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10.1109/ITSC.2015.22guideproceedingsArticle/Chapter ViewAbstractPublication PagesConference Proceedingsacm-pubtype
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Pedestrian Intention and Pose Prediction through Dynamical Models and Behaviour Classification

Published: 15 September 2015 Publication History

Abstract

Pedestrian protection systems are being included by many automobile manufacturers in their commercial vehicles. However, improving the accuracy of these systems is imperative since the difference between an effective and a non-effective intervention can depend only on a few centimeters or on a fraction of a second. In this paper, we describe a method to carry out the prediction of pedestrian locations and pose and to classify intentions up to 1 s ahead in time applying Balanced Gaussian Process Dynamical Models (B-GPDM) and naïve-Bayes classifiers. These classifiers are combined in order to increase the action classification precision. The system provides accurate path predictions with mean errors of 24.4 cm, for walking trajectories, 26.67 cm, for stopping trajectories and 37.36 cm for starting trajectories, at a time horizon of 1 second.

Cited By

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  • (2024)Predicting Human Intent to Interact with a Public Robot: The People Approaching Robots Database (PAR-D)Proceedings of the 26th International Conference on Multimodal Interaction10.1145/3678957.3685706(536-545)Online publication date: 4-Nov-2024
  • (2021)Pedestrian Detection and Movement Direction Recognition with Convolutional Neural NetworkPattern Recognition and Machine Intelligence10.1007/978-3-031-12700-7_19(181-189)Online publication date: 15-Dec-2021
  • (2018)A Survey of Scene Understanding by Event Reasoning in Autonomous DrivingInternational Journal of Automation and Computing10.1007/s11633-018-1126-y15:3(249-266)Online publication date: 1-Jun-2018
  1. Pedestrian Intention and Pose Prediction through Dynamical Models and Behaviour Classification

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    cover image Guide Proceedings
    ITSC '15: Proceedings of the 2015 IEEE 18th International Conference on Intelligent Transportation Systems
    September 2015
    2980 pages
    ISBN:9781467365963

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    IEEE Computer Society

    United States

    Publication History

    Published: 15 September 2015

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    • (2024)Predicting Human Intent to Interact with a Public Robot: The People Approaching Robots Database (PAR-D)Proceedings of the 26th International Conference on Multimodal Interaction10.1145/3678957.3685706(536-545)Online publication date: 4-Nov-2024
    • (2021)Pedestrian Detection and Movement Direction Recognition with Convolutional Neural NetworkPattern Recognition and Machine Intelligence10.1007/978-3-031-12700-7_19(181-189)Online publication date: 15-Dec-2021
    • (2018)A Survey of Scene Understanding by Event Reasoning in Autonomous DrivingInternational Journal of Automation and Computing10.1007/s11633-018-1126-y15:3(249-266)Online publication date: 1-Jun-2018

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