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Silence is Golden: Mitigating Hallucinations in Large Aud...
[Submitted on 14 Oct 2025 (v1), last revised 31 Aug 2026 (this v · 2025-10-14 · via eess.AS updates on arXiv.org

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Abstract:Large Audio-Language Models (LALMs) excel in Audio QA but often suffer from hallucinations ungrounded in the audio. To our knowledge, we are the first to propose applying vector steering to the audio domain to mitigate this. Unlike text-based steering, our silence-anchored contrastive approach steers the model away from hallucinations by contrasting active audio against a silent baseline. Probing internal states reveals a strong correlation between specific layer representations and output correctness. Leveraging this, we introduce Layer-Weighted Vector Steering (LWVS), a training-free intervention that increases steering strength at influential layers. On the Audio Hallucination QA dataset, LWVS significantly outperforms baselines, boosting Recall on the Gemma model by 15.6% (53.4% to 69.0%). Crucially, MMAU benchmark tests confirm LWVS preserves and even enhances general audio understanding, achieving an 8% relative accuracy increase on the Qwen model (54.8% to 59.2%).

Submission history

From: Tsung-En Lin [view email]
[v1] Tue, 14 Oct 2025 08:52:18 UTC (370 KB)
[v2] Mon, 31 Aug 2026 20:31:15 UTC (2,930 KB)