Deep Learning-based Vehicle Behaviour Prediction For Autonomous Driving Applications: A Review
December 25, 2019 ยท The Cartographer ยท ๐ arXiv.org
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"Title-pattern auto-detect: Deep Learning-based Vehicle Behaviour Prediction For Autonomous Driving Applications: A Review"
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Authors
Sajjad Mozaffari, Omar Y. Al-Jarrah, Mehrdad Dianati, Paul Jennings, Alexandros Mouzakitis
arXiv ID
1912.11676
Category
cs.CV: Computer Vision
Cross-listed
cs.LG,
cs.RO,
stat.ML
Citations
137
Venue
arXiv.org
Last Checked
1 day ago
Abstract
Behaviour prediction function of an autonomous vehicle predicts the future states of the nearby vehicles based on the current and past observations of the surrounding environment. This helps enhance their awareness of the imminent hazards. However, conventional behaviour prediction solutions are applicable in simple driving scenarios that require short prediction horizons. Most recently, deep learning-based approaches have become popular due to their superior performance in more complex environments compared to the conventional approaches. Motivated by this increased popularity, we provide a comprehensive review of the state-of-the-art of deep learning-based approaches for vehicle behaviour prediction in this paper. We firstly give an overview of the generic problem of vehicle behaviour prediction and discuss its challenges, followed by classification and review of the most recent deep learning-based solutions based on three criteria: input representation, output type, and prediction method. The paper also discusses the performance of several well-known solutions, identifies the research gaps in the literature and outlines potential new research directions.
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