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      Physiological time-series analysis: what does regularity quantify?

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          Abstract

          Approximate entropy (ApEn) is a recently developed statistic quantifying regularity and complexity that appears to have potential application to a wide variety of physiological and clinical time-series data. The focus here is to provide a better understanding of ApEn to facilitate its proper utilization, application, and interpretation. After giving the formal mathematical description of ApEn, we provide a multistep description of the algorithm as applied to two contrasting clinical heart rate data sets. We discuss algorithm implementation and interpretation and introduce a general mathematical hypothesis of the dynamics of a wide class of diseases, indicating the utility of ApEn to test this hypothesis. We indicate the relationship of ApEn to variability measures, the Fourier spectrum, and algorithms motivated by study of chaotic dynamics. We discuss further mathematical properties of ApEn, including the choice of input parameters, statistical issues, and modeling considerations, and we conclude with a section on caveats to ensure correct ApEn utilization.

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          Author and article information

          Journal
          Am J Physiol
          The American journal of physiology
          American Physiological Society
          0002-9513
          0002-9513
          Apr 1994
          : 266
          : 4 Pt 2
          Affiliations
          [1 ] Department of Medicine, Beth Israel Hospital, Boston, Massachusetts 02215.
          Article
          10.1152/ajpheart.1994.266.4.H1643
          8184944
          6b27da67-787e-4ab6-b7d2-f4590bb488e5
          History

          NASA Discipline Cardiopulmonary,Non-NASA Center
          NASA Discipline Cardiopulmonary, Non-NASA Center

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