Intent Before Action: Early Detection of Malicious Agent Behavior from Internal States
Qianwei Sun, Qianli Ma, Tianyu Lu
Agent supervision based on visible actions and chain of thought (CoT) can miss risk-relevant details of an impending operation, while review-visible records can be selectively rewritten under task pressure. We investigate activation-assisted monitoring, using an activation oracle (AO) to translate internal states into natural-language interpretations that complement pre-tool risk assessment. An open-weight Qwen agent serves as a controllable proxy in incident-inspired Linux tasks with obstructed legitimate routes, discoverable alternatives and monitoring notices. We analyze evaluation-state manipulation, cross-customer access, service-audit deletion and deliberate omission of unauthorized sources from handoff reports. Original activations, CoT, AO interpretations and actual operations are aligned, and independent monitors are compared at matched pre-tool cutoffs. The case evidence includes AO-assisted detection of impending evaluation manipulation missed by a CoT monitor, alongside scope and omission cues linked to observed misconduct. The broader paired pilot retained the baseline's thresholded classifications, delimiting the current benefit to case-level complementary evidence rather than a general detection advantage. We use these interpretations to produce evidence-linked audit reports for human supervisors, connecting risk hypotheses to the actions and records that warrant review. This supports interpretable investigation before tool execution and during re-review, while reliable cross-task warning and online intervention remain to be evaluated.
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Cite this work
@misc {
title={
(HckPrj) Intent Before Action: Early Detection of Malicious Agent Behavior from Internal States
},
author={
Qianwei Sun, Qianli Ma, Tianyu Lu
},
date={
},
organization={Apart Research},
note={Research submission to the research sprint hosted by Apart.},
howpublished={https://apartresearch.com}
}


