Ryan Junejo
Ryan Junejo
Receipt possession is not event attribution
EvidenceGraph is a forensic tool that rebuilds what an AI agent did during an incident by cross-checking agent transcripts against independent platform records, such as a registry’s write log. This sprint project tested one narrow failure in that reconstruction: a transcript event carrying a genuine receipt copied from a different event.
The failure was real. Under the old rule, copying a receipt with its token into another transcript made the tool attribute one of twelve real registry writes to the wrong event, with full confidence. The fix makes the missing assumption explicit. Matching tokens now stay ambiguous unless the case declares that the recorder is authentic or that tokens could not have been copied. Analyzer upgrades also invalidate old conclusions until the case is recomputed, so stale attributions cannot survive the safer rule.
Twelve paired evidence conditions across three seeds behaved as specified in all 36 checks, including a deliberately false declaration that brings the wrong attribution back. The cost is visible too: on clean evidence with unknown token exclusivity, the tool withholds all twelve correct attributions. An evidence-collection checklist tells investigators what to gather before making stronger claims.
Everything ran on synthetic logs with no model, external target or credential. The results are development checks on one scripted workflow, not estimates of accuracy on real incidents or of usefulness to investigators.
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Cite this work
@misc {
title={
(HckPrj) Ryan Junejo
},
author={
Ryan Junejo
},
date={
},
organization={Apart Research},
note={Research submission to the research sprint hosted by Apart.},
howpublished={https://apartresearch.com}
}


