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Drone-Person Tracking in Uniform Appearance Crowd: A New Dataset. | LitMetric

Drone-Person Tracking in Uniform Appearance Crowd: A New Dataset.

Sci Data

Department of Electrical Engineering and Computer Science, Abu Dhabi, 00000, UAE.

Published: January 2024

AI Article Synopsis

  • The text discusses the challenges of tracking individuals in crowds where everyone is wearing similar uniforms, which makes it hard to tell them apart.
  • A new dataset called D-PTUAC has been created to help improve tracking algorithms, featuring 138 sequences and over 121,000 annotated frames, including details on 18 challenging attributes relevant to different viewpoints and scene complexities.
  • The research highlights the performance gap of existing visual object trackers compared to the new dataset, emphasizing the need for dedicated tracking solutions tailored for aerial environments.

Article Abstract

Drone-person tracking in uniform appearance crowds poses unique challenges due to the difficulty in distinguishing individuals with similar attire and multi-scale variations. To address this issue and facilitate the development of effective tracking algorithms, we present a novel dataset named D-PTUAC (Drone-Person Tracking in Uniform Appearance Crowd). The dataset comprises 138 sequences comprising over 121 K frames, each manually annotated with bounding boxes and attributes. During dataset creation, we carefully consider 18 challenging attributes encompassing a wide range of viewpoints and scene complexities. These attributes are annotated to facilitate the analysis of performance based on specific attributes. Extensive experiments are conducted using 44 state-of-the-art (SOTA) trackers, and the performance gap between the visual object trackers on existing benchmarks compared to our proposed dataset demonstrate the need for a dedicated end-to-end aerial visual object tracker that accounts the inherent properties of aerial environment.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10762134PMC
http://dx.doi.org/10.1038/s41597-023-02810-yDOI Listing

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