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README.md ADDED
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+ ---
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+ license: apache-2.0
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+ ---
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+
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+ # Phi-3-mini-128K-instruct with CPO-SimPO
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+
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+ This repository contains the Phi-3-mini-128K-instruct model enhanced with the CPO-SimPO technique. CPO-SimPO combines Contrastive Preference Optimization (CPO) and Simple Preference Optimization (SimPO).
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+
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+ ## Introduction
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+
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+ Phi-3-mini-128K-instruct is a model optimized for instruction-based tasks. This approach has demonstrated notable improvements in key benchmarks, pushing the boundaries of AI preference learning.
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+
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+ ### What is CPO-SimPO?
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+
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+ CPO-SimPO is a novel technique, which combines elements from CPO and SimPO:
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+
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+ - **Contrastive Preference Optimization (CPO):** Adds a behavior cloning regularizer to ensure the model remains close to the preferred data distribution.
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+ - **Simple Preference Optimization (SimPO):** Incorporates length normalization and target reward margins to prevent the generation of long but low-quality sequences.
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+
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+ ### Github
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+
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+ **[CPO-SIMPO](https://github.com/fe1ixxu/CPO_SIMPO)**
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+
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+
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+ ## Model Performance
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+
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+ ### Base Scores:
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+ - **MMLU:** 68.7
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+ - **HellaSwag:** 80.09
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+ - **GSM8K:** 69.52
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+ - **ARC:** 63.14
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+ - **Winogrande:** 72.85
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+ - **TruthfulQA:** 54.12
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+
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+ ### New Scores after CPO-SimPO:
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+ - **MMLU:** 68.79
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+ - **HellaSwag:** 80.78
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+ - **GSM8K:** 78.01
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+ - **ARC:** 62.97
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+ - **Winogrande:** 74.47
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+ - **TruthfulQA:** 56.19
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+
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+ ### Key Improvements:
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+ - **Enhanced Model Performance:** Significant score improvements, particularly in GSM8K (up by 8.49 points!) and TruthfulQA (up by 2.07 points).
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+ - **Quality Control:** Improved generation of high-quality sequences through length normalization and reward margins.
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+ - **Balanced Optimization:** The BC regularizer helps maintain the integrity of learned preferences without deviating from the preferred data distribution.
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+
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+ ## Usage
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+
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+ ### Installation
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+
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+ To use this model, you need to install the `transformers` library from Hugging Face.
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+
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+ ```bash
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+ pip install transformers
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+ ```
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+
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+ ### Inference
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+
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+ Here's an example of how to perform inference with the model:
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+
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+ ```python
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+ import torch
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+ from transformers import AutoModelForCausalLM, AutoTokenizer, pipeline
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+
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+ torch.random.manual_seed(0)
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+
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+ model = AutoModelForCausalLM.from_pretrained(
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+ "Syed-Hasan-8503/Phi-3-mini-128K-instruct-cpo-simpo",
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+ device_map="cuda",
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+ torch_dtype="auto",
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+ trust_remote_code=True,
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+ )
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+ tokenizer = AutoTokenizer.from_pretrained("Syed-Hasan-8503/Phi-3-mini-128K-instruct-cpo-simpo")
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+
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+ messages = [
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+ {"role": "user", "content": "Can you provide ways to eat combinations of bananas and dragonfruits?"},
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+ {"role": "assistant", "content": "Sure! Here are some ways to eat bananas and dragonfruits together: 1. Banana and dragonfruit smoothie: Blend bananas and dragonfruits together with some milk and honey. 2. Banana and dragonfruit salad: Mix sliced bananas and dragonfruits together with some lemon juice and honey."},
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+ {"role": "user", "content": "What about solving an 2x + 3 = 7 equation?"},
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+ ]
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+
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+ pipe = pipeline(
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+ "text-generation",
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+ model=model,
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+ tokenizer=tokenizer,
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+ )
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+
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+ generation_args = {
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+ "max_new_tokens": 500,
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+ "return_full_text": False,
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+ "temperature": 0.0,
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+ "do_sample": False,
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+ }
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+
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+ output = pipe(messages, **generation_args)
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+ print(output[0]['generated_text'])
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+ ```
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