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[CS.AI] JusticeAxis: Benchmarking Legal Judgment between Rigid Rule Application and Ungrounded Discretion

Published at: 2026-10-02 22:00 Last updated: 2026-10-06 12:11
#AI #Machine Learning

JusticeAxis is a multimodal benchmark for real‑world criminal cases, containing 256 cases from 18 countries with audio, image and text evidence. For each case, three lawyer‑written judgments are provided: the official recorded judgment and two failure‑mode judgments, enabling a comparison between rigid statute matching and ungrounded discretion.

We formalize legal judgment as a reference‑anchored task, meaning a decision must stay tied to both the relevant statute and the factual circumstances. Based on this, we introduce the JusticeAgent framework:

Skills are distilled from execution trajectories and admitted only under Bayesian credible bounds, guaranteeing that the incorporated experience is statistically reliable.

Experiments reveal a scale‑dependent failure pattern: open‑weight backbones tend to drift toward unsupported reasoning, while frontier models revert to the statutory default. Adding JusticeAgent as a simple plugin to a frozen open‑weight backbone lifts its performance to a commercial level.

All resources, including code and data, are publicly available at https://github.com/beita6969/JusticeAxis.

Review

Original Source: https://arxiv.org/abs/2610.00353

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