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Incremental Object Part Detection toward Object Classification in a Sequence of Noisy Range Images

机译:在嘈杂范围图像序列中升高对象分组检测对象分类

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This paper presents an incremental object part detection algorithm using a particle filter. The method infers object parts from 3D data acquired with a range camera. The range information is quantized and enhanced by local structure to partially cope with considerable measurement noise and distortion. The augmented voxel representation allows the adaptation of known track-before-detect algorithms to infer multiple object parts in a range image sequence even when each single observation does not contain enough information to do the detection. The appropriateness of the method is successfully demonstrated by two experiments for chair legs.
机译:本文介绍了使用粒子滤波器的增量对象部分检测算法。该方法Infers从使用范围相机获取的3D数据中的对象部分。通过局部结构量化和增强范围信息,以部分地应对具有相当大的测量噪声和失真。增强的体素表示允许在每个单个观察不包含足够的信息以进行检测时,将已知的轨道前检测算法改编在范围图像序列中推断多个对象部分。通过两个椅子的实验成功地证明了该方法的适当性。

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