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SuperResolution-aided Recognition of Cytoskeletons in Scanning Probe Microscopy Images

机译:扫描探针显微镜图像中的细胞骨骼的超级化 - 辅助识别

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In this paper, we discuss the possibility to adopt SuperResolution (SR) methods as an important preparatory step to Pattern Recognition, so as to improve the accuracy of image content recognition and identification. Actually, SR mainly deals with the task of deriving a high-resolution image from one or multiple low resolution images of the same scene. The high-resolved image corresponds to a more precise image whose content is enriched with information hidden among the pixels of the original low resolution image(s), and corresponds to a more faithfully representation of the imaged scene. Such enriched content obviously represents a better sample of the scene which can be profitably used by Pattern Recognition algorithms. A real application scenario is discussed dealing with the recognition of cell skeletons in Scanning Probe Microscopy (SPM) single image SR. Results show that the SR allows us to detect and recognize important information barely visible in the original low-resolution image.
机译:在本文中,我们将讨论采用超高分辨率(SR)方法作为一项重要的准备步骤模式识别,从而提高图像内容识别和鉴定的准确性的可能性。其实,SR主要处理来自同一场景中的一个或多个低分辨率图像获得高分辨率图像的任务。高分辨的图像对应于更精确的图像,其内容富含原始低分辨率图像的像素(一个或多个)中隐藏的信息,并且对应于所成像的场景的更忠实地表示。这种富集的含量明显表示可有利使用的模式识别算法的场景的一个更好的样品。一个真正的应用场景中讨论交易在扫描探针显微镜(SPM)的单个图像SR识别细胞骨架。结果表明,SR使我们能够检测和识别原始的低分辨率图像中几乎不可见的重要信息。

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