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import gradio as gr | |
import re | |
import requests | |
import json | |
import os | |
from screenshot import BG_COMP, BOX_COMP, GENERATION_VAR, PROMPT_VAR, main | |
from pathlib import Path | |
title = "BLOOM" | |
description = """Gradio Demo for BLOOM. To use it, simply add your text, or click one of the examples to load them. | |
Tips: | |
- Do NOT talk to BLOOM as an entity, it's not a chatbot but a webpage/blog/article completion model. | |
- For the best results: MIMIC a few sentences of a webpage similar to the content you want to generate. | |
Start a paragraph as if YOU were writing a blog, webpage, math post, coding article and BLOOM will generate a coherent follow-up. Longer prompts usually give more interesting results. | |
Options: | |
- sampling: imaginative completions (may be not super accurate e.g. math/history) | |
- greedy: accurate completions (may be more boring or have repetitions) | |
""" | |
API_URL = os.getenv("API_URL") | |
TOKEN = os.getenv("TOKEN") | |
examples = [ | |
[ | |
'A "whatpu" is a small, furry animal native to Tanzania. An example of a sentence that uses the word whatpu is: We were traveling in Africa and we saw these very cute whatpus. To do a "farduddle" means to jump up and down really fast. An example of a sentence that uses the word farduddle is:', | |
32, | |
"Sample", | |
False, | |
"Sample 1", | |
], | |
[ | |
"A poem about the beauty of science by Alfred Edgar Brittle\nTitle: The Magic Craft\nIn the old times", | |
50, | |
"Sample", | |
False, | |
"Sample 1", | |
], | |
["استخراج العدد العاملي في لغة بايثون:", 30, "Greedy", False, "Sample 1"], | |
["Pour déguster un ortolan, il faut tout d'abord", 32, "Sample", False, "Sample 1"], | |
[ | |
"Traduce español de España a español de Argentina\nEl coche es rojo - el auto es rojo\nEl ordenador es nuevo - la computadora es nueva\nel boligrafo es negro -", | |
16, | |
"Sample", | |
False, | |
"Sample 1", | |
], | |
[ | |
"Estos ejemplos quitan vocales de las palabras\nEjemplos:\nhola - hl\nmanzana - mnzn\npapas - pps\nalacran - lcrn\npapa -", | |
16, | |
"Sample", | |
False, | |
"Sample 1", | |
], | |
[ | |
"Question: If I put cheese into the fridge, will it melt?\nAnswer:", | |
32, | |
"Sample", | |
False, | |
"Sample 1", | |
], | |
["Math exercise - answers:\n34+10=44\n54+20=", 16, "Greedy", False, "Sample 1"], | |
[ | |
"Question: Where does the Greek Goddess Persephone spend half of the year when she is not with her mother?\nAnswer:", | |
24, | |
"Greedy", | |
False, | |
"Sample 1", | |
], | |
[ | |
"spelling test answers.\nWhat are the letters in « language »?\nAnswer: l-a-n-g-u-a-g-e\nWhat are the letters in « Romanian »?\nAnswer:", | |
24, | |
"Greedy", | |
False, | |
"Sample 1", | |
], | |
] | |
def query(payload): | |
print(payload) | |
response = requests.request("POST", API_URL, json=payload, headers={"Authorization": f"Bearer {TOKEN}"}) | |
print(response) | |
return json.loads(response.content.decode("utf-8")) | |
def inference(input_sentence, max_length, sample_or_greedy, raw_text=False, seed=42): | |
if sample_or_greedy == "Sample": | |
parameters = { | |
"max_new_tokens": max_length, | |
"top_p": 0.9, | |
"do_sample": True, | |
"seed": seed, | |
"early_stopping": False, | |
"length_penalty": 0.0, | |
"eos_token_id": None, | |
} | |
else: | |
parameters = { | |
"max_new_tokens": max_length, | |
"do_sample": False, | |
"seed": seed, | |
"early_stopping": False, | |
"length_penalty": 0.0, | |
"eos_token_id": None, | |
} | |
payload = {"inputs": input_sentence, "parameters": parameters} | |
data = query(payload) | |
if raw_text: | |
return None, data[0]["generated_text"] | |
width, height = 3246, 3246 | |
assets_path = "assets" | |
font_mapping = { | |
"latin characters (faster)": "DejaVuSans.ttf", | |
"complete alphabet (slower)": "GoNotoCurrent.ttf", | |
} | |
working_dir = Path(__file__).parent.resolve() | |
font_path = str(working_dir / font_mapping["complete alphabet (slower)"]) | |
img_save_path = str(working_dir / "output.jpeg") | |
colors = { | |
BG_COMP: "#000000", | |
PROMPT_VAR: "#FFFFFF", | |
GENERATION_VAR: "#FF57A0", | |
BOX_COMP: "#120F25", | |
} | |
new_string = data[0]["generated_text"].split(input_sentence, 1)[1] | |
return data[0]["generated_text"] | |
gr.Interface( | |
inference, | |
[ | |
gr.inputs.Textbox(label="Input"), | |
gr.inputs.Slider(1, 64, default=32, step=1, label="Tokens to generate"), | |
gr.inputs.Radio( | |
["Sample", "Greedy"], label="Sample or greedy", default="Sample" | |
), | |
gr.Checkbox(label="Just output raw text"), | |
gr.inputs.Radio( | |
["Sample 1", "Sample 2", "Sample 3", "Sample 4", "Sample 5"], | |
default="Sample 1", | |
label="Sample other generations (only work in 'Sample' mode", | |
type="index", | |
), | |
], | |
["text"], | |
examples=examples, | |
# article=article, | |
cache_examples=False, | |
title=title, | |
description=description, | |
).launch() | |