首页> 外文会议>Physics of Medical Imaging pt.3; Progress in Biomedical Optics and Imaging; vol.7 no.28 >Improved Diagnostics using Polarization Imaging and Artificial Neural Networks
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Improved Diagnostics using Polarization Imaging and Artificial Neural Networks

机译:使用偏振成像和人工神经网络改进诊断

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In recent years there has been an increasing interest in studying the propagation of polarized light in randomly scattering media. This paper presents a novel approach for cell and tissue imaging by using full Stokes imaging and for its improved diagnostics by using artificial neural networks (ANNs). Phantom experiments have been conducted using a prototyped Stokes polarization imaging device. Several types of phantoms, consisting of polystyrene latex spheres in various diameters, were prepared to simulate different conditions of epidermal layer of skin. Several sets of four images that contain not only the intensity, but also the polarization information were taken for analysis. Wavelet transforms are first applied to the Stokes components for initial feature analysis and extraction. Artificial neural networks (ANNs) are then used to extract diagnostic features for improved classification and prediction. The experimental results show that the classification performance using Stokes images is significantly improved over that using the intensity image only.
机译:近年来,人们对研究偏振光在随机散射介质中的传播越来越感兴趣。本文提出了一种通过使用完整的Stokes成像进行细胞和组织成像的新方法,并通过使用人工神经网络(ANN)对其诊断进行了改进。使用原型斯托克斯偏振成像设备进行了幻影实验。制备了几种类型的体模,它们由各种直径的聚苯乙烯乳胶球组成,以模拟皮肤表皮层的不同状况。拍摄了几组四个图像,这些图像不仅包含强度,还包含偏振信息,以进行分析。小波变换首先应用于Stokes组件,以进行初始特征分析和提取。然后使用人工神经网络(ANN)提取诊断特征以改进分类和预测。实验结果表明,与仅使用强度图像相比,使用Stokes图像的分类性能得到了显着改善。

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