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Analytically exploiting noise correlations inside the feedback loop to improve locked-oscillator performance

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dc.contributor.author Sastrawan, J
dc.contributor.author Jones, C
dc.contributor.author Akhalwaya, I
dc.contributor.author Uys, H
dc.contributor.author Biercuk, MJ
dc.date.accessioned 2017-02-03T08:34:20Z
dc.date.available 2017-02-03T08:34:20Z
dc.date.issued 2016-08
dc.identifier.citation Sastrawan, J., Jones, C., Akhalwaya, I., Uys, H. and Biercuk, M.J. 2016. Analytically exploiting noise correlations inside the feedback loop to improve locked-oscillator performance. Physical Review E, 94(2), pp 022204 en_US
dc.identifier.issn 2470-0045
dc.identifier.uri http://journals.aps.org/pre/abstract/10.1103/PhysRevE.94.022204
dc.identifier.uri http://hdl.handle.net/10204/8924
dc.description Copyright: 2016 American Physical Society en_US
dc.description.abstract We introduce concepts from optimal estimation to the stabilization of precision frequency standards limited by noisy local oscillators. We develop a theoretical framework casting various measures for frequency standard variance in terms of frequency-domain transfer functions, capturing the effects of feedback stabilization via a time series of Ramsey measurements. Using this framework, we introduce an optimized hybrid predictive feedforward measurement protocol that employs results from multiple past measurements and transfer-function-based calculations of measurement covariance to improve the accuracy of corrections within the feedback loop. In the presence of common non-Markovian noise processes these measurements will be correlated in a calculable manner, providing a means to capture the stochastic evolution of the local oscillator frequency during the measurement cycle. We present analytic calculations and numerical simulations of oscillator performance under competing feedback schemes and demonstrate benefits in both correction accuracy and long-term oscillator stability using hybrid feedforward. Simulations verify that in the presence of uncompensated dead time and noise with significant spectral weight near the inverse cycle time predictive feedforward outperforms traditional feedback, providing a path towards developing a class of stabilization software routines for frequency standards limited by noisy local oscillators. en_US
dc.language.iso en en_US
dc.publisher American Physical Society en_US
dc.relation.ispartofseries Wokflow;17665
dc.subject Noisy local oscillators en_US
dc.subject Non-Markovian noise processes en_US
dc.title Analytically exploiting noise correlations inside the feedback loop to improve locked-oscillator performance en_US
dc.type Article en_US
dc.identifier.apacitation Sastrawan, J., Jones, C., Akhalwaya, I., Uys, H., & Biercuk, M. (2016). Analytically exploiting noise correlations inside the feedback loop to improve locked-oscillator performance. http://hdl.handle.net/10204/8924 en_ZA
dc.identifier.chicagocitation Sastrawan, J, C Jones, I Akhalwaya, H Uys, and MJ Biercuk "Analytically exploiting noise correlations inside the feedback loop to improve locked-oscillator performance." (2016) http://hdl.handle.net/10204/8924 en_ZA
dc.identifier.vancouvercitation Sastrawan J, Jones C, Akhalwaya I, Uys H, Biercuk M. Analytically exploiting noise correlations inside the feedback loop to improve locked-oscillator performance. 2016; http://hdl.handle.net/10204/8924. en_ZA
dc.identifier.ris TY - Article AU - Sastrawan, J AU - Jones, C AU - Akhalwaya, I AU - Uys, H AU - Biercuk, MJ AB - We introduce concepts from optimal estimation to the stabilization of precision frequency standards limited by noisy local oscillators. We develop a theoretical framework casting various measures for frequency standard variance in terms of frequency-domain transfer functions, capturing the effects of feedback stabilization via a time series of Ramsey measurements. Using this framework, we introduce an optimized hybrid predictive feedforward measurement protocol that employs results from multiple past measurements and transfer-function-based calculations of measurement covariance to improve the accuracy of corrections within the feedback loop. In the presence of common non-Markovian noise processes these measurements will be correlated in a calculable manner, providing a means to capture the stochastic evolution of the local oscillator frequency during the measurement cycle. We present analytic calculations and numerical simulations of oscillator performance under competing feedback schemes and demonstrate benefits in both correction accuracy and long-term oscillator stability using hybrid feedforward. Simulations verify that in the presence of uncompensated dead time and noise with significant spectral weight near the inverse cycle time predictive feedforward outperforms traditional feedback, providing a path towards developing a class of stabilization software routines for frequency standards limited by noisy local oscillators. DA - 2016-08 DB - ResearchSpace DP - CSIR KW - Noisy local oscillators KW - Non-Markovian noise processes LK - https://researchspace.csir.co.za PY - 2016 SM - 2470-0045 T1 - Analytically exploiting noise correlations inside the feedback loop to improve locked-oscillator performance TI - Analytically exploiting noise correlations inside the feedback loop to improve locked-oscillator performance UR - http://hdl.handle.net/10204/8924 ER - en_ZA


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