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Robustness of Llama3 F1 Scores Under Mixed Data Ratios and Adversarial Contamination

Authors: Assignee Research;

Robustness of Llama3 F1 Scores Under Mixed Data Ratios and Adversarial Contamination

Abstract

This report synthesises findings from 15 peer-reviewed papers addressing the following research question: What is the impact of mixed human- and LLM-generated data ratios on the F1-score robustness of Llama3 models fine-tuned with different alignment techniques under increasing adversarial contamination. 9 claims were extracted from source literature; 9 were independently verified against retrieved documents. An automated multi-reviewer quality assessment produced a score of 9.2/10. This report is a machine-generated literature synthesis and does not constitute original research.Research goal: What is the impact of mixed human- and LLM-generated data ratios on the F1-score robustness of Llama3 models fine-tuned with different alignment techniques under increasing adversarial contamination levels?Autonomous literature synthesis. Automated review score: 9.2/10. Full text and citation available at Assignee Research.

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