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Awesome-MTMCT

Awesome License: MIT

Abundant resources related to Multi-Target Multi-Camera Object Tracking (MTMCT) 🔥

In the visual tracking community, the dominant research focus used to be around tracking either a single object (SOT) or multiple objects (MOT) within a single camera. However, with the increasing adoption of multi-camera networks across various applications, the demand for multi-camera tracking systems has surged, surpassing the usage of single cameras [1].

We provide a comprehensive and up-to-date review of visual object tracking in multi-camera settings. The study analyzes and categorize existing works based on six crucial facets: problem formulation, adopted problem solving approach, data association requirements, mutual exclusion constraints, benchmark datasets, and performance metrics.

News

  • [2023-07-11] 🔥 We have released this repository that collects the resources related to Multi-Target Multi-Camera Object Tracking (MTMCT). We will keep updating this repository, and you are welcome to STAR and WATCH to keep track of it.

  • [2023-07-08] 🔥 Our review paper with the title "Multi-Camera Multi-Object Tracking: A Review of Current Trends and Future Advances" (ver. 06 Jul) was accepted for publication in Neurocomputing

Table of Contents

Collection of Papers

Non-overlapping multi-camera

  • Diffusion convolutional recurrent neural network: Data-driven traffic forecasting (ICLR, 2018) [paper]
  • Spatio-temporal graph convolutional networks: A deep learning framework for traffic forecasting (IJCAI, 2018) [paper]

Overlapping multi-camera

To be continued...

Two-step hierarchical approach

To be continued...

Global MCT approach

To be continued...

Collection of Datasets

To be continued...

Applications

To be continued...

Healthcare

To be continued...

Smart Transportation

To be continued...

On-Demand Services

To be continued...

Environment & Sustainable Energy

To be continued...

Internet of Things

To be continued...

Fraud Detection