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A Fully Programmable Computing Architecture for Medical Ultrasound Machines

机译:医用超声波机器的完全可编程计算架构

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摘要

Application-specific ICs have been traditionally used to support the high computational and data rate requirements in medical ultrasound systems, particularly in receive beamforming. Utilizing the previously developed efficient front-end algorithms, in this paper, we present a simple programmable computing architecture, consisting of a field-programmable gate array (FPGA) and a digital signal processor (DSP), to support core ultrasound signal processing. It was found that 97.3% and 51.8% of the FPGA and DSP resources are, respectively, needed to support all the front-end and back-end processing for B-mode imaging with 64 channels and 120 scanlines per frame at 30 frames/s. These results indicate that this programmable architecture can meet the requirements of low- and medium-level ultrasound machines while providing a flexible platform for supporting the development and deployment of new algorithms and emerging clinical applications.
机译:传统上,专用IC已被用来支持医疗超声系统(尤其是接收波束成形)中对计算和数据速率的高要求。利用先前开发的高效前端算法,在本文中,我们提出了一种简单的可编程计算架构,该架构由现场可编程门阵列(FPGA)和数字信号处理器(DSP)组成,以支持核心超声信号处理。结果发现,分别需要97.3%和51.8%的FPGA和DSP资源来支持B模式成像的所有前端和后端处理,以每帧30帧/秒的速度进行64通道和120扫描线的B模式成像。这些结果表明,该可编程体系结构可以满足低级和中级超声仪的要求,同时提供灵活的平台来支持新算法和新兴临床应用的开发和部署。

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