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Real-time full matrix capture for ultrasonic non-destructive testing with acceleration of post-processing through graphic hardware

机译:实时全矩阵捕获,用于超声无损检测,并通过图形硬件加速后处理

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摘要

Full matrix capture allows for the complete ultrasonic time domain signals for each transmit and receive element of a linear array probe to be retrieved. While it is more common to use full matrix capture to post-process data to allow for electronic steering, focusing and imaging after the initial inspection processes, due to the data-acquisition and performance limitations of the focusing algorithms real-time inspection systems are not yet common place. This paper investigates several algorithm optimisation techniques utilising standard in-expensive PC architecture with parallelisation undertaken by the graphic processing unit. This approach is further combined with several other software engineering optimisation techniques including threaded data-capture, the use of look-up tables and half-matrix implementation to produce a real-world inspection scenario for benchmark and performance analysis. Experimental results are presented indicating that high frame rates inclusive of data-acquisition and image render are achievable with 32 active transmit and receive elements. This approach is shown to offer significant performance advantages with low implementation and development costs.
机译:全矩阵捕获允许为线性阵列探头的每个发射和接收元件获取完整的超声时域信号。尽管更常见的是使用全矩阵捕获来对数据进行后处理,以允许在初始检查过程之后进行电子控制,聚焦和成像,但是由于聚焦算法的数据采集和性能限制,实时检查系统并不适用却很普通。本文研究了利用标准廉价PC架构并由图形处理单元进行并行化的几种算法优化技术。该方法还与其他几种软件工程优化技术相结合,包括线程数据捕获,使用查找表和半矩阵实现,以生成用于基准测试和性能分析的实际检查方案。实验结果表明,使用32个有效的发送和接收元件可以实现包括数据采集和图像渲染在内的高帧速率。事实证明,这种方法具有显着的性能优势,并且实现和开发成本低。

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