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Improved scatterer size estimation using backscatter coefficient measurements with coded excitation and pulse compression

机译:使用反向散射系数测量以及编码的激励和脉冲压缩来改进散射体尺寸估计

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摘要

Scatterer size estimates from ultrasonic backscatter coefficient measurements have been used to differentiate diseased tissue from normal. A low echo signal-to-noise ratio (eSNR) leads to increased bias and variance in scatterer size estimates. One way to improve the eSNR is to use coded excitation (CE). The normalized backscatter coefficient was measured from three tissue-mimicking phantoms by using CE and conventional pulsing (CP) techniques. The three phantoms contained randomly spaced glass beads with median diameters of 30, 45, and 82 μm, respectively. Measurements were made with two weakly focused, single-element transducers (f0=5 MHz and f0=10 MHz). For CE, a linear frequency modulated chirp with a time bandwidth product of 40 was used and pulse compression was accomplished by the use of a Wiener filter. Preliminary results indicated that improved estimation bias versus penetration depth was obtained by using CE compared to CP. The depth of penetration, where the accuracy of scatterer diameter estimates (absolute divergence <25%) were obtained with the 10 MHz transducer, was increased up to 50% by using CE versus CP techniques. In addition, for a majority of the phantoms, the increase in eSNR from CE resulted in a modest reduction in estimate variance versus depth of penetration.
机译:来自超声反向散射系数测量的散射体大小估计已用于区分病变组织与正常组织。低回波信噪比(eSNR)会导致散射体大小估计中的偏差和方差增加。改善eSNR的一种方法是使用编码激励(CE)。通过使用CE和常规脉冲(CP)技术从三个组织模拟体模测量归一化后向散射系数。三个体模包含随机间隔的玻璃珠,玻璃珠的中位直径分别为30、45和82μm。使用两个弱聚焦的单元素换能器(f0 = 5 MHz和f0 = 10 MHz)进行测量。对于CE,使用时间带宽积为40的线性调频线性调频脉冲,并通过使用Wiener滤波器完成脉冲压缩。初步结果表明,与CP相比,使用CE可获得更好的估计偏差与穿透深度的对比。通过使用CE与CP技术,可以将穿透深度(使用10 MHz传感器获得散射体直径估计的精度(绝对偏差<25%))提高到50%。另外,对于大多数体模,CE的eSNR的增加导致估计方差相对于穿透深度的适度降低。

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