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Model: prithivMLmods/QwQ-R1-Distill-1.5B-CoT Source: Original Platform
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README.md
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README.md
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---
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license: apache-2.0
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datasets:
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- AI-MO/NuminaMath-CoT
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- prithivMLmods/Math-Solve
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- amphora/QwQ-LongCoT-130K
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- prithivMLmods/Deepthink-Reasoning
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- NovaSky-AI/Sky-T1_data_17k
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language:
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- en
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base_model:
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- deepseek-ai/DeepSeek-R1-Distill-Qwen-1.5B
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pipeline_tag: text-generation
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library_name: transformers
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tags:
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- QwQ
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- Distill
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- R1
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- Deepseek
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- Qwen2.5
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- text-generation-inference
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---
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# **QWQ R1 [Reasoning] Distill 1.5B CoT**
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QWQ R1 [Reasoning] Distill 1.5B CoT is a fine-tuned language model designed for advanced reasoning and instruction-following tasks. It leverages the Qwen2.5 R1 Distill from the DeepSeek base model and has been fine-tuned on chain-of-thought (CoT) reasoning datasets, focusing on CoT reasoning for problem-solving. This model is optimized for tasks requiring logical reasoning, detailed explanations, and multi-step problem-solving, making it ideal for applications such as instruction-following, text generation, and complex reasoning tasks.
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# **Quickstart with Transformers**
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Here provides a code snippet with `apply_chat_template` to show you how to load the tokenizer and model and how to generate contents.
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```python
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from transformers import AutoModelForCausalLM, AutoTokenizer
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model_name = "prithivMLmods/QwQ-R1-Distill-1.5B-CoT"
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model = AutoModelForCausalLM.from_pretrained(
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model_name,
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torch_dtype="auto",
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device_map="auto"
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)
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tokenizer = AutoTokenizer.from_pretrained(model_name)
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prompt = "How many r in strawberry."
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messages = [
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{"role": "system", "content": "You are a helpful and harmless assistant. You are Qwen developed by Alibaba. You should think step-by-step."},
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{"role": "user", "content": prompt}
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]
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text = tokenizer.apply_chat_template(
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messages,
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tokenize=False,
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add_generation_prompt=True
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)
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model_inputs = tokenizer([text], return_tensors="pt").to(model.device)
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generated_ids = model.generate(
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**model_inputs,
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max_new_tokens=512
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)
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generated_ids = [
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output_ids[len(input_ids):] for input_ids, output_ids in zip(model_inputs.input_ids, generated_ids)
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]
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response = tokenizer.batch_decode(generated_ids, skip_special_tokens=True)[0]
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```
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# **Intended Use**
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**QWQ R1 [Reasoning] Distill 1.5B CoT** is specifically designed for tasks requiring advanced reasoning, structured thinking, and detailed explanations. Its intended applications include:
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1. **Instruction-Following Tasks**: Performing step-by-step tasks based on user instructions.
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2. **Logical Reasoning**: Solving problems that demand multi-step logical processing and inference.
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3. **Text Generation**: Crafting coherent and contextually appropriate text for various domains.
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4. **Educational Tools**: Assisting in learning environments, providing explanations for complex topics, or guiding through reasoning exercises.
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5. **Problem-Solving**: Addressing computational or real-world problems requiring chain-of-thought reasoning.
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6. **AI-Assisted Decision-Making**: Supporting users in making informed decisions with logical analysis.
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# **Limitations**
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While the model excels in reasoning and explanation tasks, it has certain constraints:
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1. **Context Length**: Limited ability to process or generate outputs for inputs exceeding its maximum token limit.
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2. **Domain Knowledge**: It may lack detailed expertise in niche domains not covered during training.
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3. **Dependence on Training Data**: Performance can be influenced by biases or gaps in the datasets it was fine-tuned on.
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4. **Real-Time Reasoning**: Struggles with tasks requiring dynamic understanding of real-time data or rapidly changing contexts.
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5. **Mathematical Precision**: May produce errors in calculations or fail to interpret ambiguous mathematical problems.
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6. **Factual Accuracy**: Occasionally generates incorrect or outdated information when dealing with facts.
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7. **Language Nuances**: Subtle linguistic or cultural nuances might be misunderstood or misrepresented.
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8. **Complex CoT Chains**: For extremely lengthy or convoluted reasoning chains, the model may lose track of earlier context or steps.
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config.json
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config.json
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{
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"_name_or_path": "deepseek-ai/DeepSeek-R1-Distill-Qwen-1.5B",
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"architectures": [
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"Qwen2ForCausalLM"
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],
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"attention_dropout": 0.0,
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"initializer_range": 0.02,
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"intermediate_size": 8960,
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"max_position_embeddings": 131072,
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"max_window_layers": 21,
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"model_type": "qwen2",
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"num_attention_heads": 12,
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"num_hidden_layers": 28,
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"num_key_value_heads": 2,
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"transformers_version": "4.47.1",
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"vocab_size": 151936
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}
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configuration.json
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configuration.json
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{"framework": "pytorch", "task": "text-generation", "allow_remote": true}
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generation_config.json
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"chat_template": "{%- if tools %}\n {{- '<|im_start|>system\\n' }}\n {%- if messages[0]['role'] == 'system' %}\n {{- messages[0]['content'] }}\n {%- else %}\n {{- 'You are Qwen, created by Alibaba Cloud. You are a helpful assistant.' }}\n {%- endif %}\n {{- \"\\n\\n# Tools\\n\\nYou may call one or more functions to assist with the user query.\\n\\nYou are provided with function signatures within <tools></tools> XML tags:\\n<tools>\" }}\n {%- for tool in tools %}\n {{- \"\\n\" }}\n {{- tool | tojson }}\n {%- endfor %}\n {{- \"\\n</tools>\\n\\nFor each function call, return a json object with function name and arguments within <tool_call></tool_call> XML tags:\\n<tool_call>\\n{\\\"name\\\": <function-name>, \\\"arguments\\\": <args-json-object>}\\n</tool_call><|im_end|>\\n\" }}\n{%- else %}\n {%- if messages[0]['role'] == 'system' %}\n {{- '<|im_start|>system\\n' + messages[0]['content'] + '<|im_end|>\\n' }}\n {%- else %}\n {{- '<|im_start|>system\\nYou are Qwen, created by Alibaba Cloud. You are a helpful assistant.<|im_end|>\\n' }}\n {%- endif %}\n{%- endif %}\n{%- for message in messages %}\n {%- if (message.role == \"user\") or (message.role == \"system\" and not loop.first) or (message.role == \"assistant\" and not message.tool_calls) %}\n {{- '<|im_start|>' + message.role + '\\n' + message.content + '<|im_end|>' + '\\n' }}\n {%- elif message.role == \"assistant\" %}\n {{- '<|im_start|>' + message.role }}\n {%- if message.content %}\n {{- '\\n' + message.content }}\n {%- endif %}\n {%- for tool_call in message.tool_calls %}\n {%- if tool_call.function is defined %}\n {%- set tool_call = tool_call.function %}\n {%- endif %}\n {{- '\\n<tool_call>\\n{\"name\": \"' }}\n {{- tool_call.name }}\n {{- '\", \"arguments\": ' }}\n {{- tool_call.arguments | tojson }}\n {{- '}\\n</tool_call>' }}\n {%- endfor %}\n {{- '<|im_end|>\\n' }}\n {%- elif message.role == \"tool\" %}\n {%- if (loop.index0 == 0) or (messages[loop.index0 - 1].role != \"tool\") %} {{- '<|im_start|>user' }}\n {%- endif %}\n {{- '\\n<tool_response>\\n' }}\n {{- message.content }}\n {{- '\\n</tool_response>' }}\n {%- if loop.last or (messages[loop.index0 + 1].role != \"tool\") %}\n {{- '<|im_end|>\\n' }}\n {%- endif %}\n {%- endif %}\n{%- endfor %}\n{%- if add_generation_prompt %}\n {{- '<|im_start|>assistant\\n' }}\n{%- endif %}\n",
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"clean_up_tokenization_spaces": false,
|
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"eos_token": "<|end▁of▁sentence|>",
|
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"extra_special_tokens": {},
|
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"legacy": true,
|
||||
"model_max_length": 131072,
|
||||
"pad_token": "<|vision_pad|>",
|
||||
"padding_side": "left",
|
||||
"sp_model_kwargs": {},
|
||||
"tokenizer_class": "LlamaTokenizer",
|
||||
"unk_token": null,
|
||||
"use_default_system_prompt": false
|
||||
}
|
||||
Reference in New Issue
Block a user