Seeing Across Time and Views: Multi-Temporal Cross-View Learning for Robust Video Person Re-Identification
Md Rashidunnabi, Kailash A. Hambarde, Vasco Lopes, Joao C. Neves, and Hugo Proenca

TL;DR
This paper introduces MTF-CVReID, a lightweight, multi-module framework that significantly improves video person re-identification across diverse viewpoints and scales while maintaining real-time processing speeds.
Contribution
The paper presents a novel, parameter-efficient framework with seven modules that enhance cross-view and temporal robustness in video person ReID, outperforming existing methods.
Findings
Achieves state-of-the-art results on AG-VPReID benchmark.
Maintains real-time efficiency at 189 FPS.
Generalizes well across multiple datasets.
Abstract
Video-based person re-identification (ReID) in cross-view domains (for example, aerial-ground surveillance) remains an open problem because of extreme viewpoint shifts, scale disparities, and temporal inconsistencies. To address these challenges, we propose MTF-CVReID, a parameter-efficient framework that introduces seven complementary modules over a ViT-B/16 backbone. Specifically, we include: (1) Cross-Stream Feature Normalization (CSFN) to correct camera and view biases; (2) Multi-Resolution Feature Harmonization (MRFH) for scale stabilization across altitudes; (3) Identity-Aware Memory Module (IAMM) to reinforce persistent identity traits; (4) Temporal Dynamics Modeling (TDM) for motion-aware short-term temporal encoding; (5) Inter-View Feature Alignment (IVFA) for perspective-invariant representation alignment; (6) Hierarchical Temporal Pattern Learning (HTPL) to capture…
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Taxonomy
TopicsVideo Surveillance and Tracking Methods · Advanced Neural Network Applications · UAV Applications and Optimization
