首页> 外文会议>International symposium on multispectral image processing and pattern recognition;MIPPR 2009 >Image Analysis of Placental Issues using Three-Dimensional Ultrasound and Color Power Doppler based on Support Vector Machine
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Image Analysis of Placental Issues using Three-Dimensional Ultrasound and Color Power Doppler based on Support Vector Machine

机译:基于支持向量机的三维超声和彩色多普勒对胎盘图像的图像分析

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With the development of medical science, three-dimensional ultrasound and color power Doppler tomography shooting placenta is widely used. To determine whether the fetus's development is abnormal or not is mainly through the analysis of the capillary's distribution of the obtained images which are shot by the Doppler scanner. In this classification process, we will adopt Support Vector Machine classifier. SVM achieves substantial improvements over the statistical learning methods and behaves robustly over a variety of different learning tasks. Furthermore, it is fully automatic, eliminating the need for manual parameter tuning and can solve the small sample problem wonderfully well. So SVM classifier is valid and reliable in the identification of placentas and is more accurate with the lower error rate.
机译:随着医学科学的发展,三维超声和彩色多普勒断层扫描拍摄胎盘得到了广泛的应用。确定胎儿发育是否异常主要是通过分析由多普勒扫描仪拍摄的获得图像的毛细管分布来进行的。在此分类过程中,我们将采用支持向量机分类器。 SVM对统计学习方法进行了实质性的改进,并且在各种不同的学习任务中表现出色。此外,它是全自动的,无需手动调整参数,可以很好地解决小样本问题。因此,支持向量机分类器在胎盘素的识别中是有效和可靠的,并且在错误率较低的情况下更加准确。

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