We develop a simplified high-order multi-span Volterra series transfer function (SHMS- VSTF), basing our derivation on the well-known third-order Volterra series transfer function (VSTF). We notice that when applying an approach based on a recursive method and considering the phased-array factor, the order of the expression for the transfer function grows as 3 raised to the number of considered spans. By imposing a frequency-flat approximation to the higher-order terms that are usually neglected in the commonly used VSTF approach, we are able to reduce the overall expression order to the typical third-order plus a complex correction factor. We carry on performance comparisons between the purposed SH-MS-VSTF, the well-known split-step Fourier method (SSFM), and the third-order VSTF. The SH-MS-VSTF exhibits a uniform improvement of about two orders of magnitude in the normalized mean squared deviation with respect to the other methods. This can be translated in a reduction of the overall number of steps required to fully analyze the transmission link up to 99.75% with respect to the SSFM, and 98.75% with respect to the third-order VSTF, respectively, for the same numerical accuracy.

Simplified high-order Volterra series transfer function for optical transmission links

WABNITZ, Stefan;
2017-01-01

Abstract

We develop a simplified high-order multi-span Volterra series transfer function (SHMS- VSTF), basing our derivation on the well-known third-order Volterra series transfer function (VSTF). We notice that when applying an approach based on a recursive method and considering the phased-array factor, the order of the expression for the transfer function grows as 3 raised to the number of considered spans. By imposing a frequency-flat approximation to the higher-order terms that are usually neglected in the commonly used VSTF approach, we are able to reduce the overall expression order to the typical third-order plus a complex correction factor. We carry on performance comparisons between the purposed SH-MS-VSTF, the well-known split-step Fourier method (SSFM), and the third-order VSTF. The SH-MS-VSTF exhibits a uniform improvement of about two orders of magnitude in the normalized mean squared deviation with respect to the other methods. This can be translated in a reduction of the overall number of steps required to fully analyze the transmission link up to 99.75% with respect to the SSFM, and 98.75% with respect to the third-order VSTF, respectively, for the same numerical accuracy.
2017
Altre Istituz. pubb. estere
PE7_2 Electrical and electronic engineering: semiconductors, components, systems
Esperti anonimi
Inglese
Internazionale
ELETTRONICO
25
3
2446
2459
14
Atomic and Molecular Physics, and Optics
Ateneo di appartenenza
https://www.osapublishing.org/DirectPDFAccess/E33DCD08-CB2D-4A31-64CA3A53A8484B62_357829/oe-25-3-2446.pdf?da=1&id=357829&seq=0&mobile=no
4
info:eu-repo/semantics/article
262
Gagni, Mirko; Guiomar, Fernando P.; Wabnitz, Stefan; Pinto, Armando N.
1 Contributo su Rivista::1.1 Articolo in rivista
open
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11379/487740
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