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| import argparse | |
| import os | |
| import random | |
| import numpy as np | |
| import torch | |
| import torch.backends.cudnn as cudnn | |
| from minigpt4.common.config import Config | |
| from minigpt4.common.dist_utils import get_rank | |
| from minigpt4.common.registry import registry | |
| from minigpt4.conversation.conversation_esm import Chat, CONV_VISION | |
| # imports modules for registration | |
| from minigpt4.datasets.builders import * | |
| from minigpt4.models import * | |
| from minigpt4.processors import * | |
| from minigpt4.runners import * | |
| from minigpt4.tasks import * | |
| import sys | |
| import esm | |
| def parse_args(): | |
| parser = argparse.ArgumentParser(description="Demo") | |
| parser.add_argument("--cfg-path", required=True, help="path to configuration file.") | |
| parser.add_argument("--gpu-id", type=int, default=0, help="specify the gpu to load the model.") | |
| parser.add_argument("--pdb", help="specifiy where the protein file is (.pt)") | |
| parser.add_argument("--seq", help="specifiy where the sequence file is (.pt)") | |
| parser.add_argument( | |
| "--options", | |
| nargs="+", | |
| help="override some settings in the used config, the key-value pair " | |
| "in xxx=yyy format will be merged into config file (deprecate), " | |
| "change to --cfg-options instead.", | |
| ) | |
| args = parser.parse_args() | |
| return args | |
| def setup_seeds(config): | |
| seed = config.run_cfg.seed + get_rank() | |
| random.seed(seed) | |
| np.random.seed(seed) | |
| torch.manual_seed(seed) | |
| cudnn.benchmark = False | |
| cudnn.deterministic = True | |
| # ======================================== | |
| # Model Initialization | |
| # ======================================== | |
| print('Initializing Chat') | |
| args = parse_args() | |
| cfg = Config(args) | |
| model_config = cfg.model_cfg | |
| model_config.device_8bit = args.gpu_id | |
| model_cls = registry.get_model_class(model_config.arch) | |
| model = model_cls.from_config(model_config).to('cuda:{}'.format(args.gpu_id)) | |
| vis_processor_cfg = cfg.datasets_cfg.cc_sbu_align.vis_processor.train | |
| vis_processor = registry.get_processor_class(vis_processor_cfg.name).from_config(vis_processor_cfg) | |
| chat = Chat(model, vis_processor, device='cuda:{}'.format(args.gpu_id)) | |
| print('Initialization Finished') | |
| chat_state = CONV_VISION.copy() | |
| img_list = [] | |
| pdb_path = args.pdb | |
| seq_path = args.seq | |
| if pdb_path[-3:] == ".pt": | |
| pdb_embedding = torch.load(pdb_path, map_location=torch.device('cpu')) | |
| sample_pdb = pdb_embedding.to('cuda:{}'.format(args.gpu_id)) | |
| if seq_path[-3:] == ".pt": | |
| seq_embedding = torch.load(seq_path, map_location=torch.device('cpu')) | |
| sample_seq = seq_embedding.to('cuda:{}'.format(args.gpu_id)) | |
| llm_message = chat.upload_protein(sample_pdb, sample_seq, chat_state, img_list) | |
| print(llm_message) | |
| img_list = [mat.half() for mat in img_list] | |
| while True: | |
| user_input = input(">") | |
| if (len(user_input) == 0): | |
| print("USER INPUT CANNOT BE EMPTY!") | |
| continue | |
| elif (user_input.lower() == "exit()"): | |
| break | |
| chat.ask(user_input, chat_state) | |
| llm_message = chat.answer(conv=chat_state, | |
| img_list=img_list, | |
| num_beams=1, | |
| temperature=0.7, | |
| max_new_tokens=300, | |
| max_length=2000)[0] | |
| print("B: ", llm_message) | |