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September 1, 2017611 citations

MFNet: Towards real-time semantic segmentation for autonomous vehicles with multi-spectral scenes

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QHQishen HaKWKohei WatanabeTKTakumi Karasawa

Key Points

  • This work aims to advance semantic segmentation for autonomous vehicles by utilizing a novel RGB-Thermal dataset.
  • Developed a new convolutional neural network architecture tailored for multi-spectral image segmentation.
  • Introduced a dataset combining thermal and RGB images to benchmark performance.
  • Focused on maintaining segmentation accuracy during real-time processing.
  • Significant increase in segmentation accuracy observed when adding thermal infrared information.
  • Achieved improved performance in poor visibility conditions, notably at night and during adverse weather.

Abstract

This work addresses the semantic segmentation of images of street scenes for autonomous vehicles based on a new RGB-Thermal dataset, which is also introduced in this paper. An increasing interest in self-driving vehicles has brought the adaptation of semantic segmentation to self-driving systems. However, recent research relating to semantic segmentation is mainly based on RGB images acquired during times of poor visibility at night and under adverse weather conditions. Furthermore, most of these methods only focused on improving performance while ignoring time consumption. The aforementioned problems prompted us to propose a new convolutional neural network architecture for multi-spectral image segmentation that enables the segmentation accuracy to be retained during real-time operation. We benchmarked our method by creating an RGB-Thermal dataset in which thermal and RGB images are combined. We showed that the segmentation accuracy was significantly increased by adding thermal infrared information.

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Cite This Study

Ha et al. (2017) studied this question.

synapsesocial.com/papers/69e29c1561e1519c6da46dabhttps://doi.org/10.1109/iros.2017.8206396
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