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首页> 外文期刊>International Journal of Wavelets, Multiresolution and Information Processing >FUSION OF SURVEILLANCE IMAGES IN INFRARED AND VISIBLE BAND USING CURVELET, WAVELET AND WAVELET PACKET TRANSFORM
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FUSION OF SURVEILLANCE IMAGES IN INFRARED AND VISIBLE BAND USING CURVELET, WAVELET AND WAVELET PACKET TRANSFORM

机译:利用曲线,小波和小波包变换融合红外可见波段中的监视图像

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摘要

This paper presents two methods for fusion of infrared (IR) and visible surveillance images. The first method combines Curvelet Transform (CT) with Discrete Wavelet Transform (DWT). As wavelets do not represent long edges well while curvelets are challenged with small features, our objective is to combine both to achieve better performance. The second approach uses Discrete Wavelet Packet Transform (DWPT), which provides multiresolution in high frequency band as well and hence helps in handling edges better. The performance of the proposed methods have been extensively tested for a number of multimodal surveillance images and compared with various existing transform domain fusion methods. Experimental results show that evaluation based on entropy, gradient, contrast etc., the criteria normally used, are not enough, as in some cases, these criteria are not consistent with the visual quality. It also demonstrates that the Petrovic and Xydeas image fusion metric is a more appropriate criterion for fusion of IR and visible images, as in all the tested fused images, visual quality agrees with the Petrovic and Xydeas metric evaluation. The analysis shows that there is significant increase in the quality of fused image, both visually and quantitatively. The major achievement of the proposed fusion methods is its reduced artifacts, one of the most desired feature for fusion used in surveillance applications.
机译:本文提出了两种融合红外(IR)和可见监视图像的方法。第一种方法结合了Curvelet变换(CT)和离散小波变换(DWT)。由于小波不能很好地代表长边,而曲线小波具有小特征,因此我们的目标是将两者结合起来以获得更好的性能。第二种方法使用离散小波包变换(DWPT),它也可以在高频段提供多分辨率,因此有助于更好地处理边缘。所提出方法的性能已针对多种多模式监视图像进行了广泛测试,并与各种现有的变换域融合方法进行了比较。实验结果表明,仅基于熵,梯度,对比度等(通常使用的标准)进行评估是不够的,因为在某些情况下,这些标准与视觉质量不一致。它还表明,Petrovic和Xydeas图像融合度量标准是IR和可见图像融合的更合适标准,因为在所有测试的融合图像中,视觉质量与Petrovic和Xydeas度量标准评估一致。分析表明,无论从视觉上还是从数量上,融合图像的质量都得到了显着提高。所提出的融合方法的主要成就是其伪影减少,这是监视应用中最需要的融合特征之一。

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