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https://github.com/oobabooga/text-generation-webui.git
synced 2024-11-25 01:09:22 +01:00
Optimize ExLlamav2 (non-HF) loader
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@ -1,4 +1,3 @@
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import random
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import traceback
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import traceback
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from pathlib import Path
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from pathlib import Path
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@ -10,7 +9,7 @@ from exllamav2 import (
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ExLlamaV2Config,
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ExLlamaV2Config,
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ExLlamaV2Tokenizer
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ExLlamaV2Tokenizer
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)
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)
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from exllamav2.generator import ExLlamaV2BaseGenerator, ExLlamaV2Sampler
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from exllamav2.generator import ExLlamaV2Sampler, ExLlamaV2StreamingGenerator
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from modules import shared
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from modules import shared
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from modules.logging_colors import logger
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from modules.logging_colors import logger
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@ -64,7 +63,7 @@ class Exllamav2Model:
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else:
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else:
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cache = ExLlamaV2Cache(model)
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cache = ExLlamaV2Cache(model)
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generator = ExLlamaV2BaseGenerator(model, cache, tokenizer)
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generator = ExLlamaV2StreamingGenerator(model, cache, tokenizer)
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result = self()
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result = self()
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result.model = model
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result.model = model
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@ -115,41 +114,22 @@ class Exllamav2Model:
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ids = self.tokenizer.encode(prompt, add_bos=state['add_bos_token'], encode_special_tokens=True)
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ids = self.tokenizer.encode(prompt, add_bos=state['add_bos_token'], encode_special_tokens=True)
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ids = ids[:, -get_max_prompt_length(state):]
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ids = ids[:, -get_max_prompt_length(state):]
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initial_len = ids.shape[-1]
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if state['auto_max_new_tokens']:
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if state['auto_max_new_tokens']:
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max_new_tokens = state['truncation_length'] - ids.shape[-1]
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max_new_tokens = state['truncation_length'] - ids.shape[-1]
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else:
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else:
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max_new_tokens = state['max_new_tokens']
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max_new_tokens = state['max_new_tokens']
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# _gen_begin_base
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self.generator.set_stop_conditions([])
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self.cache.current_seq_len = 0
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self.generator.begin_stream(ids, settings, loras=self.loras)
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self.model.forward(ids[:, :-1], self.cache, input_mask=None, preprocess_only=True, loras=self.loras)
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has_leading_space = False
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decoded_text = ''
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for i in range(max_new_tokens):
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for i in range(max_new_tokens):
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logits = self.model.forward(ids[:, -1:], self.cache, input_mask=None, loras=self.loras).float().cpu()
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chunk, eos, _ = self.generator.stream()
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token, _, _ = ExLlamaV2Sampler.sample(logits, settings, ids, random.random(), self.tokenizer)
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if eos or shared.stop_everything:
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ids = torch.cat([ids, token], dim=1)
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if i == 0 and self.tokenizer.tokenizer.id_to_piece(int(token)).startswith('▁'):
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has_leading_space = True
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decoded_text = self.tokenizer.decode(ids[:, initial_len:], decode_special_tokens=not state['skip_special_tokens'])[0]
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if has_leading_space:
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decoded_text = ' ' + decoded_text
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# Check the partial unicode character
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if chr(0xfffd) in decoded_text:
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is_last = i == max_new_tokens - 1
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is_stopping = token.item() == self.tokenizer.eos_token_id or shared.stop_everything
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# If we are not at the end of the generation, we skip this token
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if not (is_last or is_stopping):
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continue
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if token.item() == self.tokenizer.eos_token_id or shared.stop_everything:
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break
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break
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decoded_text += chunk
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yield decoded_text
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yield decoded_text
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def generate(self, prompt, state):
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def generate(self, prompt, state):
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