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MRF-Based Multiple Classifier System for Hyperspectral Remote Sensing Image Classification

机译:基于MRF的高光谱遥感图像分类多分类器系统

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Hyperspectral remote sensing image (HRSI) classification is a challenging problem because of its large amounts of spectral channels. Meanwhile, labeled samples for supervised classifier is very limited. The above two reasons often lead to unstable classification result and poor generalization capacity. Recent research has demonstrated the potential of multiple classifier system (MCS) for producing more accurate classification result. In addition, another vital aspect of HRSI classification is spatial contents. Markov random field (MRF), which takes the spatial dependence among neighborhood pixels based on the intensity field from observed data into consideration, is always adopted as an effective way to integrate the spatial information. In this paper, we proposed an effective framework for classifying HRSI image, called MRF-based MCS, which are based on the aforementioned two powerful algorithms. The proposed model is validated by multinomial logistic regression (MLR) classifier. Experimental results with hyperspectral images collected by the NASA Jet Propulsion Laboratory's Airborne Visible Infra-Red Imaging Spectrometer (AVIRIS) demonstrate that MRF-based MCS is a promising strategy in the context of hyperspectral image classification.
机译:高光谱遥感图像(HRSI)分类是一个具有挑战性的问题,因为它具有大量的光谱通道。同时,用于监督分类器的标记样本非常有限。以上两个原因经常导致分类结果不稳定和泛化能力差。最近的研究表明,多分类器系统(MCS)可以产生更准确的分类结果。另外,HRSI分类的另一个重要方面是空间内容。马尔可夫随机场(MRF)一直被认为是一种有效的方法来集成空间信息,该方法基于来自观测数据的强度场来考虑邻域像素之间的空间依赖性。在本文中,我们基于上述两种强大的算法,提出了一种有效的HRSI图像分类框架,称为基于MRF的MCS。所提出的模型通过多项式逻辑回归(MLR)分类器进行了验证。 NASA喷气推进实验室的机载可见红外成像光谱仪(AVIRIS)收集的高光谱图像的实验结果表明,基于MRF的MCS在高光谱图像分类的背景下是一种很有前途的策略。

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