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Functional recognition imaging using artificial neural networks: applications to rapid cellular identification via broadband electromechanical response

机译:使用人工神经网络的功能识别成像:通过宽带机电响应在快速细胞识别中的应用

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摘要

Functional recognition imaging in scanning probe microscopy (SPM) using artificial neural network identification is demonstrated. This approach utilizes statistical analysis of complex SPM responses at a single spatial location to identify the target behavior, which is reminiscent of associative thinking in the human brain, obviating the need for analytical models. We demonstrate, as an example of recognition imaging, rapid identification of cellular organisms using the difference in electromechanical activity over a broad frequency range. Single-pixel identification of model Micrococcus lysodeikticus and Pseudomonas fluorescens bacteria is achieved, demonstrating the viability of the method.
机译:证明了使用人工神经网络识别的扫描探针显微镜(SPM)中的功能识别成像。这种方法利用对单个空间位置上的复杂SPM响应的统计分析来识别目标行为,这使人联想到大脑中的联想思维,从而消除了对分析模型的需求。作为识别成像的一个例子,我们证明了在广泛的频率范围内利用机电活动的差异快速识别细胞生物。可以实现模型的溶血微球菌和荧光假单胞菌细菌的单像素鉴定,证明了该方法的可行性。

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