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Measuring the Wrong Thing: Internal Harmfulness Scores Anti-Rank Successful

A new arXiv paper by researchers auditing internal safety scores finds that these scores anti-rank successful jailbreaks, with harmful generation rising from 0.05 to 0.27 on Llama while harmful intent AUROC falls from 0.936 to 0.803, indicating attacks become more dangerous as prompts appear safer. The study introduces Active Attention Probing and shows the reversal persists across three target models, seven attack families, and two judges.

read2 min views1 publishedAug 12, 2026
Measuring the Wrong Thing: Internal Harmfulness Scores Anti-Rank Successful
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[Submitted on 10 Aug 2026]


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Abstract:Internal safety scores judge a prompt before any text is generated, and they are validated by how well they separate harmful prompts from benign ones. That separation is then read as evidence that the score will also catch the attacks that succeed. Harmful intent is a property of the prompt. Jailbreak success is an outcome produced later by a particular target model, decoding policy, and judge. A filter tuned on a score that measures the wrong quantity spends its false positive budget on attacks that would have failed anyway. In this paper we audit that inference. Attention based measurements are usually read from prompt dependent locations, so a wrapper changes both the content being judged and the place the signal is taken from. We therefore introduce Active Attention Probing, which supplies a fixed content independent measurement coordinate. We pair every base goal with a plain and a wrapped version and generate real completions from the target models. On Llama, wrapping raises harmful generation from 0.05 to 0.27 while harmful intent AUROC falls from 0.936 to 0.803, so the attacks grow more dangerous while the prompts look safer to the score. Among wrapped harmful prompts the outcome AUROC is 0.220, which places the attacks that succeeded below the attacks that failed. Rare token, passive, and detector derived channels reproduce the reversal on the same matched design, and the reversal itself persists across three target models, seven attack families, and two independent judges. Distribution shift then degrades calibration and threshold transfer before it degrades ranking.

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