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A novel hyperspectral unmixing model based on multilayer NMF with Hoyer's projection

机译:基于多层NMF与Hoyer投影的新型高光谱解密模型

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摘要

Hyperspectral remote sensing is an important earth observation method with wide application. But the low spatial resolution of hyperspectral images makes it difficult to distinguish the ground objects. The hyperspectral image unmixing is a task to estimate the spectral signatures and corresponding fractional abundances. However, the unmixing speed and efficiency are still limited by traditional structures. In this paper, a novel multilayer nonnegative matrix factorization framework is proposed with Hoyer's projector, called HP-MLNMF. The well-known framework, multilayer nonnegative factorization (MLNMF), is completely restructured and enhanced by introducing the Hoyer's projector to provide the iteration directivity of the structure in the unmixing process. Besides, a novel sparse constraint to spectral signatures suitable for this structure is found as l(1/4)-norm based on some experimental discussions. Moreover, the l(p)-norm is utilized to find the possible sparest solution for abundance terms. Finally, HP-MLNMF is compared with some representative and state-of-art methods on synthetic and real-world hyperspectral image datasets. Experiments indicate that our method performances well in most cases. (C) 2021 Elsevier B.V. All rights reserved.
机译:高光谱遥感是具有广泛应用的重要地球观测方法。但是高光谱图像的低空间分辨率使得难以区分地对象。 Hyperspectral Image Unbixing是估计光谱签名和相应的分数丰度的任务。然而,解混速度和效率仍然受到传统结构的限制。本文采用了HP-MLNMF的Hoyer投影仪提出了一种新的多层非负矩阵分解框架。通过引入Hoyer的投影仪来完全重组和增强了众所周知的框架,多层非负面分解(MLNMF),通过引入霍尔的投影仪来提供解密过程中结构的迭代方向性。此外,一个新的稀疏约束成适合于该结构的光谱特征被发现为L(1/4)的基础上的一些实验讨论范数。此外,L(p)-norm用于找到丰富术语的可能的尖锐解决方案。最后,将HP-MLNMF与综合和现实世界高光谱图像数据集进行了一些代表性和最先进的方法。实验表明,在大多数情况下,我们的方法表现得很好。 (c)2021 Elsevier B.v.保留所有权利。

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