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https://github.com/oobabooga/text-generation-webui.git
synced 2024-10-01 01:26:03 -04:00
Improve the imports
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parent
364529d0c7
commit
7224343a70
@ -3,6 +3,7 @@
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Converts a transformers model to a format compatible with flexgen.
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Converts a transformers model to a format compatible with flexgen.
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'''
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'''
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import argparse
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import argparse
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import os
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import os
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from pathlib import Path
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from pathlib import Path
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@ -10,8 +11,7 @@ from pathlib import Path
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import numpy as np
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import numpy as np
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import torch
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import torch
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from tqdm import tqdm
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from tqdm import tqdm
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from transformers import AutoModelForCausalLM
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from transformers import AutoModelForCausalLM, AutoTokenizer
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from transformers import AutoTokenizer
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parser = argparse.ArgumentParser(formatter_class=lambda prog: argparse.HelpFormatter(prog,max_help_position=54))
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parser = argparse.ArgumentParser(formatter_class=lambda prog: argparse.HelpFormatter(prog,max_help_position=54))
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parser.add_argument('MODEL', type=str, default=None, nargs='?', help="Path to the input model.")
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parser.add_argument('MODEL', type=str, default=None, nargs='?', help="Path to the input model.")
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@ -31,7 +31,6 @@ def disable_torch_init():
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torch_layer_norm_init_backup = torch.nn.LayerNorm.reset_parameters
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torch_layer_norm_init_backup = torch.nn.LayerNorm.reset_parameters
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setattr(torch.nn.LayerNorm, "reset_parameters", lambda self: None)
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setattr(torch.nn.LayerNorm, "reset_parameters", lambda self: None)
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def restore_torch_init():
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def restore_torch_init():
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"""Rollback the change made by disable_torch_init."""
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"""Rollback the change made by disable_torch_init."""
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import torch
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import torch
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@ -10,12 +10,12 @@ Based on the original script by 81300:
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https://gist.github.com/81300/fe5b08bff1cba45296a829b9d6b0f303
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https://gist.github.com/81300/fe5b08bff1cba45296a829b9d6b0f303
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'''
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'''
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import argparse
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import argparse
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from pathlib import Path
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from pathlib import Path
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import torch
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import torch
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from transformers import AutoModelForCausalLM
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from transformers import AutoModelForCausalLM, AutoTokenizer
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from transformers import AutoTokenizer
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parser = argparse.ArgumentParser(formatter_class=lambda prog: argparse.HelpFormatter(prog,max_help_position=54))
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parser = argparse.ArgumentParser(formatter_class=lambda prog: argparse.HelpFormatter(prog,max_help_position=54))
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parser.add_argument('MODEL', type=str, default=None, nargs='?', help="Path to the input model.")
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parser.add_argument('MODEL', type=str, default=None, nargs='?', help="Path to the input model.")
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@ -1,6 +1,5 @@
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import torch
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import torch
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from transformers import BlipForConditionalGeneration
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from transformers import BlipForConditionalGeneration, BlipProcessor
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from transformers import BlipProcessor
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processor = BlipProcessor.from_pretrained("Salesforce/blip-image-captioning-base")
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processor = BlipProcessor.from_pretrained("Salesforce/blip-image-captioning-base")
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model = BlipForConditionalGeneration.from_pretrained("Salesforce/blip-image-captioning-base", torch_dtype=torch.float32).to("cpu")
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model = BlipForConditionalGeneration.from_pretrained("Salesforce/blip-image-captioning-base", torch_dtype=torch.float32).to("cpu")
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@ -7,13 +7,12 @@ from datetime import datetime
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from io import BytesIO
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from io import BytesIO
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from pathlib import Path
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from pathlib import Path
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from PIL import Image
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import modules.shared as shared
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import modules.shared as shared
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from modules.extensions import apply_extensions
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from modules.extensions import apply_extensions
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from modules.html_generator import generate_chat_html
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from modules.html_generator import generate_chat_html
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from modules.text_generation import encode
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from modules.text_generation import encode, generate_reply, get_max_prompt_length
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from modules.text_generation import generate_reply
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from modules.text_generation import get_max_prompt_length
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from PIL import Image
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if shared.args.picture and (shared.args.cai_chat or shared.args.chat):
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if shared.args.picture and (shared.args.cai_chat or shared.args.chat):
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import modules.bot_picture as bot_picture
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import modules.bot_picture as bot_picture
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@ -1,6 +1,5 @@
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import modules.shared as shared
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import extensions
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import extensions
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import modules.shared as shared
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extension_state = {}
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extension_state = {}
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available_extensions = []
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available_extensions = []
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@ -3,6 +3,7 @@
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This is a library for formatting GPT-4chan and chat outputs as nice HTML.
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This is a library for formatting GPT-4chan and chat outputs as nice HTML.
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'''
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'''
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import base64
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import base64
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import os
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import os
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import re
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import re
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@ -4,23 +4,27 @@ import time
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import zipfile
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import zipfile
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from pathlib import Path
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from pathlib import Path
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import modules.shared as shared
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import numpy as np
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import numpy as np
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import torch
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import torch
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import transformers
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import transformers
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from transformers import AutoModelForCausalLM
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from transformers import AutoModelForCausalLM, AutoTokenizer
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from transformers import AutoTokenizer
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import modules.shared as shared
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transformers.logging.set_verbosity_error()
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transformers.logging.set_verbosity_error()
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local_rank = None
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local_rank = None
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if shared.args.flexgen:
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if shared.args.flexgen:
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from flexgen.flex_opt import (Policy, OptLM, TorchDevice, TorchDisk, TorchMixedDevice, CompressionConfig, Env, get_opt_config)
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from flexgen.flex_opt import (CompressionConfig, Env, OptLM, Policy,
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TorchDevice, TorchDisk, TorchMixedDevice,
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get_opt_config)
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if shared.args.deepspeed:
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if shared.args.deepspeed:
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import deepspeed
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import deepspeed
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from transformers.deepspeed import HfDeepSpeedConfig, is_deepspeed_zero3_enabled
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from transformers.deepspeed import (HfDeepSpeedConfig,
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is_deepspeed_zero3_enabled)
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from modules.deepspeed_parameters import generate_ds_config
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from modules.deepspeed_parameters import generate_ds_config
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# Distributed setup
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# Distributed setup
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@ -4,9 +4,11 @@ This code was copied from
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https://github.com/PygmalionAI/gradio-ui/
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https://github.com/PygmalionAI/gradio-ui/
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'''
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'''
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import torch
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import torch
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import transformers
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import transformers
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class _SentinelTokenStoppingCriteria(transformers.StoppingCriteria):
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class _SentinelTokenStoppingCriteria(transformers.StoppingCriteria):
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def __init__(self, sentinel_token_ids: torch.LongTensor,
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def __init__(self, sentinel_token_ids: torch.LongTensor,
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@ -1,16 +1,17 @@
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import re
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import re
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import time
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import time
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import modules.shared as shared
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import numpy as np
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import numpy as np
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import torch
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import torch
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import transformers
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import transformers
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from tqdm import tqdm
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import modules.shared as shared
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from modules.extensions import apply_extensions
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from modules.extensions import apply_extensions
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from modules.html_generator import generate_4chan_html
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from modules.html_generator import generate_4chan_html, generate_basic_html
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from modules.html_generator import generate_basic_html
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from modules.models import local_rank
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from modules.models import local_rank
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from modules.stopping_criteria import _SentinelTokenStoppingCriteria
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from modules.stopping_criteria import _SentinelTokenStoppingCriteria
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from tqdm import tqdm
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def get_max_prompt_length(tokens):
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def get_max_prompt_length(tokens):
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max_length = 2048-tokens
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max_length = 2048-tokens
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@ -14,12 +14,9 @@ import modules.chat as chat
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import modules.extensions as extensions_module
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import modules.extensions as extensions_module
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import modules.shared as shared
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import modules.shared as shared
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import modules.ui as ui
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import modules.ui as ui
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from modules.extensions import extension_state
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from modules.extensions import extension_state, load_extensions, update_extensions_parameters
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from modules.extensions import load_extensions
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from modules.extensions import update_extensions_parameters
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from modules.html_generator import generate_chat_html
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from modules.html_generator import generate_chat_html
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from modules.models import load_model
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from modules.models import load_model, load_soft_prompt
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from modules.models import load_soft_prompt
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from modules.text_generation import generate_reply
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from modules.text_generation import generate_reply
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if (shared.args.chat or shared.args.cai_chat) and not shared.args.no_stream:
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if (shared.args.chat or shared.args.cai_chat) and not shared.args.no_stream:
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