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Optimizing circular ring arrays for forward-looking ivus imaging

机译:优化圆环阵列以进行前瞻性静脉成像

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摘要

Forward-looking (FL) catheter-based imaging systems are highly desirable for guiding interventions in intravascular ultrasound (IVUS) applications. One of the main challenges of array-based FL-IVUS systems is the large channel count, which results in increased system complexity. Synthetic phased-array processing with a reduced firing count simplifies the front-end and, hence, can enable 3-D real-time imaging. Recently, we have investigated dual-ring arrays suitable for IVUS imaging, in which the two concentric circular arrays are used separately as transmit (Tx) and receive (Rx) arrays. In this study, we present different optimized array designs based on dual and single circular rings which are suitable for synthetic phased-array processing with a reduced number of firings. To obtain an optimal firing set that produces low side lobes in the wideband response, we use a simulated annealing algorithm. In the simulations, we use 1.2-mm-diameter array configurations with 64 Tx and 58 Rx elements, a center frequency of 20 MHz and fractional bandwidths of 50% and 80%. The results show that optimized dual-ring arrays provide 8 dB improvements in peak near side-lobe level with no widening in the main lobe width when compared with full and other sparse co-arrays.
机译:基于前瞻性(FL)导管的成像系统非常需要用于指导血管内超声(IVUS)应用中的干预措施。基于阵列的FL-IVUS系统的主要挑战之一是通道数量大,这导致系统复杂性增加。减少发射次数的合成相控阵处理简化了前端,因此可以实现3D实时成像。最近,我们研究了适用于IVUS成像的双环阵列,其中两个同心圆阵列分别用作发射(Tx)和接收(Rx)阵列。在这项研究中,我们提出了基于双圆环和单圆环的不同优化阵列设计,这些设计适用于减少点火次数的合成相控阵处理。为了获得在宽带响应中产生低旁瓣的最佳触发集,我们使用了模拟退火算法。在仿真中,我们使用直径为1.2mm的阵列配置,其中包含64个Tx和58个Rx元素,中心频率为20 MHz,分数带宽为50%和80%。结果表明,与全阵列和其他稀疏协同阵列相比,优化的双环阵列在旁瓣电平附近的峰值提供了8 dB的改善,而主瓣宽度没有扩大。

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