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Compressive sensing with a block-strategy for fast image acquisition

机译:用块策略进行压缩感应,用于快速图像采集

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Compressive sensing is a recent technique that was developed for the reconstruction of large signals from a small number of measurements. It relies on the assumption that the signal to recover is sparse, and the performance of the reconstruction is depending on the level of sparsity. However, in practical case the sparsity of the image to recover is unknown and it is then difficult to estimate the number of measurements necessary to reconstruct the image with a satisfying quality. In this study, we examined a strategy where the image is reconstructed by CS in two steps. A first step with a small number of measurements to estimate the number of points needed, and a second step for the final reconstruction. In addition, we investigated the benefits to create a partition of the image of interest to estimate locally the number of measurements needed for the reconstruction. We demonstrated that our strategy could be used to reconstruct images presenting a PSNR similar to the one obtained with the conventional method, but with fewer measurements.
机译:压缩感测是最近的技术,用于从少量测量开始重建大信号。它依赖于假设信号恢复的信号稀疏,并且重建的性能取决于稀疏性的水平。然而,在实际情况下,图像恢复的稀疏性未知,然后难以估计以满足质量重建图像所需的测量次数。在这项研究中,我们检查了由CS重建两步的图像的策略。具有少量测量的第一步,以估计所需的点数,以及最终重建的第二步。此外,我们调查了创建感兴趣的图像分区的益处,以便在本地估计重建所需的测量数。我们证明,我们的策略可用于重建呈现与传统方法获得的PSNR类似的图像,但测量较少。

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