Duplicate from deepseek-ai/DeepSeek-Coder-V2-Instruct
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- README.md +214 -0
- config.json +60 -0
- configuration_deepseek.py +206 -0
- generation_config.json +9 -0
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---
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license: other
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license_name: deepseek-license
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license_link: LICENSE
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---
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<!-- markdownlint-disable first-line-h1 -->
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<!-- markdownlint-disable html -->
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<!-- markdownlint-disable no-duplicate-header -->
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<div align="center">
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<img src="https://github.com/deepseek-ai/DeepSeek-V2/blob/main/figures/logo.svg?raw=true" width="60%" alt="DeepSeek-V2" />
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</div>
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<hr>
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<div align="center" style="line-height: 1;">
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<a href="https://www.deepseek.com/" target="_blank" style="margin: 2px;">
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<img alt="Homepage" src="https://github.com/deepseek-ai/DeepSeek-V2/blob/main/figures/badge.svg?raw=true" style="display: inline-block; vertical-align: middle;"/>
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</a>
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<a href="https://chat.deepseek.com/" target="_blank" style="margin: 2px;">
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<img alt="Chat" src="https://img.shields.io/badge/🤖%20Chat-DeepSeek%20V2-536af5?color=536af5&logoColor=white" style="display: inline-block; vertical-align: middle;"/>
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</a>
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<a href="https://huggingface.co/deepseek-ai" target="_blank" style="margin: 2px;">
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<img alt="Hugging Face" src="https://img.shields.io/badge/%F0%9F%A4%97%20Hugging%20Face-DeepSeek%20AI-ffc107?color=ffc107&logoColor=white" style="display: inline-block; vertical-align: middle;"/>
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</a>
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</div>
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<div align="center" style="line-height: 1;">
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<a href="https://discord.gg/Tc7c45Zzu5" target="_blank" style="margin: 2px;">
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<img alt="Discord" src="https://img.shields.io/badge/Discord-DeepSeek%20AI-7289da?logo=discord&logoColor=white&color=7289da" style="display: inline-block; vertical-align: middle;"/>
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</a>
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<a href="https://github.com/deepseek-ai/DeepSeek-V2/blob/main/figures/qr.jpeg?raw=true" target="_blank" style="margin: 2px;">
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<img alt="Wechat" src="https://img.shields.io/badge/WeChat-DeepSeek%20AI-brightgreen?logo=wechat&logoColor=white" style="display: inline-block; vertical-align: middle;"/>
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</a>
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<a href="https://twitter.com/deepseek_ai" target="_blank" style="margin: 2px;">
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<img alt="Twitter Follow" src="https://img.shields.io/badge/Twitter-deepseek_ai-white?logo=x&logoColor=white" style="display: inline-block; vertical-align: middle;"/>
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</a>
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</div>
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<div align="center" style="line-height: 1;">
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<a href="https://github.com/deepseek-ai/DeepSeek-V2/blob/main/LICENSE-CODE" style="margin: 2px;">
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<img alt="Code License" src="https://img.shields.io/badge/Code_License-MIT-f5de53?&color=f5de53" style="display: inline-block; vertical-align: middle;"/>
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</a>
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<a href="https://github.com/deepseek-ai/DeepSeek-V2/blob/main/LICENSE-MODEL" style="margin: 2px;">
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<img alt="Model License" src="https://img.shields.io/badge/Model_License-Model_Agreement-f5de53?&color=f5de53" style="display: inline-block; vertical-align: middle;"/>
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</a>
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</div>
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<p align="center">
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<a href="#4-api-platform">API Platform</a> |
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<a href="#5-how-to-run-locally">How to Use</a> |
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<a href="#6-license">License</a> |
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</p>
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<p align="center">
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<a href="https://github.com/deepseek-ai/DeepSeek-Coder-V2/blob/main/paper.pdf"><b>Paper Link</b>👁️</a>
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</p>
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# DeepSeek-Coder-V2: Breaking the Barrier of Closed-Source Models in Code Intelligence
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## 1. Introduction
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We present DeepSeek-Coder-V2, an open-source Mixture-of-Experts (MoE) code language model that achieves performance comparable to GPT4-Turbo in code-specific tasks. Specifically, DeepSeek-Coder-V2 is further pre-trained from an intermediate checkpoint of DeepSeek-V2 with additional 6 trillion tokens. Through this continued pre-training, DeepSeek-Coder-V2 substantially enhances the coding and mathematical reasoning capabilities of DeepSeek-V2, while maintaining comparable performance in general language tasks. Compared to DeepSeek-Coder-33B, DeepSeek-Coder-V2 demonstrates significant advancements in various aspects of code-related tasks, as well as reasoning and general capabilities. Additionally, DeepSeek-Coder-V2 expands its support for programming languages from 86 to 338, while extending the context length from 16K to 128K.
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<p align="center">
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<img width="100%" src="https://github.com/deepseek-ai/DeepSeek-Coder-V2/blob/main/figures/performance.png?raw=true">
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</p>
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In standard benchmark evaluations, DeepSeek-Coder-V2 achieves superior performance compared to closed-source models such as GPT4-Turbo, Claude 3 Opus, and Gemini 1.5 Pro in coding and math benchmarks. The list of supported programming languages can be found [here](https://github.com/deepseek-ai/DeepSeek-Coder-V2/blob/main/supported_langs.txt).
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## 2. Model Downloads
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We release the DeepSeek-Coder-V2 with 16B and 236B parameters based on the [DeepSeekMoE](https://arxiv.org/pdf/2401.06066) framework, which has actived parameters of only 2.4B and 21B , including base and instruct models, to the public.
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<div align="center">
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| **Model** | **#Total Params** | **#Active Params** | **Context Length** | **Download** |
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| :-----------------------------: | :---------------: | :----------------: | :----------------: | :----------------------------------------------------------: |
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| DeepSeek-Coder-V2-Lite-Base | 16B | 2.4B | 128k | [🤗 HuggingFace](https://huggingface.co/deepseek-ai/DeepSeek-Coder-V2-Lite-Base) |
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| DeepSeek-Coder-V2-Lite-Instruct | 16B | 2.4B | 128k | [🤗 HuggingFace](https://huggingface.co/deepseek-ai/DeepSeek-Coder-V2-Lite-Instruct) |
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| DeepSeek-Coder-V2-Base | 236B | 21B | 128k | [🤗 HuggingFace](https://huggingface.co/deepseek-ai/DeepSeek-Coder-V2-Base) |
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| DeepSeek-Coder-V2-Instruct | 236B | 21B | 128k | [🤗 HuggingFace](https://huggingface.co/deepseek-ai/DeepSeek-Coder-V2-Instruct) |
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</div>
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## 3. Chat Website
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You can chat with the DeepSeek-Coder-V2 on DeepSeek's official website: [coder.deepseek.com](https://coder.deepseek.com/sign_in)
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## 4. API Platform
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We also provide OpenAI-Compatible API at DeepSeek Platform: [platform.deepseek.com](https://platform.deepseek.com/), and you can also pay-as-you-go at an unbeatable price.
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<p align="center">
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<img width="40%" src="https://github.com/deepseek-ai/DeepSeek-Coder-V2/blob/main/figures/model_price.jpg?raw=true">
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</p>
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## 5. How to run locally
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**Here, we provide some examples of how to use DeepSeek-Coder-V2-Lite model. If you want to utilize DeepSeek-Coder-V2 in BF16 format for inference, 80GB*8 GPUs are required.**
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### Inference with Huggingface's Transformers
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You can directly employ [Huggingface's Transformers](https://github.com/huggingface/transformers) for model inference.
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#### Code Completion
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```python
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from transformers import AutoTokenizer, AutoModelForCausalLM
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import torch
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tokenizer = AutoTokenizer.from_pretrained("deepseek-ai/DeepSeek-Coder-V2-Lite-Base", trust_remote_code=True)
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model = AutoModelForCausalLM.from_pretrained("deepseek-ai/DeepSeek-Coder-V2-Lite-Base", trust_remote_code=True, torch_dtype=torch.bfloat16).cuda()
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input_text = "#write a quick sort algorithm"
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inputs = tokenizer(input_text, return_tensors="pt").to(model.device)
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outputs = model.generate(**inputs, max_length=128)
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print(tokenizer.decode(outputs[0], skip_special_tokens=True))
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```
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#### Code Insertion
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```python
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from transformers import AutoTokenizer, AutoModelForCausalLM
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import torch
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tokenizer = AutoTokenizer.from_pretrained("deepseek-ai/DeepSeek-Coder-V2-Lite-Base", trust_remote_code=True)
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model = AutoModelForCausalLM.from_pretrained("deepseek-ai/DeepSeek-Coder-V2-Lite-Base", trust_remote_code=True, torch_dtype=torch.bfloat16).cuda()
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input_text = """<|fim▁begin|>def quick_sort(arr):
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if len(arr) <= 1:
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return arr
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pivot = arr[0]
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left = []
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right = []
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<|fim▁hole|>
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if arr[i] < pivot:
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left.append(arr[i])
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else:
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right.append(arr[i])
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return quick_sort(left) + [pivot] + quick_sort(right)<|fim▁end|>"""
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inputs = tokenizer(input_text, return_tensors="pt").to(model.device)
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outputs = model.generate(**inputs, max_length=128)
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print(tokenizer.decode(outputs[0], skip_special_tokens=True)[len(input_text):])
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```
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#### Chat Completion
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```python
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from transformers import AutoTokenizer, AutoModelForCausalLM
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import torch
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tokenizer = AutoTokenizer.from_pretrained("deepseek-ai/DeepSeek-Coder-V2-Lite-Instruct", trust_remote_code=True)
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model = AutoModelForCausalLM.from_pretrained("deepseek-ai/DeepSeek-Coder-V2-Lite-Instruct", trust_remote_code=True, torch_dtype=torch.bfloat16).cuda()
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messages=[
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{ 'role': 'user', 'content': "write a quick sort algorithm in python."}
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]
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inputs = tokenizer.apply_chat_template(messages, add_generation_prompt=True, return_tensors="pt").to(model.device)
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# tokenizer.eos_token_id is the id of <|end▁of▁sentence|> token
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outputs = model.generate(inputs, max_new_tokens=512, do_sample=False, top_k=50, top_p=0.95, num_return_sequences=1, eos_token_id=tokenizer.eos_token_id)
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150 |
+
print(tokenizer.decode(outputs[0][len(inputs[0]):], skip_special_tokens=True))
|
151 |
+
```
|
152 |
+
|
153 |
+
|
154 |
+
|
155 |
+
The complete chat template can be found within `tokenizer_config.json` located in the huggingface model repository.
|
156 |
+
|
157 |
+
An example of chat template is as belows:
|
158 |
+
|
159 |
+
```bash
|
160 |
+
<|begin▁of▁sentence|>User: {user_message_1}
|
161 |
+
|
162 |
+
Assistant: {assistant_message_1}<|end▁of▁sentence|>User: {user_message_2}
|
163 |
+
|
164 |
+
Assistant:
|
165 |
+
```
|
166 |
+
|
167 |
+
You can also add an optional system message:
|
168 |
+
|
169 |
+
```bash
|
170 |
+
<|begin▁of▁sentence|>{system_message}
|
171 |
+
|
172 |
+
User: {user_message_1}
|
173 |
+
|
174 |
+
Assistant: {assistant_message_1}<|end▁of▁sentence|>User: {user_message_2}
|
175 |
+
|
176 |
+
Assistant:
|
177 |
+
```
|
178 |
+
|
179 |
+
### Inference with vLLM (recommended)
|
180 |
+
To utilize [vLLM](https://github.com/vllm-project/vllm) for model inference, please merge this Pull Request into your vLLM codebase: https://github.com/vllm-project/vllm/pull/4650.
|
181 |
+
|
182 |
+
```python
|
183 |
+
from transformers import AutoTokenizer
|
184 |
+
from vllm import LLM, SamplingParams
|
185 |
+
|
186 |
+
max_model_len, tp_size = 8192, 1
|
187 |
+
model_name = "deepseek-ai/DeepSeek-Coder-V2-Lite-Instruct"
|
188 |
+
tokenizer = AutoTokenizer.from_pretrained(model_name)
|
189 |
+
llm = LLM(model=model_name, tensor_parallel_size=tp_size, max_model_len=max_model_len, trust_remote_code=True, enforce_eager=True)
|
190 |
+
sampling_params = SamplingParams(temperature=0.3, max_tokens=256, stop_token_ids=[tokenizer.eos_token_id])
|
191 |
+
|
192 |
+
messages_list = [
|
193 |
+
[{"role": "user", "content": "Who are you?"}],
|
194 |
+
[{"role": "user", "content": "write a quick sort algorithm in python."}],
|
195 |
+
[{"role": "user", "content": "Write a piece of quicksort code in C++."}],
|
196 |
+
]
|
197 |
+
|
198 |
+
prompt_token_ids = [tokenizer.apply_chat_template(messages, add_generation_prompt=True) for messages in messages_list]
|
199 |
+
|
200 |
+
outputs = llm.generate(prompt_token_ids=prompt_token_ids, sampling_params=sampling_params)
|
201 |
+
|
202 |
+
generated_text = [output.outputs[0].text for output in outputs]
|
203 |
+
print(generated_text)
|
204 |
+
```
|
205 |
+
|
206 |
+
|
207 |
+
|
208 |
+
## 6. License
|
209 |
+
|
210 |
+
This code repository is licensed under [the MIT License](https://github.com/deepseek-ai/DeepSeek-Coder-V2/blob/main/LICENSE-CODE). The use of DeepSeek-Coder-V2 Base/Instruct models is subject to [the Model License](https://github.com/deepseek-ai/DeepSeek-Coder-V2/blob/main/LICENSE-MODEL). DeepSeek-Coder-V2 series (including Base and Instruct) supports commercial use.
|
211 |
+
|
212 |
+
|
213 |
+
## 7. Contact
|
214 |
+
If you have any questions, please raise an issue or contact us at [[email protected]]([email protected]).
|
config.json
ADDED
@@ -0,0 +1,60 @@
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
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|
|
|
|
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|
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|
|
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|
|
|
|
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|
|
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|
|
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|
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|
|
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|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
1 |
+
{
|
2 |
+
"architectures": [
|
3 |
+
"DeepseekV2ForCausalLM"
|
4 |
+
],
|
5 |
+
"attention_bias": false,
|
6 |
+
"attention_dropout": 0.0,
|
7 |
+
"auto_map": {
|
8 |
+
"AutoConfig": "configuration_deepseek.DeepseekV2Config",
|
9 |
+
"AutoModel": "modeling_deepseek.DeepseekV2Model",
|
10 |
+
"AutoModelForCausalLM": "modeling_deepseek.DeepseekV2ForCausalLM"
|
11 |
+
},
|
12 |
+
"aux_loss_alpha": 0.001,
|
13 |
+
"bos_token_id": 100000,
|
14 |
+
"eos_token_id": 100001,
|
15 |
+
"ep_size": 1,
|
16 |
+
"first_k_dense_replace": 1,
|
17 |
+
"hidden_act": "silu",
|
18 |
+
"hidden_size": 5120,
|
19 |
+
"initializer_range": 0.02,
|
20 |
+
"intermediate_size": 12288,
|
21 |
+
"kv_lora_rank": 512,
|
22 |
+
"max_position_embeddings": 163840,
|
23 |
+
"model_type": "deepseek_v2",
|
24 |
+
"moe_intermediate_size": 1536,
|
25 |
+
"moe_layer_freq": 1,
|
26 |
+
"n_group": 8,
|
27 |
+
"n_routed_experts": 160,
|
28 |
+
"n_shared_experts": 2,
|
29 |
+
"norm_topk_prob": false,
|
30 |
+
"num_attention_heads": 128,
|
31 |
+
"num_experts_per_tok": 6,
|
32 |
+
"num_hidden_layers": 60,
|
33 |
+
"num_key_value_heads": 128,
|
34 |
+
"pretraining_tp": 1,
|
35 |
+
"q_lora_rank": 1536,
|
36 |
+
"qk_nope_head_dim": 128,
|
37 |
+
"qk_rope_head_dim": 64,
|
38 |
+
"rms_norm_eps": 1e-06,
|
39 |
+
"rope_scaling": {
|
40 |
+
"beta_fast": 32,
|
41 |
+
"beta_slow": 1,
|
42 |
+
"factor": 40,
|
43 |
+
"mscale": 1.0,
|
44 |
+
"mscale_all_dim": 1.0,
|
45 |
+
"original_max_position_embeddings": 4096,
|
46 |
+
"type": "yarn"
|
47 |
+
},
|
48 |
+
"rope_theta": 10000,
|
49 |
+
"routed_scaling_factor": 16.0,
|
50 |
+
"scoring_func": "softmax",
|
51 |
+
"seq_aux": true,
|
52 |
+
"tie_word_embeddings": false,
|
53 |
+
"topk_group": 3,
|
54 |
+
"topk_method": "group_limited_greedy",
|
55 |
+
"torch_dtype": "bfloat16",
|
56 |
+
"transformers_version": "4.39.3",
|
57 |
+
"use_cache": true,
|
58 |
+
"v_head_dim": 128,
|
59 |
+
"vocab_size": 102400
|
60 |
+
}
|
configuration_deepseek.py
ADDED
@@ -0,0 +1,206 @@
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
1 |
+
from transformers.configuration_utils import PretrainedConfig
|
2 |
+
from transformers.utils import logging
|
3 |
+
|
4 |
+
logger = logging.get_logger(__name__)
|
5 |
+
|
6 |
+
DEEPSEEK_PRETRAINED_CONFIG_ARCHIVE_MAP = {}
|
7 |
+
class DeepseekV2Config(PretrainedConfig):
|
8 |
+
r"""
|
9 |
+
This is the configuration class to store the configuration of a [`DeepseekV2Model`]. It is used to instantiate an DeepSeek
|
10 |
+
model according to the specified arguments, defining the model architecture. Instantiating a configuration with the
|
11 |
+
defaults will yield a similar configuration to that of the DeepSeek-V2.
|
12 |
+
|
13 |
+
Configuration objects inherit from [`PretrainedConfig`] and can be used to control the model outputs. Read the
|
14 |
+
documentation from [`PretrainedConfig`] for more information.
|
15 |
+
|
16 |
+
|
17 |
+
Args:
|
18 |
+
vocab_size (`int`, *optional*, defaults to 102400):
|
19 |
+
Vocabulary size of the Deep model. Defines the number of different tokens that can be represented by the
|
20 |
+
`inputs_ids` passed when calling [`DeepseekV2Model`]
|
21 |
+
hidden_size (`int`, *optional*, defaults to 4096):
|
22 |
+
Dimension of the hidden representations.
|
23 |
+
intermediate_size (`int`, *optional*, defaults to 11008):
|
24 |
+
Dimension of the MLP representations.
|
25 |
+
moe_intermediate_size (`int`, *optional*, defaults to 1407):
|
26 |
+
Dimension of the MoE representations.
|
27 |
+
num_hidden_layers (`int`, *optional*, defaults to 32):
|
28 |
+
Number of hidden layers in the Transformer decoder.
|
29 |
+
num_attention_heads (`int`, *optional*, defaults to 32):
|
30 |
+
Number of attention heads for each attention layer in the Transformer decoder.
|
31 |
+
n_shared_experts (`int`, *optional*, defaults to None):
|
32 |
+
Number of shared experts, None means dense model.
|
33 |
+
n_routed_experts (`int`, *optional*, defaults to None):
|
34 |
+
Number of routed experts, None means dense model.
|
35 |
+
routed_scaling_factor (`float`, *optional*, defaults to 1.0):
|
36 |
+
Scaling factor or routed experts.
|
37 |
+
topk_method (`str`, *optional*, defaults to `gready`):
|
38 |
+
Topk method used in routed gate.
|
39 |
+
n_group (`int`, *optional*, defaults to None):
|
40 |
+
Number of groups for routed experts.
|
41 |
+
topk_group (`int`, *optional*, defaults to None):
|
42 |
+
Number of selected groups for each token(for each token, ensuring the selected experts is only within `topk_group` groups).
|
43 |
+
num_experts_per_tok (`int`, *optional*, defaults to None):
|
44 |
+
Number of selected experts, None means dense model.
|
45 |
+
moe_layer_freq (`int`, *optional*, defaults to 1):
|
46 |
+
The frequency of the MoE layer: one expert layer for every `moe_layer_freq - 1` dense layers.
|
47 |
+
first_k_dense_replace (`int`, *optional*, defaults to 0):
|
48 |
+
Number of dense layers in shallow layers(embed->dense->dense->...->dense->moe->moe...->lm_head).
|
49 |
+
\--k dense layers--/
|
50 |
+
norm_topk_prob (`bool`, *optional*, defaults to False):
|
51 |
+
Whether to normalize the weights of the routed experts.
|
52 |
+
scoring_func (`str`, *optional*, defaults to 'softmax'):
|
53 |
+
Method of computing expert weights.
|
54 |
+
aux_loss_alpha (`float`, *optional*, defaults to 0.001):
|
55 |
+
Auxiliary loss weight coefficient.
|
56 |
+
seq_aux = (`bool`, *optional*, defaults to True):
|
57 |
+
Whether to compute the auxiliary loss for each individual sample.
|
58 |
+
num_key_value_heads (`int`, *optional*):
|
59 |
+
This is the number of key_value heads that should be used to implement Grouped Query Attention. If
|
60 |
+
`num_key_value_heads=num_attention_heads`, the model will use Multi Head Attention (MHA), if
|
61 |
+
`num_key_value_heads=1 the model will use Multi Query Attention (MQA) otherwise GQA is used. When
|
62 |
+
converting a multi-head checkpoint to a GQA checkpoint, each group key and value head should be constructed
|
63 |
+
by meanpooling all the original heads within that group. For more details checkout [this
|
64 |
+
paper](https://arxiv.org/pdf/2305.13245.pdf). If it is not specified, will default to
|
65 |
+
`num_attention_heads`.
|
66 |
+
hidden_act (`str` or `function`, *optional*, defaults to `"silu"`):
|
67 |
+
The non-linear activation function (function or string) in the decoder.
|
68 |
+
max_position_embeddings (`int`, *optional*, defaults to 2048):
|
69 |
+
The maximum sequence length that this model might ever be used with.
|
70 |
+
initializer_range (`float`, *optional*, defaults to 0.02):
|
71 |
+
The standard deviation of the truncated_normal_initializer for initializing all weight matrices.
|
72 |
+
rms_norm_eps (`float`, *optional*, defaults to 1e-06):
|
73 |
+
The epsilon used by the rms normalization layers.
|
74 |
+
use_cache (`bool`, *optional*, defaults to `True`):
|
75 |
+
Whether or not the model should return the last key/values attentions (not used by all models). Only
|
76 |
+
relevant if `config.is_decoder=True`.
|
77 |
+
pad_token_id (`int`, *optional*):
|
78 |
+
Padding token id.
|
79 |
+
bos_token_id (`int`, *optional*, defaults to 1):
|
80 |
+
Beginning of stream token id.
|
81 |
+
eos_token_id (`int`, *optional*, defaults to 2):
|
82 |
+
End of stream token id.
|
83 |
+
pretraining_tp (`int`, *optional*, defaults to 1):
|
84 |
+
Experimental feature. Tensor parallelism rank used during pretraining. Please refer to [this
|
85 |
+
document](https://huggingface.co/docs/transformers/parallelism) to understand more about it. This value is
|
86 |
+
necessary to ensure exact reproducibility of the pretraining results. Please refer to [this
|
87 |
+
issue](https://github.com/pytorch/pytorch/issues/76232).
|
88 |
+
tie_word_embeddings (`bool`, *optional*, defaults to `False`):
|
89 |
+
Whether to tie weight embeddings
|
90 |
+
rope_theta (`float`, *optional*, defaults to 10000.0):
|
91 |
+
The base period of the RoPE embeddings.
|
92 |
+
rope_scaling (`Dict`, *optional*):
|
93 |
+
Dictionary containing the scaling configuration for the RoPE embeddings. Currently supports two scaling
|
94 |
+
strategies: linear and dynamic. Their scaling factor must be a float greater than 1. The expected format is
|
95 |
+
`{"type": strategy name, "factor": scaling factor}`. When using this flag, don't update
|
96 |
+
`max_position_embeddings` to the expected new maximum.
|
97 |
+
attention_bias (`bool`, defaults to `False`, *optional*, defaults to `False`):
|
98 |
+
Whether to use a bias in the query, key, value and output projection layers during self-attention.
|
99 |
+
attention_dropout (`float`, *optional*, defaults to 0.0):
|
100 |
+
The dropout ratio for the attention probabilities.
|
101 |
+
|
102 |
+
```python
|
103 |
+
>>> from transformers import DeepseekV2Model, DeepseekV2Config
|
104 |
+
|
105 |
+
>>> # Initializing a Deepseek-V2 style configuration
|
106 |
+
>>> configuration = DeepseekV2Config()
|
107 |
+
|
108 |
+
>>> # Accessing the model configuration
|
109 |
+
>>> configuration = model.config
|
110 |
+
```"""
|
111 |
+
|
112 |
+
model_type = "deepseek_v2"
|
113 |
+
keys_to_ignore_at_inference = ["past_key_values"]
|
114 |
+
|
115 |
+
def __init__(
|
116 |
+
self,
|
117 |
+
vocab_size=102400,
|
118 |
+
hidden_size=4096,
|
119 |
+
intermediate_size=11008,
|
120 |
+
moe_intermediate_size = 1407,
|
121 |
+
num_hidden_layers=30,
|
122 |
+
num_attention_heads=32,
|
123 |
+
num_key_value_heads=32,
|
124 |
+
n_shared_experts = None,
|
125 |
+
n_routed_experts = None,
|
126 |
+
ep_size = 1,
|
127 |
+
routed_scaling_factor = 1.0,
|
128 |
+
kv_lora_rank = 512,
|
129 |
+
q_lora_rank = 1536,
|
130 |
+
qk_rope_head_dim = 64,
|
131 |
+
v_head_dim = 128,
|
132 |
+
qk_nope_head_dim = 128,
|
133 |
+
topk_method = 'gready',
|
134 |
+
n_group = None,
|
135 |
+
topk_group = None,
|
136 |
+
num_experts_per_tok = None,
|
137 |
+
moe_layer_freq = 1,
|
138 |
+
first_k_dense_replace = 0,
|
139 |
+
norm_topk_prob = False,
|
140 |
+
scoring_func = 'softmax',
|
141 |
+
aux_loss_alpha = 0.001,
|
142 |
+
seq_aux = True,
|
143 |
+
hidden_act="silu",
|
144 |
+
max_position_embeddings=2048,
|
145 |
+
initializer_range=0.02,
|
146 |
+
rms_norm_eps=1e-6,
|
147 |
+
use_cache=True,
|
148 |
+
pad_token_id=None,
|
149 |
+
bos_token_id=100000,
|
150 |
+
eos_token_id=100001,
|
151 |
+
pretraining_tp=1,
|
152 |
+
tie_word_embeddings=False,
|
153 |
+
rope_theta=10000.0,
|
154 |
+
rope_scaling=None,
|
155 |
+
attention_bias=False,
|
156 |
+
attention_dropout=0.0,
|
157 |
+
**kwargs,
|
158 |
+
):
|
159 |
+
self.vocab_size = vocab_size
|
160 |
+
self.max_position_embeddings = max_position_embeddings
|
161 |
+
self.hidden_size = hidden_size
|
162 |
+
self.intermediate_size = intermediate_size
|
163 |
+
self.moe_intermediate_size = moe_intermediate_size
|
164 |
+
self.num_hidden_layers = num_hidden_layers
|
165 |
+
self.num_attention_heads = num_attention_heads
|
166 |
+
self.n_shared_experts = n_shared_experts
|
167 |
+
self.n_routed_experts = n_routed_experts
|
168 |
+
self.ep_size = ep_size
|
169 |
+
self.routed_scaling_factor = routed_scaling_factor
|
170 |
+
self.kv_lora_rank = kv_lora_rank
|
171 |
+
self.q_lora_rank = q_lora_rank
|
172 |
+
self.qk_rope_head_dim = qk_rope_head_dim
|
173 |
+
self.v_head_dim = v_head_dim
|
174 |
+
self.qk_nope_head_dim = qk_nope_head_dim
|
175 |
+
self.topk_method = topk_method
|
176 |
+
self.n_group = n_group
|
177 |
+
self.topk_group = topk_group
|
178 |
+
self.num_experts_per_tok = num_experts_per_tok
|
179 |
+
self.moe_layer_freq = moe_layer_freq
|
180 |
+
self.first_k_dense_replace = first_k_dense_replace
|
181 |
+
self.norm_topk_prob = norm_topk_prob
|
182 |
+
self.scoring_func = scoring_func
|
183 |
+
self.aux_loss_alpha = aux_loss_alpha
|
184 |
+
self.seq_aux = seq_aux
|
185 |
+
# for backward compatibility
|
186 |
+
if num_key_value_heads is None:
|
187 |
+
num_key_value_heads = num_attention_heads
|
188 |
+
|
189 |
+
self.num_key_value_heads = num_key_value_heads
|
190 |
+
self.hidden_act = hidden_act
|
191 |
+
self.initializer_range = initializer_range
|
192 |
+
self.rms_norm_eps = rms_norm_eps
|
193 |
+
self.pretraining_tp = pretraining_tp
|
194 |
+
self.use_cache = use_cache
|
195 |
+
self.rope_theta = rope_theta
|
196 |
+
self.rope_scaling = rope_scaling
|
197 |
+
self.attention_bias = attention_bias
|
198 |
+
self.attention_dropout = attention_dropout
|
199 |
+
|
200 |
+
super().__init__(
|
201 |
+
pad_token_id=pad_token_id,
|
202 |
+
bos_token_id=bos_token_id,
|
203 |
+
eos_token_id=eos_token_id,
|
204 |
+
tie_word_embeddings=tie_word_embeddings,
|
205 |
+
**kwargs,
|
206 |
+
)
|
generation_config.json
ADDED
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|
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|
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|
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|
5 |
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"do_sample": true,
|
6 |
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"temperature": 0.3,
|
7 |
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"top_p": 0.95,
|
8 |
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"transformers_version": "4.39.3"
|
9 |
+
}
|
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