Dual Polarization Full-Field Signal Waveform Reconstruction Using Intensity Only Measurements for Coherent Communications
Haoshuo Chen, Nicolas K. Fontaine, Joan M. Gene, Roland Ryf, David T., Neilson, Gregory Raybon

TL;DR
This paper introduces a novel intensity-only measurement technique with phase retrieval algorithms for full-field signal waveform reconstruction in coherent communications, enabling effective signal detection and equalization without a local oscillator.
Contribution
It presents a new phase retrieval method using dispersive elements and a modified Gerchberg Saxton algorithm for full-field waveform reconstruction from intensity measurements in optical communications.
Findings
Achieves less than 4dB OSNR penalty at 2×10^-2 BER
Demonstrates successful detection and MIMO equalization of 30-Gbaud QPSK signals over 520 km fiber
Provides a viable alternative to traditional coherent detection methods
Abstract
Conventional optical coherent receivers capture the full electrical field, including amplitude and phase, of a signal waveform by measuring its interference against a stable continuous-wave local oscillator (LO). In optical coherent communications, powerful digital signal processing (DSP) techniques operating on the full electrical field can effectively undo transmission impairments such as chromatic dispersion (CD), and polarization mode dispersion (PMD). Simpler direct detection techniques do not have access to the full electrical field and therefore lack the ability to compensate for these impairments. We present a full-field measurement technique using only direct detection that does not require any beating with a strong carrier LO. Rather, phase retrieval algorithms based on alternating projections that makes use of dispersive elements are discussed, allowing to recover the optical…
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