BENCHCOMPASS: From Scores to Signals for Training and Harness Decisions in Payment-Domain LLMs
Published 17 Sept 2026arXiv:2609.18270
Updated 24 h ago · first seen 17 Sept 2026
paper_01M2Q5D3SPAKQHPVE4TTHNZDGQ
Abstract
Payment operations are a critical financial infrastructure, but the value of large language models in this domain remains unclear because payment rules change quickly, evidence is fragmented, and decisions depend on transaction state, participant role, region, and payment rail. Existing benchmarks do not isolate whether failures come from missing payment-rule knowledge, poor use of supplied evidence, or brittleness under imperfect harness inputs. We introduce BENCHCOMPASS, a payment-domain benchmark whose construction pipeline builds scenario-grounded tasks from typed evidence packs, applies LLM-based quality checks, creates task-input attack variants, and reserves final item admission for domain experts. The release contains an expert-reviewed Pro benchmark covering payment knowledge, context-grounded scenario reasoning, and Attacked Open robustness, plus a lower-assurance Normal pool for inspection and future curation. Across 16 model variants, BENCHCOMPASS shows qualitatively different failure modes: missing parametric payment knowledge, incomplete reasoning over supplied rules, and failure to reject plausible but invalid workflows. The benchmark remains unsaturated: the best frontier model reaches 89.6% on Open Context-Grounded Reasoning and 81.7% under attacked inputs, while a representative 32B open-weight model reaches 69.8% and 42.6%. Benchmark data and code are available at https://github.com/ant-intl/BenchCompass.
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- New paperPaperBENCHCOMPASS: From Scores to Signals for Training and Harness Decisions in Payment-Domain LLMs
New paper: BENCHCOMPASS: From Scores to Signals for Training and Harness Decisions in Payment-Domain LLMs
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