首页> 外文会议>Engineering in Medicine and Biology Society, 1998. Proceedings of the 20th Annual International Conference of the IEEE >An effective algorithm for quick fractal analysis of movement biosignals in ambulatory monitoring
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An effective algorithm for quick fractal analysis of movement biosignals in ambulatory monitoring

机译:动态监测中动态生物信号的快速分形分析的有效算法

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The problem of numerically classifying patterns, of crucial importance in the biomedical field, is here faced by means of their fractal dimension. A new simple algorithm was developed to characterise biomedical monodimensional signals avoiding computing expensive methods, generally required by the classical approach of the fractal theory. The algorithm produces a number related to the geometric behaviour of the pattern providing information on the studied phenomenon. The results are independent of signal amplitude and exhibit a fractal measure ranging from 1 to 2 for monotonically going forwards monodimensional curves, in accordance with theory. Accurate calibration and qualification were accomplished by analysing basic waveforms. Further studies concerned the biomedical field with special reference to gait analysis: so far, well controlled movements such as walking, going up and downstairs and running, have been investigated. Controlled conditions of the test environment guaranteed the necessary repeatability and the accuracy of the practical experiments in setting up the methodology. The algorithm showed good performance in classifying the considered simple movements in the selected sample of normal subjects. As a result, a system for an effective on-line movement correlation with other long term monitored variables such as blood pressure, ECG, etc., has been patented by the Italian National Research Council.
机译:在数字生物分类领域中,在生物医学领域中至关重要的问题,是通过它们的分形维数来解决的。开发了一种新的简单算法来表征生物医学一维信号,从而避免了计算所需的分形理论的经典方法通常需要的昂贵方法。该算法产生与图案的几何行为有关的数字,从而提供有关所研究现象的信息。根据理论,结果与信号振幅无关,并且对于单调向前的一维曲线,其分形测度范围为1到2。准确的校准和鉴定是通过分析基本波形来完成的。进一步的研究涉及生物医学领域,特别涉及步态分析:到目前为止,已经对诸如步行,上楼和下楼以及跑步等控制良好的运动进行了研究。测试环境的受控条件确保了必要的可重复性以及设置方法学时实际实验的准确性。该算法在对正常受试者的所选样本中考虑的简单运动进行分类中显示出良好的性能。因此,意大利国家研究委员会已为该系统与其他长期监测变量(例如血压,ECG等)进行有效的在线运动关联的系统申请了专利。

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