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使用非凸起的局部低等级和稀疏分离与空间光谱总变化规范化的高光谱图像否定
Chong Peng1, Yang Liu1, Kehan Kang1
1College of Computer Science and Technology, Qingdao University.
本研究引入了一种新的非凸式方法,用于强大的主要组件分析 (RPCA),以改善高光谱图像 (HSI) 消除噪音. 该方法提高了接近低级别和稀疏组件的准确性,以获得更清晰的HSI数据.
科学领域:
- 遥感 遥感 遥感 遥感
- 计算机视觉 计算机视觉
- 信号处理 信号处理
背景情况:
- 超光谱成像 (HSI) 生成具有潜在噪声的复杂数据.
- 强大的主要组件分析 (RPCA) 是用于HSI无声化的一种技术.
- 现有的RPCA方法在准确近似低级别和稀疏组件方面可能存在局限性.
研究的目的:
- 提出一种新的非凸 RPCA 方法,以改善 HSI 无声化.
- 在HSI组件中开发更准确的等级和列wise稀疏性的近似值.
- 为了增强废除的HSI的空间和光谱一致性.
主要方法:
- 使用对低级组件的日志确定数等级近似方法.
- 引入一个新的l2,log规范,用于列wise稀疏度近似.
- 开发一种高效的封闭式解决方案:l2,日志收缩运算机.
- 将空间光谱总变化规范化纳入非凸 RPCA 模型.
主要成果:
- 拟议的方法有效地消除了超光谱图像.
- 新的l2,日志收缩运算符为列wise稀疏性提供了一个有效的解决方案.
- 基于日志的非凸 RPCA 模型与空间光谱总变异增强了 HSI 质量.
- 在模拟和真实HSI上的实验验证实了该方法的有效性.
结论:
- 拟议的非凸 RPCA 方法在 HSI 拒绝方面取得了重大进展.
- 开发的l2,日志规范和收缩运算符是基于稀疏性的问题的有价值工具.
- 整合空间-频谱总变化可以提高恢复的HSI的整体流性和频谱一致性.
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