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Breast cancer diagnosis based on ultrasound RF echo modeling and physician's level of confidence

机译:乳腺癌诊断基于超声波RF回声建模和医生的信心水平

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A number of researchers have shown that the ultrasound RF echo from tissue exhibits (1/f ) /sup /spl beta// characteristics and developed tissue characterization methods based on the fractal parameter of the received signal. In this paper a new model for the received ultrasound RF data has been proposed, namely the fractional differencing auto regressive moving-average (FARMA) model, whose parameters were investigated for their ability to differentiate between benign and malignant tumors. Along with the FARMA model parameters, the patient's age and the radiologist's pre-biopsy level of suspicion (LOS) were used as additional features to increase the characterization performance. 120 in vivo B-scan images obtained from 90 patients were used during the modeling and estimation procedures. The area under the receiver operator characteristics (ROC) curve yields a value of 0.8723, with a confidence interval of [0.8512, 0.8945], at a significance level of 0.05. These results indicate that the proposed tissue characterization method can be used as a second opinion to aid the radiologist decision criteria.
机译:许多研究人员表明,来自组织的超声RF回波(1 / f)/ sup /splβ//特性以及基于接收信号的分形参数的组织表征方法。在本文中,已经提出了一种接收的超声RF数据的新模型,即分数差异自动回归移动平均(FarmA)模型,其参数进行了调查,以便它们区分良性和恶性肿瘤的能力。除了农场模型参数之外,患者的年龄和放射科医师的活检疑虑(LOS)用作额外的特征,以提高表征性能。 120在建模和估算程序期间使用了90例患者获得的体内B扫描图像。接收器操作员特性(ROC)曲线下的该区域产生0.8723的值,其置信区间为[0.8512,0.8945],其显着性水平为0.05。这些结果表明,所提出的组织特征方法可以用作辅助放射科决定标准的第二种意见。

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