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首页> 外文期刊>Medical Physics >Treatment delivery software for a new clinical grade ultrasound system for thermoradiotherapy.
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Treatment delivery software for a new clinical grade ultrasound system for thermoradiotherapy.

机译:用于热放射疗法的新型临床级超声系统的治疗提供软件。

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摘要

A detailed description of a clinical grade Scanning Ultrasound Reflector Linear Array System (SURLAS) applicator was given in a previous paper [Med. Phys. 32, 230-240 (2005)]. In this paper we concentrate on the design, development, and testing of the personal computer (PC) based treatment delivery software that runs the therapy system. The SURLAS requires the coordinated interaction between the therapy applicator and several peripheral devices for its proper and safe operation. One of the most important tasks was the coordination of the input power sequences for the elements of two parallel opposed ultrasound arrays (eight 1.5 cm x 2 cm elements/array, array 1 and 2 operate at 1.9 and 4.9 MHz, respectively) in coordination with the position of a dual-face scanning acoustic reflector. To achieve this, the treatment delivery software can divide the applicator's treatment window in up to 64 sectors (minimum size of 2 cm x 2 cm), and control the power to each sector independently by adjusting the power output levels from the channels of a 16-channel radio-frequency generator. The software coordinates the generator outputs with the position of the reflector as it scans back and forth between the arrays. Individual sector control and dual frequency operation allows the SURLAS to adjust power deposition in three dimensions to superficial targets coupled to its treatment window. The treatment delivery software also monitors and logs several parameters such as temperatures acquired using a 16-channel thermocouple thermometry unit. Safety (in particular to patients) was the paramount concern and design criterion. Failure mode and effects analysis (FMEA) was applied to the applicator as well as to the entire therapy system in order to identify safety issues and rank their relative importance. This analysis led to the implementation of several safety mechanisms and a software structure where each device communicates with the controlling PC independently of the others. In case of a malfunction in any part of the system or a violation of a user-defined safety criterion based on temperature readings, the software terminates treatment immediately and the user is notified. The software development process consisting of problem analysis, design, implementation, and testing is presented in this paper. Once the software was finished and integrated with the hardware, the therapy system was extensively tested. Results demonstrated that the software operates the SURLAS as intended with minimum risk to future patients.
机译:在先前的论文[Med.Am.Chem.Soc。,1997,44,1959]中给出了临床等级的扫描超声反射器线性阵列系统(SURLAS)施加器的详细描述。物理32,230-240(2005)]。在本文中,我们专注于运行治疗系统的基于个人计算机(PC)的治疗提供软件的设计,开发和测试。 SURLAS需要在施药器和几个外围设备之间进行协调的相互作用,以使其正确且安全地运行。最重要的任务之一是协调两个平行对置超声阵列(八个1.5 cm x 2 cm单元/阵列,阵列1和2分别在1.9和4.9 MHz上工作)的元件的输入功率序列,与双面扫描声反射器的位置。为此,治疗传送软件可以将施药者的治疗窗口划分为最多64个扇区(最小尺寸为2 cm x 2 cm),并通过调整16个通道的功率输出电平来独立控制每个扇区的功率。通道射频发生器。该软件在阵列之间来回扫描时,将发生器输出与反射镜的位置进行协调。单独的扇区控制和双频操作使SURLAS可以在三个维度上调整功率沉积,以适应与其治疗窗口耦合的表面目标。治疗传送软件还监视和记录多个参数,例如使用16通道热电偶测温单元获得的温度。安全(特别是对患者而言)是最重要的关注点和设计标准。失效模式和效果分析(FMEA)应用于施药者以及整个治疗系统,以识别安全问题并对其相对重要性进行排名。这种分析导致了几种安全机制和软件结构的实现,其中每个设备独立于其他设备与控制PC通信。如果系统任何部分出现故障或基于温度读数违反了用户定义的安全标准,则软件会立即终止治疗并通知用户。本文介绍了由问题分析,设计,实现和测试组成的软件开发过程。一旦软件完成并与硬件集成,就对治疗系统进行了广泛的测试。结果表明,该软件按预期运行SURLAS,对未来患者的风险最小。

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