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Sparse representation based on multiscale bilateral filter for infrared image using compressed sensing

机译:基于多尺度双边滤波的红外图像稀疏表示的压缩感知

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Compressed sensing is an arisen and significant theory, which has been widely used in infrared image reconstruction and many methods based on compressed sensing have been proposed. However, the existing methods can hardly accurately reconstruct infrared images. Considering that the sparsity of an infrared image plays a crucial role in compressed sensing to accurately reconstruct image, this paper presents a new sparse representation (MBFSF) that integrates the multiscale bilateral filter with shearing filter to overcome the above disadvantage. Firstly, one approximation subband image and a series of detail subband images at different scales and directions are obtained by the MBFSF. Then, in view of the feature that the most information is preserved in the approximation subband image, the proposed method only measures the detail subband images and preserves the approximation subband image. Subsequently, a very sparse random measurement matrix is used for the measurement at the detail subband images to reduce the computation cost and storage of large random measurement matrices in compressed sensing. Finally, an accelerated iterative hard thresholding algorithm is employed to reconstruct the infrared image. Experimental results show that the proposed method has superior performance in terms of reconstruction accuracy and compares favorably with existing compressed sensing methods, which is an effective method in high-resolution infrared imaging based on compressed sensing.
机译:压缩传感是一个新兴的重要理论,已被广泛应用于红外图像重建中,并提出了许多基于压缩传感的方法。然而,现有方法几乎不能准确地重建红外图像。考虑到红外图像的稀疏性在压缩感知以准确重建图像中起着至关重要的作用,本文提出了一种新的稀疏表示(MBFSF),它将多尺度双边滤波器与剪切滤波器集成在一起,克服了上述缺点。首先,通过MBFSF获得一个在不同比例和方向的近似子带图像和一系列细节子带图像。然后,鉴于在近似子带图像中保留了最多信息的特征,该方法仅测量细节子带图像并保留近似子带图像。随后,将非常稀疏的随机测量矩阵用于细节子带图像的测量,以减少计算成本和压缩传感中大型随机测量矩阵的存储。最后,采用加速迭代硬阈值算法重建红外图像。实验结果表明,该方法在重建精度上具有优越的性能,与现有的压缩传感方法相比具有优势,是一种基于压缩传感的高分辨率红外成像有效方法。

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