nunbalanced substrings. For example, the output `2 6` will also be accepted.\n\n* * *"}, {"input": "atcoder", "output": "-1 -1\n \n\nThe string `atcoder` contains no unbalanced substring."}] |
If there exists no unbalanced substring of s, print `-1 -1`.
If there exists an unbalanced substring of s, let one such substring be s_a
s_{a+1} ... s_{b} (1 ≦ a < b ≦ |s|), and print `a b`. If there exists more
than one such substring, any of them will be accepted.
* * * | s680413683 | Wrong Answer | p04032 | The input is given from Standard Input in the following format:
s | s = list(input())
alpha = [[0 for i in range(2)] for j in range(26)]
def conv(t):
if t == "a":
return 0
elif t == "b":
return 1
elif t == "c":
return 2
elif t == "d":
return 3
elif t == "e":
return 4
elif t == "f":
return 5
elif t == "g":
return 6
elif t == "h":
return 7
elif t == "i":
return 8
elif t == "j":
return 9
elif t == "k":
return 10
elif t == "l":
return 11
elif t == "m":
return 12
elif t == "n":
return 13
elif t == "o":
return 14
elif t == "p":
return 15
elif t == "q":
return 16
elif t == "r":
return 17
elif t == "s":
return 18
elif t == "t":
return 19
elif t == "u":
return 20
elif t == "v":
return 21
elif t == "w":
return 22
elif t == "x":
return 23
elif t == "y":
return 24
elif t == "z":
return 25
index = 0
for i in s:
# print(str(index)+i)
if alpha[conv(i)][0] == 0:
alpha[conv(i)][0] = 1
alpha[conv(i)][1] = index
else:
alpha[conv(i)][0] += 1
if index - alpha[conv(i)][1] + 1 < 2 * alpha[conv(i)][0]:
print(alpha[conv(i)][1] + 1, index + 1)
exit()
else:
alpha[conv(i)][1] = index
index += 1
# print(alpha)
print(-1, -1)
| Statement
Given a string t, we will call it _unbalanced_ if and only if the length of t
is at least 2, and more than half of the letters in t are the same. For
example, both `voodoo` and `melee` are unbalanced, while neither `noon` nor
`a` is.
You are given a string s consisting of lowercase letters. Determine if there
exists a (contiguous) substring of s that is unbalanced. If the answer is
positive, show a position where such a substring occurs in s. | [{"input": "needed", "output": "2 5\n \n\nThe string s_2 s_3 s_4 s_5 = `eede` is unbalanced. There are also other\nunbalanced substrings. For example, the output `2 6` will also be accepted.\n\n* * *"}, {"input": "atcoder", "output": "-1 -1\n \n\nThe string `atcoder` contains no unbalanced substring."}] |
If there exists no unbalanced substring of s, print `-1 -1`.
If there exists an unbalanced substring of s, let one such substring be s_a
s_{a+1} ... s_{b} (1 ≦ a < b ≦ |s|), and print `a b`. If there exists more
than one such substring, any of them will be accepted.
* * * | s866884632 | Runtime Error | p04032 | The input is given from Standard Input in the following format:
s | s = str(input())
a, b = 0, 0
for i in range(len(s)-1):
if s[i] == s[i+1]:
a, b = i+1, i+2
break
if i != len(s)-1:
elif s[i] == s[i+2]:
a, b = i+1, i+3
break
if a == 0:
print(-1, -1)
else:
print(a, b) | Statement
Given a string t, we will call it _unbalanced_ if and only if the length of t
is at least 2, and more than half of the letters in t are the same. For
example, both `voodoo` and `melee` are unbalanced, while neither `noon` nor
`a` is.
You are given a string s consisting of lowercase letters. Determine if there
exists a (contiguous) substring of s that is unbalanced. If the answer is
positive, show a position where such a substring occurs in s. | [{"input": "needed", "output": "2 5\n \n\nThe string s_2 s_3 s_4 s_5 = `eede` is unbalanced. There are also other\nunbalanced substrings. For example, the output `2 6` will also be accepted.\n\n* * *"}, {"input": "atcoder", "output": "-1 -1\n \n\nThe string `atcoder` contains no unbalanced substring."}] |
If there exists no unbalanced substring of s, print `-1 -1`.
If there exists an unbalanced substring of s, let one such substring be s_a
s_{a+1} ... s_{b} (1 ≦ a < b ≦ |s|), and print `a b`. If there exists more
than one such substring, any of them will be accepted.
* * * | s680716071 | Runtime Error | p04032 | The input is given from Standard Input in the following format:
s | def resolve():
S = list(input())
if len(S) == 2:
print(-1, -1)
for i in range(len(S)-3):
if S[i] == S[i+1] or S[i+1] == S[i+2] or S[i+2] == S[i]):
print(i+1, i+3)
return
print(-1, -1)
if __name__ == '__main__':
resolve() | Statement
Given a string t, we will call it _unbalanced_ if and only if the length of t
is at least 2, and more than half of the letters in t are the same. For
example, both `voodoo` and `melee` are unbalanced, while neither `noon` nor
`a` is.
You are given a string s consisting of lowercase letters. Determine if there
exists a (contiguous) substring of s that is unbalanced. If the answer is
positive, show a position where such a substring occurs in s. | [{"input": "needed", "output": "2 5\n \n\nThe string s_2 s_3 s_4 s_5 = `eede` is unbalanced. There are also other\nunbalanced substrings. For example, the output `2 6` will also be accepted.\n\n* * *"}, {"input": "atcoder", "output": "-1 -1\n \n\nThe string `atcoder` contains no unbalanced substring."}] |
If there exists no unbalanced substring of s, print `-1 -1`.
If there exists an unbalanced substring of s, let one such substring be s_a
s_{a+1} ... s_{b} (1 ≦ a < b ≦ |s|), and print `a b`. If there exists more
than one such substring, any of them will be accepted.
* * * | s606333958 | Runtime Error | p04032 | The input is given from Standard Input in the following format:
s | S = input().strip()
slen = len(S)
s = S + '##'
for i in range(slen):
if s[i] == s[i+1]:
print(i+1, i+2)
exit()
if s[i] == [i+2]:
print(i+1, i+3)
exit()
print(-1, -1) | Statement
Given a string t, we will call it _unbalanced_ if and only if the length of t
is at least 2, and more than half of the letters in t are the same. For
example, both `voodoo` and `melee` are unbalanced, while neither `noon` nor
`a` is.
You are given a string s consisting of lowercase letters. Determine if there
exists a (contiguous) substring of s that is unbalanced. If the answer is
positive, show a position where such a substring occurs in s. | [{"input": "needed", "output": "2 5\n \n\nThe string s_2 s_3 s_4 s_5 = `eede` is unbalanced. There are also other\nunbalanced substrings. For example, the output `2 6` will also be accepted.\n\n* * *"}, {"input": "atcoder", "output": "-1 -1\n \n\nThe string `atcoder` contains no unbalanced substring."}] |
If there exists no unbalanced substring of s, print `-1 -1`.
If there exists an unbalanced substring of s, let one such substring be s_a
s_{a+1} ... s_{b} (1 ≦ a < b ≦ |s|), and print `a b`. If there exists more
than one such substring, any of them will be accepted.
* * * | s562241659 | Runtime Error | p04032 | The input is given from Standard Input in the following format:
s | word = input()
wset = set(word)
ans = (-1, -1)
for w in wset:
if word.count(w) > len(word) / 2:
p = word.index(w) + 1
ans = (p, int(len(word) / 2 + p)
break
print(ans[0], ans[1]) | Statement
Given a string t, we will call it _unbalanced_ if and only if the length of t
is at least 2, and more than half of the letters in t are the same. For
example, both `voodoo` and `melee` are unbalanced, while neither `noon` nor
`a` is.
You are given a string s consisting of lowercase letters. Determine if there
exists a (contiguous) substring of s that is unbalanced. If the answer is
positive, show a position where such a substring occurs in s. | [{"input": "needed", "output": "2 5\n \n\nThe string s_2 s_3 s_4 s_5 = `eede` is unbalanced. There are also other\nunbalanced substrings. For example, the output `2 6` will also be accepted.\n\n* * *"}, {"input": "atcoder", "output": "-1 -1\n \n\nThe string `atcoder` contains no unbalanced substring."}] |
If there exists no unbalanced substring of s, print `-1 -1`.
If there exists an unbalanced substring of s, let one such substring be s_a
s_{a+1} ... s_{b} (1 ≦ a < b ≦ |s|), and print `a b`. If there exists more
than one such substring, any of them will be accepted.
* * * | s685079433 | Accepted | p04032 | The input is given from Standard Input in the following format:
s | """
#kari1 = 'needed' #2 5
#kari1 = 'atcoder' #-1 -1
in1 = kari1
"""
in1 = input()
RC = "-1 -1"
str1 = in1[0]
str2 = in1[1]
if str1 != str2:
idx1 = 0
for idx1 in range(2, len(in1) - 2):
if in1[idx1] == str1:
RC = str(idx1 - 1) + " " + str(idx1 + 1)
break
elif in1[idx1] == str2:
RC = str(idx1) + " " + str(idx1 + 1)
break
else:
str1 = str2
str2 = in1[idx1]
elif str1 == str2:
RC = "1 2"
print(RC)
| Statement
Given a string t, we will call it _unbalanced_ if and only if the length of t
is at least 2, and more than half of the letters in t are the same. For
example, both `voodoo` and `melee` are unbalanced, while neither `noon` nor
`a` is.
You are given a string s consisting of lowercase letters. Determine if there
exists a (contiguous) substring of s that is unbalanced. If the answer is
positive, show a position where such a substring occurs in s. | [{"input": "needed", "output": "2 5\n \n\nThe string s_2 s_3 s_4 s_5 = `eede` is unbalanced. There are also other\nunbalanced substrings. For example, the output `2 6` will also be accepted.\n\n* * *"}, {"input": "atcoder", "output": "-1 -1\n \n\nThe string `atcoder` contains no unbalanced substring."}] |
If there exists no unbalanced substring of s, print `-1 -1`.
If there exists an unbalanced substring of s, let one such substring be s_a
s_{a+1} ... s_{b} (1 ≦ a < b ≦ |s|), and print `a b`. If there exists more
than one such substring, any of them will be accepted.
* * * | s007213086 | Runtime Error | p04032 | The input is given from Standard Input in the following format:
s | #アンバランスな文字列からアンバランスでない文字列を取り除くと、
#アンバランスな文字列が残るはず。ということは、両側から文字を削り取ることで「どの部分列をとってもアンバランスな文字列」が存在するはず
#すなわちそれは、両側に「ax」が存在しない文字列で、「axa」または「aa...aa」
#aaがある時点でアンバランス確定なので「axa」「aa」のどちらかを探せばよし
import re
s=input()
alphabet="abcdefghijklmnopqrstuvwxyz"
for i in alphabet:
ba=s.find(i+i)
if ba!=-1:
print(str(ba+1)+str(ba+2))
break
A=re.compile(i+"."+i)
axa=A.search(s,0)
if axa:
ba=axa.start())
print(str(ba+1)+str(ba+3))
break | Statement
Given a string t, we will call it _unbalanced_ if and only if the length of t
is at least 2, and more than half of the letters in t are the same. For
example, both `voodoo` and `melee` are unbalanced, while neither `noon` nor
`a` is.
You are given a string s consisting of lowercase letters. Determine if there
exists a (contiguous) substring of s that is unbalanced. If the answer is
positive, show a position where such a substring occurs in s. | [{"input": "needed", "output": "2 5\n \n\nThe string s_2 s_3 s_4 s_5 = `eede` is unbalanced. There are also other\nunbalanced substrings. For example, the output `2 6` will also be accepted.\n\n* * *"}, {"input": "atcoder", "output": "-1 -1\n \n\nThe string `atcoder` contains no unbalanced substring."}] |
If there exists no unbalanced substring of s, print `-1 -1`.
If there exists an unbalanced substring of s, let one such substring be s_a
s_{a+1} ... s_{b} (1 ≦ a < b ≦ |s|), and print `a b`. If there exists more
than one such substring, any of them will be accepted.
* * * | s341331943 | Runtime Error | p04032 | The input is given from Standard Input in the following format:
s | import numpy as np
s = [ord(a)-ord('a') for a in input()]
n = len(s)
if n == 2:
if s[0] == s[1]:
print('1 2')
else
print('-1 -1')
exit()
cnt = np.array([0] * 26)
cum = [cnt.copy()]
for i, a in enumerate(s):
cnt[a] += 1
cum.append(cnt.copy())
def is_check(cum, n):
i = 3
d = 1
for j in range(n-i+1):
for k in cum[j+i] - cum[j]:
if k > d:
return j+1, j+i
return -1, -1
print(' '.join(map(str, is_check(cum, len(s))))) | Statement
Given a string t, we will call it _unbalanced_ if and only if the length of t
is at least 2, and more than half of the letters in t are the same. For
example, both `voodoo` and `melee` are unbalanced, while neither `noon` nor
`a` is.
You are given a string s consisting of lowercase letters. Determine if there
exists a (contiguous) substring of s that is unbalanced. If the answer is
positive, show a position where such a substring occurs in s. | [{"input": "needed", "output": "2 5\n \n\nThe string s_2 s_3 s_4 s_5 = `eede` is unbalanced. There are also other\nunbalanced substrings. For example, the output `2 6` will also be accepted.\n\n* * *"}, {"input": "atcoder", "output": "-1 -1\n \n\nThe string `atcoder` contains no unbalanced substring."}] |
If there exists no unbalanced substring of s, print `-1 -1`.
If there exists an unbalanced substring of s, let one such substring be s_a
s_{a+1} ... s_{b} (1 ≦ a < b ≦ |s|), and print `a b`. If there exists more
than one such substring, any of them will be accepted.
* * * | s097665236 | Runtime Error | p04032 | The input is given from Standard Input in the following format:
s | s = input()
checker = ''
if len(s) <= 2:
if s[0] == s[1]:
print(1, 2)
checker += '*'
else:
print(-1, -1)
checker += '*'
if checker == ''
for a, b in zip(range(len(s)-1), range(1,len(s))):
if s[a] == s[b]:
print(a+1, b+1)
checker += '*'
break
if checker == '':
for a, c in zip(list(range(len(s)-2)), list(range(2, len(s)))):
if s[a] == s[c]:
print(a+1, c+1)
chekcher += '*'
break
if checker == '':
print(-1, -1)
| Statement
Given a string t, we will call it _unbalanced_ if and only if the length of t
is at least 2, and more than half of the letters in t are the same. For
example, both `voodoo` and `melee` are unbalanced, while neither `noon` nor
`a` is.
You are given a string s consisting of lowercase letters. Determine if there
exists a (contiguous) substring of s that is unbalanced. If the answer is
positive, show a position where such a substring occurs in s. | [{"input": "needed", "output": "2 5\n \n\nThe string s_2 s_3 s_4 s_5 = `eede` is unbalanced. There are also other\nunbalanced substrings. For example, the output `2 6` will also be accepted.\n\n* * *"}, {"input": "atcoder", "output": "-1 -1\n \n\nThe string `atcoder` contains no unbalanced substring."}] |
If there exists no unbalanced substring of s, print `-1 -1`.
If there exists an unbalanced substring of s, let one such substring be s_a
s_{a+1} ... s_{b} (1 ≦ a < b ≦ |s|), and print `a b`. If there exists more
than one such substring, any of them will be accepted.
* * * | s682324524 | Runtime Error | p04032 | The input is given from Standard Input in the following format:
s | s = str(input())
if len(s) == 2:
if s[0] ==s[1]:
start_ind =1
end_ind = 2
else:
start_ind = -1
end_ind = -1
elif len(s)>2:
start_ind = -1
end_ind = -1
for i in range(len(s)-2):
par_str = s[i:i+3]
if (par_str.count(par_str[0])>=2) | (par_str.count(par_str[1])>=2):
start_ind = i + 1
end_ind = i + 3
break
ans = str(start_ind) + ' ' + str(end_ind)
print(ans) | Statement
Given a string t, we will call it _unbalanced_ if and only if the length of t
is at least 2, and more than half of the letters in t are the same. For
example, both `voodoo` and `melee` are unbalanced, while neither `noon` nor
`a` is.
You are given a string s consisting of lowercase letters. Determine if there
exists a (contiguous) substring of s that is unbalanced. If the answer is
positive, show a position where such a substring occurs in s. | [{"input": "needed", "output": "2 5\n \n\nThe string s_2 s_3 s_4 s_5 = `eede` is unbalanced. There are also other\nunbalanced substrings. For example, the output `2 6` will also be accepted.\n\n* * *"}, {"input": "atcoder", "output": "-1 -1\n \n\nThe string `atcoder` contains no unbalanced substring."}] |
If there exists no unbalanced substring of s, print `-1 -1`.
If there exists an unbalanced substring of s, let one such substring be s_a
s_{a+1} ... s_{b} (1 ≦ a < b ≦ |s|), and print `a b`. If there exists more
than one such substring, any of them will be accepted.
* * * | s831641911 | Runtime Error | p04032 | The input is given from Standard Input in the following format:
s | a=input()
t=-1
flag="False"
for i in range(n-1):
if a[i]==a[i+1]:
flag="True1"
t=i
break
if i!=n-2:
if a[i]==a[i+2]:
flag="True2"
t=i
break
if flag=="False":
print("{} {}".format(-1,-1))
elif flag=="True1":
print("{} {}".format(t+1,t+2))
else flag=="True2":
print("{} {}".format(t+1,t+2)) | Statement
Given a string t, we will call it _unbalanced_ if and only if the length of t
is at least 2, and more than half of the letters in t are the same. For
example, both `voodoo` and `melee` are unbalanced, while neither `noon` nor
`a` is.
You are given a string s consisting of lowercase letters. Determine if there
exists a (contiguous) substring of s that is unbalanced. If the answer is
positive, show a position where such a substring occurs in s. | [{"input": "needed", "output": "2 5\n \n\nThe string s_2 s_3 s_4 s_5 = `eede` is unbalanced. There are also other\nunbalanced substrings. For example, the output `2 6` will also be accepted.\n\n* * *"}, {"input": "atcoder", "output": "-1 -1\n \n\nThe string `atcoder` contains no unbalanced substring."}] |
If there exists no unbalanced substring of s, print `-1 -1`.
If there exists an unbalanced substring of s, let one such substring be s_a
s_{a+1} ... s_{b} (1 ≦ a < b ≦ |s|), and print `a b`. If there exists more
than one such substring, any of them will be accepted.
* * * | s556246976 | Runtime Error | p04032 | The input is given from Standard Input in the following format:
s | a=input()
t=-1
flag="False"
for i in range(n-1):
if a[i]==a[i+1]:
flag="True1"
t=i
break
if i!=n-2 and a[i]==a[i+2]:
flag="True2"
t=i
break
if flag=="False":
print("{} {}".format(-1,-1))
elif flag=="True1":
print("{} {}".format(t+1,t+2))
else flag=="True2":
print("{} {}".format(t+1,t+2)) | Statement
Given a string t, we will call it _unbalanced_ if and only if the length of t
is at least 2, and more than half of the letters in t are the same. For
example, both `voodoo` and `melee` are unbalanced, while neither `noon` nor
`a` is.
You are given a string s consisting of lowercase letters. Determine if there
exists a (contiguous) substring of s that is unbalanced. If the answer is
positive, show a position where such a substring occurs in s. | [{"input": "needed", "output": "2 5\n \n\nThe string s_2 s_3 s_4 s_5 = `eede` is unbalanced. There are also other\nunbalanced substrings. For example, the output `2 6` will also be accepted.\n\n* * *"}, {"input": "atcoder", "output": "-1 -1\n \n\nThe string `atcoder` contains no unbalanced substring."}] |
If there exists no unbalanced substring of s, print `-1 -1`.
If there exists an unbalanced substring of s, let one such substring be s_a
s_{a+1} ... s_{b} (1 ≦ a < b ≦ |s|), and print `a b`. If there exists more
than one such substring, any of them will be accepted.
* * * | s186124511 | Runtime Error | p04032 | The input is given from Standard Input in the following format:
s | import exit from sys
s=input()
l=len(s)
for i in range(l-2):
if s[i]==s[i+2]:
print(str(i+1)+" "+str(i+3))
exit()
if s[i]==s[i+1]:
print(str(i+1)+" "+str(i+2))
exit()
if s[l-2]==s[l-1]:
print(str(l-1)+" "+str(l))
else:
print("-1 -1")
| Statement
Given a string t, we will call it _unbalanced_ if and only if the length of t
is at least 2, and more than half of the letters in t are the same. For
example, both `voodoo` and `melee` are unbalanced, while neither `noon` nor
`a` is.
You are given a string s consisting of lowercase letters. Determine if there
exists a (contiguous) substring of s that is unbalanced. If the answer is
positive, show a position where such a substring occurs in s. | [{"input": "needed", "output": "2 5\n \n\nThe string s_2 s_3 s_4 s_5 = `eede` is unbalanced. There are also other\nunbalanced substrings. For example, the output `2 6` will also be accepted.\n\n* * *"}, {"input": "atcoder", "output": "-1 -1\n \n\nThe string `atcoder` contains no unbalanced substring."}] |
If there exists no unbalanced substring of s, print `-1 -1`.
If there exists an unbalanced substring of s, let one such substring be s_a
s_{a+1} ... s_{b} (1 ≦ a < b ≦ |s|), and print `a b`. If there exists more
than one such substring, any of them will be accepted.
* * * | s006892442 | Accepted | p04032 | The input is given from Standard Input in the following format:
s | #!/usr/bin/env python3
import sys
# import math
# from string import ascii_lowercase, ascii_upper_case, ascii_letters, digits, hexdigits
# import re # re.compile(pattern) => ptn obj; p.search(s), p.match(s), p.finditer(s) => match obj; p.sub(after, s)
# from operator import itemgetter # itemgetter(1), itemgetter('key')
# from collections import deque # deque class. deque(L): dq.append(x), dq.appendleft(x), dq.pop(), dq.popleft(), dq.rotate()
# from collections import defaultdict # subclass of dict. defaultdict(facroty)
# from collections import Counter # subclass of dict. Counter(iter): c.elements(), c.most_common(n), c.subtract(iter)
# from heapq import heapify, heappush, heappop # built-in list. heapify(L) changes list in-place to min-heap in O(n), heappush(heapL, x) and heappop(heapL) in O(lgn).
# from heapq import nlargest, nsmallest # nlargest(n, iter[, key]) returns k-largest-list in O(n+klgn).
# from itertools import count, cycle, repeat # count(start[,step]), cycle(iter), repeat(elm[,n])
# from itertools import groupby # [(k, list(g)) for k, g in groupby('000112')] returns [('0',['0','0','0']), ('1',['1','1']), ('2',['2'])]
# from itertools import starmap # starmap(pow, [[2,5], [3,2]]) returns [32, 9]
# from itertools import product, permutations # product(iter, repeat=n), permutations(iter[,r])
# from itertools import combinations, combinations_with_replacement
# from itertools import accumulate # accumulate(iter[, f])
# from functools import reduce # reduce(f, iter[, init])
# from functools import lru_cache # @lrucache ...arguments of functions should be able to be keys of dict (e.g. list is not allowed)
# from bisect import bisect_left, bisect_right # bisect_left(a, x, lo=0, hi=len(a)) returns i such that all(val<x for val in a[lo:i]) and all(val>-=x for val in a[i:hi]).
# from copy import deepcopy # to copy multi-dimentional matrix without reference
# from fractions import gcd # for Python 3.4 (previous contest @AtCoder)
def main():
mod = 1000000007 # 10^9+7
inf = float("inf") # sys.float_info.max = 1.79...e+308
# inf = 2 ** 64 - 1 # (for fast JIT compile in PyPy) 1.84...e+19
sys.setrecursionlimit(10**6) # 1000 -> 1000000
def input():
return sys.stdin.readline().rstrip()
def ii():
return int(input())
def mi():
return map(int, input().split())
def mi_0():
return map(lambda x: int(x) - 1, input().split())
def lmi():
return list(map(int, input().split()))
def lmi_0():
return list(map(lambda x: int(x) - 1, input().split()))
def li():
return list(input())
def calc_consective(s):
n = len(s)
for i in range(n - 1):
if s[i] == s[i + 1]:
return [i + 1, i + 2] # 1-index
return None
def calc_skip(s):
n = len(s)
for i in range(n - 2):
if s[i] == s[i + 2]:
return [i + 1, i + 3] # 1-index
return None
def calc_ans(s):
ans = calc_consective(s)
if ans:
return ans
ans = calc_skip(s)
if ans:
return ans
return (-1, -1)
s = input()
res = calc_ans(s)
print("{} {}".format(res[0], res[1]))
if __name__ == "__main__":
main()
| Statement
Given a string t, we will call it _unbalanced_ if and only if the length of t
is at least 2, and more than half of the letters in t are the same. For
example, both `voodoo` and `melee` are unbalanced, while neither `noon` nor
`a` is.
You are given a string s consisting of lowercase letters. Determine if there
exists a (contiguous) substring of s that is unbalanced. If the answer is
positive, show a position where such a substring occurs in s. | [{"input": "needed", "output": "2 5\n \n\nThe string s_2 s_3 s_4 s_5 = `eede` is unbalanced. There are also other\nunbalanced substrings. For example, the output `2 6` will also be accepted.\n\n* * *"}, {"input": "atcoder", "output": "-1 -1\n \n\nThe string `atcoder` contains no unbalanced substring."}] |
For each query of the latter type, print the answer.
* * * | s357028782 | Accepted | p02559 | Input is given from Standard Input in the following format:
N Q
a_0 a_1 ... a_{N - 1}
\textrm{Query}_0
\textrm{Query}_1
:
\textrm{Query}_{Q - 1} | import sys
input = sys.stdin.readline
def solve():
def makeBIT(numEle):
numPow2 = 2 ** (numEle - 1).bit_length()
data = [0] * (numPow2 + 1)
return data, numPow2
def setInit(As):
for iB, A in enumerate(As, 1):
data[iB] = A
for iB in range(1, numPow2):
i = iB + (iB & -iB)
data[i] += data[iB]
def addValue(iA, A):
iB = iA + 1
while iB <= numPow2:
data[iB] += A
iB += iB & -iB
def getSum(iA):
iB = iA + 1
ans = 0
while iB > 0:
ans += data[iB]
iB -= iB & -iB
return ans
def getRangeSum(iFr, iTo):
return getSum(iTo) - getSum(iFr - 1)
N, Q = map(int, input().split())
As = list(map(int, input().split()))
data, numPow2 = makeBIT(N)
setInit(As)
anss = []
for _ in range(Q):
t, i, j = map(int, input().split())
if t == 0:
addValue(i, j)
else:
anss.append(getRangeSum(i, j - 1))
print("\n".join(map(str, anss)))
solve()
| Statement
You are given an array a_0, a_1, ..., a_{N-1} of length N. Process Q queries
of the following types.
* `0 p x`: a_p \gets a_p + x
* `1 l r`: Print \sum_{i = l}^{r - 1}{a_i}. | [{"input": "5 5\n 1 2 3 4 5\n 1 0 5\n 1 2 4\n 0 3 10\n 1 0 5\n 1 0 3", "output": "15\n 7\n 25\n 6"}] |
For each query of the latter type, print the answer.
* * * | s866370340 | Accepted | p02559 | Input is given from Standard Input in the following format:
N Q
a_0 a_1 ... a_{N - 1}
\textrm{Query}_0
\textrm{Query}_1
:
\textrm{Query}_{Q - 1} | def segfunc(x, y):
return x + y
class SegmentTree:
def __init__(self, A, n, ide_ele):
self.ide_ele = ide_ele
self.num = 2 ** (n - 1).bit_length()
self.seg = [self.ide_ele] * 2 * self.num
# set_val
for i in range(n):
self.seg[i + self.num - 1] = A[i]
# built
for i in range(self.num - 2, -1, -1):
self.seg[i] = segfunc(self.seg[2 * i + 1], self.seg[2 * i + 2])
def update(self, k, x):
k += self.num - 1
self.seg[k] = x
while k:
k = (k - 1) // 2
self.seg[k] = segfunc(self.seg[k * 2 + 1], self.seg[k * 2 + 2])
def query(self, p, q):
if q <= p:
return self.ide_ele
p += self.num - 1
q += self.num - 2
res = self.ide_ele
while q - p > 1:
if p & 1 == 0:
res = segfunc(res, self.seg[p])
if q & 1 == 1:
res = segfunc(res, self.seg[q])
q -= 1
p = p // 2
q = (q - 1) // 2
if p == q:
res = segfunc(res, self.seg[p])
else:
res = segfunc(segfunc(res, self.seg[p]), self.seg[q])
return res
N, Q = list(map(int, input().split()))
A = list(map(int, input().split()))
ST = SegmentTree(A, N, 0)
for i in range(Q):
n, p, x = list(map(int, input().split()))
if n == 1:
print(ST.query(p, x))
else:
A[p] += x
ST.update(p, A[p])
| Statement
You are given an array a_0, a_1, ..., a_{N-1} of length N. Process Q queries
of the following types.
* `0 p x`: a_p \gets a_p + x
* `1 l r`: Print \sum_{i = l}^{r - 1}{a_i}. | [{"input": "5 5\n 1 2 3 4 5\n 1 0 5\n 1 2 4\n 0 3 10\n 1 0 5\n 1 0 3", "output": "15\n 7\n 25\n 6"}] |
For each query of the latter type, print the answer.
* * * | s611008593 | Accepted | p02559 | Input is given from Standard Input in the following format:
N Q
a_0 a_1 ... a_{N - 1}
\textrm{Query}_0
\textrm{Query}_1
:
\textrm{Query}_{Q - 1} | #####segfunc######
def segfunc(x, y):
return x + y
def init(init_val):
# set_val
for i in range(n):
seg[i + num - 1] = init_val[i]
# built
for i in range(num - 2, -1, -1):
seg[i] = segfunc(seg[2 * i + 1], seg[2 * i + 2])
def update(k, x):
k += num - 1
seg[k] = x
while k + 1:
k = (k - 1) // 2
seg[k] = segfunc(seg[k * 2 + 1], seg[k * 2 + 2])
def query(p, q):
if q <= p:
return ide_ele
p += num - 1
q += num - 2
res = ide_ele
while q - p > 1:
if p & 1 == 0:
res = segfunc(res, seg[p])
if q & 1 == 1:
res = segfunc(res, seg[q])
q -= 1
p = p // 2
q = (q - 1) // 2
if p == q:
res = segfunc(res, seg[p])
else:
res = segfunc(segfunc(res, seg[p]), seg[q])
return res
ide_ele = 0
n, q = map(int, input().split())
num = 2 ** (n - 1).bit_length()
seg = [ide_ele] * 2 * num
a = list(map(int, input().split()))
init(a)
ans = 0
for i in range(q):
x, l, r = map(int, input().split())
if x == 0:
update(l, seg[l + num - 1] + r)
else:
print(query(l, r))
| Statement
You are given an array a_0, a_1, ..., a_{N-1} of length N. Process Q queries
of the following types.
* `0 p x`: a_p \gets a_p + x
* `1 l r`: Print \sum_{i = l}^{r - 1}{a_i}. | [{"input": "5 5\n 1 2 3 4 5\n 1 0 5\n 1 2 4\n 0 3 10\n 1 0 5\n 1 0 3", "output": "15\n 7\n 25\n 6"}] |
For each query of the latter type, print the answer.
* * * | s660332204 | Accepted | p02559 | Input is given from Standard Input in the following format:
N Q
a_0 a_1 ... a_{N - 1}
\textrm{Query}_0
\textrm{Query}_1
:
\textrm{Query}_{Q - 1} | #!/usr/bin python3
# -*- coding: utf-8 -*-
# Segment Tree
# 一点更新・範囲集約
# 1-indexed
# update(i,x) :ai を x に変更する
# add(i,x) :ai に x を加算する
# query(l,r) :半開区間 [l,r) に対してモノイド al・…・ar−1 を返す
# モノイドとは、集合と二項演算の組で、結合法則と単位元の存在するもの
# ex. +, max, min
# [ 1] a0 ・ a1 ・ a2 ・ a3 ・ a4 ・ a5 ・ a6 ・ a7 ->[0]
# [ 2] a0 ・ a1 ・ a2 ・ a3 [ 3] a4 ・ a5 ・ a6・ a7
# [ 4] a0 ・ a1 [ 5] a2 ・ a3 [ 6] a4 ・ a5 [ 7] a6 ・ a7
# [ 8] a0 [ 9] a1 [10] a2 [11] a3 [12] a4 [13] a5 [14] a6 [15] a7
# [0001]
# [0010] [0011]
# [0100] [0101] [0110] [0111]
# [1000][1001][1010][1011][1100][1101][1110][1111]
# size = 8 元の配列数の2べき乗値
# 親のインデックス i//2 or i>>=1 bitで一個右シフト
# 左側の子のインデックス 2*i
# 右側の子のインデックス 2*i+1
# aiの値が代入されているインデックス i+size
class SegmentTree:
# 初期化処理
# f : SegmentTreeにのせるモノイド
# idele : fに対する単位元
def __init__(self, size, f=lambda x, y: min(x, y), idele=float("inf")):
self.size = 2 ** (size - 1).bit_length() # 簡単のため要素数nを2冪にする
self.idele = idele # 単位元
self.f = f # モノイド
self.dat = [self.idele] * (self.size * 2) # 要素を単位元で初期化
## one point
def update(self, i, x):
i += self.size # 1番下の層におけるインデックス
self.dat[i] = x
while i > 0: # 層をのぼりながら値を更新
i >>= 1 # 1つ上の層のインデックス(完全二分木における親)
# 下の層2つの演算結果の代入(完全二分木における子同士の演算)
self.dat[i] = self.f(self.dat[i * 2], self.dat[i * 2 + 1])
## one point
def add(self, i, x):
i += self.size # 1番下の層におけるインデックス
self.dat[i] += x
while i > 0: # 層をのぼりながら値を更新 indexが0になれば終了
i >>= 1 # 1つ上の層のインデックス(完全二分木における親)
# 下の層2つの演算結果の代入(完全二分木における子同士の演算)
self.dat[i] = self.f(self.dat[i * 2], self.dat[i * 2 + 1])
## range
def query(self, l, r):
l += self.size # 1番下の層におけるインデックス
r += self.size # 1番下の層におけるインデックス
lres, rres = self.idele, self.idele # 左側の答えと右側の答えを初期化
while l < r: # lとrが重なるまで上記の判定を用いて加算を実行
# 左が子同士の右側(lが奇数)(lの末桁=1)ならば、dat[l]を加算
if l & 1:
lres = self.f(lres, self.dat[l])
l += 1
# 右が子同士の右側(rが奇数)(rの末桁=1)ならば、dat[r-1]を加算
if r & 1:
r -= 1
rres = self.f(
self.dat[r], rres
) # モノイドでは可換律は保証されていないので演算の方向に注意
l >>= 1
r >>= 1
res = self.f(lres, rres)
return res
def init(self, a):
for i, x in enumerate(a):
# 1番下の層におけるインデックス
self.dat[i + self.size] = x
for i in range(self.size - 1, -1, -1):
self.dat[i] = self.f(self.dat[i * 2], self.dat[i * 2 + 1])
n, q = map(int, input().split())
a = list(map(int, input().split()))
sgt = SegmentTree(n, lambda x, y: x + y, 0)
sgt.init(a)
for _ in range(q):
t, u, v = map(int, input().split())
if t == 0:
sgt.add(u, v)
else:
print(sgt.query(u, v))
| Statement
You are given an array a_0, a_1, ..., a_{N-1} of length N. Process Q queries
of the following types.
* `0 p x`: a_p \gets a_p + x
* `1 l r`: Print \sum_{i = l}^{r - 1}{a_i}. | [{"input": "5 5\n 1 2 3 4 5\n 1 0 5\n 1 2 4\n 0 3 10\n 1 0 5\n 1 0 3", "output": "15\n 7\n 25\n 6"}] |
For each query of the latter type, print the answer.
* * * | s815775526 | Accepted | p02559 | Input is given from Standard Input in the following format:
N Q
a_0 a_1 ... a_{N - 1}
\textrm{Query}_0
\textrm{Query}_1
:
\textrm{Query}_{Q - 1} | # Date [ 2020-09-08 00:04:04 ]
# Problem [ b.py ]
# Author Koki_tkg
import sys
# import math
# import bisect
# import numpy as np
# from decimal import Decimal
# from numba import njit, i8, u1, b1 #JIT compiler
# from itertools import combinations, product
# from collections import Counter, deque, defaultdict
# sys.setrecursionlimit(10 ** 6)
MOD = 10**9 + 7
INF = 10**9
PI = 3.14159265358979323846
def read_str():
return sys.stdin.readline().strip()
def read_int():
return int(sys.stdin.readline().strip())
def read_ints():
return map(int, sys.stdin.readline().strip().split())
def read_ints2(x):
return map(lambda num: int(num) - x, sys.stdin.readline().strip().split())
def read_str_list():
return list(sys.stdin.readline().strip().split())
def read_int_list():
return list(map(int, sys.stdin.readline().strip().split()))
def GCD(a: int, b: int) -> int:
return b if a % b == 0 else GCD(b, a % b)
def LCM(a: int, b: int) -> int:
return (a * b) // GCD(a, b)
class BinaryIndexedTree:
def __init__(self, n):
"""1-index"""
self.size = n + 1
self.data = [0] * self.size
self.element = [0] * self.size
self.depth = 1 << n.bit_length() - 1
def build(self, array):
for i, x in enumerate(array):
self.add(i, x)
def add(self, i, v):
self.element[i] += v
i += 1 # 1-index
while i < self.size:
self.data[i] += v
i += i & -i
def sum(self, i):
ret = 0
i += 1 # 1-index
while i > 0:
ret += self.data[i]
i -= i & -i
return ret
def query(self, l, r=None):
"""get sum [l, r)"""
if r == None:
return self.element[l]
return self.sum(r) - self.sum(l - 1)
def lower_bound(self, v):
if v <= 0:
return 0
k = self.depth
i = 0
while k > 0:
if i + k < self.size and self.data[i + k] < v:
v -= self.data[i + k]
i += k
k >>= 1
return i + 1
def upper_bound(self, v):
if v <= 0:
return 0
k = self.depth
i = 0
while k > 0:
if i + k < self.size and self.data[i + k] <= v:
v -= self.data[i + k]
i += k
k >>= 1
return i + 1
def Main():
n, q = read_ints()
bit = BinaryIndexedTree(n)
a = read_int_list()
bit.build(a)
for _ in range(q):
t, l, r = read_ints()
if t == 0:
bit.add(l, r)
else:
print(bit.query(l, ~-r))
if __name__ == "__main__":
Main()
| Statement
You are given an array a_0, a_1, ..., a_{N-1} of length N. Process Q queries
of the following types.
* `0 p x`: a_p \gets a_p + x
* `1 l r`: Print \sum_{i = l}^{r - 1}{a_i}. | [{"input": "5 5\n 1 2 3 4 5\n 1 0 5\n 1 2 4\n 0 3 10\n 1 0 5\n 1 0 3", "output": "15\n 7\n 25\n 6"}] |
If the objective is achievable, print the minimum necessary number of leaves
to remove. Otherwise, print `-1` instead.
* * * | s954345213 | Runtime Error | p03718 | Input is given from Standard Input in the following format:
H W
a_{11} ... a_{1W}
:
a_{H1} ... a_{HW} | code = """
# distutils: language=c++
# distutils: include_dirs=[/home/USERNAME/.local/lib/python3.8/site-packages/numpy/core/include, /opt/atcoder-stl]
# cython: boundscheck=False
# cython: wraparound=False
from libcpp cimport bool
from libcpp.vector cimport vector
cdef extern from "<atcoder/maxflow>" namespace "atcoder":
cdef cppclass mf_graph[Cap]:
mf_graph(int n)
int add_edge(int fr, int to, Cap cap)
Cap flow(int s, int t)
Cap flow(int s, int t, Cap flow_limit)
vector[bool] min_cut(int s)
cppclass edge:
int frm 'from'
int to
Cap cap
Cap flow
edge(edge &e)
edge get_edge(int i)
vector[edge] edges()
void change_edge(int i, Cap new_cap, Cap new_flow)
cdef class MfGraph:
cdef mf_graph[int] *_thisptr
def __cinit__(self, int n):
self._thisptr = new mf_graph[int](n)
cpdef int add_edge(self, int fr, int to, int cap):
return self._thisptr.add_edge(fr, to, cap)
cpdef int flow(self, int s, int t):
return self._thisptr.flow(s, t)
cpdef int flow_with_limit(self, int s, int t, int flow_limit):
return self._thisptr.flow(s, t, flow_limit)
cpdef vector[bool] min_cut(self, int s):
return self._thisptr.min_cut(s)
cpdef vector[int] get_edge(self, int i):
cdef mf_graph[int].edge *e = new mf_graph[int].edge(self._thisptr.get_edge(i))
cdef vector[int] *ret_e = new vector[int]()
ret_e.push_back(e.frm)
ret_e.push_back(e.to)
ret_e.push_back(e.cap)
ret_e.push_back(e.flow)
return ret_e[0]
cpdef vector[vector[int]] edges(self):
cdef vector[mf_graph[int].edge] es = self._thisptr.edges()
cdef vector[vector[int]] *ret_es = new vector[vector[int]](es.size())
for i in range(es.size()):
ret_es.at(i).push_back(es.at(i).frm)
ret_es.at(i).push_back(es.at(i).to)
ret_es.at(i).push_back(es.at(i).cap)
ret_es.at(i).push_back(es.at(i).flow)
return ret_es[0]
cpdef void change_edge(self, int i, int new_cap, int new_flow):
self._thisptr.change_edge(i, new_cap, new_flow)
"""
import os, sys, getpass
if sys.argv[-1] == "ONLINE_JUDGE":
code = code.replace("USERNAME", getpass.getuser())
open("atcoder.pyx", "w").write(code)
os.system("cythonize -i -3 -b atcoder.pyx")
sys.exit(0)
from atcoder import MfGraph
H, W = list(map(int, input().split()))
S = [input() for i in range(H)]
mg = MfGraph(H + W + 2)
s = H + W
t = H + W + 1
BIG = 10**9
for i in range(H):
for j in range(W):
if S[i][j] != ".":
mg.add_edge(i, H + j, 1)
mg.add_edge(H + j, i, 1)
if S[i][j] == "S":
mg.add_edge(s, H + j, BIG)
mg.add_edge(s, i, BIG)
if S[i][j] == "T":
mg.add_edge(H + j, t, BIG)
mg.add_edge(i, t, BIG)
ans = mg.flow(s, t)
if ans >= BIG:
print(-1)
else:
print(ans)
| Statement
There is a pond with a rectangular shape. The pond is divided into a grid with
H rows and W columns of squares. We will denote the square at the i-th row
from the top and j-th column from the left by (i,\ j).
Some of the squares in the pond contains a lotus leaf floating on the water.
On one of those leaves, S, there is a frog trying to get to another leaf T.
The state of square (i,\ j) is given to you by a character a_{ij}, as follows:
* `.` : A square without a leaf.
* `o` : A square with a leaf floating on the water.
* `S` : A square with the leaf S.
* `T` : A square with the leaf T.
The frog will repeatedly perform the following action to get to the leaf T:
"jump to a leaf that is in the same row or the same column as the leaf where
the frog is currently located."
Snuke is trying to remove some of the leaves, other than S and T, so that the
frog cannot get to the leaf T. Determine whether this objective is achievable.
If it is achievable, find the minimum necessary number of leaves to remove. | [{"input": "3 3\n S.o\n .o.\n o.T", "output": "2\n \n\nRemove the upper-right and lower-left leaves.\n\n* * *"}, {"input": "3 4\n S...\n .oo.\n ...T", "output": "0\n \n\n* * *"}, {"input": "4 3\n .S.\n .o.\n .o.\n .T.", "output": "-1\n \n\n* * *"}, {"input": "10 10\n .o...o..o.\n ....o.....\n ....oo.oo.\n ..oooo..o.\n ....oo....\n ..o..o....\n o..o....So\n o....T....\n ....o.....\n ........oo", "output": "5"}] |
If the objective is achievable, print the minimum necessary number of leaves
to remove. Otherwise, print `-1` instead.
* * * | s267596957 | Wrong Answer | p03718 | Input is given from Standard Input in the following format:
H W
a_{11} ... a_{1W}
:
a_{H1} ... a_{HW} | print(-1)
| Statement
There is a pond with a rectangular shape. The pond is divided into a grid with
H rows and W columns of squares. We will denote the square at the i-th row
from the top and j-th column from the left by (i,\ j).
Some of the squares in the pond contains a lotus leaf floating on the water.
On one of those leaves, S, there is a frog trying to get to another leaf T.
The state of square (i,\ j) is given to you by a character a_{ij}, as follows:
* `.` : A square without a leaf.
* `o` : A square with a leaf floating on the water.
* `S` : A square with the leaf S.
* `T` : A square with the leaf T.
The frog will repeatedly perform the following action to get to the leaf T:
"jump to a leaf that is in the same row or the same column as the leaf where
the frog is currently located."
Snuke is trying to remove some of the leaves, other than S and T, so that the
frog cannot get to the leaf T. Determine whether this objective is achievable.
If it is achievable, find the minimum necessary number of leaves to remove. | [{"input": "3 3\n S.o\n .o.\n o.T", "output": "2\n \n\nRemove the upper-right and lower-left leaves.\n\n* * *"}, {"input": "3 4\n S...\n .oo.\n ...T", "output": "0\n \n\n* * *"}, {"input": "4 3\n .S.\n .o.\n .o.\n .T.", "output": "-1\n \n\n* * *"}, {"input": "10 10\n .o...o..o.\n ....o.....\n ....oo.oo.\n ..oooo..o.\n ....oo....\n ..o..o....\n o..o....So\n o....T....\n ....o.....\n ........oo", "output": "5"}] |
If the objective is achievable, print the minimum necessary number of leaves
to remove. Otherwise, print `-1` instead.
* * * | s719826448 | Accepted | p03718 | Input is given from Standard Input in the following format:
H W
a_{11} ... a_{1W}
:
a_{H1} ... a_{HW} | #!usr/bin/env python3
from collections import defaultdict
from collections import deque
from heapq import heappush, heappop
import sys
import math
import bisect
import random
def LI():
return list(map(int, sys.stdin.readline().split()))
def I():
return int(sys.stdin.readline())
def LS():
return list(map(list, sys.stdin.readline().split()))
def S():
return list(sys.stdin.readline())[:-1]
def IR(n):
l = [None for i in range(n)]
for i in range(n):
l[i] = I()
return l
def LIR(n):
l = [None for i in range(n)]
for i in range(n):
l[i] = LI()
return l
def SR(n):
l = [None for i in range(n)]
for i in range(n):
l[i] = S()
return l
def LSR(n):
l = [None for i in range(n)]
for i in range(n):
l[i] = SR()
return l
mod = 1000000007
# A
def A():
return
# B
def B():
return
# C
def C():
return
# D
def D():
return
# E
def E():
return
# F
def F():
def bfs(s, g, n):
bfs_map = [-1 for i in range(n)]
bfs_map[s] = 0
q = deque()
q.append(s)
fin = False
while q:
x = q.popleft()
for y in range(n):
if c[x][y] > 0 and bfs_map[y] < 0:
bfs_map[y] = bfs_map[x] + 1
if y == g:
fin = True
break
q.append(y)
if fin:
break
if bfs_map[g] == -1:
return [None, 0]
path = [None for i in range(bfs_map[g] + 1)]
m = float("inf")
path[bfs_map[g]] = g
y = g
for i in range(bfs_map[g])[::-1]:
for x in range(n + 1):
if c[x][y] > 0 and bfs_map[x] == bfs_map[y] - 1:
path[i] = x
if c[x][y] < m:
m = c[x][y]
y = x
break
return [path, m]
def ford_fulkerson(s, g, c, n):
while 1:
p, m = bfs(s, g, n)
if not m:
break
for i in range(len(p) - 1):
c[p[i]][p[i + 1]] -= m
c[p[i + 1]][p[i]] += m
return sum(c[g])
h, w = LI()
a = SR(h)
c = [[0 for i in range(h + w + 2)] for j in range(h + w + 2)]
for y in range(h):
for x in range(w):
if a[y][x] == "S":
c[0][y + 1] = float("inf")
c[0][h + x + 1] = float("inf")
if a[y][x] == "T":
c[y + 1][h + w + 1] = float("inf")
c[h + x + 1][h + w + 1] = float("inf")
if a[y][x] == "o":
c[y + 1][h + x + 1] = 1
c[h + x + 1][y + 1] = 1
ans = ford_fulkerson(0, h + w + 1, c, h + w + 2)
if ans == float("inf"):
print(-1)
else:
print(ans)
# G
def G():
return
# H
def H():
return
# Solve
if __name__ == "__main__":
F()
| Statement
There is a pond with a rectangular shape. The pond is divided into a grid with
H rows and W columns of squares. We will denote the square at the i-th row
from the top and j-th column from the left by (i,\ j).
Some of the squares in the pond contains a lotus leaf floating on the water.
On one of those leaves, S, there is a frog trying to get to another leaf T.
The state of square (i,\ j) is given to you by a character a_{ij}, as follows:
* `.` : A square without a leaf.
* `o` : A square with a leaf floating on the water.
* `S` : A square with the leaf S.
* `T` : A square with the leaf T.
The frog will repeatedly perform the following action to get to the leaf T:
"jump to a leaf that is in the same row or the same column as the leaf where
the frog is currently located."
Snuke is trying to remove some of the leaves, other than S and T, so that the
frog cannot get to the leaf T. Determine whether this objective is achievable.
If it is achievable, find the minimum necessary number of leaves to remove. | [{"input": "3 3\n S.o\n .o.\n o.T", "output": "2\n \n\nRemove the upper-right and lower-left leaves.\n\n* * *"}, {"input": "3 4\n S...\n .oo.\n ...T", "output": "0\n \n\n* * *"}, {"input": "4 3\n .S.\n .o.\n .o.\n .T.", "output": "-1\n \n\n* * *"}, {"input": "10 10\n .o...o..o.\n ....o.....\n ....oo.oo.\n ..oooo..o.\n ....oo....\n ..o..o....\n o..o....So\n o....T....\n ....o.....\n ........oo", "output": "5"}] |
If the objective is achievable, print the minimum necessary number of leaves
to remove. Otherwise, print `-1` instead.
* * * | s551760097 | Accepted | p03718 | Input is given from Standard Input in the following format:
H W
a_{11} ... a_{1W}
:
a_{H1} ... a_{HW} | from networkx import *
H, *S = open(0)
H, W = map(int, H.split())
g = Graph()
for i in range(m := H * W):
g.add_weighted_edges_from(
[[m * 2, h := i // W, I := m * 3], [m * 2, w := i % W + m, I]]
* ((c := S[h][w - m]) == "S")
+ [[h, I, I], [w, I, I]] * (c == "T")
+ [[h, w, 1], [w, h, 1]] * (c > "T")
)
print([-1, f := minimum_cut(g, m * 2, I, "weight")[0]][f < I])
| Statement
There is a pond with a rectangular shape. The pond is divided into a grid with
H rows and W columns of squares. We will denote the square at the i-th row
from the top and j-th column from the left by (i,\ j).
Some of the squares in the pond contains a lotus leaf floating on the water.
On one of those leaves, S, there is a frog trying to get to another leaf T.
The state of square (i,\ j) is given to you by a character a_{ij}, as follows:
* `.` : A square without a leaf.
* `o` : A square with a leaf floating on the water.
* `S` : A square with the leaf S.
* `T` : A square with the leaf T.
The frog will repeatedly perform the following action to get to the leaf T:
"jump to a leaf that is in the same row or the same column as the leaf where
the frog is currently located."
Snuke is trying to remove some of the leaves, other than S and T, so that the
frog cannot get to the leaf T. Determine whether this objective is achievable.
If it is achievable, find the minimum necessary number of leaves to remove. | [{"input": "3 3\n S.o\n .o.\n o.T", "output": "2\n \n\nRemove the upper-right and lower-left leaves.\n\n* * *"}, {"input": "3 4\n S...\n .oo.\n ...T", "output": "0\n \n\n* * *"}, {"input": "4 3\n .S.\n .o.\n .o.\n .T.", "output": "-1\n \n\n* * *"}, {"input": "10 10\n .o...o..o.\n ....o.....\n ....oo.oo.\n ..oooo..o.\n ....oo....\n ..o..o....\n o..o....So\n o....T....\n ....o.....\n ........oo", "output": "5"}] |
Print two integers with a space in between. First, print the minimum possible
colorfulness of a tree T that can be constructed. Second, print the minimum
number of leaves in a tree that achieves it.
It can be shown that, under the constraints of this problem, the values that
should be printed fit into 64-bit signed integers.
* * * | s696315189 | Runtime Error | p03348 | Input is given from Standard Input in the following format:
N
a_1 b_1
:
a_{N-1} b_{N-1} | N = int(input())
G = [[] for i in range(N)]
E9 = []
for i in range(N - 1):
a, b = map(int, input().split())
G[a - 1].append(b - 1)
G[b - 1].append(a - 1)
E9.append((a - 1, b - 1))
def encode(v, p):
res = []
tmp = []
l = 0
P = []
def edfs(v, p):
res = [0]
cs = []
for w in G[v]:
if w == p:
continue
cs.append(edfs(w, v))
cs.sort()
for c in cs:
res.extend(c)
res.append(1)
return res
E = edfs(v, p)
return E
def calc(E):
st = []
C = [0]
P = []
L = len(E)
l = 0
for i in range(L):
if i and E[i - 1] < E[i]:
l += 1
if E[i] == 0:
st.append(i)
P.append(None)
else:
j = st.pop()
P.append(i)
# P[i] = j
P[j] = i
C.append(l)
return C, P
INF = 10**9
def merge(e1, e2):
l1 = len(e1)
l2 = len(e2)
dp = [[0] * (l1 + 1) for i in range(l2 + 1)]
C1, P1 = calc(e1)
C2, P2 = calc(e2)
prev = {}
memo = {}
def dfs(x, y):
if (x, y) in memo:
return memo[x, y]
if x == l1 and y == l2:
return 0
res = INF
p = None
if x < l1 and y < l2 and e1[x] == e2[y]:
r = dfs(x + 1, y + 1) + max(C1[x + 1] - C1[x], C2[y + 1] - C2[y])
if r < res:
res = r
p = (x + 1, y + 1)
if x < l1 and e1[x] == 0:
r = dfs(P1[x] + 1, y) + C1[P1[x] + 1] - C1[x]
if r < res:
res = r
p = (P1[x] + 1, y)
if y < l2 and e2[y] == 0:
r = dfs(x, P2[y] + 1) + C2[P2[y] + 1] - C2[y]
if r < res:
res = r
p = (x, P2[y] + 1)
memo[x, y] = res
prev[x, y] = p
return res
prev[0, 0] = (0, 0)
r = dfs(0, 0)
v = (0, 0)
res = []
while v != (l1, l2):
print(v)
px, py = v
x, y = v = prev[v]
if px != x and py != y:
res.append(e1[px])
elif px != x:
res.extend(e1[px:x])
else:
res.extend(e2[py:y])
print(res)
return r, res
from collections import deque
def bfs(v, p=-1):
que = deque([v])
dist = {v: 0, p: 0}
prev = {}
while que:
u = que.popleft()
d = dist[u]
for w in G[u]:
if w not in dist:
dist[w] = d + 1
prev[w] = u
que.append(w)
w = u
res = []
while w != v:
res.append(w)
w = prev[w]
res.append(v)
return u, res
def solve(u, v):
if bfs(u, v) > (L + 1) // 2 < bfs(v, u):
return 10**9
E1 = encode(u, v)
E2 = encode(v, u)
# print(u, v, E1, E2)
return merge(E1, E2)[0] * 2
def vsolve(v):
if bfs(u) > (L + 1) // 2:
return 10**9
E0 = encode(G[v][0], v)
for w in G[v][1:]:
E1 = encode(w, w)
_, E0 = merge(E0, E1)
C, P = calc(E0)
# print(v, G[v][0], E0, C[-1], len(G[v]))
return C[-1] * len(G[v])
v, _ = bfs(0)
w, D = bfs(v)
L = len(D)
col = (L + 1) // 2
ans = 10**18
for a, b in E9:
ans = min(ans, solve(a, b))
for v in range(N):
ans = min(ans, vsolve(v))
print(col, ans)
| Statement
Coloring of the vertices of a tree G is called a _good coloring_ when, for
every pair of two vertices u and v painted in the same color, picking u as the
root and picking v as the root would result in isomorphic rooted trees.
Also, the _colorfulness_ of G is defined as the minimum possible number of
different colors used in a good coloring of G.
You are given a tree with N vertices. The vertices are numbered 1 through N,
and the i-th edge connects Vertex a_i and Vertex b_i. We will construct a new
tree T by repeating the following operation on this tree some number of times:
* Add a new vertex to the tree by connecting it to one of the vertices in the current tree with an edge.
Find the minimum possible colorfulness of T. Additionally, print the minimum
number of leaves (vertices with degree 1) in a tree T that achieves the
minimum colorfulness. | [{"input": "5\n 1 2\n 2 3\n 3 4\n 3 5", "output": "2 4\n \n\nIf we connect a new vertex 6 to vertex 2, painting the vertices (1,4,5,6) red\nand painting the vertices (2,3) blue is a good coloring. Since painting all\nthe vertices in a single color is not a good coloring, we can see that the\ncolorfulness of this tree is 2. This is actually the optimal solution. There\nare four leaves, so we should print 2 and 4.\n\n* * *"}, {"input": "8\n 1 2\n 2 3\n 4 3\n 5 4\n 6 7\n 6 8\n 3 6", "output": "3 4\n \n\n* * *"}, {"input": "10\n 1 2\n 2 3\n 3 4\n 4 5\n 5 6\n 6 7\n 3 8\n 5 9\n 3 10", "output": "4 6\n \n\n* * *"}, {"input": "13\n 5 6\n 6 4\n 2 8\n 4 7\n 8 9\n 3 2\n 10 4\n 11 10\n 2 4\n 13 10\n 1 8\n 12 1", "output": "4 12"}] |
Print two integers with a space in between. First, print the minimum possible
colorfulness of a tree T that can be constructed. Second, print the minimum
number of leaves in a tree that achieves it.
It can be shown that, under the constraints of this problem, the values that
should be printed fit into 64-bit signed integers.
* * * | s129565310 | Runtime Error | p03348 | Input is given from Standard Input in the following format:
N
a_1 b_1
:
a_{N-1} b_{N-1} | import math
n = int(input())
lis = []
for i in range(n):
lis.append(int(input()))
if lis[0] != 0:
print("-1")
exit()
cou = 0
print(lis, cou)
for k in range(n - 1):
if lis[n - (k + 1)] > lis[n - (k + 2)]:
cou += math.ceil(lis[n - (k + 1)] / (lis[n - (k + 2)] + 1))
lis[n - (k + 1)] = 0
else:
cou += lis[n - (k + 1)]
lis[n - (k + 2)] -= lis[n - (k + 1)] - 1
lis[n - (k + 1)] = 0
print(lis, cou)
print(cou)
| Statement
Coloring of the vertices of a tree G is called a _good coloring_ when, for
every pair of two vertices u and v painted in the same color, picking u as the
root and picking v as the root would result in isomorphic rooted trees.
Also, the _colorfulness_ of G is defined as the minimum possible number of
different colors used in a good coloring of G.
You are given a tree with N vertices. The vertices are numbered 1 through N,
and the i-th edge connects Vertex a_i and Vertex b_i. We will construct a new
tree T by repeating the following operation on this tree some number of times:
* Add a new vertex to the tree by connecting it to one of the vertices in the current tree with an edge.
Find the minimum possible colorfulness of T. Additionally, print the minimum
number of leaves (vertices with degree 1) in a tree T that achieves the
minimum colorfulness. | [{"input": "5\n 1 2\n 2 3\n 3 4\n 3 5", "output": "2 4\n \n\nIf we connect a new vertex 6 to vertex 2, painting the vertices (1,4,5,6) red\nand painting the vertices (2,3) blue is a good coloring. Since painting all\nthe vertices in a single color is not a good coloring, we can see that the\ncolorfulness of this tree is 2. This is actually the optimal solution. There\nare four leaves, so we should print 2 and 4.\n\n* * *"}, {"input": "8\n 1 2\n 2 3\n 4 3\n 5 4\n 6 7\n 6 8\n 3 6", "output": "3 4\n \n\n* * *"}, {"input": "10\n 1 2\n 2 3\n 3 4\n 4 5\n 5 6\n 6 7\n 3 8\n 5 9\n 3 10", "output": "4 6\n \n\n* * *"}, {"input": "13\n 5 6\n 6 4\n 2 8\n 4 7\n 8 9\n 3 2\n 10 4\n 11 10\n 2 4\n 13 10\n 1 8\n 12 1", "output": "4 12"}] |
Print the maximum possible sum of the digits (in base 10) of a positive
integer not greater than N.
* * * | s106222363 | Accepted | p03427 | Input is given from Standard Input in the following format:
N | n = int(input())
m = n
k = 0
while m > 0:
k += 1
m = m // 10
if (n + 1) % (10 ** (k - 1)) == 0:
print(n // (10 ** (k - 1)) + 9 * (k - 1))
else:
print(n // (10 ** (k - 1)) - 1 + 9 * (k - 1))
| Statement
Find the maximum possible sum of the digits (in base 10) of a positive integer
not greater than N. | [{"input": "100", "output": "18\n \n\nFor example, the sum of the digits in 99 is 18, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "9995", "output": "35\n \n\nFor example, the sum of the digits in 9989 is 35, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "3141592653589793", "output": "137"}] |
Print the maximum possible sum of the digits (in base 10) of a positive
integer not greater than N.
* * * | s594621635 | Accepted | p03427 | Input is given from Standard Input in the following format:
N | n = list(map(int, list(input())))
k = len(n)
c = n[0]
f = 1
for i in range(1, k):
if n[i] != 9:
f = 0
if f:
print(sum(n))
else:
print(c + 9 * (k - 1) - 1)
| Statement
Find the maximum possible sum of the digits (in base 10) of a positive integer
not greater than N. | [{"input": "100", "output": "18\n \n\nFor example, the sum of the digits in 99 is 18, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "9995", "output": "35\n \n\nFor example, the sum of the digits in 9989 is 35, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "3141592653589793", "output": "137"}] |
Print the maximum possible sum of the digits (in base 10) of a positive
integer not greater than N.
* * * | s357273112 | Wrong Answer | p03427 | Input is given from Standard Input in the following format:
N | X = list(map(int, input()))
sn = []
for i in range(len(X)):
sn.append(sum(X[0 : i + 1]))
ssn = []
for i in range(len(X)):
ssn.append(sn[i] - 1 + 9 * (len(X) - 1 - i))
print(max(ssn))
| Statement
Find the maximum possible sum of the digits (in base 10) of a positive integer
not greater than N. | [{"input": "100", "output": "18\n \n\nFor example, the sum of the digits in 99 is 18, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "9995", "output": "35\n \n\nFor example, the sum of the digits in 9989 is 35, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "3141592653589793", "output": "137"}] |
Print the maximum possible sum of the digits (in base 10) of a positive
integer not greater than N.
* * * | s823700215 | Accepted | p03427 | Input is given from Standard Input in the following format:
N | n = int(input())
n_str = str(n)
num = len(n_str)
hikaku = int(str(n_str[0]) + str(9) * (num - 1))
atai = int(int(n_str[0]) + int(9) * (num - 1))
if n >= hikaku:
print(atai)
else:
print(atai - 1)
| Statement
Find the maximum possible sum of the digits (in base 10) of a positive integer
not greater than N. | [{"input": "100", "output": "18\n \n\nFor example, the sum of the digits in 99 is 18, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "9995", "output": "35\n \n\nFor example, the sum of the digits in 9989 is 35, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "3141592653589793", "output": "137"}] |
Print the maximum possible sum of the digits (in base 10) of a positive
integer not greater than N.
* * * | s472952595 | Runtime Error | p03427 | Input is given from Standard Input in the following format:
N | -*- coding: utf-8 -*-
N = input()
if len(N) == 1:
# 1桁の数字
print(N)
elif all(map(lambda x: x == '9', N[1:])):
# 下位が全部9の場合
print(sum(int(n) for n in N))
else:
# 下位を全部9にする例
print(9 * (len(N) - 1) + int(N[0]) - 1)
| Statement
Find the maximum possible sum of the digits (in base 10) of a positive integer
not greater than N. | [{"input": "100", "output": "18\n \n\nFor example, the sum of the digits in 99 is 18, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "9995", "output": "35\n \n\nFor example, the sum of the digits in 9989 is 35, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "3141592653589793", "output": "137"}] |
Print the maximum possible sum of the digits (in base 10) of a positive
integer not greater than N.
* * * | s201094016 | Accepted | p03427 | Input is given from Standard Input in the following format:
N | # print#!/usr/bin/env python3
# %% for atcoder uniittest use
import sys
input = lambda: sys.stdin.readline().rstrip()
sys.setrecursionlimit(10**9)
def pin(type=int):
return map(type, input().split())
def tupin(t=int):
return tuple(pin(t))
def lispin(t=int):
return list(pin(t))
# %%code
from collections import Counter
def resolve():
N = list(input())
a = sum(map(int, N))
for n in range(1, len(N)):
t = N[:n] + [9] * (len(N) - n)
a = max(a, sum(map(int, t)) - 1)
print(a)
# %%submit!
resolve()
| Statement
Find the maximum possible sum of the digits (in base 10) of a positive integer
not greater than N. | [{"input": "100", "output": "18\n \n\nFor example, the sum of the digits in 99 is 18, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "9995", "output": "35\n \n\nFor example, the sum of the digits in 9989 is 35, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "3141592653589793", "output": "137"}] |
Print the maximum possible sum of the digits (in base 10) of a positive
integer not greater than N.
* * * | s853411701 | Accepted | p03427 | Input is given from Standard Input in the following format:
N | n = int(input())
s = str(n)
len_s = len(s)
dp = [[0] * (len_s + 1) for i in range(2)]
dp[0][1] = int(s[0])
dp[1][1] = int(s[0]) - 1
for i in range(1, len_s):
for num in range(int(s[i]) + 1):
dp[0][i + 1] = max(dp[0][i + 1], dp[0][i] + num)
for num in range(int(s[i])):
dp[1][i + 1] = max(dp[1][i + 1], dp[0][i] + num)
for num in range(10):
dp[1][i + 1] = max(dp[1][i + 1], dp[1][i] + num)
print(max(dp[0][len_s], dp[1][len_s]))
| Statement
Find the maximum possible sum of the digits (in base 10) of a positive integer
not greater than N. | [{"input": "100", "output": "18\n \n\nFor example, the sum of the digits in 99 is 18, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "9995", "output": "35\n \n\nFor example, the sum of the digits in 9989 is 35, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "3141592653589793", "output": "137"}] |
Print the maximum possible sum of the digits (in base 10) of a positive
integer not greater than N.
* * * | s235921079 | Accepted | p03427 | Input is given from Standard Input in the following format:
N | # -*- coding: utf-8 -*-
#############
# Libraries #
#############
import sys
input = sys.stdin.readline
import math
# from math import gcd
import bisect
from collections import defaultdict
from collections import deque
from collections import Counter
from functools import lru_cache
#############
# Constants #
#############
MOD = 10**9 + 7
INF = float("inf")
#############
# Functions #
#############
######INPUT######
def I():
return int(input().strip())
def S():
return input().strip()
def IL():
return list(map(int, input().split()))
def SL():
return list(map(str, input().split()))
def ILs(n):
return list(int(input()) for _ in range(n))
def SLs(n):
return list(input().strip() for _ in range(n))
def ILL(n):
return [list(map(int, input().split())) for _ in range(n)]
def SLL(n):
return [list(map(str, input().split())) for _ in range(n)]
######OUTPUT######
def P(arg):
print(arg)
return
def Y():
print("Yes")
return
def N():
print("No")
return
def E():
exit()
def PE(arg):
print(arg)
exit()
def YE():
print("Yes")
exit()
def NE():
print("No")
exit()
#####Shorten#####
def DD(arg):
return defaultdict(arg)
#####Inverse#####
def inv(n):
return pow(n, MOD - 2, MOD)
######Combination######
kaijo_memo = []
def kaijo(n):
if len(kaijo_memo) > n:
return kaijo_memo[n]
if len(kaijo_memo) == 0:
kaijo_memo.append(1)
while len(kaijo_memo) <= n:
kaijo_memo.append(kaijo_memo[-1] * len(kaijo_memo) % MOD)
return kaijo_memo[n]
gyaku_kaijo_memo = []
def gyaku_kaijo(n):
if len(gyaku_kaijo_memo) > n:
return gyaku_kaijo_memo[n]
if len(gyaku_kaijo_memo) == 0:
gyaku_kaijo_memo.append(1)
while len(gyaku_kaijo_memo) <= n:
gyaku_kaijo_memo.append(
gyaku_kaijo_memo[-1] * pow(len(gyaku_kaijo_memo), MOD - 2, MOD) % MOD
)
return gyaku_kaijo_memo[n]
def nCr(n, r):
if n == r:
return 1
if n < r or r < 0:
return 0
ret = 1
ret = ret * kaijo(n) % MOD
ret = ret * gyaku_kaijo(r) % MOD
ret = ret * gyaku_kaijo(n - r) % MOD
return ret
######Factorization######
def factorization(n):
arr = []
temp = n
for i in range(2, int(-(-(n**0.5) // 1)) + 1):
if temp % i == 0:
cnt = 0
while temp % i == 0:
cnt += 1
temp //= i
arr.append([i, cnt])
if temp != 1:
arr.append([temp, 1])
if arr == []:
arr.append([n, 1])
return arr
#####MakeDivisors######
def make_divisors(n):
divisors = []
for i in range(1, int(n**0.5) + 1):
if n % i == 0:
divisors.append(i)
if i != n // i:
divisors.append(n // i)
return divisors
#####MakePrimes######
def make_primes(N):
max = int(math.sqrt(N))
seachList = [i for i in range(2, N + 1)]
primeNum = []
while seachList[0] <= max:
primeNum.append(seachList[0])
tmp = seachList[0]
seachList = [i for i in seachList if i % tmp != 0]
primeNum.extend(seachList)
return primeNum
#####GCD#####
def gcd(a, b):
while b:
a, b = b, a % b
return a
#####LCM#####
def lcm(a, b):
return a * b // gcd(a, b)
#####BitCount#####
def count_bit(n):
count = 0
while n:
n &= n - 1
count += 1
return count
#####ChangeBase#####
def base_10_to_n(X, n):
if X // n:
return base_10_to_n(X // n, n) + [X % n]
return [X % n]
def base_n_to_10(X, n):
return sum(int(str(X)[-i - 1]) * n**i for i in range(len(str(X))))
#####IntLog#####
def int_log(n, a):
count = 0
while n >= a:
n //= a
count += 1
return count
#############
# Main Code #
#############
N = I()
NN = N + 0
L = int_log(N, 10)
if N == pow(10, L + 1) - 1:
print(L * 9 + 9)
exit()
count_9 = 0
while (NN + 1) % 10 == 0:
count_9 += 1
NN = int(str(NN)[:-1])
if count_9 == len(str(N)) - 1:
print(sum(map(int, list(str(N)))))
else:
L = int_log(N, 10)
print((count_9 + L) * 9 + (int(str(N)[0]) + 9) % 10)
| Statement
Find the maximum possible sum of the digits (in base 10) of a positive integer
not greater than N. | [{"input": "100", "output": "18\n \n\nFor example, the sum of the digits in 99 is 18, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "9995", "output": "35\n \n\nFor example, the sum of the digits in 9989 is 35, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "3141592653589793", "output": "137"}] |
Print the maximum possible sum of the digits (in base 10) of a positive
integer not greater than N.
* * * | s639731446 | Accepted | p03427 | Input is given from Standard Input in the following format:
N | N = input()
res = sum(map(int, N))
res = max(res, max(0, int(N[0]) - 1 + 9 * (len(N) - 1)))
for i in range(1, len(N) - 1):
if int(N[i]) > 0:
t = 0
for j in range(i):
t += int(N[j])
t += int(N[i]) - 1 + 9 * (len(N) - i - 1)
res = max(res, t)
print(res)
| Statement
Find the maximum possible sum of the digits (in base 10) of a positive integer
not greater than N. | [{"input": "100", "output": "18\n \n\nFor example, the sum of the digits in 99 is 18, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "9995", "output": "35\n \n\nFor example, the sum of the digits in 9989 is 35, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "3141592653589793", "output": "137"}] |
Print the maximum possible sum of the digits (in base 10) of a positive
integer not greater than N.
* * * | s538569607 | Runtime Error | p03427 | Input is given from Standard Input in the following format:
N | from math import acos, hypot, pi
class Point:
def __init__(self, i, x, y):
self.i = i
self.x = int(x)
self.y = int(y)
class Line:
def __init__(self, p1, p2):
self.p1 = p1
self.p2 = p2
self.d2 = (p1.x - p2.x) ** 2 + (p1.y - p2.y) ** 2
if p1.x == p2.x:
self.a = 1
self.b = 0
else:
self.a = p2.y - p1.y
self.b = p1.x - p2.x
self.c = -p1.y * self.b - p1.x * self.a
def dist(self, p):
f = self.a * p.x + self.b * p.y + self.c
if f == 0:
d12 = (self.p1.x - p.x) ** 2 + (self.p1.y - p.y) ** 2
d22 = (self.p2.x - p.x) ** 2 + (self.p2.y - p.y) ** 2
if self.d2 < max(d12, d22):
return None
return 0
if f < 0:
return -1
else:
return 1
def kaku(self, other):
x = self.a * other.a + self.b * other.b
x /= hypot(self.a, self.b) * hypot(other.a, other.b)
return pi - acos(x)
def make_p(n, pp):
pids = {p.i: [] for p in pp}
for i in range(n):
if len(pids[i]) == 2:
continue
p1 = pp[i]
for j in pids:
if i == j or len(pids[j]) == 2:
continue
p2 = pp[j]
line = Line(p1, p2)
ptype = {0: 0, 1: 0, -1: 0, None: 0}
for k in pids:
if k == i or k == j:
continue
ptype[line.dist(pp[k])] += 1
if ptype[None]:
continue
if ptype[1] == 0 or ptype[-1] == 0:
pids[i].append(j)
pids[j].append(i)
return pids
def main():
n = int(input())
if n == 2:
print(0.5)
print(0.5)
return
pp = []
for i in range(n):
p = Point(i, *input().split())
pp.append(p)
pids = make_p(n, pp)
prob = [0.0] * n
for i, nei in pids.items():
if len(nei) == 2:
l1 = Line(pp[i], pp[nei[0]])
l2 = Line(pp[i], pp[nei[1]])
kaku = l1.kaku(l2)
prob[i] += kaku / (2 * pi)
for p in prob:
print(p)
if __name__ == "__main__":
main()
| Statement
Find the maximum possible sum of the digits (in base 10) of a positive integer
not greater than N. | [{"input": "100", "output": "18\n \n\nFor example, the sum of the digits in 99 is 18, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "9995", "output": "35\n \n\nFor example, the sum of the digits in 9989 is 35, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "3141592653589793", "output": "137"}] |
Print the maximum possible sum of the digits (in base 10) of a positive
integer not greater than N.
* * * | s573558490 | Runtime Error | p03427 | Input is given from Standard Input in the following format:
N | # -*- coding: utf-8 -*-
import sys
import math
import os
import itertools
import string
import heapq
import _collections
from collections import Counter
from collections import defaultdict
from functools import lru_cache
import bisect
import re
import queue
class Scanner:
@staticmethod
def int():
return int(sys.stdin.readline().rstrip())
@staticmethod
def string():
return sys.stdin.readline().rstrip()
@staticmethod
def map_int():
return [int(x) for x in Scanner.string().split()]
@staticmethod
def string_list(n):
return [input() for i in range(n)]
@staticmethod
def int_list_list(n):
return [Scanner.map_int() for i in range(n)]
@staticmethod
def int_cols_list(n):
return [int(input()) for i in range(n)]
class Math:
@staticmethod
def gcd(a, b):
if b == 0:
return a
return Math.gcd(b, a % b)
@staticmethod
def lcm(a, b):
return (a * b) // Math.gcd(a, b)
@staticmethod
def roundUp(a, b):
return -(-a // b)
@staticmethod
def toUpperMultiple(a, x):
return Math.roundUp(a, x) * x
@staticmethod
def toLowerMultiple(a, x):
return (a // x) * x
@staticmethod
def nearPow2(n):
if n <= 0:
return 0
if n & (n - 1) == 0:
return n
ret = 1
while n > 0:
ret <<= 1
n >>= 1
return ret
@staticmethod
def sign(n):
if n == 0:
return 0
if n < 0:
return -1
return 1
@staticmethod
def isPrime(n):
if n < 2:
return False
if n == 2:
return True
if n % 2 == 0:
return False
d = int(n**0.5) + 1
for i in range(3, d + 1, 2):
if n % i == 0:
return False
return True
class PriorityQueue:
def __init__(self, l=[]):
self.__q = l
heapq.heapify(self.__q)
return
def push(self, n):
heapq.heappush(self.__q, n)
return
def pop(self):
return heapq.heappop(self.__q)
MOD = int(1e09) + 7
INF = int(1e15)
def calc(N):
return sum(int(x) for x in str(N))
def main():
# sys.stdin = open("sample.txt")
N = Scanner.int()
ans = calc(N)
ans = max(ans, calc(int(str(int(str(N)[0]) - 1) + "9" * (len(str(N)) - 1))))
ans = max(ans, calc(N - N % 10 - 1))
print(ans)
return
if __name__ == "__main__":
main()
| Statement
Find the maximum possible sum of the digits (in base 10) of a positive integer
not greater than N. | [{"input": "100", "output": "18\n \n\nFor example, the sum of the digits in 99 is 18, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "9995", "output": "35\n \n\nFor example, the sum of the digits in 9989 is 35, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "3141592653589793", "output": "137"}] |
Print the maximum possible sum of the digits (in base 10) of a positive
integer not greater than N.
* * * | s760006627 | Accepted | p03427 | Input is given from Standard Input in the following format:
N | s, *n = str(int(input()) + 1)
print(int(s) + 9 * len(n) - 1)
| Statement
Find the maximum possible sum of the digits (in base 10) of a positive integer
not greater than N. | [{"input": "100", "output": "18\n \n\nFor example, the sum of the digits in 99 is 18, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "9995", "output": "35\n \n\nFor example, the sum of the digits in 9989 is 35, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "3141592653589793", "output": "137"}] |
Print the maximum possible sum of the digits (in base 10) of a positive
integer not greater than N.
* * * | s920246012 | Accepted | p03427 | Input is given from Standard Input in the following format:
N | import math
import fractions
import bisect
import collections
import itertools
import heapq
import string
import sys
import copy
from decimal import *
from collections import deque
sys.setrecursionlimit(10**7)
MOD = 10**9 + 7
INF = float("inf") # 無限大
def gcd(a, b):
return fractions.gcd(a, b) # 最大公約数
def lcm(a, b):
return (a * b) // fractions.gcd(a, b) # 最小公倍数
def iin():
return int(sys.stdin.readline()) # 整数読み込み
def ifn():
return float(sys.stdin.readline()) # 浮動小数点読み込み
def isn():
return sys.stdin.readline().split() # 文字列読み込み
def imn():
return map(int, sys.stdin.readline().split()) # 整数map取得
def imnn():
return map(lambda x: int(x) - 1, sys.stdin.readline().split()) # 整数-1map取得
def fmn():
return map(float, sys.stdin.readline().split()) # 浮動小数点map取得
def iln():
return list(map(int, sys.stdin.readline().split())) # 整数リスト取得
def iln_s():
return sorted(iln()) # 昇順の整数リスト取得
def iln_r():
return sorted(iln(), reverse=True) # 降順の整数リスト取得
def fln():
return list(map(float, sys.stdin.readline().split())) # 浮動小数点リスト取得
def join(l, s=""):
return s.join(l) # リストを文字列に変換
def perm(l, n):
return itertools.permutations(l, n) # 順列取得
def perm_count(n, r):
return math.factorial(n) // math.factorial(n - r) # 順列の総数
def comb(l, n):
return itertools.combinations(l, n) # 組み合わせ取得
def comb_count(n, r):
return math.factorial(n) // (
math.factorial(n - r) * math.factorial(r)
) # 組み合わせの総数
def two_distance(a, b, c, d):
return ((c - a) ** 2 + (d - b) ** 2) ** 0.5 # 2点間の距離
def m_add(a, b):
return (a + b) % MOD
def print_list(l):
print(*l, sep="\n")
def sieves_of_e(n):
is_prime = [True] * (n + 1)
is_prime[0] = False
is_prime[1] = False
for i in range(2, int(n**0.5) + 1):
if not is_prime[i]:
continue
for j in range(i * 2, n + 1, i):
is_prime[j] = False
return is_prime
N = str(iin())
sum_N = 0
for n in N:
sum_N += int(n)
ans = 0
if N[0] != 1:
ans = int(N[0]) - 1
ans += (len(N) - 1) * 9
print(max(sum_N, ans))
| Statement
Find the maximum possible sum of the digits (in base 10) of a positive integer
not greater than N. | [{"input": "100", "output": "18\n \n\nFor example, the sum of the digits in 99 is 18, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "9995", "output": "35\n \n\nFor example, the sum of the digits in 9989 is 35, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "3141592653589793", "output": "137"}] |
Print the maximum possible sum of the digits (in base 10) of a positive
integer not greater than N.
* * * | s284836882 | Wrong Answer | p03427 | Input is given from Standard Input in the following format:
N | # coding: utf-8
import re
import math
from collections import defaultdict
from collections import deque
import itertools
from copy import deepcopy
import random
import time
import os
import queue
import sys
import datetime
from functools import lru_cache
# @lru_cache(maxsize=None)
readline = sys.stdin.readline
sys.setrecursionlimit(2000000)
# import numpy as np
alphabet = "abcdefghijklmnopqrstuvwxyz"
mod = int(10**9 + 7)
inf = int(10**20)
def yn(b):
if b:
print("yes")
else:
print("no")
def Yn(b):
if b:
print("Yes")
else:
print("No")
def YN(b):
if b:
print("YES")
else:
print("NO")
class union_find:
def __init__(self, n):
self.n = n
self.P = [a for a in range(N)]
self.rank = [0] * n
def find(self, x):
if x != self.P[x]:
self.P[x] = self.find(self.P[x])
return self.P[x]
def same(self, x, y):
return self.find(x) == self.find(y)
def link(self, x, y):
if self.rank[x] < self.rank[y]:
self.P[x] = y
elif self.rank[y] < self.rank[x]:
self.P[y] = x
else:
self.P[x] = y
self.rank[y] += 1
def unite(self, x, y):
self.link(self.find(x), self.find(y))
def size(self):
S = set()
for a in range(self.n):
S.add(self.find(a))
return len(S)
def is_pow(a, b): # aはbの累乗数か
now = b
while now < a:
now *= b
if now == a:
return True
else:
return False
def bin_(num, size):
A = [0] * size
for a in range(size):
if (num >> (size - a - 1)) & 1 == 1:
A[a] = 1
else:
A[a] = 0
return A
def get_facs(n, mod_=0):
A = [1] * (n + 1)
for a in range(2, len(A)):
A[a] = A[a - 1] * a
if mod_ > 0:
A[a] %= mod_
return A
def comb(n, r, mod, fac):
if n - r < 0:
return 0
return (fac[n] * pow(fac[n - r], mod - 2, mod) * pow(fac[r], mod - 2, mod)) % mod
def next_comb(num, size):
x = num & (-num)
y = num + x
z = num & (~y)
z //= x
z = z >> 1
num = y | z
if num >= (1 << size):
return False
else:
return num
def get_primes(n, type="int"):
if n == 0:
if type == "int":
return []
else:
return [False]
A = [True] * (n + 1)
A[0] = False
A[1] = False
for a in range(2, n + 1):
if A[a]:
for b in range(a * 2, n + 1, a):
A[b] = False
if type == "bool":
return A
B = []
for a in range(n + 1):
if A[a]:
B.append(a)
return B
def is_prime(num):
if num <= 1:
return False
i = 2
while i * i <= num:
if num % i == 0:
return False
i += 1
return True
def ifelse(a, b, c):
if a:
return b
else:
return c
def join(A, c=""):
n = len(A)
A = list(map(str, A))
s = ""
for a in range(n):
s += A[a]
if a < n - 1:
s += c
return s
def factorize(n, type_="dict"):
b = 2
list_ = []
while b * b <= n:
while n % b == 0:
n //= b
list_.append(b)
b += 1
if n > 1:
list_.append(n)
if type_ == "dict":
dic = {}
for a in list_:
if a in dic:
dic[a] += 1
else:
dic[a] = 1
return dic
elif type_ == "list":
return list_
else:
return None
def floor_(n, x=1):
return x * (n // x)
def ceil_(n, x=1):
return x * ((n + x - 1) // x)
return ret
def seifu(x):
return x // abs(x)
######################################################################################################
def main():
n = input()
ans = 0
for a in n:
ans += int(a)
ans = max((len(n) - 1) * 9, ans)
print(ans)
main()
| Statement
Find the maximum possible sum of the digits (in base 10) of a positive integer
not greater than N. | [{"input": "100", "output": "18\n \n\nFor example, the sum of the digits in 99 is 18, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "9995", "output": "35\n \n\nFor example, the sum of the digits in 9989 is 35, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "3141592653589793", "output": "137"}] |
Print the maximum possible sum of the digits (in base 10) of a positive
integer not greater than N.
* * * | s353331984 | Accepted | p03427 | Input is given from Standard Input in the following format:
N | n = int(input())
num = []
k = n
while k != 0:
num.append(k % 10)
k = k // 10
print(max(sum(num), num[-1] - 1 + 9 * (len(num) - 1)))
| Statement
Find the maximum possible sum of the digits (in base 10) of a positive integer
not greater than N. | [{"input": "100", "output": "18\n \n\nFor example, the sum of the digits in 99 is 18, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "9995", "output": "35\n \n\nFor example, the sum of the digits in 9989 is 35, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "3141592653589793", "output": "137"}] |
Print the maximum possible sum of the digits (in base 10) of a positive
integer not greater than N.
* * * | s790823702 | Accepted | p03427 | Input is given from Standard Input in the following format:
N | #!/usr/bin/env python3
import sys, math, copy
# import fractions, itertools
# import numpy as np
# import scipy
HUGE = 2147483647
HUGEL = 9223372036854775807
ABC = "abcdefghijklmnopqrstuvwxyz"
def main():
def digsum(s):
su = 0
for c in s:
su += int(c)
return su
def break_ith_dig(s, i1):
assert 2 <= i1 <= dig
if s[-i1] == "0":
return s
s = s[:-i1] + str(int(s[-i1]) - 1) + "9" * (i1 - 1)
return s
ns = input()
dig = len(ns)
ma = digsum(ns)
for i in range(2, dig + 1):
ns = break_ith_dig(ns, i)
ma = max(ma, digsum(ns))
print(ma)
main()
| Statement
Find the maximum possible sum of the digits (in base 10) of a positive integer
not greater than N. | [{"input": "100", "output": "18\n \n\nFor example, the sum of the digits in 99 is 18, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "9995", "output": "35\n \n\nFor example, the sum of the digits in 9989 is 35, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "3141592653589793", "output": "137"}] |
Print the maximum possible sum of the digits (in base 10) of a positive
integer not greater than N.
* * * | s713033284 | Wrong Answer | p03427 | Input is given from Standard Input in the following format:
N | import sys
## io ##
def IS():
return sys.stdin.readline().rstrip()
def II():
return int(IS())
def MII():
return list(map(int, IS().split()))
def MIIZ():
return list(map(lambda x: x - 1, MII()))
## dp ##
def DD2(d1, d2, init=0):
return [[init] * d2 for _ in range(d1)]
def DD3(d1, d2, d3, init=0):
return [DD2(d2, d3, init) for _ in range(d1)]
## math ##
def to_bin(x: int) -> str:
return format(x, "b") # rev => int(res, 2)
def to_oct(x: int) -> str:
return format(x, "o") # rev => int(res, 8)
def to_hex(x: int) -> str:
return format(x, "x") # rev => int(res, 16)
MOD = 10**9 + 7
def divc(x, y) -> int:
return -(-x // y)
def divf(x, y) -> int:
return x // y
def gcd(x, y):
while y:
x, y = y, x % y
return x
def lcm(x, y):
return x * y // gcd(x, y)
def enumerate_divs(n):
"""Return a tuple list of divisor of n"""
return [(i, n // i) for i in range(1, int(n**0.5) + 1) if n % i == 0]
def get_primes(MAX_NUM=10**3):
"""Return a list of prime numbers n or less"""
is_prime = [True] * (MAX_NUM + 1)
is_prime[0] = is_prime[1] = False
for i in range(2, int(MAX_NUM**0.5) + 1):
if not is_prime[i]:
continue
for j in range(i * 2, MAX_NUM + 1, i):
is_prime[j] = False
return [i for i in range(MAX_NUM + 1) if is_prime[i]]
## libs ##
from itertools import accumulate as acc
from collections import deque, Counter
from heapq import heapify, heappop, heappush
from bisect import bisect_left
# ======================================================#
def main():
n = II()
s = str(n)
d = len(s)
maxv = 0
for i in range(d):
l = sum(int(si) for si in s[:i])
l += int(s[i]) - 1
l += 9 * (d - i - 1)
maxv = max(maxv, l)
print(maxv)
if __name__ == "__main__":
main()
| Statement
Find the maximum possible sum of the digits (in base 10) of a positive integer
not greater than N. | [{"input": "100", "output": "18\n \n\nFor example, the sum of the digits in 99 is 18, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "9995", "output": "35\n \n\nFor example, the sum of the digits in 9989 is 35, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "3141592653589793", "output": "137"}] |
Print the maximum possible sum of the digits (in base 10) of a positive
integer not greater than N.
* * * | s746167023 | Runtime Error | p03427 | Input is given from Standard Input in the following format:
N | n = input()
ans1=sum(int(i)for i in n)
ans2=int(n[0])-1+9*(len(n)-1)
print(max(ans1,ans2) | Statement
Find the maximum possible sum of the digits (in base 10) of a positive integer
not greater than N. | [{"input": "100", "output": "18\n \n\nFor example, the sum of the digits in 99 is 18, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "9995", "output": "35\n \n\nFor example, the sum of the digits in 9989 is 35, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "3141592653589793", "output": "137"}] |
Print the maximum possible sum of the digits (in base 10) of a positive
integer not greater than N.
* * * | s329780851 | Wrong Answer | p03427 | Input is given from Standard Input in the following format:
N | n = int(input())
d = len(str(n))
print(n // (10 ** (d - 1)) - 1 + 9 * (d - 1))
| Statement
Find the maximum possible sum of the digits (in base 10) of a positive integer
not greater than N. | [{"input": "100", "output": "18\n \n\nFor example, the sum of the digits in 99 is 18, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "9995", "output": "35\n \n\nFor example, the sum of the digits in 9989 is 35, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "3141592653589793", "output": "137"}] |
Print the maximum possible sum of the digits (in base 10) of a positive
integer not greater than N.
* * * | s525141570 | Wrong Answer | p03427 | Input is given from Standard Input in the following format:
N | tes = input()
a = [int(data) for data in tes]
print(sum(a))
| Statement
Find the maximum possible sum of the digits (in base 10) of a positive integer
not greater than N. | [{"input": "100", "output": "18\n \n\nFor example, the sum of the digits in 99 is 18, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "9995", "output": "35\n \n\nFor example, the sum of the digits in 9989 is 35, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "3141592653589793", "output": "137"}] |
Print the maximum possible sum of the digits (in base 10) of a positive
integer not greater than N.
* * * | s676598714 | Accepted | p03427 | Input is given from Standard Input in the following format:
N | # coding: utf-8
s = list(map(int, list(input())))
mx = sum(s)
for i in range(len(s)):
mx = max(sum(s[0 : i + 1]) - 1 + 9 * (len(s) - i - 1), mx)
print(mx)
| Statement
Find the maximum possible sum of the digits (in base 10) of a positive integer
not greater than N. | [{"input": "100", "output": "18\n \n\nFor example, the sum of the digits in 99 is 18, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "9995", "output": "35\n \n\nFor example, the sum of the digits in 9989 is 35, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "3141592653589793", "output": "137"}] |
Print the maximum possible sum of the digits (in base 10) of a positive
integer not greater than N.
* * * | s926871466 | Accepted | p03427 | Input is given from Standard Input in the following format:
N | x = input()
l = len(x)
if len(x) == 1:
print(x)
elif x[1:] == "9" * ~-l:
print(int(x[0]) + 9 * ~-l)
elif x[0] == "1":
print(9 * ~-l)
else:
print(int(x[0]) - 1 + 9 * ~-l)
| Statement
Find the maximum possible sum of the digits (in base 10) of a positive integer
not greater than N. | [{"input": "100", "output": "18\n \n\nFor example, the sum of the digits in 99 is 18, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "9995", "output": "35\n \n\nFor example, the sum of the digits in 9989 is 35, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "3141592653589793", "output": "137"}] |
Print the maximum possible sum of the digits (in base 10) of a positive
integer not greater than N.
* * * | s518291148 | Wrong Answer | p03427 | Input is given from Standard Input in the following format:
N | n = int(input())
c = len(str(n))
for i in range(1, 10):
b = int(str(i) + "9" * (c - 1))
if int(str(i) + "9" * (c - 1)) >= n:
print(9 * (c - 1) + (i - 1))
break
| Statement
Find the maximum possible sum of the digits (in base 10) of a positive integer
not greater than N. | [{"input": "100", "output": "18\n \n\nFor example, the sum of the digits in 99 is 18, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "9995", "output": "35\n \n\nFor example, the sum of the digits in 9989 is 35, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "3141592653589793", "output": "137"}] |
Print the maximum possible sum of the digits (in base 10) of a positive
integer not greater than N.
* * * | s405215059 | Wrong Answer | p03427 | Input is given from Standard Input in the following format:
N | n = list(input())
x = []
for i in n:
x.append(int(i))
out = int(n[0]) - 1 + (len(n) - 1) * 9
sample = [1]
sample.extend([9] * (len(n) - 1))
if [9] * len(n) == x or sample == x or len(n) == 1:
out = sum(x)
print(out)
| Statement
Find the maximum possible sum of the digits (in base 10) of a positive integer
not greater than N. | [{"input": "100", "output": "18\n \n\nFor example, the sum of the digits in 99 is 18, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "9995", "output": "35\n \n\nFor example, the sum of the digits in 9989 is 35, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "3141592653589793", "output": "137"}] |
Print the maximum possible sum of the digits (in base 10) of a positive
integer not greater than N.
* * * | s389911903 | Wrong Answer | p03427 | Input is given from Standard Input in the following format:
N | S = input()
dp = [[0 for i in range(len(S))] for j in range(2)]
dp[0][0] = int(S[0])
dp[1][0] = int(S[0]) - 1
for i in range(len(S) - 1):
dp[0][i + 1] = dp[0][i] + int(S[i + 1])
dp[1][i + 1] = max(dp[0][i] + int(S[i + 1]) - 1, dp[1][i] + 9)
print(dp[1][len(S) - 1])
| Statement
Find the maximum possible sum of the digits (in base 10) of a positive integer
not greater than N. | [{"input": "100", "output": "18\n \n\nFor example, the sum of the digits in 99 is 18, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "9995", "output": "35\n \n\nFor example, the sum of the digits in 9989 is 35, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "3141592653589793", "output": "137"}] |
Print the maximum possible sum of the digits (in base 10) of a positive
integer not greater than N.
* * * | s126322543 | Wrong Answer | p03427 | Input is given from Standard Input in the following format:
N | s = input()
n = int(s)
l = len(s)
isall9 = True
for i in range(1, l):
if s[i] != "9":
isall9 = False
if isall9:
print(1 + 9 * (l - 1))
else:
res = int(int(s[0]) - 1) + 9 * (l - 1)
print(res)
| Statement
Find the maximum possible sum of the digits (in base 10) of a positive integer
not greater than N. | [{"input": "100", "output": "18\n \n\nFor example, the sum of the digits in 99 is 18, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "9995", "output": "35\n \n\nFor example, the sum of the digits in 9989 is 35, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "3141592653589793", "output": "137"}] |
Print the maximum possible sum of the digits (in base 10) of a positive
integer not greater than N.
* * * | s109178068 | Wrong Answer | p03427 | Input is given from Standard Input in the following format:
N | N = input()
a = [int(c) for c in N]
naga = len(a)
for i in range(naga):
if a[i] < 9:
a[i] -= 1
for j in range(i + 1, naga):
a[j] = 9
break
if a[naga - 1] != 9:
a[naga - 2] -= 1
a[naga - 1] = 9
print(sum(a))
| Statement
Find the maximum possible sum of the digits (in base 10) of a positive integer
not greater than N. | [{"input": "100", "output": "18\n \n\nFor example, the sum of the digits in 99 is 18, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "9995", "output": "35\n \n\nFor example, the sum of the digits in 9989 is 35, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "3141592653589793", "output": "137"}] |
Print the maximum possible sum of the digits (in base 10) of a positive
integer not greater than N.
* * * | s505511300 | Accepted | p03427 | Input is given from Standard Input in the following format:
N | # -*- coding: utf-8 -*-
N = int(input())
def Sum(n):
s = str(n)
array = list(map(int, list(s)))
return sum(array)
a = []
a.append(Sum(N))
N_str = str(N)
N_str = list(map(int, list(N_str)))
"右端の数字を1下げたときの最大"
N_str = str(N)
N_str = list(map(int, list(N_str)))
N_str[0] = N_str[0] - 1
for i in range(1, len(N_str)):
N_str[i] = 9
a.append(sum(N_str))
print(max(a))
| Statement
Find the maximum possible sum of the digits (in base 10) of a positive integer
not greater than N. | [{"input": "100", "output": "18\n \n\nFor example, the sum of the digits in 99 is 18, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "9995", "output": "35\n \n\nFor example, the sum of the digits in 9989 is 35, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "3141592653589793", "output": "137"}] |
Print the maximum possible sum of the digits (in base 10) of a positive
integer not greater than N.
* * * | s748529196 | Wrong Answer | p03427 | Input is given from Standard Input in the following format:
N | n = input().zfill(16)
INF = 10**18
memo_ls = [[0 for i in range(2)] for j in range(17)]
memo_ls[0][0] = 0
memo_ls[0][1] = -INF
for i in range(1, 17):
s = int(n[i - 1])
memo_ls[i][0] = memo_ls[i - 1][0] + s
memo_ls[i][1] = memo_ls[i - 1][1] + 9
if s > 0:
memo_ls[i][1] = max(memo_ls[i][1], memo_ls[i - 1][0] + s - 1)
print(max(memo_ls[-1]))
| Statement
Find the maximum possible sum of the digits (in base 10) of a positive integer
not greater than N. | [{"input": "100", "output": "18\n \n\nFor example, the sum of the digits in 99 is 18, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "9995", "output": "35\n \n\nFor example, the sum of the digits in 9989 is 35, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "3141592653589793", "output": "137"}] |
Print the maximum possible sum of the digits (in base 10) of a positive
integer not greater than N.
* * * | s428581899 | Wrong Answer | p03427 | Input is given from Standard Input in the following format:
N | a = list(input())
c = 0
for i in range(len(a)):
b = ""
d = 0
for j in range(len(a)):
if i == j:
b += str(max(int(a[i]) - 1, 0))
d += max(int(a[i]) - 1, 0)
else:
b += "9"
d += 9
if int(b) <= int("".join(a)):
c = max(c, d)
print(c)
| Statement
Find the maximum possible sum of the digits (in base 10) of a positive integer
not greater than N. | [{"input": "100", "output": "18\n \n\nFor example, the sum of the digits in 99 is 18, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "9995", "output": "35\n \n\nFor example, the sum of the digits in 9989 is 35, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "3141592653589793", "output": "137"}] |
Print the maximum possible sum of the digits (in base 10) of a positive
integer not greater than N.
* * * | s321789307 | Wrong Answer | p03427 | Input is given from Standard Input in the following format:
N | a = list(input())
if len(a) == 1:
print(a)
else:
c = 0
for i in range(len(a)):
b = ""
d = 0
for j in range(len(a)):
if i == j:
b += str(max(int(a[i]) - 1, 0))
d += max(int(a[i]) - 1, 0)
else:
b += "9"
d += 9
if int(b) <= int("".join(a)):
c = max(c, d)
print(c)
| Statement
Find the maximum possible sum of the digits (in base 10) of a positive integer
not greater than N. | [{"input": "100", "output": "18\n \n\nFor example, the sum of the digits in 99 is 18, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "9995", "output": "35\n \n\nFor example, the sum of the digits in 9989 is 35, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "3141592653589793", "output": "137"}] |
Print the maximum possible sum of the digits (in base 10) of a positive
integer not greater than N.
* * * | s673445082 | Accepted | p03427 | Input is given from Standard Input in the following format:
N | a = input()
x = 0
y = 0
for c in a:
x += int(c)
y += 9
y += int(a[0]) - 10
print(max(x, y))
| Statement
Find the maximum possible sum of the digits (in base 10) of a positive integer
not greater than N. | [{"input": "100", "output": "18\n \n\nFor example, the sum of the digits in 99 is 18, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "9995", "output": "35\n \n\nFor example, the sum of the digits in 9989 is 35, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "3141592653589793", "output": "137"}] |
Print the maximum possible sum of the digits (in base 10) of a positive
integer not greater than N.
* * * | s748883693 | Accepted | p03427 | Input is given from Standard Input in the following format:
N | N = input()
d = len(N)
A = int(N[0]) - 1 + (d - 1) * 9
B = 0
for i in N:
B += int(i)
print(max(A, B))
| Statement
Find the maximum possible sum of the digits (in base 10) of a positive integer
not greater than N. | [{"input": "100", "output": "18\n \n\nFor example, the sum of the digits in 99 is 18, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "9995", "output": "35\n \n\nFor example, the sum of the digits in 9989 is 35, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "3141592653589793", "output": "137"}] |
Print the maximum possible sum of the digits (in base 10) of a positive
integer not greater than N.
* * * | s890023446 | Accepted | p03427 | Input is given from Standard Input in the following format:
N | N = list(input())
N = [int(e) for e in N]
v1 = sum(N)
v2 = N[0] - 1 + 9 * (len(N) - 1)
print(max(v1, v2))
| Statement
Find the maximum possible sum of the digits (in base 10) of a positive integer
not greater than N. | [{"input": "100", "output": "18\n \n\nFor example, the sum of the digits in 99 is 18, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "9995", "output": "35\n \n\nFor example, the sum of the digits in 9989 is 35, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "3141592653589793", "output": "137"}] |
Print the maximum possible sum of the digits (in base 10) of a positive
integer not greater than N.
* * * | s969291536 | Accepted | p03427 | Input is given from Standard Input in the following format:
N | f, *n = str(int(input()) + 1)
print(int(f) + 9 * len(n) - 1)
| Statement
Find the maximum possible sum of the digits (in base 10) of a positive integer
not greater than N. | [{"input": "100", "output": "18\n \n\nFor example, the sum of the digits in 99 is 18, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "9995", "output": "35\n \n\nFor example, the sum of the digits in 9989 is 35, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "3141592653589793", "output": "137"}] |
Print the maximum possible sum of the digits (in base 10) of a positive
integer not greater than N.
* * * | s582454822 | Wrong Answer | p03427 | Input is given from Standard Input in the following format:
N | s = int(input())
if sum(map(int, str(s))) == 1:
s -= 1
z = 10 ** (len(str(s)) - 1)
y = (s + 1) // z * z - 1
print(sum(map(int, str(y))))
| Statement
Find the maximum possible sum of the digits (in base 10) of a positive integer
not greater than N. | [{"input": "100", "output": "18\n \n\nFor example, the sum of the digits in 99 is 18, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "9995", "output": "35\n \n\nFor example, the sum of the digits in 9989 is 35, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "3141592653589793", "output": "137"}] |
Print the maximum possible sum of the digits (in base 10) of a positive
integer not greater than N.
* * * | s241544045 | Wrong Answer | p03427 | Input is given from Standard Input in the following format:
N | 9999999999999999
| Statement
Find the maximum possible sum of the digits (in base 10) of a positive integer
not greater than N. | [{"input": "100", "output": "18\n \n\nFor example, the sum of the digits in 99 is 18, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "9995", "output": "35\n \n\nFor example, the sum of the digits in 9989 is 35, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "3141592653589793", "output": "137"}] |
Print the maximum possible sum of the digits (in base 10) of a positive
integer not greater than N.
* * * | s615221667 | Wrong Answer | p03427 | Input is given from Standard Input in the following format:
N | 3141592653589793
| Statement
Find the maximum possible sum of the digits (in base 10) of a positive integer
not greater than N. | [{"input": "100", "output": "18\n \n\nFor example, the sum of the digits in 99 is 18, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "9995", "output": "35\n \n\nFor example, the sum of the digits in 9989 is 35, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "3141592653589793", "output": "137"}] |
Print the maximum possible sum of the digits (in base 10) of a positive
integer not greater than N.
* * * | s209683147 | Wrong Answer | p03427 | Input is given from Standard Input in the following format:
N | print(sum([int(i) for i in input()]))
| Statement
Find the maximum possible sum of the digits (in base 10) of a positive integer
not greater than N. | [{"input": "100", "output": "18\n \n\nFor example, the sum of the digits in 99 is 18, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "9995", "output": "35\n \n\nFor example, the sum of the digits in 9989 is 35, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "3141592653589793", "output": "137"}] |
Print the maximum possible sum of the digits (in base 10) of a positive
integer not greater than N.
* * * | s926094112 | Runtime Error | p03427 | Input is given from Standard Input in the following format:
N | n = str(input().rstrip() + 1)
ans = len(n) * 9
ans += int(n[0]) - 1
print(ans)
| Statement
Find the maximum possible sum of the digits (in base 10) of a positive integer
not greater than N. | [{"input": "100", "output": "18\n \n\nFor example, the sum of the digits in 99 is 18, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "9995", "output": "35\n \n\nFor example, the sum of the digits in 9989 is 35, which turns out to be the\nmaximum value.\n\n* * *"}, {"input": "3141592653589793", "output": "137"}] |
Print the minimum time required for all of the people to reach City 6, in
minutes.
* * * | s554539136 | Accepted | p03077 | Input is given from Standard Input in the following format:
N
A
B
C
D
E | N, *capas = map(int, open(0).read().split())
min_capa = min(capas)
print((N + min_capa - 1) // min_capa + 4)
| Statement
In 2028 and after a continuous growth, AtCoder Inc. finally built an empire
with six cities (City 1, 2, 3, 4, 5, 6)!
There are five means of transport in this empire:
* Train: travels from City 1 to 2 in one minute. A train can occupy at most A people.
* Bus: travels from City 2 to 3 in one minute. A bus can occupy at most B people.
* Taxi: travels from City 3 to 4 in one minute. A taxi can occupy at most C people.
* Airplane: travels from City 4 to 5 in one minute. An airplane can occupy at most D people.
* Ship: travels from City 5 to 6 in one minute. A ship can occupy at most E people.
For each of them, one vehicle leaves the city at each integer time (time 0, 1,
2, ...).
There is a group of N people at City 1, and they all want to go to City 6.
At least how long does it take for all of them to reach there? You can ignore
the time needed to transfer. | [{"input": "5\n 3\n 2\n 4\n 3\n 5", "output": "7\n \n\nOne possible way to travel is as follows. First, there are N = 5 people at\nCity 1, as shown in the following image:\n\n![ ](https://img.atcoder.jp/ghi/9c306138eddc8a2e08acfa5da19bdfe8.png)\n\nIn the first minute, three people travels from City 1 to City 2 by train. Note\nthat a train can only occupy at most three people.\n\n![ ](https://img.atcoder.jp/ghi/bd30b5ab37fc06951c9f5256bb974e4f.png)\n\nIn the second minute, the remaining two people travels from City 1 to City 2\nby train, and two of the three people who were already at City 2 travels to\nCity 3 by bus. Note that a bus can only occupy at most two people.\n\n![ ](https://img.atcoder.jp/ghi/50f2e49a770a30193fc53588ec8475b3.png)\n\nIn the third minute, two people travels from City 2 to City 3 by train, and\nanother two people travels from City 3 to City 4 by taxi.\n\n![ ](https://img.atcoder.jp/ghi/d6d80dc50abe58190905c8c5ea6ba345.png)\n\nFrom then on, if they continue traveling without stopping until they reach\nCity 6, all of them can reach there in seven minutes. \nThere is no way for them to reach City 6 in 6 minutes or less.\n\n* * *"}, {"input": "10\n 123\n 123\n 123\n 123\n 123", "output": "5\n \n\nAll kinds of vehicles can occupy N = 10 people at a time. Thus, if they\ncontinue traveling without stopping until they reach City 6, all of them can\nreach there in five minutes.\n\n* * *"}, {"input": "10000000007\n 2\n 3\n 5\n 7\n 11", "output": "5000000008\n \n\nNote that the input or output may not fit into a 32-bit integer type."}] |
Print the minimum time required for all of the people to reach City 6, in
minutes.
* * * | s317290613 | Runtime Error | p03077 | Input is given from Standard Input in the following format:
N
A
B
C
D
E | # 2019/04/07
from numpy import array, zeros
IN_RANGE = 5
# 入力受け取り
N = int(input())
a_e = array([int(input()) for i in range(IN_RANGE)])
# どこに人がいるか
a_e_num = zeros(IN_RANGE + 1)
a_e_num[0] = N
# 1分ずつの処理
minute = 0
while a_e_num[N] < N:
minute += 1
move_index = (a_e_num[:N] - a_e) >= 0
move_num = a_e_num[:N].copy()
move_num[move_index] = a_e[move_index]
a_e_num[:N] = a_e_num[:N] - move_num
a_e_num[1:] = a_e_num[1:] + move_num
print(minute)
| Statement
In 2028 and after a continuous growth, AtCoder Inc. finally built an empire
with six cities (City 1, 2, 3, 4, 5, 6)!
There are five means of transport in this empire:
* Train: travels from City 1 to 2 in one minute. A train can occupy at most A people.
* Bus: travels from City 2 to 3 in one minute. A bus can occupy at most B people.
* Taxi: travels from City 3 to 4 in one minute. A taxi can occupy at most C people.
* Airplane: travels from City 4 to 5 in one minute. An airplane can occupy at most D people.
* Ship: travels from City 5 to 6 in one minute. A ship can occupy at most E people.
For each of them, one vehicle leaves the city at each integer time (time 0, 1,
2, ...).
There is a group of N people at City 1, and they all want to go to City 6.
At least how long does it take for all of them to reach there? You can ignore
the time needed to transfer. | [{"input": "5\n 3\n 2\n 4\n 3\n 5", "output": "7\n \n\nOne possible way to travel is as follows. First, there are N = 5 people at\nCity 1, as shown in the following image:\n\n![ ](https://img.atcoder.jp/ghi/9c306138eddc8a2e08acfa5da19bdfe8.png)\n\nIn the first minute, three people travels from City 1 to City 2 by train. Note\nthat a train can only occupy at most three people.\n\n![ ](https://img.atcoder.jp/ghi/bd30b5ab37fc06951c9f5256bb974e4f.png)\n\nIn the second minute, the remaining two people travels from City 1 to City 2\nby train, and two of the three people who were already at City 2 travels to\nCity 3 by bus. Note that a bus can only occupy at most two people.\n\n![ ](https://img.atcoder.jp/ghi/50f2e49a770a30193fc53588ec8475b3.png)\n\nIn the third minute, two people travels from City 2 to City 3 by train, and\nanother two people travels from City 3 to City 4 by taxi.\n\n![ ](https://img.atcoder.jp/ghi/d6d80dc50abe58190905c8c5ea6ba345.png)\n\nFrom then on, if they continue traveling without stopping until they reach\nCity 6, all of them can reach there in seven minutes. \nThere is no way for them to reach City 6 in 6 minutes or less.\n\n* * *"}, {"input": "10\n 123\n 123\n 123\n 123\n 123", "output": "5\n \n\nAll kinds of vehicles can occupy N = 10 people at a time. Thus, if they\ncontinue traveling without stopping until they reach City 6, all of them can\nreach there in five minutes.\n\n* * *"}, {"input": "10000000007\n 2\n 3\n 5\n 7\n 11", "output": "5000000008\n \n\nNote that the input or output may not fit into a 32-bit integer type."}] |
Print the minimum time required for all of the people to reach City 6, in
minutes.
* * * | s900681125 | Accepted | p03077 | Input is given from Standard Input in the following format:
N
A
B
C
D
E | n = int(input())
costs = [int(input()) for _ in range(5)]
nums = [0] * 6
mc = min(costs)
counts = -(-n // mc)
print(counts + 4)
| Statement
In 2028 and after a continuous growth, AtCoder Inc. finally built an empire
with six cities (City 1, 2, 3, 4, 5, 6)!
There are five means of transport in this empire:
* Train: travels from City 1 to 2 in one minute. A train can occupy at most A people.
* Bus: travels from City 2 to 3 in one minute. A bus can occupy at most B people.
* Taxi: travels from City 3 to 4 in one minute. A taxi can occupy at most C people.
* Airplane: travels from City 4 to 5 in one minute. An airplane can occupy at most D people.
* Ship: travels from City 5 to 6 in one minute. A ship can occupy at most E people.
For each of them, one vehicle leaves the city at each integer time (time 0, 1,
2, ...).
There is a group of N people at City 1, and they all want to go to City 6.
At least how long does it take for all of them to reach there? You can ignore
the time needed to transfer. | [{"input": "5\n 3\n 2\n 4\n 3\n 5", "output": "7\n \n\nOne possible way to travel is as follows. First, there are N = 5 people at\nCity 1, as shown in the following image:\n\n![ ](https://img.atcoder.jp/ghi/9c306138eddc8a2e08acfa5da19bdfe8.png)\n\nIn the first minute, three people travels from City 1 to City 2 by train. Note\nthat a train can only occupy at most three people.\n\n![ ](https://img.atcoder.jp/ghi/bd30b5ab37fc06951c9f5256bb974e4f.png)\n\nIn the second minute, the remaining two people travels from City 1 to City 2\nby train, and two of the three people who were already at City 2 travels to\nCity 3 by bus. Note that a bus can only occupy at most two people.\n\n![ ](https://img.atcoder.jp/ghi/50f2e49a770a30193fc53588ec8475b3.png)\n\nIn the third minute, two people travels from City 2 to City 3 by train, and\nanother two people travels from City 3 to City 4 by taxi.\n\n![ ](https://img.atcoder.jp/ghi/d6d80dc50abe58190905c8c5ea6ba345.png)\n\nFrom then on, if they continue traveling without stopping until they reach\nCity 6, all of them can reach there in seven minutes. \nThere is no way for them to reach City 6 in 6 minutes or less.\n\n* * *"}, {"input": "10\n 123\n 123\n 123\n 123\n 123", "output": "5\n \n\nAll kinds of vehicles can occupy N = 10 people at a time. Thus, if they\ncontinue traveling without stopping until they reach City 6, all of them can\nreach there in five minutes.\n\n* * *"}, {"input": "10000000007\n 2\n 3\n 5\n 7\n 11", "output": "5000000008\n \n\nNote that the input or output may not fit into a 32-bit integer type."}] |
Print the minimum time required for all of the people to reach City 6, in
minutes.
* * * | s515226530 | Accepted | p03077 | Input is given from Standard Input in the following format:
N
A
B
C
D
E | n = [int(input()) for i in range(6)]
print(5 + (n[0] - 1) // min(n[1:]))
| Statement
In 2028 and after a continuous growth, AtCoder Inc. finally built an empire
with six cities (City 1, 2, 3, 4, 5, 6)!
There are five means of transport in this empire:
* Train: travels from City 1 to 2 in one minute. A train can occupy at most A people.
* Bus: travels from City 2 to 3 in one minute. A bus can occupy at most B people.
* Taxi: travels from City 3 to 4 in one minute. A taxi can occupy at most C people.
* Airplane: travels from City 4 to 5 in one minute. An airplane can occupy at most D people.
* Ship: travels from City 5 to 6 in one minute. A ship can occupy at most E people.
For each of them, one vehicle leaves the city at each integer time (time 0, 1,
2, ...).
There is a group of N people at City 1, and they all want to go to City 6.
At least how long does it take for all of them to reach there? You can ignore
the time needed to transfer. | [{"input": "5\n 3\n 2\n 4\n 3\n 5", "output": "7\n \n\nOne possible way to travel is as follows. First, there are N = 5 people at\nCity 1, as shown in the following image:\n\n![ ](https://img.atcoder.jp/ghi/9c306138eddc8a2e08acfa5da19bdfe8.png)\n\nIn the first minute, three people travels from City 1 to City 2 by train. Note\nthat a train can only occupy at most three people.\n\n![ ](https://img.atcoder.jp/ghi/bd30b5ab37fc06951c9f5256bb974e4f.png)\n\nIn the second minute, the remaining two people travels from City 1 to City 2\nby train, and two of the three people who were already at City 2 travels to\nCity 3 by bus. Note that a bus can only occupy at most two people.\n\n![ ](https://img.atcoder.jp/ghi/50f2e49a770a30193fc53588ec8475b3.png)\n\nIn the third minute, two people travels from City 2 to City 3 by train, and\nanother two people travels from City 3 to City 4 by taxi.\n\n![ ](https://img.atcoder.jp/ghi/d6d80dc50abe58190905c8c5ea6ba345.png)\n\nFrom then on, if they continue traveling without stopping until they reach\nCity 6, all of them can reach there in seven minutes. \nThere is no way for them to reach City 6 in 6 minutes or less.\n\n* * *"}, {"input": "10\n 123\n 123\n 123\n 123\n 123", "output": "5\n \n\nAll kinds of vehicles can occupy N = 10 people at a time. Thus, if they\ncontinue traveling without stopping until they reach City 6, all of them can\nreach there in five minutes.\n\n* * *"}, {"input": "10000000007\n 2\n 3\n 5\n 7\n 11", "output": "5000000008\n \n\nNote that the input or output may not fit into a 32-bit integer type."}] |