Jens C. Rasmussen
Fujitsu
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Publication
Featured researches published by Jens C. Rasmussen.
Journal of Lightwave Technology | 2011
Zhenning Tao; Liang Dou; Weizhen Yan; Lei Li; Takeshi Hoshida; Jens C. Rasmussen
Intrachannel nonlinearity is considered a major distortion in high-capacity transmission systems particular for the case without inline optical chromatic dispersion compensation. In this paper, a low-complexity intrachannel nonlinear compensator operating at the symbol rate is proposed based on the nonlinear perturbation predistortion for the dual-polarization quadrature phase-shift keying (DP-QPSK) systems. Compared with the widely studied backpropagation algorithm, the proposed algorithm achieves comparable performance with significantly reduced complexity and halved sampling speed in digital signal processing and digital-to-analog converters. The proposed algorithm is demonstrated in a 43 Gb/s DP-QPSK transmission experiment over 1500 km. In addition to the experimental demonstration, numerical simulation verifies that the proposed algorithm is quite robust by tolerating significant uncertainties of link parameters and span-by-span inhomogeneity in the links.
optical fiber communication conference | 2014
Toshiki Tanaka; Masato Nishihara; Tomoo Takahara; Weizhen Yan; Lei Li; Zhenning Tao; Manabu Matsuda; Kazumasa Takabayashi; Jens C. Rasmussen
We have experimentally demonstrated 469-Gbps transmission over 30-km SMF using DMT on a LAN-WDM system for 400-Gbps Ethernet. Only four directly modulated lasers and direct detectors as optical devices were necessary to achieve the results.
optical fiber communication conference | 2013
Weizhen Yan; Toshiki Tanaka; Bo Liu; Masato Nishihara; Lei Li; Tomoo Takahara; Zhenning Tao; Jens C. Rasmussen; Tomislav Drenski
100 Gb/s optical IM-DD transmission over 10 km SMF is experimentally demonstrated by using discrete multi-tone and CMOS DAC core. The limiting factors towards further reach extension are investigated.
optical fiber communication conference | 2009
Ling Liu; Zhenning Tao; Weizhen Yan; Shoichiro Oda; Takeshi Hoshida; Jens C. Rasmussen
We demonstrate a modified constant modulus algorithm (CMA) for polarization de-multiplexing and equalization. By designing the initial tap values for CMA, degeneration of the two polarization tributaries can be avoided.
optical fiber communication conference | 2011
Lei Li; Zhenning Tao; Liang Dou; Weizhen Yan; Shoichiro Oda; Takahito Tanimura; Takeshi Hoshida; Jens C. Rasmussen
One stage per span is commonly considered as the lower boundary for implementation complexity of nonlinear equalizer based on digital backpropagation. The proposed method overcomes this boundary and improves the efficiency by about four times.
optical fiber communication conference | 2008
Lei Li; Zhenning Tao; Shoichiro Oda; Takeshi Hoshida; Jens C. Rasmussen
We present a digital frequency offset compensator for optical coherent QPSK receivers. The compensation accuracy reaches ± 30 MHz while the range covers ± 5 GHz. This would realize coherent receivers with common off-the-shelf tunable lasers.
Journal of Lightwave Technology | 2011
Jianqiang Li; Zhenning Tao; Huijian Zhang; Weizhen Yan; Takeshi Hoshida; Jens C. Rasmussen
An enhanced digital coherent receiver including a novel blind equalization approach and maximum-likelihood sequence detection (MLSD) is proposed for dual-polarization quadrature duobinary (DP-QDB) systems. In virtue of the compact spectrum of DP-QDB signals approaching Nyquist limit, the equalization is implemented at symbol rate, which relaxes the demand on the sampling speed of analog-to-digital converters (ADCs). The proposed symbol-rate receiver is verified by 43 Gb/s experiments in the presence of chromatic dispersion and polarization-mode dispersion. This paper also investigates the tolerances to narrowband optical filtering, ADC sampling phase, duobinary-generating filter bandwidth, laser linewidth, and carrier frequency offset. Detailed modulation format comparisons are made among DP-QDB, DP-quadrature-phase-shift keying (QPSK), DP-8 quadrature amplitude modulation (QAM), and DP-16QAM. It is shown that DP-QDB with MLSD well trades off major requirements on advanced modulation formats.
european conference on optical communication | 2008
Huijian Zhang; Zhenning Tao; Ling Liu; Shoichiro Oda; Takeshi Hoshida; Jens C. Rasmussen
A novel independent component analysis based algorithm is proposed for polarization demultiplexing. It solves the converge-to-same-source problem of constant modulus algorithm while possesses similar polarization tracking capability.
optical fiber communication conference | 2010
Lei Li; Zhenning Tao; Ling Liu; Weizhen Yan; Shoichiro Oda; Takeshi Hoshida; Jens C. Rasmussen
A novel method is proposed to compensate polarization crosstalk induced by interchannel nonlinearity. Experiments have demonstrated that the proposed method provides over 1 dB performance improvement for 112 Gb/s dual-polarization QPSK coherent receivers.
Journal of Lightwave Technology | 2011
Zhenning Tao; Weizhen Yan; Ling Liu; Lei Li; Shoichiro Oda; Takeshi Hoshida; Jens C. Rasmussen
Previous investigations have revealed that the impairments of the cross-phase modulation (XPM) in dense wavelength-division multiplexing (DWDM) systems include two aspects: the XPM-induced phase noise and the XPM-induced polarization scattering. Such XPM phenomena are strongly dependent on the transmission system configurations and are nonintuitive. In this paper, a simple fiber model is proposed to facilitate the determination of XPM effects. By employing this model, the phase noise and polarization scattering are calculated based on the system configurations and the time-consuming computation by the split step Fourier method is avoided. The proposed model is verified by the dual polarization quadrature phase-shift keying coherent DWDM experiments and simulations in terms of the variance and autocorrelations of phase noise and polarization crosstalk as well as their dependence on relative polarization states and the overall Q-impairment. The proposed model helps deeper analysis of XPM phenomena, and eventually, leads to development of various XPM mitigation methods through transmission system design and coherent receiver DSP.