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首页> 外文期刊>Cancer biomarkers: section A of Disease markers >Sonohistology - ultrasonic tissue characterization for prostate cancer diagnostics.
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Sonohistology - ultrasonic tissue characterization for prostate cancer diagnostics.

机译:超声组织学-用于前列腺癌诊断的超声组织表征。

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摘要

A computer-aided diagnostic system for imaging prostate cancer has been developed in order to supplement today's conventional methods for the early detection of prostate carcinoma. The system is based on analysis of the spectral content of radiofrequency ultrasonic echo data in combination with evaluations of textural, contextual, morphological and clinical features in a multiparameter approach. A state-of-the-art, non-linear classifier, the so-called adaptive network-based fuzzy inference system, is used for higher-order classification of the underlying tissue-describing parameters. The system has been evaluated on radio-frequency ultrasound data originating from 100 patients using histological specimens obtained after prostatectomy as the gold standard. Leave-one-out cross-validation over patient data sets results in areas under the ROC curve of 0.86 +/- 0.01 for hypoechoic and hyperechoic tumors and of 0.84 +/- 0.02 for isoechoic tumors, respectively.
机译:为了补充当今用于早期检测前列腺癌的常规方法,已经开发了用于对前列腺癌成像的计算机辅助诊断系统。该系统基于对射频超声回波数据的频谱内容的分析,并结合多参数方法对纹理,背景,形态和临床特征的评估。先进的非线性分类器,即所谓的基于自适应网络的模糊推理系统,用于对潜在的组织描述参数进行高阶分类。使用前列腺切除术后获得的组织学标本作为金标准,对源自100例患者的射频超声数据进行了评估。对患者数据集进行一劳永逸的交叉验证后,低回声和高回声肿瘤的ROC曲线下面积分别为0.86 +/- 0.01,等回声肿瘤的ROC曲线下面积分别为0.84 +/- 0.02。

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