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Model Overview

This model is a fine-tuned variant of Llama-3.2-1B, leveraging ORPO (Optimized Regularization for Prompt Optimization) for enhanced performance. It has been fine-tuned using the mlabonne/orpo-dpo-mix-40k dataset as part of the Finetuning Open Source LLMs Course - Week 2 Project.

Intended Use

This model is optimized for general-purpose language tasks, including text parsing, understanding contextual prompts, and enhanced interpretability in natural language processing applications.

Evaluation Results

The model was evaluated on the following benchmarks, with the following performance metrics:

Tasks Version Filter n-shot Metric Value Stderr
eq_bench 2.1 none 0 eqbench 1.5355 ± 0.9184
none 0 percent_parseable 16.9591 ± 2.8782
hellaswag 1 none 0 acc 0.4812 ± 0.0050
none 0 acc_norm 0.6467 ± 0.0049
ifeval 4 none 0 inst_level_loose_acc 0.3984 ± N/A
none 0 inst_level_strict_acc 0.2974 ± N/A
none 0 prompt_level_loose_acc 0.2755 ± 0.0193
none 0 prompt_level_strict_acc 0.1848 ± 0.0168
tinyMMLU 0 none 0 acc_norm 0.3995 ± N/A

Key Features

  • Model Size: 1 Billion parameters
  • Fine-tuning Method: ORPO
  • Dataset: mlabonne/orpo-dpo-mix-40k
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Dataset used to train JPBianchi/llm_uplimit_P2_llama3

Evaluation results