morzecrew/FRED-T5-RefinedPersonaChat
This model is a fine-tuned version of ai-forever/FRED-T5-1.7B on the RefinedPersonaChat. Inspired by SiberiaSoft/SiberianPersonaFred blogpost but dataset was improved to prevent toxic speech.
Prompt tips:
You can provide personal information form bot identity, name, age and etc..
Inference
import torch
import transformers
use_cuda = torch.cuda.is_available()
device = torch.device("cuda" if use_cuda else "cpu")
t5_tokenizer = transformers.GPT2Tokenizer.from_pretrained("morzecrew/RefinedPersonaChat")
t5_model = transformers.T5ForConditionalGeneration.from_pretrained("morzecrew/RefinedPersonaChat")
while True:
print('-'*80)
dialog = []
while True:
msg = input('H:> ').strip()
if len(msg) == 0:
break
msg = msg[0].upper() + msg[1:]
dialog.append('Собеседник: ' + msg)
# В начале ставится промпт персонажа.
prompt = '<SC6>Ты парень, консультант по разным вопросам. Ты очень умный. Любишь помогать собеседнику. Продолжи диалог:' + '\n'.join(dialog) + '\nТы: <extra_id_0>'
input_ids = t5_tokenizer(prompt, return_tensors='pt').input_ids
out_ids = t5_model.generate(input_ids=input_ids.to(device), do_sample=True, temperature=0.9, max_new_tokens=512, top_p=0.85,
top_k=2, repetition_penalty=1.2)
t5_output = t5_tokenizer.decode(out_ids[0][1:])
if '</s>' in t5_output:
t5_output = t5_output[:t5_output.find('</s>')].strip()
t5_output = t5_output.replace('<extra_id_0>', '').strip()
t5_output = t5_output.split('Собеседник')[0].strip()
print('B:> {}'.format(t5_output))
dialog.append('Ты: ' + t5_output)
Citation
@MISC{morzecrew/FRED-T5-RefinedPersonaChat,
author = {Yuri Zaretskiy, Nikolas Ivanov, Igor Kuzmin},
title = {Dialogue model for conversational agents},
url = {https://huggingface.co/morzecrew/FRED-T5-RefinedPersonaChat},
year = 2023
}
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