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Dive into the research topics where Jaroslaw E. Prilepsky is active.

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Featured researches published by Jaroslaw E. Prilepsky.


Optics Express | 2014

Nonlinear inverse synthesis for high spectral efficiency transmission in optical fibers

Son Thai Le; Jaroslaw E. Prilepsky; Sergei K. Turitsyn

In linear communication channels, spectral components (modes) defined by the Fourier transform of the signal propagate without interactions with each other. In certain nonlinear channels, such as the one modelled by the classical nonlinear Schrödinger equation, there are nonlinear modes (nonlinear signal spectrum) that also propagate without interacting with each other and without corresponding nonlinear cross talk, effectively, in a linear manner. Here, we describe in a constructive way how to introduce such nonlinear modes for a given input signal. We investigate the performance of the nonlinear inverse synthesis (NIS) method, in which the information is encoded directly onto the continuous part of the nonlinear signal spectrum. This transmission technique, combined with the appropriate distributed Raman amplification, can provide an effective eigenvalue division multiplexing with high spectral efficiency, thanks to highly suppressed channel cross talk. The proposed NIS approach can be integrated with any modulation formats. Here, we demonstrate numerically the feasibility of merging the NIS technique in a burst mode with high spectral efficiency methods, such as orthogonal frequency division multiplexing and Nyquist pulse shaping with advanced modulation formats (e.g., QPSK, 16QAM, and 64QAM), showing a performance improvement up to 4.5 dB, which is comparable to results achievable with multi-step per span digital back propagation.


Optics Express | 2015

Nonlinear inverse synthesis technique for optical links with lumped amplification

Son Thai Le; Jaroslaw E. Prilepsky; Sergei K. Turitsyn

The nonlinear inverse synthesis (NIS) method, in which information is encoded directly onto the continuous part of the nonlinear signal spectrum, has been proposed recently as a promising digital signal processing technique for combating fiber nonlinearity impairments. However, because the NIS method is based on the integrability property of the lossless nonlinear Schrödinger equation, the original approach can only be applied directly to optical links with ideal distributed Raman amplification. In this paper, we propose and assess a modified scheme of the NIS method, which can be used effectively in standard optical links with lumped amplifiers, such as, erbium-doped fiber amplifiers (EDFAs). The proposed scheme takes into account the average effect of the fiber loss to obtain an integrable model (lossless path-averaged model) to which the NIS technique is applicable. We found that the error between lossless path-averaged and lossy models increases linearly with transmission distance and input power (measured in dB). We numerically demonstrate the feasibility of the proposed NIS scheme in a burst mode with orthogonal frequency division multiplexing (OFDM) transmission scheme with advanced modulation formats (e.g., QPSK, 16QAM, and 64QAM), showing a performance improvement up to 3.5 dB; these results are comparable to those achievable with multi-step per span digital back-propagation.


Optica | 2017

Nonlinear Fourier transform for optical data processing and transmission: advances and perspectives

Sergei K. Turitsyn; Jaroslaw E. Prilepsky; Son T. Le; Sander Wahls; Leonid L. Frumin; Morteza Kamalian; Stanislav A. Derevyanko

The nonlinear Fourier transform is a transmission and signal processing technique that makes positive use of the Kerr nonlinearity in optical fibre channels. I will overview recent advances and some of challenges in this field.


Nature Communications | 2016

Capacity estimates for optical transmission based on the nonlinear Fourier transform

Stanislav A. Derevyanko; Jaroslaw E. Prilepsky; Sergei K. Turitsyn

What is the maximum rate at which information can be transmitted error-free in fibre–optic communication systems? For linear channels, this was established in classic works of Nyquist and Shannon. However, despite the immense practical importance of fibre–optic communications providing for >99% of global data traffic, the channel capacity of optical links remains unknown due to the complexity introduced by fibre nonlinearity. Recently, there has been a flurry of studies examining an expected cap that nonlinearity puts on the information-carrying capacity of fibre–optic systems. Mastering the nonlinear channels requires paradigm shift from current modulation, coding and transmission techniques originally developed for linear communication systems. Here we demonstrate that using the integrability of the master model and the nonlinear Fourier transform, the lower bound on the capacity per symbol can be estimated as 10.7 bits per symbol with 500 GHz bandwidth over 2,000 km.


Journal of Lightwave Technology | 2016

Demonstration of Nonlinear Inverse Synthesis Transmission Over Transoceanic Distances

Son Thai Le; Ian D. Philips; Jaroslaw E. Prilepsky; Paul Harper; Andrew D. Ellis; Sergei K. Turitsyn

Nonlinear Fourier transform (NFT) and eigenvalue communication with the use of nonlinear signal spectrum (both discrete and continuous) have been recently discussed as promising transmission methods to combat fiber nonlinearity impairments. In this paper, for the first time, we demonstrate the generation, detection, and transmission performance over transoceanic distances of 10 Gbd nonlinear inverse synthesis-based signal (4 Gb/s line rate), in which the transmitted information is encoded directly onto the continuous part of the signal nonlinear spectrum. By applying effective digital signal processing techniques, a reach of 7344 km was achieved with a bit error rate (2.1 × 10-2) below the 20% FEC threshold. This represents an improvement by a factor of ~12 in data capacity × distance product compared with other previously demonstrated NFT-based systems, showing a significant advance in the active research area of NFT-based communication systems.


Optics Express | 2016

Periodic nonlinear Fourier transform for fiber-optic communications, Part I: theory and numerical methods.

Morteza Kamalian; Jaroslaw E. Prilepsky; Son Thai Le; Sergei K. Turitsyn

In this work, we introduce the periodic nonlinear Fourier transform (PNFT) method as an alternative and efficacious tool for compensation of the nonlinear transmission effects in optical fiber links. In the Part I, we introduce the algorithmic platform of the technique, describing in details the direct and inverse PNFT operations, also known as the inverse scattering transform for periodic (in time variable) nonlinear Schrödinger equation (NLSE). We pay a special attention to explaining the potential advantages of the PNFT-based processing over the previously studied nonlinear Fourier transform (NFT) based methods. Further, we elucidate the issue of the numerical PNFT computation: we compare the performance of four known numerical methods applicable for the calculation of nonlinear spectral data (the direct PNFT), in particular, taking the main spectrum (utilized further in Part II for the modulation and transmission) associated with some simple example waveforms as the quality indicator for each method. We show that the Ablowitz-Ladik discretization approach for the direct PNFT provides the best performance in terms of the accuracy and computational time consumption.


Journal of Lightwave Technology | 2016

Nonlinear Inverse Synthesis for Optical Links With Distributed Raman Amplification

Son Thai Le; Jaroslaw E. Prilepsky; Pawel Rosa; Juan Diego Ania-Castañón; Sergei K. Turitsyn

Nonlinear Fourier transform (NFT) and eigenvalue communication with the use of nonlinear signal spectrum (both discrete and continuous) have been recently discussed as a promising transmission method to combat fiber nonlinearity impairments. However, because the NFT-based transmission method employs the integrability property of the lossless nonlinear Schrödinger equation (NLSE), the original approach can only be applied directly to optical links with ideal distributed Raman amplification. In this paper, we investigate in details the impact of a non-ideal Raman gain profile on the performance of the nonlinear inverse synthesis (NIS) scheme, in which the transmitted information is encoded directly onto the continuous part of the nonlinear signal spectrum. We propose the lossless path-averaged (LPA) model for fiber links with non-ideal Raman gain profile by taking into account the average effect of the Raman gain. We show that the NIS scheme employing the LPA model can offer a performance gain of 3 dB regardless of the Raman gain profiles.


european conference on optical communication | 2015

Modified nonlinear inverse synthesis for optical links with distributed Raman amplification

Son Thai Le; Jaroslaw E. Prilepsky; Morteza Kamalian; Pawel Rosa; Mingming Tan; Juan Diego Ania-Castañón; Paul Harper; Sergei K. Turitsyn

We propose a modification of the nonlinear digital signal processing technique based on the nonlinear inverse synthesis for the systems with distributed Raman amplification. The proposed path-average approach offers 3 dB performance gain, regardless of the signal power profile.


Low Temperature Physics | 2002

Mechanism of vortex switching in magnetic nanodots under a circular magnetic field. I. Resonance action of the field on the nanodot eigenmodes

A. S. Kovalev; Jaroslaw E. Prilepsky

The resonance activation of the eigenmodes of a two-dimensional easy-plane ferromagnet of finite size by a circular magnetic field is considered as a basis for theoretical explanation of the mechanism of vortex switching in magnetic nanodots under the influence of such a field. It is shown analytically that in the case of weak easy-plane anisotropy, when the vortex has a nonzero polarization (a total magnetization along the hard axis), the influence of the field on the eigenmodes of the system is of a complicated nature. A circular field acts in a resonance manner on the azimuthal modes of the system, in which the magnetization depends on the azimuthal coordinate (in the form of a direct resonance at the eigenfrequencies of the azimuthal modes). The coupling of the azimuthal and symmetric (independent of the azimuthal coordinate) modes via the external field gives rise to complex parametric resonances at sum frequencies. The results obtained are compared with the data of previous numerical studies.


information theory workshop | 2015

A lower bound on the per soliton capacity of the nonlinear optical fibre channel

Nikita A. Shevchenko; Jaroslaw E. Prilepsky; Stanislav A. Derevyanko; Alex Alvarado; Polina Bayvel; Sergei K. Turitsyn

A closed-form expression for a lower bound on the per soliton capacity of the nonlinear optical fibre channel in the presence of (optical) amplifier spontaneous emission (ASE) noise is derived. This bound is based on a non-Gaussian conditional probability density function for the soliton amplitude jitter induced by the ASE noise and is proven to grow logarithmically as the signal-to-noise ratio increases.

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A. S. Kovalev

National Academy of Sciences of Ukraine

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Polina Bayvel

University College London

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Alex Alvarado

University College London

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