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README.md ADDED
@@ -0,0 +1,120 @@
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1
+ ---
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+ base_model: Qwen/Qwen2.5-Math-7B
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+ language:
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+ - en
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+ pipeline_tag: text-generation
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+ tags:
7
+ - chat
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+ library_name: transformers
9
+ license: apache-2.0
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+ license_link: https://huggingface.co/Qwen/Qwen2.5-Math-7B-Instruct/blob/main/LICENSE
11
+ ---
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+
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+
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+ # Qwen2.5-Math-7B-Instruct
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+
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+ > [!Warning]
17
+ > <div align="center">
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+ > <b>
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+ > 🚨 Qwen2.5-Math mainly supports solving English and Chinese math problems through CoT and TIR. We do not recommend using this series of models for other tasks.
20
+ > </b>
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+ > </div>
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+
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+ ## Introduction
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+
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+ In August 2024, we released the first series of mathematical LLMs - [Qwen2-Math](https://qwenlm.github.io/blog/qwen2-math/) - of our Qwen family. A month later, we have upgraded it and open-sourced **Qwen2.5-Math** series, including base models **Qwen2.5-Math-1.5B/7B/72B**, instruction-tuned models **Qwen2.5-Math-1.5B/7B/72B-Instruct**, and mathematical reward model **Qwen2.5-Math-RM-72B**.
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+
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+ Unlike Qwen2-Math series which only supports using Chain-of-Thught (CoT) to solve English math problems, Qwen2.5-Math series is expanded to support using both CoT and Tool-integrated Reasoning (TIR) to solve math problems in both Chinese and English. The Qwen2.5-Math series models have achieved significant performance improvements compared to the Qwen2-Math series models on the Chinese and English mathematics benchmarks with CoT.
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+
29
+ ![](http://qianwen-res.oss-accelerate-overseas.aliyuncs.com/Qwen2.5/qwen2.5-math-pipeline.jpeg)
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+
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+ While CoT plays a vital role in enhancing the reasoning capabilities of LLMs, it faces challenges in achieving computational accuracy and handling complex mathematical or algorithmic reasoning tasks, such as finding the roots of a quadratic equation or computing the eigenvalues of a matrix. TIR can further improve the model's proficiency in precise computation, symbolic manipulation, and algorithmic manipulation. Qwen2.5-Math-1.5B/7B/72B-Instruct achieve 79.7, 85.3, and 87.8 respectively on the MATH benchmark using TIR.
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+
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+ ## Model Details
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+
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+
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+ For more details, please refer to our [blog post](https://qwenlm.github.io/blog/qwen2.5-math/) and [GitHub repo](https://github.com/QwenLM/Qwen2.5-Math).
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+
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+
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+ ## Requirements
40
+ * `transformers>=4.37.0` for Qwen2.5-Math models. The latest version is recommended.
41
+
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+ > [!Warning]
43
+ > <div align="center">
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+ > <b>
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+ > 🚨 This is a must because <code>transformers</code> integrated Qwen2 codes since <code>4.37.0</code>.
46
+ > </b>
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+ > </div>
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+
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+ For requirements on GPU memory and the respective throughput, see similar results of Qwen2 [here](https://qwen.readthedocs.io/en/latest/benchmark/speed_benchmark.html).
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+
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+ ## Quick Start
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+
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+ > [!Important]
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+ >
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+ > **Qwen2.5-Math-7B-Instruct** is an instruction model for chatting;
56
+ >
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+ > **Qwen2.5-Math-7B** is a base model typically used for completion and few-shot inference, serving as a better starting point for fine-tuning.
58
+ >
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+
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+ ### 🤗 Hugging Face Transformers
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+
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+ Qwen2.5-Math can be deployed and infered in the same way as [Qwen2.5](https://github.com/QwenLM/Qwen2.5). Here we show a code snippet to show you how to use the chat model with `transformers`:
63
+
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+ ```python
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+ from transformers import AutoModelForCausalLM, AutoTokenizer
66
+
67
+ model_name = "Qwen/Qwen2.5-Math-7B-Instruct"
68
+ device = "cuda" # the device to load the model onto
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+
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+ model = AutoModelForCausalLM.from_pretrained(
71
+ model_name,
72
+ torch_dtype="auto",
73
+ device_map="auto"
74
+ )
75
+ tokenizer = AutoTokenizer.from_pretrained(model_name)
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+
77
+ prompt = "Find the value of $x$ that satisfies the equation $4x+5 = 6x+7$."
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+
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+ # CoT
80
+ messages = [
81
+ {"role": "system", "content": "Please reason step by step, and put your final answer within \\boxed{}."},
82
+ {"role": "user", "content": prompt}
83
+ ]
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+
85
+ # TIR
86
+ messages = [
87
+ {"role": "system", "content": "Please integrate natural language reasoning with programs to solve the problem above, and put your final answer within \\boxed{}."},
88
+ {"role": "user", "content": prompt}
89
+ ]
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+
91
+ text = tokenizer.apply_chat_template(
92
+ messages,
93
+ tokenize=False,
94
+ add_generation_prompt=True
95
+ )
96
+ model_inputs = tokenizer([text], return_tensors="pt").to(device)
97
+
98
+ generated_ids = model.generate(
99
+ **model_inputs,
100
+ max_new_tokens=512
101
+ )
102
+ generated_ids = [
103
+ output_ids[len(input_ids):] for input_ids, output_ids in zip(model_inputs.input_ids, generated_ids)
104
+ ]
105
+
106
+ response = tokenizer.batch_decode(generated_ids, skip_special_tokens=True)[0]
107
+ ```
108
+
109
+ ## Citation
110
+
111
+ If you find our work helpful, feel free to give us a citation.
112
+
113
+ ```
114
+ @article{yang2024qwen2,
115
+ title={Qwen2 technical report},
116
+ author={Yang, An and Yang, Baosong and Hui, Binyuan and Zheng, Bo and Yu, Bowen and Zhou, Chang and Li, Chengpeng and Li, Chengyuan and Liu, Dayiheng and Huang, Fei and others},
117
+ journal={arXiv preprint arXiv:2407.10671},
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+ year={2024}
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+ }
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+ ```
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+ "max_position_embeddings": 4096,
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+ "max_window_layers": 28,
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+ "model_type": "qwen2",
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+ "num_attention_heads": 28,
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+ "num_hidden_layers": 28,
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+ "num_key_value_heads": 4,
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+ "rope_theta": 10000.0,
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+ "sliding_window": 4096,
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+ "tie_word_embeddings": false,
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+ "torch_dtype": "bfloat16",
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+ "transformers_version": "4.43.1",
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+ "use_cache": true,
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+ "use_sliding_window": false,
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+ "vocab_size": 152064
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+ }
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