Frequency-Division Phase Random Optimization for High-Speed Arbitrary Optical Intensity Waveform Monitoring Using Opto-Electronic Finite Impulse Response Filters

Fuente: arXiv
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Auteurs principaux: Sun, Zheqing, Sakamoto, Takahide
Format: Preprint
Publié: 2025
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author Sun, Zheqing
Sakamoto, Takahide
author_facet Sun, Zheqing
Sakamoto, Takahide
contents We propose and demonstrate a high-bandwidth optical intensity waveform monitoring technique based on frequency-division phase random optimization (FD-PRO) using an opto-electronic finite impulse response (OE-FIR) filter. In this technology, phase random optimization (PRO) enable the estimation of the signal spectral phase. Frequency-division analysis (FDA) combined with PRO saves the iteration required for the optimization, accelerating the signal spectral phase estimation. FDA also facilitates the estimation of the signal spectral amplitude. Using FD-PRO, arbitrary optical intensity waveforms can be easily reconstructed without relying on high-speed digital signal processing. Experimental results reveal that the temporal waveforms are successfully reconstructed at 18-ps resolution.
format Preprint
id arxiv_https___arxiv_org_abs_2502_01017
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Frequency-Division Phase Random Optimization for High-Speed Arbitrary Optical Intensity Waveform Monitoring Using Opto-Electronic Finite Impulse Response Filters
Sun, Zheqing
Sakamoto, Takahide
Optics
We propose and demonstrate a high-bandwidth optical intensity waveform monitoring technique based on frequency-division phase random optimization (FD-PRO) using an opto-electronic finite impulse response (OE-FIR) filter. In this technology, phase random optimization (PRO) enable the estimation of the signal spectral phase. Frequency-division analysis (FDA) combined with PRO saves the iteration required for the optimization, accelerating the signal spectral phase estimation. FDA also facilitates the estimation of the signal spectral amplitude. Using FD-PRO, arbitrary optical intensity waveforms can be easily reconstructed without relying on high-speed digital signal processing. Experimental results reveal that the temporal waveforms are successfully reconstructed at 18-ps resolution.
title Frequency-Division Phase Random Optimization for High-Speed Arbitrary Optical Intensity Waveform Monitoring Using Opto-Electronic Finite Impulse Response Filters
topic Optics
url https://arxiv.org/abs/2502.01017