Learning a Robust Local Manifold Representation for Hyperspectral Dimensionality Reduction

Local manifold learning has been successfully applied to hyperspectral dimensionality reduction in order to embed nonlinear and nonconvex manifolds in the data. Local manifold learning is mainly characterized by affinity matrix construction, which is composed of two steps: neighbor selection and com...

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Main Authors: Danfeng Hong, Naoto Yokoya, Xiao Xiang Zhu
Format: Article
Language:English
Published: IEEE 2017-01-01
Series:IEEE Journal of Selected Topics in Applied Earth Observations and Remote Sensing
Subjects:
Online Access:https://ieeexplore.ieee.org/document/7985008/
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spelling doaj-233590711a284d16a219c9d625e0d6072021-06-02T23:06:00ZengIEEEIEEE Journal of Selected Topics in Applied Earth Observations and Remote Sensing2151-15352017-01-011062960297510.1109/JSTARS.2017.26821897985008Learning a Robust Local Manifold Representation for Hyperspectral Dimensionality ReductionDanfeng Hong0Naoto Yokoya1Xiao Xiang Zhu2Remote Sensing Technology Institute (IMF), German Aerospace Center, Weßling, GermanyRemote Sensing Technology Institute (IMF), German Aerospace Center, Weßling, GermanyRemote Sensing Technology Institute (IMF), German Aerospace Center, Weßling, GermanyLocal manifold learning has been successfully applied to hyperspectral dimensionality reduction in order to embed nonlinear and nonconvex manifolds in the data. Local manifold learning is mainly characterized by affinity matrix construction, which is composed of two steps: neighbor selection and computation of affinity weights. There is a challenge in each step: First, the neighbor selection is sensitive to complex spectral variability due to nonuniform data distribution, illumination variations, and sensor noise; second, the computation of affinity weights is challenging due to highly correlated spectral signatures in the neighborhood. To address the two issues, in this paper, a novel manifold learning methodology based on locally linear embedding is proposed through learning a robust local manifold representation. More specifically, a hierarchical neighbor selection is designed to progressively eliminate the effects of complex spectral variability using joint normalization and to robustly compute affinity (or reconstruction) weights reducing multicollinearity via the refined neighbor selection. Additionally, an idea that combines spatial-spectral information is introduced into the proposed manifold learning methodology to further improve the robustness of affinity calculations. Classification is explored as a potential application for validating the proposed algorithm. The classification accuracy in the use of different dimensionality reduction methods is evaluated and compared, while two kinds of strategies are applied in selecting the training and test samples: random sampling and region-based sampling. Experimental results show the classification accuracy obtained by the proposed method is superior to those state-of-the-art dimensionality reduction methods.https://ieeexplore.ieee.org/document/7985008/Dimensionality reduction (DR)hyperspectral imagelocal manifold learning (LML)multicollinearitynonuniform data distribution
collection DOAJ
language English
format Article
sources DOAJ
author Danfeng Hong
Naoto Yokoya
Xiao Xiang Zhu
spellingShingle Danfeng Hong
Naoto Yokoya
Xiao Xiang Zhu
Learning a Robust Local Manifold Representation for Hyperspectral Dimensionality Reduction
IEEE Journal of Selected Topics in Applied Earth Observations and Remote Sensing
Dimensionality reduction (DR)
hyperspectral image
local manifold learning (LML)
multicollinearity
nonuniform data distribution
author_facet Danfeng Hong
Naoto Yokoya
Xiao Xiang Zhu
author_sort Danfeng Hong
title Learning a Robust Local Manifold Representation for Hyperspectral Dimensionality Reduction
title_short Learning a Robust Local Manifold Representation for Hyperspectral Dimensionality Reduction
title_full Learning a Robust Local Manifold Representation for Hyperspectral Dimensionality Reduction
title_fullStr Learning a Robust Local Manifold Representation for Hyperspectral Dimensionality Reduction
title_full_unstemmed Learning a Robust Local Manifold Representation for Hyperspectral Dimensionality Reduction
title_sort learning a robust local manifold representation for hyperspectral dimensionality reduction
publisher IEEE
series IEEE Journal of Selected Topics in Applied Earth Observations and Remote Sensing
issn 2151-1535
publishDate 2017-01-01
description Local manifold learning has been successfully applied to hyperspectral dimensionality reduction in order to embed nonlinear and nonconvex manifolds in the data. Local manifold learning is mainly characterized by affinity matrix construction, which is composed of two steps: neighbor selection and computation of affinity weights. There is a challenge in each step: First, the neighbor selection is sensitive to complex spectral variability due to nonuniform data distribution, illumination variations, and sensor noise; second, the computation of affinity weights is challenging due to highly correlated spectral signatures in the neighborhood. To address the two issues, in this paper, a novel manifold learning methodology based on locally linear embedding is proposed through learning a robust local manifold representation. More specifically, a hierarchical neighbor selection is designed to progressively eliminate the effects of complex spectral variability using joint normalization and to robustly compute affinity (or reconstruction) weights reducing multicollinearity via the refined neighbor selection. Additionally, an idea that combines spatial-spectral information is introduced into the proposed manifold learning methodology to further improve the robustness of affinity calculations. Classification is explored as a potential application for validating the proposed algorithm. The classification accuracy in the use of different dimensionality reduction methods is evaluated and compared, while two kinds of strategies are applied in selecting the training and test samples: random sampling and region-based sampling. Experimental results show the classification accuracy obtained by the proposed method is superior to those state-of-the-art dimensionality reduction methods.
topic Dimensionality reduction (DR)
hyperspectral image
local manifold learning (LML)
multicollinearity
nonuniform data distribution
url https://ieeexplore.ieee.org/document/7985008/
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AT xiaoxiangzhu learningarobustlocalmanifoldrepresentationforhyperspectraldimensionalityreduction
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