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Preprint Sep 2026

Feature-Aware Token Attack for Compression-Triggered Stealthy Failures in Large Vision-Language Models

Visual-token compression improves the efficiency of large vision-language models, but can expose failures that full-token evaluation misses. We study adversarial images that preserve full-token correctness yet induce errors after compression, even when both inference paths succeed on the clean image. Creating such fail...

Shilinlu Yan, Bo-Wen Chen, Yuechen Zhang et al. · 0 citations
#artificial intelligence Preprint Sep 2026

When Reasoning Goes Astray: Attention Dynamics of Uncontrolled Reasoning

Large reasoning models (LRMs) improve performance on complex tasks through extended reasoning, yet the same process can degenerate into redundant verification and persistent generation loops. Such uncontrolled reasoning increases inference cost and creates risks of resource exhaustion and service degradation. However,...

Yuan-He Zhang, Ziwei Wang, Jie Ren et al. · 0 citations
#artificial intelligence Preprint May 2026

UniACE: A Unified Framework for Evaluating LLM Agentic Capabilities

This work presents UniACE, a unified framework for model-centric evaluation under an explicit, common execution condition, and reports agent benchmark outcomes as properties of an explicit evaluation configuration, enabling more interpretable and reproducible cross-benchmark comparisons.

Peng-Yu Zhu, Lijun Li, Yaxing Lyu et al. · 3 citations

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