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      Accurate Trajectory Prediction for Autonomous Vehicles

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          Abstract

          Predicting vehicle trajectories, angle and speed is important for safe and comfortable driving. We demonstrate the best predicted angle, speed, and best performance overall winning the top three places of the ICCV 2019 Learning to Drive challenge. Our key contributions are (i) a general neural network system architecture which embeds and fuses together multiple inputs by encoding, and decodes multiple outputs using neural networks, (ii) using pre-trained neural networks for augmenting the given input data with segmentation maps and semantic information, and (iii) leveraging the form and distribution of the expected output in the model.

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          Most cited references5

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          DeepDriving: Learning Affordance for Direct Perception in Autonomous Driving

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            Event-Based Vision Meets Deep Learning on Steering Prediction for Self-Driving Cars

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              Going Deeper: Autonomous Steering with Neural Memory Networks

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                Author and article information

                Journal
                18 November 2019
                Article
                1911.08568
                7ba4fefb-3c38-46e4-89b0-6643f4884134

                http://arxiv.org/licenses/nonexclusive-distrib/1.0/

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                Custom metadata
                arXiv admin note: text overlap with arXiv:1910.10318, arXiv:1910.10317
                cs.CV cs.LG

                Computer vision & Pattern recognition,Artificial intelligence
                Computer vision & Pattern recognition, Artificial intelligence

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