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Jiajia Liu

3 accepted papers

2026

No Need For Real Anomaly: MLLM Empowered Zero-Shot Video Anomaly Detection

CVPR 2026

The collection and detection of video anomaly data has long been a challenging problem due to its rare occurrence and spatio-temporal scarcity. Existing video anomaly detection (VAD) methods under perform in open-world scenarios. Key contributing factors include limited dataset diversity, and inadeq

Cited by 0SourcecodeScholar
2026

Selecting Samples on Graphs: A Unified Dataset Pruning Framework for Lossless Training Acceleration

ICML 2026poster

The rapid growth of modern training datasets has significantly increased computational cost, motivating dataset pruning(DP) methods which retain only a subset of informative samples to reduce training cost. Existing pruning criteria typically rely on either intrinsic signals that assess samples inde…

Cited by 0SourceScholar
2024

Towards Better Vision-Inspired Vision-Language Models

CVPR 2024poster

Vision-language (VL) models have achieved unprecedented success recently in which the connection module is the key to bridge the modality gap. Nevertheless the abundant visual clues are not sufficiently exploited in most existing methods. On the vision side most existing approaches only use the last…

Cited by 2SourcePDFScholar