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+ # CodeFuse COMMUNITY LICENSE AGREEMENT
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+ CodeFuse Release Date: September 8, 2023
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+
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+ By clicking to agree or by using or distributing any portion or element of the Materials, you will be deemed to have recognized and accepted the content of this Agreement, which is effective immediately.
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+ 1. Definitions.
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+ a. This CodeFuse COMMUNITY LICENSE AGREEMENT (this "Agreement") shall mean the terms and conditions for use, reproduction, distribution and modification of the Materials as defined by this Agreement.
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+ b. "Ant" or "We" (or "Us") shall mean Ant Group.
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+ c. "CodeFuse" shall mean the large language models (including CodeFuse-13B and CodeFuse-CodeLlaMa-34B), and software and algorithms, consisting of trained model weights, parameters (including optimizer states), machine-learning model code, and other elements of the foregoing distributed by Us.
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+ d. "Documentation" shall mean the specifications, manuals and documentation accompanying CodeFuse distributed by Us.
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+ e. "Materials" shall mean, collectively, Ant's proprietary CodeFuse and Documentation (and any portion thereof) made available under this Agreement.
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+ f. "Object" form shall mean any form resulting from mechanical transformation or translation of a Source form, including but not limited to compiled object code, generated documentation, and conversions to other media types.
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+ a. Ant retains ownership of all intellectual property rights in and to the Materials and derivatives made by or for Ant. Conditioned upon compliance with the terms and conditions of this Agreement, with respect to any derivative works and modifications of the Materials that are made by You, You are and will be the owner of such derivative works and modifications.
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+ 8. Governing Law and Jurisdiction.
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+ a. This Agreement and any dispute arising out of or relating to it, whether in contract, tort, negligence, products liability, or otherwise, will be governed by the laws of China, without regard to conflict of law principles, and the UN Convention on Contracts for the International Sale of Goods does not apply to this Agreement.
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+ b. The People's Courts in Hangzhou City shall have exclusive jurisdiction over any dispute arising out of this Agreement.
README.md CHANGED
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  ---
 
 
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  license: apache-2.0
 
 
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  ---
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
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  ---
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+ frameworks:
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+ - Pytorch
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  license: apache-2.0
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+ tasks:
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+ - text-generation
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  ---
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+ # Model Card for CodeFuse-DeepSeek-33B
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+ <p align="center">
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+ <img src="https://modelscope.cn/api/v1/models/codefuse-ai/CodeFuse-DeepSeek-33B/repo?Revision=master&FilePath=LOGO.jpg&View=true" width="800"/>
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+ <p>
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+
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+ [[中文]](#chinese) [[English]](#english)
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+
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+ #### Clone with HTTP
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+ ```bash
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+ git clone https://www.modelscope.cn/codefuse-ai/CodeFuse-DeepSeek-33B-4bits.git
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+ ```
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+
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+ <a id="english"></a>
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+
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+ ## Model Description
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+
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+ CodeFuse-DeepSeek-33B-4bits is the 4-bit quantized version of [CodeFuse-DeepSeek-33B](https://modelscope.cn/models/codefuse-ai/CodeFuse-DeepSeek-33B/summary) which is a 33B Code-LLM finetuned by QLoRA on multiple code-related tasks on the base model DeepSeek-Coder-33B.
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+ After undergoing 4-bit quantization, the CodeFuse-DeepSeek-33B-4bits model can be loaded on either a single A10 (24GB VRAM) or a RTX 4090 (24GB VRAM). Moreover, the quantized model still achives an impressive accuracy of 78.05% on the Humaneval pass@1 metric.
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+
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+ <br>
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+
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+ ## News and Updates
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+
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+ 🔥🔥🔥 2024-01-12 CodeFuse-DeepSeek-33B-4bits has been released. Despite the quantization process, the model still achieves a remarkable 78.05% accuracy (greedy decoding) on the HumanEval pass@1 metric.
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+
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+ 🔥🔥🔥 2024-01-12 CodeFuse-DeepSeek-33B has been released, achiving a pass@1 (greedy decoding) score of 78.65% on HumanEval.
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+
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+ 🔥🔥 2023-11-10 CodeFuse-CodeGeeX2-6B has been released, achieving a pass@1 (greedy decoding) score of 45.12% on HumanEval, which is a 9.22% increase compared to CodeGeeX2 35.9%.
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+
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+ 🔥🔥 2023-10-20 CodeFuse-QWen-14B technical documentation has been released. For those interested, please refer to the CodeFuse article on our WeChat official account via the provided link.(https://mp.weixin.qq.com/s/PCQPkvbvfxSPzsqjOILCDw)
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+
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+ 🔥🔥 2023-10-16 CodeFuse-QWen-14B has been released, achieving a pass@1 (greedy decoding) score of 48.78% on HumanEval, which is a 16% increase compared to Qwen-14b's 32.3%.
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+
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+ 🔥🔥 2023-09-27 CodeFuse-StarCoder-15B has been released, achieving a pass@1 (greedy decoding) score of 54.9% on HumanEval, which is a 21% increase compared to StarCoder's 33.6%.
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+
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+ 🔥🔥🔥 2023-09-26 We are pleased to announce the release of the [4-bit quantized version](https://modelscope.cn/models/codefuse-ai/CodeFuse-CodeLlama-34B-4bits/summary) of [CodeFuse-CodeLlama-34B](https://modelscope.cn/models/codefuse-ai/CodeFuse-CodeLlama-34B/summary). Despite the quantization process, the model still achieves a remarkable 73.8% accuracy (greedy decoding) on the HumanEval pass@1 metric.
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+
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+ 🔥🔥🔥 2023-09-11 [CodeFuse-CodeLlama34B](https://modelscope.cn/models/codefuse-ai/CodeFuse-CodeLlama-34B/summary) has achived 74.4% of pass@1 (greedy decoding) on HumanEval, which is SOTA results for openspurced LLMs at present.
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+
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+ <br>
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+
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+ ## Code Community
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+
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+ **Homepage**: 🏡 https://github.com/codefuse-ai (**Please give us your support with a Star🌟 + Fork🚀 + Watch👀**)
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+
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+ + If you wish to fine-tune the model yourself, you can visit ✨[MFTCoder](https://github.com/codefuse-ai/MFTCoder)✨✨
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+
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+ + If you wish to deploy the model yourself, you can visit ✨[FasterTransformer4CodeFuse](https://github.com/codefuse-ai/FasterTransformer4CodeFuse)✨✨
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+
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+ + If you wish to see a demo of the model, you can visit ✨[CodeFuse Demo](https://github.com/codefuse-ai/codefuse)✨✨
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+
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+ <br>
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+
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+ ## Performance
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+
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+
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+ | Model | HumanEval(pass@1) | Date |
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+ |:----------------------------|:-----------------:|:-------:|
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+ | **CodeFuse-CodeLlama-34B** | **74.4%** | 2023.9 |
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+ |**CodeFuse-CodeLlama-34B-4bits** | **73.8%** | 2023.9 |
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+ | WizardCoder-Python-34B-V1.0 | 73.2% | 2023.8 |
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+ | GPT-4(zero-shot) | 67.0% | 2023.3 |
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+ | PanGu-Coder2 15B | 61.6% | 2023.8 |
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+ | CodeLlama-34b-Python | 53.7% | 2023.8 |
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+ | CodeLlama-34b | 48.8% | 2023.8 |
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+ | GPT-3.5(zero-shot) | 48.1% | 2022.11 |
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+ | OctoCoder | 46.2% | 2023.8 |
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+ | StarCoder-15B | 33.6% | 2023.5 |
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+ | Qwen-14b | 32.3% | 2023.10 |
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+ | **CodeFuse-StarCoder-15B** | **54.9%** | 2023.9 |
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+ | **CodeFuse-QWen-14B** | **48.78%** | 2023.10 |
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+ | **CodeFuse-CodeGeeX2-6B** | **45.12%** | 2023.11 |
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+ | **CodeFuse-DeepSeek-33B** | **78.65%** | 2024.01 |
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+ | **CodeFuse-DeepSeek-33B-4bits** | **78.05%** | 2024.01 |
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+
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+
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+ <br>
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+
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+ ## Requirements
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+
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+ * python>=3.8
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+ * pytorch>=2.0.0
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+ * transformers>=4.33.2
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+ * Sentencepiece
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+ * auto_gptq
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+ * CUDA 11.4
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+ <br>
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+
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+ ## Inference String Format
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+
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+ The inference string is a concatenated string formed by combining conversation data(system, human and bot contents) in the training data format. It is used as input during the inference process.
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+ Here are examples of prompts used to request the model:
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+
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+ **Multi-Round with System Prompt:**
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+ ```python
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+ """
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+ <s>system
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+ System instruction
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+ <s>human
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+ Human 1st round input
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+ <s>bot
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+ Bot 1st round output<|end▁of▁sentence|>
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+ <s>human
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+ Human 2nd round input
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+ <s>bot
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+ Bot 2nd round output<|end▁of▁sentence|>
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+ ...
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+ ...
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+ ...
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+ <s>human
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+ Human nth round input
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+ <s>bot
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+ """
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+ ```
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+
123
+ **Single-Round without System Prompt:**
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+ ```python
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+ """
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+ <s>human
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+ User prompt...
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+ <s>bot
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+
130
+ """
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+ ```
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+
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+ In this format, the system section is optional and the conversation can be either single-turn or multi-turn. When applying inference, you always make your input string end with "\<s\>bot" to ask the model generating answers.
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+
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+
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+ ## Quickstart
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+
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+
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+ ```python
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+ import os
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+ import torch
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+ import time
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+ from modelscope import AutoTokenizer, snapshot_download
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+ from auto_gptq import AutoGPTQForCausalLM
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+
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+ os.environ["TOKENIZERS_PARALLELISM"] = "false"
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+
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+ def load_model_tokenizer(model_path):
149
+ """
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+ Load model and tokenizer based on the given model name or local path of downloaded model.
151
+ """
152
+ tokenizer = AutoTokenizer.from_pretrained(model_path,
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+ trust_remote_code=True,
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+ use_fast=False,
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+ lagecy=False)
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+ tokenizer.padding_side = "left"
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+ tokenizer.pad_token_id = tokenizer.convert_tokens_to_ids("<|end▁of▁sentence|>")
158
+ tokenizer.eos_token_id = tokenizer.convert_tokens_to_ids("<|end▁of▁sentence|>")
159
+
160
+ model = AutoGPTQForCausalLM.from_quantized(model_path,
161
+ inject_fused_attention=False,
162
+ inject_fused_mlp=False,
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+ use_safetensors=False,
164
+ use_cuda_fp16=True,
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+ disable_exllama=False,
166
+ device_map='auto' # Support multi-gpus
167
+ )
168
+ return model, tokenizer
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+
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+
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+ def inference(model, tokenizer, prompt):
172
+ """
173
+ Uset the given model and tokenizer to generate an answer for the speicifed prompt.
174
+ """
175
+ st = time.time()
176
+ prompt = prompt if prompt.endswith('\n') else f'{prompt}\n'
177
+ inputs = f"<s>human\n{prompt}<s>bot\n"
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+
179
+ input_ids = tokenizer.encode(inputs,
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+ return_tensors="pt",
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+ padding=True,
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+ add_special_tokens=False).to("cuda")
183
+ with torch.no_grad():
184
+ generated_ids = model.generate(
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+ input_ids=input_ids,
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+ top_p=0.95,
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+ temperature=0.1,
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+ do_sample=True,
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+ max_new_tokens=512,
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+ eos_token_id=tokenizer.eos_token_id,
191
+ pad_token_id=tokenizer.pad_token_id
192
+ )
193
+ print(f'generated tokens num is {len(generated_ids[0][input_ids.size(1):])}')
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+ outputs = tokenizer.batch_decode(generated_ids, skip_special_tokens=True)
195
+ print(f'generate text is {outputs[0][len(inputs): ]}')
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+ latency = time.time() - st
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+ print('latency is {} seconds'.format(latency))
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+
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+
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+ if __name__ == "__main__":
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+ model_dir = snapshot_download('codefuse-ai/CodeFuse-DeepSeek-33B-4bits', revision='v1.0.0')
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+
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+ prompt = 'Please write a QuickSort program in Python'
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+
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+ model, tokenizer = load_model_tokenizer(model_dir)
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+ inference(model, tokenizer, prompt)
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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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+
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+ <a id="chinese"></a>
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+
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+ ## 模型简介
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+
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+ CodeFuse-DeepSeek-33B-4bits是代码大模型[CodeFuse-DeepSeek-33B](https://modelscope.cn/models/codefuse-ai/CodeFuse-DeepSeek-33B/summary)的4-bits量化版本,后者基于底座模型DeepSeek-Coder-33B使用MFTCoder框架在多个代码相关任务上微调得到。
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+ 经过4-bits量化后,CodeFuse-DeepSeek-33B-4bits可在单张A10 (24GB显存)或者RTX 4090(24G显存)上加载。量化后,CodeFuse-DeepSeek-33B-4bits仍取得HumanEval pass@1 78.05%。
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+ <br>
223
+
224
+ ## 新闻
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+
226
+ 🔥🔥🔥 2024-01-12 CodeFuse-DeepSeek-33B-4bits模型发布。量化后模型在HumanEval pass@1仍取得78.05% (贪婪解码)。
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+
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+ 🔥🔥🔥 2024-01-12 CodeFuse-DeepSeek-33B模型发布,模型在HumanEval pass@1指标为78.65% (贪婪解码)。
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+
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+ 🔥🔥 2023-11-10 开源了CodeFuse-CodeGeeX2-6B模型,在HumanEval pass@1(greedy decoding)上可以达到48.12%, 比CodeGeeX2提高了9.22%的代码能力(HumanEval)
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+
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+ 🔥🔥 2023-10-20 公布了CodeFuse-QWen-14B技术文档,感兴趣详见微信公众号CodeFuse文章:https://mp.weixin.qq.com/s/PCQPkvbvfxSPzsqjOILCDw
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+
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+ 🔥🔥 2023-10-16开源了CodeFuse-QWen-14B模型,在HumanEval pass@1(greedy decoding)上可以达到48.78%, 比Qwen-14b提高了16%的代码能力(HumanEval)
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+
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+ 🔥🔥 2023-09-27开源了CodeFuse-StarCoder-15B模型,在HumanEval pass@1(greedy decoding)上可以达到54.9%, 比StarCoder提高了21%的代码能力(HumanEval)
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+
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+ 🔥🔥🔥 2023-09-26 [CodeFuse-CodeLlama-34B 4bits](https://modelscope.cn/models/codefuse-ai/CodeFuse-CodeLlama-34B-4bits/summary)量化版本发布,量化后模型在HumanEval pass@1指标为73.8% (贪婪解码)。
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+
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+ 🔥🔥🔥 2023-09-11 [CodeFuse-CodeLlama-34B](https://modelscope.cn/models/codefuse-ai/CodeFuse-CodeLlama-34B/summary)发布,HumanEval pass@1指标达到74.4% (贪婪解码), 为当前开源SOTA。
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+
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+ <br>
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+
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+ ## 代码社区
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+ **大本营**: 🏡 https://github.com/codefuse-ai (**请支持我们的项目Star🌟 + Fork🚀 + Watch👀**)
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+
247
+ + 如果您想自己微调该模型,可以访问 ✨[MFTCoder](https://github.com/codefuse-ai/MFTCoder)✨✨
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+
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+ + 如果您想自己部署该模型,可以访问 ✨[FasterTransformer4CodeFuse](https://github.com/codefuse-ai/FasterTransformer4CodeFuse)✨✨
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+
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+ + 如果您想观看该模型示例,可以访问 ✨[CodeFuse Demo](https://github.com/codefuse-ai/codefuse)✨✨
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+
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+ <br>
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+
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+
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+ ## 评测表现
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+
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+ ### 代码
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+
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+
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+ | 模型 | HumanEval(pass@1) | 日期 |
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+ |:----------------------------|:-----------------:|:-------:|
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+ | **CodeFuse-CodeLlama-34B** | **74.4%** | 2023.9 |
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+ |**CodeFuse-CodeLlama-34B-4bits** | **73.8%** | 2023.9 |
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+ | WizardCoder-Python-34B-V1.0 | 73.2% | 2023.8 |
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+ | GPT-4(zero-shot) | 67.0% | 2023.3 |
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+ | PanGu-Coder2 15B | 61.6% | 2023.8 |
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+ | CodeLlama-34b-Python | 53.7% | 2023.8 |
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+ | CodeLlama-34b | 48.8% | 2023.8 |
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+ | GPT-3.5(zero-shot) | 48.1% | 2022.11 |
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+ | OctoCoder | 46.2% | 2023.8 |
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+ | StarCoder-15B | 33.6% | 2023.5 |
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+ | Qwen-14b | 32.3% | 2023.10 |
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+ | **CodeFuse-StarCoder-15B** | **54.9%** | 2023.9 |
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+ | **CodeFuse-QWen-14B** | **48.78%** | 2023.8 |
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+ | **CodeFuse-CodeGeeX2-6B** | **45.12%** | 2023.11 |
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+ | **CodeFuse-DeepSeek-33B**. | **78.65%** | 2024.01 |
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+ | **CodeFuse-DeepSeek-33B-4bits** | **78.05%** | 2024.01 |
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+
280
+
281
+ ## Requirements
282
+
283
+ * python>=3.8
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+ * pytorch>=2.0.0
285
+ * transformers>=4.33.2
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+ * Sentencepiece
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+ * auto_gptq
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+ * CUDA 11.4
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+ <br>
290
+
291
+ ## 推理数据格式
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+
293
+ 推理数据为模型在训练数据格式下拼接的字符串形式,它也是推理时输入prompt拼接的方式. 下面分别是带系统提示的多轮会话格式和不带系统提示的单轮会话格式:
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+
295
+ **带System提示的多轮会话格式:**
296
+ ```python
297
+ """
298
+ <s>system
299
+ System instruction
300
+ <s>human
301
+ Human 1st round input
302
+ <s>bot
303
+ Bot 1st round output<|end▁of▁sentence|>
304
+ <s>human
305
+ Human 2nd round input
306
+ <s>bot
307
+ Bot 2nd round output<|end▁of▁sentence|>
308
+ ...
309
+ ...
310
+ ...
311
+ <s>human
312
+ Human nth round input
313
+ <s>bot
314
+ """
315
+ ```
316
+
317
+ **不带System提示的单轮会话格式:**
318
+ ```python
319
+ """
320
+ <s>human
321
+ User prompt...
322
+ <s>bot
323
+
324
+ """
325
+ ```
326
+
327
+ 在这个格式中,System提示是可选的(按需设定),支持单轮会话也支持多轮会话。推理时,请确保拼接的prompt字符串以"\<s\>bot\n"结尾,引导模型生成回答。
328
+
329
+ ## 快速使用
330
+
331
+ ```python
332
+ import os
333
+ import torch
334
+ import time
335
+ from modelscope import AutoTokenizer, snapshot_download
336
+ from auto_gptq import AutoGPTQForCausalLM
337
+
338
+ os.environ["TOKENIZERS_PARALLELISM"] = "false"
339
+
340
+ def load_model_tokenizer(model_path):
341
+ """
342
+ Load model and tokenizer based on the given model name or local path of downloaded model.
343
+ """
344
+ tokenizer = AutoTokenizer.from_pretrained(model_path,
345
+ trust_remote_code=True,
346
+ use_fast=False,
347
+ lagecy=False)
348
+ tokenizer.padding_side = "left"
349
+ tokenizer.pad_token_id = tokenizer.convert_tokens_to_ids("<|end▁of▁sentence|>")
350
+ tokenizer.eos_token_id = tokenizer.convert_tokens_to_ids("<|end▁of▁sentence|>")
351
+
352
+ model = AutoGPTQForCausalLM.from_quantized(model_path,
353
+ inject_fused_attention=False,
354
+ inject_fused_mlp=False,
355
+ use_safetensors=False,
356
+ use_cuda_fp16=True,
357
+ disable_exllama=False,
358
+ device_map='auto' # Support multi-gpus
359
+ )
360
+ return model, tokenizer
361
+
362
+
363
+ def inference(model, tokenizer, prompt):
364
+ """
365
+ Uset the given model and tokenizer to generate an answer for the speicifed prompt.
366
+ """
367
+ st = time.time()
368
+ prompt = prompt if prompt.endswith('\n') else f'{prompt}\n'
369
+ inputs = f"<s>human\n{prompt}<s>bot\n"
370
+
371
+ input_ids = tokenizer.encode(inputs,
372
+ return_tensors="pt",
373
+ padding=True,
374
+ add_special_tokens=False).to("cuda")
375
+ with torch.no_grad():
376
+ generated_ids = model.generate(
377
+ input_ids=input_ids,
378
+ top_p=0.95,
379
+ temperature=0.1,
380
+ do_sample=True,
381
+ max_new_tokens=512,
382
+ eos_token_id=tokenizer.eos_token_id,
383
+ pad_token_id=tokenizer.pad_token_id
384
+ )
385
+ print(f'generated tokens num is {len(generated_ids[0][input_ids.size(1):])}')
386
+ outputs = tokenizer.batch_decode(generated_ids, skip_special_tokens=True)
387
+ print(f'generate text is {outputs[0][len(inputs): ]}')
388
+ latency = time.time() - st
389
+ print('latency is {} seconds'.format(latency))
390
+
391
+
392
+ if __name__ == "__main__":
393
+ model_dir = snapshot_download('codefuse-ai/CodeFuse-DeepSeek-33B-4bits', revision='v1.0.0')
394
+
395
+ prompt = 'Please write a QuickSort program in Python'
396
+
397
+ model, tokenizer = load_model_tokenizer(model_dir)
398
+ inference(model, tokenizer, prompt)
399
+ ```
400
+
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+ }
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