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Programmable ultrasound imaging using multimedia technologies: a next-generation ultrasound machine

机译:使用多媒体技术的可编程超声成像:下一代超声机器

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High computational and throughput requirements in modern ultrasound machines have restricted their internal design to algorithm-specific hardware with limited programmability. The authors have architected a programmable ultrasound processing system, Programmable Ultrasound Image Processor (PUIP), to facilitate engineering and clinical ultrasound innovations. Multiple high-performance multimedia processors were used to provide a computing power of 4 billion operations per second. Flexibility was achieved by making the system programmable and multimodal, e.g., B-mode, color flow, cine and Doppler data can be processed. They have successfully designed and implemented the PUIP to fit within an ultrasound machine. It provides a platform for rapid testing of new concepts in ultrasound processing and enables software upgrades for future technologies. Current and future clinical applications include extended fields of view, quantitative measurements, three-dimensional ultrasound reconstruction and visualization, adaptive persistence, speckle reduction, edge enhancement, image segmentation, and motion analysis. The PUIP is a significant step in the evolution of ultrasound machines toward more flexible and generalized systems bridging the gap between many innovative ideas and their clinical use in ultrasound machines.
机译:现代超声机器对计算和吞吐量的高要求已将其内部设计限制在算法专用的,可编程性有限的硬件上。作者设计了一种可编程超声处理系统,即可编程超声图像处理器(PUIP),以促进工程和临床超声创新。使用多个高性能多媒体处理器来提供每秒40亿次操作的计算能力。通过使系统可编程和实现多模态来实现灵活性,例如可以处理B模式,色流,电影和多普勒数据。他们已经成功地设计和实现了PUIP,以适合超声波机器。它提供了一个平台,可以快速测试超声处理中的新概念,并可以对未来技术进行软件升级。当前和将来的临床应用包括扩展的视野,定量测量,三维超声重建和可视化,适应性持久性,斑点减少,边缘增强,图像分割和运动分析。 PUIP是超声波机器向更灵活,更通用的系统发展的重要一步,弥合了许多创新理念与其在超声波机器中的临床应用之间的差距。

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