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A new wavelet-based multi-focus image fusion technique using method noise and anisotropic diffusion for real-time surveillance application

机译:一种新的基于小波的多聚焦图像融合技术,使用方法噪声和各向异性扩散进行实时监测应用

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This paper presents a new wavelet-based multi-focus image fusion approach using method noise and anisotropic diffusion for two separate cases, i.e., with and without a reference image. It is specifically designed for real-time surveillance applications. It is a multi-step image fusion approach. Firstly, stationary wavelet transform (SWT) is performed to get low and high-frequency coefficients. Secondly, the input images' LL bands are fused using average operation. The rest of the respective bands are fused using a new correlation coefficient (CC) based fusion strategy using the threshold value calculated by structural similarity index metric (SSIM). Then inverse SWT is performed to reconstruct the fused coefficients. Thirdly, anisotropic diffusion-based method noise thresholding is introduced to recover the unprocessed and still damaged input images' components. Finally, the proposed approach's performance has experimented with various qualitative (visual perception) and quantitative factors (performance metrics). The experimental outcomes show that the proposed approach generates fine edges, high visual quality, high clarity of objects, and less degradation. The proposed multi-step hybrid technique is implemented to generate high-quality fused images. The experimental outcomes verify the achievement of the proposed approach.
机译:本文介绍了一种新的基于小波的多聚焦图像融合方法,使用方法噪声和各向异性扩散两个单独的情况,即,有和没有参考图像。它专门用于实时监控应用。它是一种多步图像融合方法。首先,执行静止小波变换(SWT)以获得低频和高频系数。其次,输入图像'LL频带使用平均操作融合。使用由结构相似度指数度量(SSIM)计算的阈值,使用基于基于相关系数(CC)的融合策略的新相关系数(CC)的融合策略来融合。然后执行逆SWT以重建融合系数。第三,引入了基于各向异性的扩散的方法噪声阈值阈值,以恢复未处理和仍然损坏的输入图像'组件。最后,拟议的方法的表现已经尝试了各种定性(视觉感知)和定量因素(性能指标)。实验结果表明,该方法产生了细边,高视觉质量,对象的高清晰度,降低了。实现所提出的多步混合技术以产生高质量的融合图像。实验结果验证了拟议方法的实现。

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