Adaptive enhancement of platforms above sea-level in infrared images based on clustering of wavelet coefficients

A. O. Karali, O. E. Okman, T. Aytaç
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引用次数: 0

Abstract

This study proposes an adaptive infrared image enhancement technique for platforms above sea-level based on clustering of wavelet coefficients. Feature vectors constructed from subband images are computed using discrete wavelet transform and similar feature vectors are grouped using clustering operation. Depending on the feature vectors, a weight is assigned to each cluster and these weights are used to compute gain matrices used to multiply wavelet coefficients for the enhancement of the original image. In the paper, enhancement results are presented and a comparison of the performance of the proposed algorithm is given through subjective tests with other well known frequency and histogram based enhancement techniques. The proposed algorithm outperforms previous ones in the truthfulness, detail visibility of the target, artificiality, and total quality criteria, while providing an acceptable computational load.
基于小波系数聚类的红外图像海平面以上平台自适应增强
提出了一种基于小波系数聚类的海平面以上平台自适应红外图像增强技术。利用离散小波变换计算子带图像构造的特征向量,并利用聚类运算对相似特征向量进行分组。根据特征向量,对每个聚类分配一个权值,这些权值用于计算增益矩阵,用于乘小波系数以增强原始图像。本文给出了增强结果,并通过主观测试与其他已知的基于频率和直方图的增强技术进行了性能比较。该算法在真实度、目标细节可见性、人为性和总质量标准方面优于以往的算法,同时提供了可接受的计算负荷。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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