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import torch | |
from .BaseLLM import BaseLLM | |
from transformers import AutoTokenizer, AutoModel | |
from peft import PeftModel | |
tokenizer_GLM = None | |
model_GLM = None | |
def initialize_GLM2LORA(): | |
global model_GLM, tokenizer_GLM | |
if model_GLM is None: | |
model_GLM = AutoModel.from_pretrained( | |
"THUDM/chatglm2-6b", | |
torch_dtype=torch.float16, | |
device_map="auto", | |
trust_remote_code=True | |
) | |
model_GLM = PeftModel.from_pretrained( | |
model_GLM, | |
"silk-road/Chat-Haruhi-Fusion_B" | |
) | |
if tokenizer_GLM is None: | |
tokenizer_GLM = AutoTokenizer.from_pretrained( | |
"THUDM/chatglm2-6b", | |
use_fast=True, | |
trust_remote_code=True | |
) | |
return model_GLM, tokenizer_GLM | |
def GLM_tokenizer(text): | |
return len(tokenizer_GLM.encode(text)) | |
class ChatGLM2GPT(BaseLLM): | |
def __init__(self, model = "haruhi-fusion"): | |
super(ChatGLM2GPT, self).__init__() | |
if model == "glm2-6b": | |
self.tokenizer = AutoTokenizer.from_pretrained( | |
"THUDM/chatglm2-6b", | |
use_fast=True, | |
trust_remote_code=True | |
) | |
self.model = AutoModel.from_pretrained( | |
"THUDM/chatglm2-6b", | |
torch_dtype=torch.float16, | |
device_map="auto", | |
trust_remote_code=True | |
) | |
if model == "haruhi-fusion": | |
self.model, self.tokenizer = initialize_GLM2LORA() | |
else: | |
raise Exception("Unknown GLM model") | |
self.messages = "" | |
def initialize_message(self): | |
self.messages = "" | |
def ai_message(self, payload): | |
self.messages = self.messages + "\n " + payload | |
def system_message(self, payload): | |
self.messages = self.messages + "\n " + payload | |
def user_message(self, payload): | |
self.messages = self.messages + "\n " + payload | |
def get_response(self): | |
with torch.no_grad(): | |
response, history = self.model.chat(self.tokenizer, self.messages, history=[]) | |
# print(response) | |
return response | |
def print_prompt(self): | |
print(type(self.messages)) | |
print(self.messages) | |