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TSTTC: A Large-Scale Dataset for Time-to-Contact Estimation in Driving Scenarios

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arxiv 2309.01539 v3 pith:ZFHZ2ZLG submitted 2023-09-04 cs.CV

classification cs.CV
keywords datasetdrivingestimationdatalarge-scalemethodsproposedscenarios
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Time-to-Contact (TTC) estimation is a critical task for assessing collision risk and is widely used in various driver assistance and autonomous driving systems. The past few decades have witnessed development of related theories and algorithms. The prevalent learning-based methods call for a large-scale TTC dataset in real-world scenarios. In this work, we present a large-scale object oriented TTC dataset in the driving scene for promoting the TTC estimation by a monocular camera. To collect valuable samples and make data with different TTC values relatively balanced, we go through thousands of hours of driving data and select over 200K sequences with a preset data distribution. To augment the quantity of small TTC cases, we also generate clips using the latest Neural rendering methods. Additionally, we provide several simple yet effective TTC estimation baselines and evaluate them extensively on the proposed dataset to demonstrate their effectiveness. The proposed dataset is publicly available at https://open-dataset.tusen.ai/TSTTC.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. EvTTC: An Event Camera Dataset for Time-to-Collision Estimation

    cs.RO 2024-12 conditional novelty 7.0 of 10

    EvTTC provides the first event-camera dataset with ground-truth TTC for high-relative-speed, emergency-braking driving scenarios, plus a small-scale testbed.

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