DynPeak : An algorithm for pulse detection and frequency analysis in hormonal time series
Alexandre Vidal, Qinghua Zhang (IRISA / INRIA Rennes), Claire, M\'edigue (INRIA Rocquencourt), St\'ephane Fabre (PRC), Fr\'ed\'erique, Cl\'ement (INRIA Rocquencourt)

TL;DR
DynPeak is a robust algorithm designed to detect pulses and analyze frequency in hormonal time series, specifically LH secretion, accounting for sampling limitations, noise, and physiological pulse characteristics.
Contribution
The paper introduces a novel pulse detection algorithm tailored for LH time series, integrating endocrinological knowledge and synthetic data modeling to improve pulse interval estimation.
Findings
Effective detection of LH pulses in noisy, low-frequency data
Accurate estimation of inter-pulse intervals (IPI)
Identification of outliers in pulse frequency series
Abstract
The endocrine control of the reproductive function is often studied from the analysis of luteinizing hormone (LH) pulsatile secretion by the pituitary gland. Whereas measurements in the cavernous sinus cumulate anatomical and technical difficulties, LH levels can be easily assessed from jugular blood. However, plasma levels result from a convolution process due to clearance effects when LH enters the general circulation. Simultaneous measurements comparing LH levels in the cavernous sinus and jugular blood have revealed clear differences in the pulse shape, the amplitude and the baseline. Besides, experimental sampling occurs at a relatively low frequency (typically every 10 min) with respect to LH highest frequency release (one pulse per hour) and the resulting LH measurements are noised by both experimental and assay errors. As a result, the pattern of plasma LH may be not so clearly…
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