Papers › Features for Multi-Target Multi-Camera Tracking and Re-Identification
Features for Multi-Target Multi-Camera Tracking and Re-Identification
Ergys Ristani, Carlo Tomasi
Multi-Target Multi-Camera Tracking (MTMCT) tracks many people through video taken from several cameras. Person Re-Identification (Re-ID) retrieves from a gallery images of people similar to a person query image. We learn good features for both MTMCT and Re-ID with a convolutional neural network. Our contributions include an adaptive weighted triplet loss for training and a new technique for hard-identity mining. Our method outperforms the state of the art both on the DukeMTMC benchmarks for tracking, and on the Market-1501 and DukeMTMC-ReID benchmarks for Re-ID. We examine the correlation between good Re-ID and good MTMCT scores, and perform ablation studies to elucidate the contributions of the main components of our system. Code is available.
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Results from the paper archive 2025-07-28
| Task | Dataset | Model | Metric | Value | Rank at snapshot | Leaderboard | Report |
|---|---|---|---|---|---|---|---|
| Person Re-Identification | Market-1501 | ATWL [ristani2018features] | Rank-1 | 89.4 | #96 of 135 | Archive leaderboard | report |
| Person Re-Identification | Market-1501 | ATWL [ristani2018features] | mAP | 75.6 | #96 of 135 | Archive leaderboard | report |
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