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On-the-Fly Homographies Calibration for Multi-Camera Tracking

Published 17 Sept 2026arXiv:2609.18582

data quality89

Updated 24 h ago · first seen 17 Sept 2026

paper_01M2Q5D3ZHVFE2M76TBVTXC6EA

Abstract

Precise multi-camera tracking traditionally relies on rigorous 3D site calibration, yet this requirement is often operationally impossible in large-scale deployments. Privacy regulations frequently prohibit recording video for offline calibration; limited bandwidth precludes synchronizing high-resolution streams from hundreds of cameras; and covering immense physical sites with calibration targets is logistically infeasible. We present a multi-camera homography calibration system designed to overcome these barriers through "on-the-fly" geometric refinement. Starting from coarse manual homographies, we introduce a centroid-based projection optimization (PO) that continuously aligns the ground-plane geometry using live detection streams. Because PO operates asynchronously on already-transmitted, lightweight metadata, it adds zero computational latency to the real-time tracker. This allows the system to adapt automatically to camera movements or environmental changes without human intervention. This optimized geometry feeds a multi-camera bird's-eye-view (BEV) tracker that fuses detections and unifies trajectories across zones. Crucially, by operating strictly on live anonymous metadata, our solution ensures a privacy-safe, zero-overhead, and resilient tracking pipeline that maintains global consistency in dynamic environments where static, recorded-video calibration is impossible.

Authors

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Ben Zion BobrovskyDavid VoihanskiMor Sinai

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arXiv (Atom API + RSS)rss.arxiv.org/rss/cs.AI feedT1· Official3 h ago8

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