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import os
import pdb
import sys
from pathlib import Path

import onnxruntime as ort

PROJECT_ROOT = Path(__file__).absolute().parents[0].absolute()
sys.path.insert(0, str(PROJECT_ROOT))
import torch
from parsing_api import onnx_inference


class Parsing:
    def __init__(self, gpu_id: int):
        # self.gpu_id = gpu_id
        # torch.cuda.set_device(gpu_id)
        session_options = ort.SessionOptions()
        session_options.graph_optimization_level = ort.GraphOptimizationLevel.ORT_ENABLE_ALL
        session_options.execution_mode = ort.ExecutionMode.ORT_SEQUENTIAL
        # session_options.add_session_config_entry('gpu_id', str(gpu_id))
        self.session = ort.InferenceSession(os.path.join(Path(__file__).absolute().parents[2].absolute(), 'checkpoints/humanparsing/parsing_atr.onnx'),
                                            sess_options=session_options, providers=['CPUExecutionProvider'])
        self.lip_session = ort.InferenceSession(os.path.join(Path(__file__).absolute().parents[2].absolute(), 'checkpoints/humanparsing/parsing_lip.onnx'),
                                                sess_options=session_options, providers=['CPUExecutionProvider'])

    def __call__(self, input_image):
        # torch.cuda.set_device(self.gpu_id)
        parsed_image, face_mask = onnx_inference(self.session, self.lip_session, input_image)
        return parsed_image, face_mask