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Development of a multi-frequency system for medical applications of focused electrical impedance method (FIM) appropriate for developing countries

机译:开发用于发展中国家的聚焦电阻抗方法(FIM)的多频系统,适用于发展中国家

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Making diagnostic measurements available to the widely geographically spread populations in developing countries is a challenge which is unlikely to be met by the technology used in the west. Multi-frequency electrical impedance techniques are attractive in this context as the instrumentation is relatively simple and research has demonstrated application in cardiac and respiratory medicine and in the characterisation of epithelial tissues. The development of focused impedance measurement (FIM) techniques has potentially gone some way to overcome the complex spatial sensitivity distribution which has been one of the limiting factors in using electrical impedance techniques in diagnosis. This paper describes a simple low cost system based on FIM that can be maintained and repaired in the field by the researchers allowing the potential for electrical impedance based diagnostic technique in developing countries to be evaluated. The microcontroller based multi-frequency system for FIM uses synchronous demodulation which is implemented using IC components readily available in developing countries. The drive current was generated from a microcontroller at 16 different frequencies. A Howland V to I converter delivers current to the tissue. The peak value of the measured voltage signal is determined by a micro-processor controlled analogue synchronous peak detector. Measurements on resistive and reactive phantoms gave a resolution that would allow impedance changes reported in clinical studies (e.g. respiration, epithelial tissue characterization and abdominal fat thickness) to be measured with the system.
机译:使诊断测量提供给发展中国家的广泛地理上分散的人群是不可能由西方所用的技术,来满足一个挑战。多频电阻抗技术在这方面有吸引力,因为仪器相对简单,研究表明在心脏和呼吸内科和上皮组织的鉴定中的应用。的聚焦的阻抗测量(FIM)技术的发展已经潜在了一些方法来克服这一直是限制因素之一在诊断使用电阻抗技术的复杂的空间灵敏度分布。本文介绍了基于FIM一个简单的低成本系统,可以维护和研究人员允许在发展中国家进行评估基础的诊断技术,电阻抗的潜力在现场维修。为FIM的基于微控制器的多频系统使用其使用在发展中国家容易获得的集成电路组件实现同步解调。从在16个不同频率的微控制器中产生的驱动电流。使用Howland V到I转换器将电流输送到组织。所测量的电压信号的峰值是由微处理器控制的模拟同步峰值检测器来确定。上电阻和电抗测量幻影得到的分辨率,将允许阻抗在临床研究中报道的变化(例如呼吸,上皮组织表征和腹部脂肪厚度),以与该系统进行测量。

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