Fusion of color and depth information for image segmentation

Jan Kristanto Wibisono, H. Hang
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引用次数: 4

Abstract

The goal of this research is to fuse color and depth information to generate good image segmentation. The image segmentation topic has been studied for several decades. But only recently the use of depth data becomes popular due to the wide spread of affordable and accessible depth cameras such as Microsoft Kinect. The availability of depth information opens up new opportunities for image segmentation. Many methods have developed on color image segmentation over the years. Only recently, several papers are published on image segmentation using both the depth information and the color information. In this research, we focus on how to combine the depth and color information to improve the state of art color image segmentation methods. We adopt a few existing schemes and fuse their outputs to produce the final results. We exploit the planar information to improve the color segmentation. The result is quite satisfactory on both human perception and objective measures.
融合颜色和深度信息的图像分割
本研究的目标是融合颜色和深度信息,以产生良好的图像分割。图像分割这个课题已经研究了几十年。但直到最近,深度数据的使用才开始流行起来,因为微软Kinect等价格实惠且易于使用的深度相机广泛普及。深度信息的可用性为图像分割提供了新的机会。近年来,在彩色图像分割方面出现了许多新的方法。直到最近,才有几篇论文同时使用深度信息和颜色信息进行图像分割。在本研究中,我们重点研究了如何将深度和颜色信息结合起来,以改进目前的彩色图像分割方法。我们采用一些现有的方案,并融合它们的输出来产生最终的结果。我们利用平面信息来改进颜色分割。结果在人的感知和客观测量上都是令人满意的。
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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