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Fei Long

4 accepted papers

2026

Task-Specific Distance Correlation Matching for Few-Shot Action Recognition

AAAI 2026technical

Few-shot action recognition (FSAR) has recently made notable progress through set matching and efficient adaptation of large-scale pre-trained models. However, two key limitations persist. First, existing set matching metrics typically rely on cosine similarity to measure inter-frame linear dependen

Cited by 0SourcePDFScholar
2025

BDC-CLIP: Brownian Distance Covariance for Adapting CLIP to Action Recognition

ICML 2025poster

Bridging contrastive language-image pre-training (CLIP) to video action recognition has attracted growing interest. Human actions are inherently rich in spatial and temporal contexts, involving dynamic interactions among people, objects, and the environment. Accurately recognizing actions requires e…

Cited by 0SourcePDFScholar
2024

Unsupervised Multimodal Clustering for Semantics Discovery in Multimodal Utterances

ACL 2024long

Discovering the semantics of multimodal utterances is essential for understanding human language and enhancing human-machine interactions. Existing methods manifest limitations in leveraging nonverbal information for discerning complex semantics in unsupervised scenarios. This paper introduces a nov…

2022

Joint Distribution Matters: Deep Brownian Distance Covariance for Few-Shot Classification

CVPR 2022oral

Few-shot classification is a challenging problem as only very few training examples are given for each new task. One of the effective research lines to address this challenge focuses on learning deep representations driven by a similarity measure between a query image and few support images of some…

Cited by 264PDFcodeScholar