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Upload distilled Qwen2.5-Coder-3B model with knowledge distillation

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.gitattributes CHANGED
@@ -33,3 +33,4 @@ saved_model/**/* filter=lfs diff=lfs merge=lfs -text
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+ tokenizer.json filter=lfs diff=lfs merge=lfs -text
README.md ADDED
@@ -0,0 +1,73 @@
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
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+ ---
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+ library_name: peft
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+ base_model: Qwen/Qwen2.5-Coder-3B-Instruct-AWQ
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+ tags:
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+ - knowledge-distillation
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+ - code-generation
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+ - qwen
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+ - lora
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+ - distilled
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+ license: apache-2.0
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+ ---
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+
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+ # Qwen2.5-Coder-3B Distilled Model
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+
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+ This is a **knowledge-distilled** version of Qwen2.5-Coder-3B-Instruct-AWQ, trained using knowledge distillation from Qwen2.5-Coder-7B-Instruct-AWQ.
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+
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+ ## Model Details
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+
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+ - **Base Model**: Qwen/Qwen2.5-Coder-3B-Instruct-AWQ
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+ - **Teacher Model**: Qwen/Qwen2.5-Coder-7B-Instruct-AWQ
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+ - **Training Method**: Knowledge Distillation with LoRA
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+ - **Best Validation Loss**: 1.9286
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+ - **Training Time**: ~5 minutes
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+ - **Parameters Trained**: 14.9M (4.59% of base model)
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+
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+ ## Training Configuration
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+
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+ - **Temperature**: 2.0 (optimal)
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+ - **Alpha**: 0.95 (95% distillation weight)
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+ - **LoRA Rank**: 8
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+ - **Target Modules**: q_proj, k_proj, v_proj, o_proj, gate_proj, up_proj, down_proj
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+
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+ ## Usage
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+
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+ ```python
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+ from transformers import AutoTokenizer, AutoModelForCausalLM
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+ from peft import PeftModel
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+
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+ # Load base model and tokenizer
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+ base_model = AutoModelForCausalLM.from_pretrained(
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+ "Qwen/Qwen2.5-Coder-3B-Instruct-AWQ",
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+ torch_dtype=torch.float16,
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+ device_map="auto"
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+ )
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+ tokenizer = AutoTokenizer.from_pretrained("Qwen/Qwen2.5-Coder-3B-Instruct-AWQ")
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+
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+ # Load distilled adapter
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+ model = PeftModel.from_pretrained(base_model, "Vinitha2004/qwen2.5-coder-1.5b-instruct-awq-gguf-merged-temperature2")
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+
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+ # Generate code
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+ input_text = "Original Code:\ndef add(a, b):\n return a + b\n\nUpdate Snippet:\n// ... existing code ...\ndef add(a: int, b: int) -> int:\n// ... existing code ...\n\nUpdated Code:\n"
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+ inputs = tokenizer(input_text, return_tensors="pt")
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+ outputs = model.generate(**inputs, max_new_tokens=100)
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+ result = tokenizer.decode(outputs[0], skip_special_tokens=True)
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+ print(result)
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+ ```
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+
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+ ## Performance
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+
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+ This distilled model retains the knowledge from the 7B teacher model while being significantly more efficient:
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+ - **Faster inference** (3B vs 7B parameters)
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+ - **Lower memory usage**
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+ - **Maintained code generation quality**
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+
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+ ## Training Dataset
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+
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+ Trained on 5000 code editing examples from custom dataset.
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+
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+ ## Files
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+
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+ - `adapter_config.json`: LoRA configuration
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+ - `adapter_model.safetensors`: Trained LoRA weights (59MB)
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+ - Other standard tokenizer files
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+ {%- if tools %}
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+ {{- '<|im_start|>system\n' }}
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