| Literature DB >> 33286466 |
Sebastian Żurek1, Waldemar Grabowski1, Klaudia Wojtiuk1, Dorota Szewczak1, Przemysław Guzik2, Jarosław Piskorski1.
Abstract
Relative consistency is a notion related to entropic parameters, most notably to Approximate Entropy and Sample Entropy. It is a central characteristic assumed for e.g., biomedical and economic time series, since it allows the comparison between different time series at a single value of the threshold parameter r. There is no formal proof for this property, yet it is generally accepted that it is true. Relative consistency in both Approximate Entropy and Sample entropy was first tested with the M I X process. In the seminal paper by Richman and Moorman, it was shown that Approximate Entropy lacked the property for cases in which Sample Entropy did not. In the present paper, we show that relative consistency is not preserved for M I X processes if enough noise is added, yet it is preserved for another process for which we define a sum of a sinusoidal and a stochastic element, no matter how much noise is present. The analysis presented in this paper is only possible because of the existence of the very fast NCM algorithm for calculating correlation sums and thus also Sample Entropy.Entities:
Keywords: relative consistency; sample entropy; time series analysis
Year: 2020 PMID: 33286466 PMCID: PMC7517231 DOI: 10.3390/e22060694
Source DB: PubMed Journal: Entropy (Basel) ISSN: 1099-4300 Impact factor: 2.524
Figure 1A few examples of (left panel) and (right panel) processes. The level of distortion of the underlying deterministic signal increases from top () panels to the bottom ones ().
Figure 2In this figure, entropy profiles of the process calculated for embedding are presented. Each line corresponds to different p—starting from with step . The inset presents the close up of crosses between entropy profiles for and in linear scale.
Crosses between entropy profiles for the process.
| Crossing Lines |
|
|
|
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|---|---|---|---|---|
| p0.7, p1.0 | 1.82 | 0.2565933 | 2.14 | 0.1591130 |
| p0.8, p0.9 | 1.50 | 0.3900531 | 2.30 | 0.1206111 |
| p0.8, p1.0 | 1.40 | 0.4402257 | 2.26 | 0.1298239 |
| p0.9, p1.0 | 1.30 | 0.4964603 | 2.24 | 0.1344648 |
Figure 3In this figure entropy profiles of process calculated for embedding are presented. Each line corresponds to different —starting from with step . The lowest value corresponds to .
Figure 4Relative consistency region for the and processes for and . The region for has been smoothed by natural splines to interpolate the values between measured points.