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Comparison of super-resolution methods for quality enhancement of digital biomedical images

机译:用于数字生物医学图像质量增强的超分辨率方法的比较

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The problem of resolution enhancement has been recently attracted the image processing community both for its theoretical and applications relevance. Achieving an higher and higher resolution capability is the objective of imaging sensor technology, which is often paid in terms of high equipment costs. On the other hand, the advances in signal processing theory and equipment make solutions for resolution enhancement based on post-processing of low-resolutions acquisitions appealing. Some type of biomedical imaging systems, such as computer tomography or magnetic resonance, are specific examples that can benefit from super-resolution of images. In this paper, we review some advanced techniques available for single image super-resolution and propose a variation of one method based on sparse representations. Then, we compare the performance of each method when they are applied to the quality enhancement of low-resolution biomedical images.
机译:分辨率提高的问题近来已经吸引了图像处理社区的理论和应用方面的关注。实现越来越高的分辨率能力是成像传感器技术的目标,而成像传感器技术通常是在设备成本较高的情况下支付的。另一方面,信号处理理论和设备的进步为基于低分辨率采集的后处理的分辨率增强解决方案提供了吸引力。某些类型的生物医学成像系统(例如计算机断层扫描或磁共振)是可以从图像的超分辨率中受益的特定示例。在本文中,我们回顾了可用于单幅图像超分辨率的一些先进技术,并提出了一种基于稀疏表示的方法的变体。然后,我们比较了每种方法应用于低分辨率生物医学图像的质量增强时的性能。

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