[Model] Support Tele-FLM Model (#15023)
Signed-off-by: Naitong Yu <ntyu@baai.ac.cn> Signed-off-by: jiangxin <horizon94@outlook.com> Co-authored-by: Jason Fang <jasonfang3900@gmail.com> Co-authored-by: jiangxin <horizon94@outlook.com>
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@ -472,6 +472,11 @@ See [this page](#generative-models) for more information on how to use generativ
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* `Tele-AI/TeleChat2-3B`, `Tele-AI/TeleChat2-7B`, `Tele-AI/TeleChat2-35B`, etc.
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* ✅︎
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* ✅︎
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- * `TeleFLMForCausalLM`
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* TeleFLM
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* `CofeAI/FLM-2-52B-Instruct-2407`, `CofeAI/Tele-FLM`, etc.
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* ✅︎
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* ✅︎
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- * `XverseForCausalLM`
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* XVERSE
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* `xverse/XVERSE-7B-Chat`, `xverse/XVERSE-13B-Chat`, `xverse/XVERSE-65B-Chat`, etc.
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12
examples/template_teleflm.jinja
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12
examples/template_teleflm.jinja
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@ -0,0 +1,12 @@
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{%- for message in messages %}
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{%- if message['role'] == 'user' %}
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{{- '<_user>' + message['content']|trim }}
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{%- elif message['role'] == 'system' %}
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{{- '<_system>' + message['content']|trim }}
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{%- elif message['role'] == 'assistant' %}
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{{- '<_bot>' + message['content'] }}
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{%- endif %}
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{%- endfor %}
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{%- if add_generation_prompt %}
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{{- '<_bot>' }}
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{%- endif %}
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@ -192,6 +192,8 @@ _TEXT_GENERATION_EXAMPLE_MODELS = {
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"SolarForCausalLM": _HfExamplesInfo("upstage/solar-pro-preview-instruct"),
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"TeleChat2ForCausalLM": _HfExamplesInfo("Tele-AI/TeleChat2-3B",
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trust_remote_code=True),
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"TeleFLMForCausalLM": _HfExamplesInfo("CofeAI/FLM-2-52B-Instruct-2407",
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trust_remote_code=True),
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"XverseForCausalLM": _HfExamplesInfo("xverse/XVERSE-7B-Chat",
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is_available_online=False,
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trust_remote_code=True),
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@ -104,6 +104,7 @@ _TEXT_GENERATION_MODELS = {
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"Starcoder2ForCausalLM": ("starcoder2", "Starcoder2ForCausalLM"),
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"SolarForCausalLM": ("solar", "SolarForCausalLM"),
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"TeleChat2ForCausalLM": ("telechat2", "TeleChat2ForCausalLM"),
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"TeleFLMForCausalLM": ("teleflm", "TeleFLMForCausalLM"),
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"XverseForCausalLM": ("llama", "LlamaForCausalLM"),
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"Zamba2ForCausalLM": ("zamba2", "Zamba2ForCausalLM"),
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# [Encoder-decoder]
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79
vllm/model_executor/models/teleflm.py
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vllm/model_executor/models/teleflm.py
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# SPDX-License-Identifier: Apache-2.0
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# Adapted from
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# https://github.com/huggingface/transformers/blob/v4.28.0/src/transformers/models/llama/modeling_llama.py
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# Copyright 2023 The vLLM team.
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# Copyright 2022 EleutherAI and the HuggingFace Inc. team. All rights reserved.
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#
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# This code is based on EleutherAI's GPT-NeoX library and the GPT-NeoX
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# and OPT implementations in this library. It has been modified from its
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# original forms to accommodate minor architectural differences compared
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# to GPT-NeoX and OPT used by the Meta AI team that trained the model.
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#
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# Licensed under the Apache License, Version 2.0 (the "License");
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# you may not use this file except in compliance with the License.
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# You may obtain a copy of the License at
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#
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# http://www.apache.org/licenses/LICENSE-2.0
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#
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# Unless required by applicable law or agreed to in writing, software
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# distributed under the License is distributed on an "AS IS" BASIS,
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# WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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# See the License for the specific language governing permissions and
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# limitations under the License.
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from typing import Type
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import torch
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from vllm.config import VllmConfig
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from vllm.model_executor.layers.logits_processor import LogitsProcessor
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from vllm.model_executor.models.llama import (LlamaDecoderLayer,
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LlamaForCausalLM, LlamaModel)
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class TeleFLMModel(LlamaModel):
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def __init__(
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self,
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*,
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vllm_config: VllmConfig,
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prefix: str = "",
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layer_type: Type[LlamaDecoderLayer] = LlamaDecoderLayer,
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):
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super().__init__(vllm_config=vllm_config,
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prefix=prefix,
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layer_type=layer_type)
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"""
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This implementation is based on the µScaling paper presented at
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the ICLR 2025 Workshop:
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NanoLM: An Affordable LLM Study Benchmark \
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via Accurate Loss Prediction across Scales
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by Yiqun Yao et al.
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Available at: https://openreview.net/forum?id=IwaPYg1SCA
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arXiv preprint: https://arxiv.org/abs/2304.06875
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"""
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self.use_mup = self.config.use_mup
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if self.use_mup:
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self.input_mult = self.config.input_mult
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def get_input_embeddings(self, input_ids: torch.Tensor) -> torch.Tensor:
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embedding = self.embed_tokens(input_ids)
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if self.use_mup:
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embedding = embedding * self.input_mult
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return embedding
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class TeleFLMForCausalLM(LlamaForCausalLM):
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def __init__(self, *, vllm_config: VllmConfig, prefix: str = ""):
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super().__init__(vllm_config=vllm_config, prefix=prefix)
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# mup
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self.use_mup = self.config.use_mup
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if self.use_mup:
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self.mup_scale_factor = self.config.mup_scale_factor
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self.output_mult = self.config.output_mult / self.mup_scale_factor
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logit_scale = self.output_mult
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self.logits_processor = LogitsProcessor(self.unpadded_vocab_size,
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self.config.vocab_size,
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logit_scale)
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