most citedFiLo: Zero-Shot Anomaly Detection by Fine-Grained Description and High-Quality Localization

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cs.CV2026

Messages, Not Tokens: Grounded Coresets for Faithful VLM Compression

Long Qian, Jiaqi Wei, Bingke Zhu +2

Modern vision language models (VLMs) turn high-resolution images into long sequences of visual tokens. Every token traverses the language decoder and persists in its prompt KV cach…

cs.CV2026

UniVAD v2: Unified Visual Anomaly Detection via Support-Conditioned Boundary Construction

Zhaopeng Gu, Bingke Zhu, Zhaowen Li +5

Unified visual anomaly detection seeks to train a single detector that can be deployed across categories, domains, and application scenarios. In the few-shot transfer regime, the k…

cs.CV2026

FiLo++: Zero-/Few-Shot Anomaly Detection by Fused Fine-Grained Descriptions and Deformable Localization

Zhaopeng Gu, Bingke Zhu, Guibo Zhu +3

Anomaly detection methods typically require extensive normal samples from the target class for training, limiting their applicability in scenarios that require rapid adaptation, su…

cs.CV20261 cited

FiLo: Zero-Shot Anomaly Detection by Fine-Grained Description and High-Quality Localization

Zhaopeng Gu, Bingke Zhu, Guibo Zhu +4

Zero-shot anomaly detection (ZSAD) methods entail detecting anomalies directly without access to any known normal or abnormal samples within the target item categories. Existing ap…

cs.CV2025

MUG: Pseudo Labeling Augmented Audio-Visual Mamba Network for Audio-Visual Video Parsing

Langyu Wang, Bingke Zhu, Yingying Chen +3

The weakly-supervised audio-visual video parsing (AVVP) aims to predict all modality-specific events and locate their temporal boundaries. Despite significant progress, due to the…

cs.CV2025

AnomalyMoE: Towards a Language-free Generalist Model for Unified Visual Anomaly Detection

Zhaopeng Gu, Bingke Zhu, Guibo Zhu +4

Anomaly detection is a critical task across numerous domains and modalities, yet existing methods are often highly specialized, limiting their generalizability. These specialized m…