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Adaptive learning applied to terrain recognition

机译:自适应学习应用于地形识别

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This paper presents an exploration of methods for estimating terrain trafficability from visual appearance. Two different sets of data are used. The first set is extracted from video sequences and has a small number of different terrains. A fuzzy c-means clustering algorithm is used to predict terrain type. The second set is derived from high-resolution still images and has a large variety of terrains. A decision tree algorithm is used to provide a subjective assessment of trafficability. A variety of local features are explored, based on color and texture, as input to the learning algorithms.
机译:本文提出了一种从视觉外观估计地形可通行性的方法的探索。使用了两组不同的数据。第一组是从视频序列中提取的,具有少量不同的地形。模糊c均值聚类算法用于预测地形类型。第二组来自高分辨率的静态图像,并且具有多种多样的地形。决策树算法用于提供主观评估可交易性。基于颜色和纹理,探索了各种局部特征,作为学习算法的输入。

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