计算机科学
雷达
分割
点云
人工智能
雷达成像
聚类分析
分类器(UML)
计算机视觉
模式识别(心理学)
电信
作者
Ole Schumann,Markus Hahn,Jürgen Dickmann,Christian Wöhler
标识
DOI:10.23919/icif.2018.8455344
摘要
Semantic segmentation on radar point clouds is a new challenging task in radar data processing. We demonstrate how this task can be performed and provide results on a large data set of manually labeled radar reflections. In contrast to previous approaches where generated feature vectors from clustered reflections were used as an input for a classifier, now the whole radar point cloud is used as an input and class probabilities are obtained for every single reflection. We thereby eliminate the need for clustering algorithms and manually selected features.
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