首页> 外文期刊>Geoscience and Remote Sensing Letters, IEEE >A New Method to Change Illumination Effect Reduction Based on Spectral Angle Constraint for Hyperspectral Image Unmixing
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A New Method to Change Illumination Effect Reduction Based on Spectral Angle Constraint for Hyperspectral Image Unmixing

机译:基于光谱角度约束的高光谱图像分解中降低照明效果的新方法

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摘要

Within the framework of the unmixing of hyperspectral images, the pixel mixture is a difficult problem to solve. This difficulty comes from several outliers which seriously affect the reliability of spectral unmixing results. The illumination change effect, where the image does not reflect the true appearance of the scene, in many cases due to shadow facts, is considered to be one of the most important outliers. The present work proposes a new approach called Spectral Angle Measure-based Spectral Unmixing which uses the spectral angle constraint for abundance quantification. The major benefit of this approach is its ability to take advantage of the geometric properties of the Spectral Angle Measure technique to estimate abundance quantification independently of the amplitude (magnitude) of the Endmembers spectral signatures, using only spectral angle measures. As a consequence, a significant reduction in spectral unmixed error corresponding to the spectral similarity within-class confusion is obtained. A second benefit concerns physical constraints which are respected. The experiment was conducted using simulated and real images to validate our approach and to compare it with a well known statistical one.
机译:在高光谱图像的非混合框架内,像素混合是一个难以解决的问题。这个困难来自几个异常值,这些异常值严重影响光谱分解结果的可靠性。在许多情况下,由于阴影事实,导致图像无法反映场景真实外观的照明变化效果被认为是最重要的离群值之一。本工作提出了一种新方法,称为基于光谱角度测量的光谱分解,该方法使用光谱角度约束进行丰度量化。这种方法的主要优点是它能够利用光谱角测量技术的几何特性,仅使用光谱角测量来独立于末端成员光谱特征的幅度(大小)来估计丰度量化。结果,对应于类内混淆的频谱相似性的频谱未混合误差得到了显着降低。第二个好处是要遵守的物理约束。实验是使用模拟和真实图像进行的,以验证我们的方法并将其与众所周知的统计方法进行比较。

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