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Pulse Pileup Correction of Signals From a Pyroelectric Sensor for Phase-Insensitive Ultrasound Computed Tomography

机译:脉冲堆叠校正来自热电传感器的电气传感器,用于相位不差异的超声波计算断层扫描

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This paper describes the application of a pulse pileup correction algorithm based on maximum likelihood estimation to simulated and experimentally acquired signals from a pyroelectric ultrasound sensor. The sensor forms part of a prototype phase-insensitive ultrasound computed tomography (piUCT) system for breast cancer detection that generates quantitative maps of acoustic attenuation. The effectiveness of the piUCT technique has been previously demonstrated through imaging of cylindrical, polyurethane phantoms. For the technique to be applied clinically, the system must be capable of measuring high acoustic attenuations (>30 dB) and completing a scan in a clinically acceptable time frame of approximately 5 min. High attenuations present a challenge because the sensor responds directly to acoustic power and therefore, an attenuation of 30 dB causes a drop in signal level of three orders of magnitude, resulting in a large dynamic range in the received signal set. Completion of a scan in 5 min requires a period between measurements shorter than the response time of the sensor, causing pyroelectric pulse pileup. The maximum likelihood estimation method recovers the amplitudes of closely spaced superimposed pyroelectric signals while improving the coefficient of variation of the measurement by a factor of two compared to direct pulse amplitude measurement, simultaneously increasing the maximum measurable attenuation and measurement rate of the system.
机译:本文介绍了脉冲堆叠校正算法的应用基于最大似然估计与来自热电超声传感器的模拟和实验获取信号的应用。该传感器形成了用于乳腺癌检测的原型相位性超声计算断层扫描(PEUCUC)系统的一部分,产生声学衰减的定量图。先前通过圆柱形聚氨酯分子的成像证明了基因技术的有效性。对于临床上应用的技术,系统必须能够测量高声学衰减(> 30dB)并在大约5分钟的临床上可接受的时间框架中完成扫描。高衰减呈现出挑战,因为传感器直接响应声功率,因此,30dB的衰减导致信号电平的三个级的下降,导致接收信号集中的大动态范围。在5分钟内完成扫描需要比传感器的响应时间短的测量期间,导致热电脉冲堆叠。最大似然估计方法恢复紧密间隔的叠加热电信号的幅度,同时将测量的变化系数与直接脉冲幅度测量相比提高了两倍,同时增加了系统的最大可测量衰减和测量速率。

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