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Neural networks and higher order spectra for breast cancer detection

机译:神经网络和乳腺癌检测的高阶光谱

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The research work contained in this paper is concerned with the use of higher order spectral estimation techniques for the derivation of the parameters of two dimensional autoregressive (AR) models. The specific application of the developed method is in mammography, an area in which it is very difficult to discern the appropriate features. The required segmentation of such 2-D random fields is effected through the additional stage of a neural network having as inputs the extracted autoregressive parameters. The results show significant discriminating gains through such techniques. The directionality of the cumulant space has been observed to influence the AR parameter estimation and this forms another area for examination.
机译:本文中包含的研究工作涉及使用高阶光谱估计技术来推导二维自回转性(AR)模型的参数。开发方法的具体应用是乳房X光检查,该区域是非常难以辨别适当的特征。这种二维随机字段的所需分割通过神经网络的附加阶段实现,其具有提取的自回归参数的输入。结果通过这些技术显示出显着的辨别性增益。已经观察到累积空间的方向性来影响AR参数估计,并且这形成了另一个检查区域。

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