A Classification-Based Algorithm for Building 3D Maps of Environmental Objects

A. Cuzzocrea, E. Mumolo, Alessandro Moro
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引用次数: 2

Abstract

In this paper, a method for building a 3D map of some objects detected in an indoor environment is presented. The pecularity of the proposed algorithm is that it works with a simple consumer-grade webcam. With the webcam, pictures of the environment are taken. The proposed method first extracts the regions which may contain an object from the pictures. The regions are then classified to identify the objects, further their pose and height are estimated. A 3D map of the environment is finally reconstructed where icons roughly resembling the object categories are added to the 3D map at the estimated object position and with the estimated height. Regions of Interest (ROIs) extraction is performed using Haar-like algorithm. Before classification, the images containing the ROIs are processed to extract the edges of the objects. Non relevant edges are removed using a novel fuzzy technique. Object classification is performed with a pseudo2D-HMM algorithm. Experimental results are presented for an office environments.
一种基于分类的环境物体三维地图构建算法
本文提出了一种在室内环境中对检测到的物体建立三维地图的方法。该算法的独特之处在于它适用于一个简单的消费级网络摄像头。通过网络摄像头,可以拍摄环境的照片。该方法首先从图像中提取可能包含目标的区域。然后对这些区域进行分类以识别物体,进一步估计它们的姿态和高度。最后重建环境的3D地图,其中在估计的物体位置和估计的高度将大致类似物体类别的图标添加到3D地图中。感兴趣区域(roi)的提取采用类haar算法。在分类之前,对包含roi的图像进行处理,提取目标的边缘。使用一种新的模糊技术去除不相关的边缘。使用pseudo2D-HMM算法进行对象分类。给出了在办公环境下的实验结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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