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Programmable ultrasound color flow system.

机译:可编程的超声彩色流系统。

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Ultrasound color flow systems are widely used in medical imaging because these are safe, noninvasive, and relatively inexpensive and displays images in real time. However to meet the real time requirement, these systems have been built with fixed function hardware, i.e., specialized electronic boards. This hardwired approach hinder the development of innovative algorithms to enhance the image quality and developing new applications to improve the diagnostic capability since incorporating a new application/algorithm is quite expensive, requiring redesigns ranging from hardware chips up to complete boards or some times even the complete system. On the other hand, a programmable system could be reprogrammed to quickly adapt to new tasks and offer advantages, such as reducing costs and the time-to-market of new ideas. Despite these benefits, a completely programmable color flow system that meets the real-time requirement has not been possible due to the limited computing power, inadequate data flow bandwidth or topology, algorithms not optimized for the architecture of programmable processors. This research has addressed these issues by developing a multiprocessor architecture capable of handling the computation and data flow requirements for a real-time system utilizing new generation VLIW processors, and by designing efficient ultrasound algorithms tightly integrated with the underlying architecture.; These new generation VLIW processors can deliver increased computing performance through on-chip and data-level parallelism. Even with such a flexible and powerful architecture, to achieve good performance necessitates the careful design and mapping of algorithms that can make good use of the available parallelism. We developed several algorithm-mapping techniques for the efficient implementation of ultrasound algorithms utilizing both on-chip and data-level parallelism. We then designed a low-cost, high-performance multiprocessor architecture capable of meeting the realtime requirements of the ultrasound color flow system. To demonstrate this multiprocessor architecture and algorithms meet the real-time requirements, we developed a multiprocessor simulation environment with a board-level VHDL simulator. Our simulation results indicate that the two-board system with 4 MAP1000s on each board is capable of supporting all the ultrasound color flow system requirements. Thus, we have demonstrated that a fully programmable ultrasound system can be developed with the reasonable number of programmable processors.
机译:超声彩色流系统被广泛用于医学成像,因为它们安全,无创且相对便宜,并且可以实时显示图像。但是,为了满足实时要求,这些系统是用固定功能的硬件即专用电子板构建的。这种硬连线的方法阻碍了创新算法的开发,以提高图像质量,并阻碍了新应用程序的开发,以提高诊断能力,因为合并新的应用程序/算法非常昂贵,需要重新设计,从硬件芯片到完整的板甚至有时甚至是整个系统。另一方面,可以对可编程系统进行重新编程,以快速适应新任务并提供优势,例如降低成本并缩短新创意的上市时间。尽管有这些好处,但由于计算能力有限,数据流带宽或拓扑不足,无法针对可编程处理器体系结构进行优化的算法,无法满足实时要求的完全可编程的色彩流系统。这项研究通过开发一种多处理器体系结构解决了这些问题,该体系结构能够处理利用新一代VLIW处理器的实时系统的计算和数据流需求,以及通过设计与基础体系结构紧密集成的高效超声算法。这些新一代的VLIW处理器可通过片上和数据级并行性提供更高的计算性能。即使具有如此灵活而强大的体系结构,也要获得良好的性能,就必须仔细设计和映射可充分利用可用并行性的算法。我们开发了几种算法映射技术,以利用芯片上和数据级并行性有效地实现超声算法。然后,我们设计了一种低成本,高性能的多处理器体系结构,能够满足超声彩色流系统的实时要求。为了演示这种多处理器体系结构和算法满足实时要求,我们开发了带有板级VHDL模拟器的多处理器仿真环境。我们的仿真结果表明,每块板上带有4个MAP1000的两板系统能够满足所有超声彩色流系统要求。因此,我们证明了可以使用合理数量的可编程处理器来开发完全可编程的超声系统。

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