Department of Electrical Engineering, Center for Fast Ultrasound, Technical University of Denmark.
IEEE Trans Ultrason Ferroelectr Freq Control. 2012 Jul;59(7):1487-99. doi: 10.1109/TUFFC.2012.2349.
This paper describes the design and implementation of a versatile, open-architecture research data acquisition system using a commercially available medical ultrasound scanner. The open architecture will allow researchers and clinicians to rapidly develop applications and move them relatively easy to the clinic. The system consists of a standard PC equipped with a camera link and an ultrasound scanner equipped with a research interface. The ultrasound scanner is an easy-to-use imaging device that is capable of generating high-quality images. In addition to supporting the acquisition of multiple data types, such as B-mode, M-mode, pulsed Doppler, and color flow imaging, the machine provides users with full control over imaging parameters such as transmit level, excitation waveform, beam angle, and focal depth. Beamformed RF data can be acquired from regions of interest throughout the image plane and stored to a file with a simple button press. For clinical trials and investigational purposes, when an identical image plane is desired for both an experimental and a reference data set, interleaved data can be captured. This form of data acquisition allows switching between multiple setups while maintaining identical transducer, scanner, region of interest, and recording time. Data acquisition is controlled through a graphical user interface running on the PC. This program implements an interface for third-party software to interact with the application. A software development toolkit is developed to give researchers and clinicians the ability to utilize third-party software for data analysis and flexible manipulation of control parameters. Because of the advantages of speed of acquisition and clinical benefit, research projects have successfully used the system to test and implement their customized solutions for different applications. Three examples of system use are presented in this paper: evaluation of synthetic aperture sequential beamformation, transverse oscillation for blood velocity estimation, and acquisition of spectral velocity data for evaluating aortic aneurysms.
本文描述了一种使用市售医学超声扫描仪设计和实现的通用、开放式架构研究数据采集系统。开放式架构将允许研究人员和临床医生快速开发应用程序,并相对容易地将其推向临床应用。该系统由配备相机链接的标准 PC 和配备研究接口的超声扫描仪组成。超声扫描仪是一种易于使用的成像设备,能够生成高质量的图像。除了支持多种数据类型的采集,如 B 模式、M 模式、脉冲多普勒和彩色血流成像外,该设备还为用户提供了对成像参数的完全控制,如发射电平、激励波形、波束角度和焦点深度。可以从图像平面的感兴趣区域采集波束形成的 RF 数据,并通过简单按下按钮将其存储到文件中。出于临床试验和研究目的,当需要为实验数据集和参考数据集提供相同的图像平面时,可以捕获交错数据。这种数据采集形式允许在保持相同换能器、扫描仪、感兴趣区域和记录时间的情况下,在多个设置之间切换。数据采集通过在 PC 上运行的图形用户界面进行控制。该程序实现了一个接口,允许第三方软件与应用程序进行交互。开发了一个软件开发工具包,使研究人员和临床医生能够利用第三方软件进行数据分析和灵活地操作控制参数。由于采集速度快和临床效益高的优势,研究项目已经成功地使用该系统来测试和实施他们针对不同应用的定制解决方案。本文介绍了该系统的三个应用实例:合成孔径顺序波束形成的评估、血流速度估计的横向振荡以及评估主动脉瘤的频谱速度数据采集。