English

Rapid parameter determination of discrete damped sinusoidal oscillations

Instrumentation and Detectors 2020-10-23 v1 Signal Processing Applied Physics Optics

Abstract

We present different computational approaches for the rapid extraction of the signal parameters of discretely sampled damped sinusoidal signals. We compare time- and frequency-domain-based computational approaches in terms of their accuracy and precision and computational time required in estimating the frequencies of such signals, and observe a general trade-off between precision and speed. Our motivation is precise and rapid analysis of damped sinusoidal signals as these become relevant in view of the recent experimental developments in cavity-enhanced polarimetry and ellipsometry, where the relevant time scales and frequencies are typically within the 110μ\sim1-10\,\mus and 1100\sim1-100MHz ranges, respectively. In such experimental efforts, single-shot analysis with high accuracy and precision becomes important when developing experiments that study dynamical effects and/or when developing portable instrumentations. Our results suggest that online, running-fashion, microsecond-resolved analysis of polarimetric/ellipsometric measurements with fractional uncertainties at the 10610^{-6} levels, is possible, and using a proof-of-principle experimental demonstration we show that using a frequency-based analysis approach we can monitor and analyze signals at kHz rates and accurately detect signal changes at microsecond time-scales.

Keywords

Cite

@article{arxiv.2010.11690,
  title  = {Rapid parameter determination of discrete damped sinusoidal oscillations},
  author = {Jim C. Visschers and Emma Wilson and Thomas Conneely and Andrey Mudrov and Lykourgos Bougas},
  journal= {arXiv preprint arXiv:2010.11690},
  year   = {2020}
}
R2 v1 2026-06-23T19:33:18.870Z