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.gitattributes CHANGED
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README.md ADDED
@@ -0,0 +1,116 @@
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
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+ ---
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+ library_name: transformers
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+ license: apache-2.0
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+ pipeline_tag: text-generation
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+ base_model:
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+ - Qwen/Qwen2.5-Coder-1.5B-Instruct
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+ tags:
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+ - llmcompressor
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+ - quantized
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+ - FP8
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+ ---
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+
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+ # Qwen2.5-Coder-1.5B-Instruct-FP8-dynamic
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+
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+ ## Model Overview
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+ - **Model Architecture:** Qwen2ForCausalLM
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+ - **Input:** Text
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+ - **Output:** Text
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+ - **Model Optimizations:**
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+ - **Activation quantization:** FP8
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+ - **Weight quantization:** FP8
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+ - **Release Date:** 09/06/2025
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+ - **Version:** 1.0
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+ - **Model Developers:** duydq12 (enhance by RedHatAI)
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+
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+ ### Model Optimizations
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+
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+ This model was obtained by quantizing activations and weights of [Qwen2.5-Coder-1.5B-Instruct](https://huggingface.co/Qwen/Qwen2.5-Coder-1.5B-Instruct) to FP8 data type.
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+ This optimization reduces the number of bits used to represent weights and activations from 16 to 8, reducing GPU memory requirements (by approximately 50%) and increasing matrix-multiply compute throughput (by approximately 2x).
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+ Weight quantization also reduces disk size requirements by approximately 50%.
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+
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+ Only weights and activations of the linear operators within transformers blocks are quantized.
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+ Weights are quantized with a symmetric static per-channel scheme, whereas activations are quantized with a symmetric dynamic per-token scheme.
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+ The [llm-compressor](https://github.com/vllm-project/llm-compressor) library is used for quantization.
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+
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+
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+ ## Deployment
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+
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+ This model can be deployed efficiently using the [vLLM](https://docs.vllm.ai/en/latest/) backend, as shown in the example below.
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+
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+ ```python
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+ from vllm import LLM, SamplingParams
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+ from transformers import AutoTokenizer
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+
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+ model_id = "duydq12/Qwen2.5-Coder-1.5B-Instruct-FP8-dynamic"
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+ number_gpus = 1
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+ sampling_params = SamplingParams(temperature=0.6, top_p=0.95, top_k=20, min_p=0, max_tokens=256)
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+
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+ messages = [
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+ {"role": "user", "content": prompt}
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+ ]
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+
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+ tokenizer = AutoTokenizer.from_pretrained(model_id)
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+
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+ messages = [{"role": "user", "content": "Give me a short introduction to large language model."}]
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+
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+ prompts = tokenizer.apply_chat_template(messages, add_generation_prompt=True, tokenize=False)
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+
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+ llm = LLM(model=model_id, tensor_parallel_size=number_gpus)
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+
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+ outputs = llm.generate(prompts, sampling_params)
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+
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+ generated_text = outputs[0].outputs[0].text
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+ print(generated_text)
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+ ```
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+
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+ vLLM aslo supports OpenAI-compatible serving. See the [documentation](https://docs.vllm.ai/en/latest/) for more details.
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+
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+ ## Creation
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+
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+ <details>
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+ <summary>Creation details</summary>
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+ This model was created with [llm-compressor](https://github.com/vllm-project/llm-compressor) by running the code snippet below.
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+
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+
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+ ```python
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+ from llmcompressor.modifiers.quantization import QuantizationModifier
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+ from llmcompressor.transformers import oneshot
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+ from transformers import AutoModelForCausalLM, AutoTokenizer
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+
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+ # Load model
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+ model_stub = "Qwen/Qwen2.5-Coder-1.5B-Instruct"
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+ model_name = model_stub.split("/")[-1]
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+
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+ model = AutoModelForCausalLM.from_pretrained(model_stub, torch_dtype="auto", device_map="auto")
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+ tokenizer = AutoTokenizer.from_pretrained(model_stub, torch_dtype="auto", device_map="auto")
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+
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+ # Configure the quantization algorithm and scheme
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+ recipe = QuantizationModifier(
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+ ignore=["lm_head"],
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+ targets="Linear",
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+ scheme="FP8_dynamic",
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+ )
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+
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+ # Apply quantization
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+ oneshot(
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+ model=model,
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+ recipe=recipe,
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+ )
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+
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+ # Save to disk in compressed-tensors format
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+ save_path = model_name + "-FP8-dynamic"
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+ model.save_pretrained(save_path)
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+ tokenizer.save_pretrained(save_path)
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+ print(f"Model and tokenizer saved to: {save_path}")
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+ ```
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+ </details>
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+
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+
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+
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+ ## Evaluation
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+ private
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+
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+ ### Accuracy
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+ private
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+
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