城市场景的距离图像分割建模与目标检测

C. Chen, I. Stamos
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引用次数: 34

摘要

提出了一种快速、准确的城市场景距离图像分割算法。这些算法的利用是必不可少的预处理步骤的各种任务,包括3D建模,注册,或对象识别。分割模块的准确性对于这些高级任务的性能至关重要。本文提出了一种提取平面、光滑非平面和非光滑连通段的新算法。除了分割每个单独的范围图像外,我们的方法还合并了注册的分割图像。这就产生了与完整的大型城市场景的城市物体(如立面、窗户、天花板等)相对应的连贯片段。我们给出了一个室外场景(纽约市库珀联合大厦)和一个室内场景(纽约市中央车站)的实验结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Range Image Segmentation for Modeling and Object Detection in Urban Scenes
We present fast and accurate segmentation algorithms of range images of urban scenes. The utilization of these algorithms is essential as a pre-processing step for a variety of tasks, that include 3D modeling, registration, or object recognition. The accuracy of the segmentation module is critical for the performance of these higher-level tasks. In this paper, we present a novel algorithm for extracting planar, smooth non-planar, and non-smooth connected segments. In addition to segmenting each individual range image, our methods also merge registered segmented images. That results in coherent segments that correspond to urban objects (such as facades, windows, ceilings, etc.) of a complete large scale urban scene. We present results from experiments of one exterior scene (Cooper Union building, NYC) and one interior scene (Grand Central Station, NYC).
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