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2024 | OriginalPaper | Chapter

YoloP-Based Pre-processing for Driving Scenario Detection

Authors : Marianna Cossu, Riccardo Berta, Luca Forneris, Matteo Fresta, Luca Lazzaroni, Jean-Louis Sauvaget, Francesco Bellotti

Published in: Applications in Electronics Pervading Industry, Environment and Society

Publisher: Springer Nature Switzerland

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Abstract

Recognition of driving scenarios is getting ever more relevant in research, especially for assessing performance of advanced driving assistance systems (ADAS) and automated driving functions. However, the complexity of traffic situations makes this task challenging. In order to improve the detection rate achieved through state-of-the-art deep learning models, we have investigated the use of the YoloP fully convolutional neural network architecture as a pre-processing step to extract high-level features for a residual 3D convolutional neural network We observed thar this approach reduces computational complexity, resulting in optimized model performance, also in terms of generalization from training on a synthetic dataset to testing in a real-world one.

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Literature
3.
go back to reference Obaid HS, Dheyab SA, Sabry SS (2019) The impact of data pre-processing techniques and dimensionality reduction on the accuracy of machine learning. In: 2019 9th annual information technology, electromechanical engineering and microelectronics conference (IEMECON), pp 279–283. https://doi.org/10.1109/IEMECONX.2019.8877011 Obaid HS, Dheyab SA, Sabry SS (2019) The impact of data pre-processing techniques and dimensionality reduction on the accuracy of machine learning. In: 2019 9th annual information technology, electromechanical engineering and microelectronics conference (IEMECON), pp 279–283. https://​doi.​org/​10.​1109/​IEMECONX.​2019.​8877011
Metadata
Title
YoloP-Based Pre-processing for Driving Scenario Detection
Authors
Marianna Cossu
Riccardo Berta
Luca Forneris
Matteo Fresta
Luca Lazzaroni
Jean-Louis Sauvaget
Francesco Bellotti
Copyright Year
2024
DOI
https://doi.org/10.1007/978-3-031-48121-5_60