作者
Zeki Yetgin
发表日期
2011/10/24
期刊
IEEE Transactions on Geoscience and Remote Sensing
卷号
50
期号
5
页码范围
1919-1929
出版商
IEEE
简介
In this paper, we propose a novel technique for unsupervised change detection of multitemporal satellite images using Gaussian mixture model (GMM), local gradual descent, and -means clustering. Data distribution of the difference image is first modeled by bimodal GMM with “changed” and “unchanged” components. The neighborhood data around each pixel form a sample and are modified by the so-called local gradual descent matrix (LGDM), values of which are descending from center toward outside. LGDM visits each sample and causes small variations in pixel values of the sample in an attempt to shift the sample toward the correct Gaussian component center in the feature space. Thus, LGDM decides how much modification to the current sample is necessary for true categorization of the current pixel by later -means. The motivation behind the proposed approach is twofold. First, a general method that …
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