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Jacobsen, Gunnar, Prof.
Publications (10 of 40) Show all publications
Pang, X., Zhang, L., Ozolins, O., Udalcovs, A., Lin, R., Schatz, R., . . . Chen, J. (2019). Key technologies to enable terabit-scale digital radio-over-fiber systems. In: Broadband Access Communication Technologies XIII: . Paper presented at Broadband Access Communication Technologies XIII 2019; San Francisco; United States; 4 February 2019 through 5 February 2019. SPIE - The International Society for Optics and Photonics, 10945, Article ID 109450E.
Open this publication in new window or tab >>Key technologies to enable terabit-scale digital radio-over-fiber systems
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2019 (English)In: Broadband Access Communication Technologies XIII, SPIE - The International Society for Optics and Photonics, 2019, Vol. 10945, article id 109450EConference paper, Published paper (Refereed)
Abstract [en]

With the approach of the 5G era, stringent requirements are imposed on the data transport solutions, including both of the supported transmission reach and the capacity. Radio-over-fiber technologies are considered to be promising candidates to cope with both aspects, owing to the low-loss and broad-bandwidth nature of the optical fibers. Meanwhile with such optical transport solutions, signals can be collected from the distributed remote radio sites and processed in a centralized manner. In this report, we target on the digital radio-over-fiber systems, and discuss about several key technologies, focusing on the aspects of coding and transmission, which could potentially enable terabit-scale data transport.

Place, publisher, year, edition, pages
SPIE - The International Society for Optics and Photonics, 2019
Series
Proceedings of SPIE - The International Society for Optical Engineering, ISSN 0277-786X ; 10945
Keywords
coding, Digital radio-over-fiber, fiber optics communications, modulation, radio frequency photonics
National Category
Communication Systems
Identifiers
urn:nbn:se:kth:diva-251913 (URN)10.1117/12.2509281 (DOI)000465823300012 ()2-s2.0-85062497561 (Scopus ID)
Conference
Broadband Access Communication Technologies XIII 2019; San Francisco; United States; 4 February 2019 through 5 February 2019
Note

QC 20190523

Part of ISBN 9781510625327

Available from: 2019-05-23 Created: 2019-05-23 Last updated: 2024-10-21Bibliographically approved
Xu, T., Jin, C., Zhang, S., Jacobsen, G., Popov, S., Leeson, M. & Liu, T. (2019). Phase Noise Cancellation in Coherent Communication Systems Using a Radio Frequency Pilot Tone. Applied Sciences, 9(21), Article ID 4717.
Open this publication in new window or tab >>Phase Noise Cancellation in Coherent Communication Systems Using a Radio Frequency Pilot Tone
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2019 (English)In: Applied Sciences, E-ISSN 2076-3417, Vol. 9, no 21, article id 4717Article in journal (Refereed) Published
Abstract [en]

Long-haul optical fiber communication employing digital signal processing (DSP)-based dispersion compensation can be distorted by the phenomenon of equalization-enhanced phase noise (EEPN), due to the reciprocities between the dispersion compensation unit and the local oscillator (LO) laser phase noise (LPN). The impact of EEPN scales increases with the increase of the fiber dispersion, laser linewidths, symbol rates, signal bandwidths, and the order of modulation formats. In this work, the phase noise cancellation (PNC) employing a radio frequency (RF) pilot tone in coherent optical transmission systems has been investigated. A 28-Gsym/s QPSK optical transmission system with a significant EEPN has been implemented, where the carrier phase recovery (CPR) was realized using the one-tap normalized least-mean-square (NLMS) estimation and the differential phase detection (DPD), respectively. It is shown that the RF pilot tone can entirely eliminate the LPN and efficiently suppress the EEPN when it is applied prior to the CPR.

Place, publisher, year, edition, pages
MDPI, 2019
Keywords
coherent optical fiber communication, laser phase noise (LPN), carrier phase recovery (CPR), phase noise cancellation (PNC), equalization enhanced phase noise (EEPN), radio frequency (RF) pilot tone
National Category
Physical Sciences
Identifiers
urn:nbn:se:kth:diva-269140 (URN)10.3390/app9214717 (DOI)000498058600242 ()2-s2.0-85075191817 (Scopus ID)
Note

Qc 20200312

Available from: 2020-03-12 Created: 2020-03-12 Last updated: 2022-06-26Bibliographically approved
Zhang, L., Udalcovs, A., Lin, R., Ozolins, O., Pang, X., Gan, L., . . . Chen, J. (2019). Toward Terabit Digital Radio over Fiber Systems: Architecture and Key Technologies. IEEE Communications Magazine, 57(4), 131-137
Open this publication in new window or tab >>Toward Terabit Digital Radio over Fiber Systems: Architecture and Key Technologies
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2019 (English)In: IEEE Communications Magazine, ISSN 0163-6804, E-ISSN 1558-1896, Vol. 57, no 4, p. 131-137Article in journal (Refereed) Published
Abstract [en]

To support massive deployment of broadband radio applications, such as 5G and high-definition videos for terrestrial televisions, large system capacity and high spectrum efficiency are highly demanded in radio over fiber (RoF) systems. In this article, we propose a terabit digital RoF system capable of providing high-speed transmission, where multicore fiber (MCF) is introduced for the access segment between the central unit and remote unit. Two key technologies that greatly enhance system capacity and spectrum efficiency, namely MCF enabled self-homodyne detection and compressed quantization, are demonstrated.

Place, publisher, year, edition, pages
IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC, 2019
National Category
Telecommunications
Identifiers
urn:nbn:se:kth:diva-252405 (URN)10.1109/MCOM.2019.1800426 (DOI)000466916300020 ()2-s2.0-85065453398 (Scopus ID)
Note

QC 20190716

Available from: 2019-07-16 Created: 2019-07-16 Last updated: 2022-09-07Bibliographically approved
Zhang, L., Udalcovs, A., Lin, R., Ozolins, O., Pang, X., Gan, L., . . . Chen, J. (2018). Digital Radio-Over-Multicore-Fiber System with Self-Homodyne Coherent Detection and Entropy Coding for Mobile Fronthaul. In: European Conference on Optical Communication, ECOC: . Paper presented at 2018 European Conference on Optical Communication, ECOC 2018; Rome; Italy; 23-27 September 2018. Institute of Electrical and Electronics Engineers (IEEE), Article ID 8535281.
Open this publication in new window or tab >>Digital Radio-Over-Multicore-Fiber System with Self-Homodyne Coherent Detection and Entropy Coding for Mobile Fronthaul
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2018 (English)In: European Conference on Optical Communication, ECOC, Institute of Electrical and Electronics Engineers (IEEE), 2018, article id 8535281Conference paper, Published paper (Refereed)
Abstract [en]

We experimentally demonstrate a 28-Gbaud 16-QAM self-homodyne digital radio-over-33.6km-7-core-fiber system with entropy coding for mobile fronthaul, achieving error-free carrier aggregation of 330 100-MHz 4096-QAM 5G-new-radio channels and 921 100-MHz QPSK 5G-new-radio channels with CPRI-equivalent data rate up to 3.73-Tbit/s.

Place, publisher, year, edition, pages
Institute of Electrical and Electronics Engineers (IEEE), 2018
Keywords
5G mobile communication systems, Entropy, Homodyne detection, Optical communication, Coherent detection, Data rates, Entropy coding, Fiber systems, Free carriers, Multicore fiber, Radio channels, Self-homodyne, Digital radio
National Category
Telecommunications
Identifiers
urn:nbn:se:kth:diva-252257 (URN)10.1109/ECOC.2018.8535281 (DOI)000722636300181 ()2-s2.0-85062566010 (Scopus ID)
Conference
2018 European Conference on Optical Communication, ECOC 2018; Rome; Italy; 23-27 September 2018
Note

Part of proceedings ISBN 978-1-5386-4862-9

QC 20190610

Available from: 2019-06-10 Created: 2019-06-10 Last updated: 2024-04-03Bibliographically approved
Xu, T., Jacobsen, G., Popov, S., Li, J., Sergeyev, S., Friberg, A. T., . . . Zhang, Y. (2017). Analysis of chromatic dispersion compensation and carrier phase recovery in long-haul optical transmission system influenced by equalization enhanced phase noise. Optik (Stuttgart), 138, 494-508
Open this publication in new window or tab >>Analysis of chromatic dispersion compensation and carrier phase recovery in long-haul optical transmission system influenced by equalization enhanced phase noise
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2017 (English)In: Optik (Stuttgart), ISSN 0030-4026, E-ISSN 1618-1336, Vol. 138, p. 494-508Article in journal (Refereed) Published
Abstract [en]

The performance of long-haul coherent optical fiber transmission system is significantly affected by the equalization enhanced phase noise (EEPN), due to the interaction between the electronic dispersion compensation (EDC) and the laser phase noise. In this paper, we present a comprehensive study on different chromatic dispersion (CD) compensation and carrier phase recovery (CPR) approaches, in the n-level phase shift keying (n-PSK) and the n-level quadrature amplitude modulation (n-QAM) coherent optical transmission systems, considering the impacts of EEPN. Four CD compensation methods are considered: the time-domain equalization (TDE), the frequency-domain equalization (FDE), the least mean square (LMS) adaptive equalization are applied for EDC, and the dispersion compensating fiber (DCF) is employed for optical dispersion compensation (ODC). Meanwhile, three carrier phase recovery methods are also involved: a one-tap normalized least mean square (NLMS) algorithm, a block-wise average (BWA) algorithm, and a Viterbi-Viterbi (VV) algorithm. Numerical simulations have been carried out in a 28-Gbaud dual-polarization quadrature phase shift keying (DP-QPSK) coherent transmission system, and the results indicate that the origin of EEPN depends on the choice of chromatic dispersion compensation methods, and the effects of EEPN also behave moderately different in accordance to different carrier phase recovery scenarios.

Place, publisher, year, edition, pages
Elsevier GmbH, 2017
Keywords
Carrier phase recovery, Chromatic dispersion compensation, Coherent optical detection, Equalization enhanced phase noise, Phase shift keying, Quadrature amplitude modulation, Adaptive optics, Chromatic dispersion, Dispersion compensation, Equalizers, Frequency domain analysis, Least squares approximations, Light transmission, Modulation, Numerical methods, Optical fibers, Optical systems, Phase noise, Phase shift, Quadrature phase shift keying, Recovery, Time domain analysis, Transmissions, Viterbi algorithm, Dual polarization quadrature phase-shift keying (DP-QPSK), Electronic dispersion compensation, Equalization enhanced phase noises (EEPN), Normalized least mean square algorithms, Optical dispersion compensation
National Category
Mechanical Engineering
Identifiers
urn:nbn:se:kth:diva-207306 (URN)10.1016/j.ijleo.2017.03.024 (DOI)000403516600060 ()2-s2.0-85016483451 (Scopus ID)
Note

QC 20170614

Available from: 2017-06-14 Created: 2017-06-14 Last updated: 2024-03-18Bibliographically approved
Leong, M. Y., Larsen, K. J., Jacobsen, G., Zibar, D., Sergeyev, S. & Popov, S. (2017). BCH Codes for Coherent Star DQAM Systems with Laser Phase Noise. Journal of optical communications, 38(1), 47-56
Open this publication in new window or tab >>BCH Codes for Coherent Star DQAM Systems with Laser Phase Noise
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2017 (English)In: Journal of optical communications, ISSN 0173-4911, E-ISSN 2191-6322, Vol. 38, no 1, p. 47-56Article in journal (Refereed) Published
Abstract [en]

Coherent optical systems have relatively high laser phase noise, which affects the performance of forward error correction (FEC) codes. In this paper, we propose a method for selecting Bose-Chaudhuri-Hocquenghem (BCH) codes for coherent systems with star-shaped constellations and M-ary differential quadrature amplitude modulation (DQAM). Our method supports constellations of any order M which is a power of 2, and includes differential M-ary phase shift keying as a special case. Our approach is straightforward, requiring only short pre-FEC simulations to parameterize a statistical model, based on which we select codes analytically. It is applicable to pre-FEC bit error rates (BERs) of around 10-3. We evaluate the accuracy of our approach using numerical simulations. For a target post-FEC BER of 10-5, codes selected with our method yield BERs within 2× target. Lastly, we extend our method to systems with interleaving, which enables us to use codes with lower overhead.

Place, publisher, year, edition, pages
Walter de Gruyter, 2017
Keywords
block codes, cycle slips, error correction codes, optical fiber communications, phase noise, Codes (symbols), Error correction, Errors, Optical communication, Optical fiber communication, Optical fibers, Optical systems, Phase shift, Phase shift keying, Stars, Bose-chaudhuri-hocquenghem codes, Coherent optical systems, Forward error correction codes, Laser phase noise, M-ary phase shift keying, Statistical modeling, Forward error correction
National Category
Telecommunications
Identifiers
urn:nbn:se:kth:diva-207966 (URN)10.1515/joc-2016-0002 (DOI)2-s2.0-85015272956 (Scopus ID)
Note

QC 20170531

Available from: 2017-05-31 Created: 2017-05-31 Last updated: 2022-06-27Bibliographically approved
Zhang, L., Pang, X., Ozolins, O., Udalcovs, A., Schatz, R., Westergren, U., . . . Chen, J. (2017). Digital mobile fronthaul employing differential pulse code modulation with suppressed quantization noise. Optics Express, 25(25), 31921-31936
Open this publication in new window or tab >>Digital mobile fronthaul employing differential pulse code modulation with suppressed quantization noise
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2017 (English)In: Optics Express, E-ISSN 1094-4087, Vol. 25, no 25, p. 31921-31936Article in journal (Refereed) Published
Abstract [en]

A differential pulse code modulation (DPCM) based digital mobile fronthaul architecture is proposed and experimentally demonstrated. By using a linear predictor in the DPCM encoding process, the quantization noise can be effectively suppressed and a prediction gain of 7 similar to 8 dB can be obtained. Experimental validation is carried out with a 20 km 15-Gbaud/lambda 4-level pulse amplitude modulation (PAM4) intensity modulation and direct detection system. The results verify the feasibility of supporting 163, 122, 98, 81 20-MHz 4, 16, 64, 256 QAM based antenna-carrier (AxC) containers with only 3, 4, 5, 6 quantization bits at a sampling rate of 30.72MSa/s in LTE-A environment. Further increasing the number of quantization bits to 8 and 9, 1024 quadrature amplitude modulation (1024 QAM) and 4096 QAM transmission can be realized with error vector magnitude (EVM) lower than 1% and 0.5%, respectively. The supported number of AxCs in the proposed DPCM-based fronthaul is increased and the EVM is greatly reduced compared to the common public radio interface (CPRI) based fronthaul that uses pulse code modulation. Besides, the DPCM-based fronthaul is also experimentally demonstrated to support universal filtered multicarrier signal that is one candidate waveform for the 5th generation mobile systems.

Place, publisher, year, edition, pages
Optical Society of America, 2017
National Category
Atom and Molecular Physics and Optics
Identifiers
urn:nbn:se:kth:diva-220601 (URN)10.1364/OE.25.031921 (DOI)000417591100100 ()29245861 (PubMedID)2-s2.0-85038213036 (Scopus ID)
Note

QC 20180116

Available from: 2018-01-16 Created: 2018-01-16 Last updated: 2024-03-15Bibliographically approved
Pang, X., Ozolins, O., El-Taher, A., Schatz, R., Jacobsen, G., Sergeyev, S. & Popov, S. (2017). Experimental Evaluation of Impairments in Unrepeatered DP-16QAM Link with Distributed Raman Amplification. Photonics, 4(1), Article ID 16.
Open this publication in new window or tab >>Experimental Evaluation of Impairments in Unrepeatered DP-16QAM Link with Distributed Raman Amplification
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2017 (English)In: Photonics, ISSN 2304-6732, Vol. 4, no 1, article id 16Article in journal (Refereed) Published
Abstract [en]

The transmission impairments of a Raman amplified link using dual-polarization 16-quadrature amplitude modulation (DP-16QAM) are experimentally characterized. The impact of amplitude and phase noise on the signal due to relative intensity noise (RIN) transfer from the pump are compared for two pumping configurations: first-order backward pumping and bi-directional pumping. Experimental results indicate that with increased Raman backward pump power, though the optical signal-to-noise ratio (OSNR) is increased, so is the pump-induced amplitude and phase noise. The transmission performance is firstly improved by the enhanced OSNR at a low pump power until an optimum point is reached, and then the impairments due to pump-induced noise start to dominate. However, the introduction of a low pump power in the forward direction can further improve the system's performance.

Place, publisher, year, edition, pages
MDPI AG, 2017
Keywords
Raman amplification, coherent communications, fiber optics communications
National Category
Atom and Molecular Physics and Optics
Identifiers
urn:nbn:se:kth:diva-205475 (URN)10.3390/photonics4010016 (DOI)000398696700015 ()2-s2.0-85030865029 (Scopus ID)
Note

QC 20170524

Available from: 2017-05-24 Created: 2017-05-24 Last updated: 2022-09-07Bibliographically approved
Pang, X., Ozolins, O., Gaiarin, S., Kakkar, A., Rodrigo Navarro, J., Iglesias Olmedo, M., . . . Jacobsen, G. (2017). Experimental Study of 1.55-μ m EML-Based Optical IM/DD PAM-4/8 Short Reach Systems. IEEE Photonics Technology Letters, 29(6), 523-526, Article ID 7839925.
Open this publication in new window or tab >>Experimental Study of 1.55-μ m EML-Based Optical IM/DD PAM-4/8 Short Reach Systems
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2017 (English)In: IEEE Photonics Technology Letters, ISSN 1041-1135, E-ISSN 1941-0174, Vol. 29, no 6, p. 523-526, article id 7839925Article in journal (Refereed) Published
Abstract [en]

We experimentally evaluate high-speed intensity modulation/direct detection (IM/DD) transmissions with a 1.55-μ text broadband electro-Absorption modulated laser and pulse amplitude modulations (PAM). We demonstrate 80 Gb/s/ λ PAM-4 and 96 Gb/s/ λ PAM-8 transmissions with low-complexity digital equalizers at the receiver. Performance comparison with different types of equalizers are performed, including linear symbol-spaced feed-forward equalizer (FFE), fractional (half-symbol) spaced FFE and decision feedback equalizer (DFE), with different tap number. It is found that for both cases, a 6-Tap symbol-spaced FFE is sufficient to achieve a stable performance with bit-error-rate below the 7% overhead hard decision forward error correction (7%-OH HD-FEC) threshold over a 4 km standard single mode fiber link. Practical considerations including comparison between adaptive and static equalizer implementation and tolerable fiber chromatic dispersion are discussed.

Place, publisher, year, edition, pages
Institute of Electrical and Electronics Engineers Inc., 2017
Keywords
direct detection, equalizers, optical modulation, Pulse amplitude modulation, Adaptive optics, Amplitude modulation, Bit error rate, Chromatic dispersion, Data communication systems, Decision feedback equalizers, Digital television, Error correction, Light modulation, Modulation, Optical communication, Radio communication, Single mode fibers, Electro-absorption modulated laser, Feedforward equalizer, Fiber chromatic dispersion, Intensity-modulation/direct-detection (IM/DD), Performance comparison, Pulse amplitude modulations (PAM), Standard single mode fibers
National Category
Telecommunications
Identifiers
urn:nbn:se:kth:diva-208013 (URN)10.1109/LPT.2017.2662948 (DOI)000395996500012 ()2-s2.0-85015017150 (Scopus ID)
Note

QC 2017-06-08

Available from: 2017-06-08 Created: 2017-06-08 Last updated: 2024-03-18Bibliographically approved
Leong, M. Y., Larsen, K. J., Jacobsen, G., Zibar, D., Sergeyev, S. & Popov, S. (2017). Low-complexity BCH codes with optimized interleavers for DQPSK systems with laser phase noise. Photonic network communications, 33(3), 328-333
Open this publication in new window or tab >>Low-complexity BCH codes with optimized interleavers for DQPSK systems with laser phase noise
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2017 (English)In: Photonic network communications, ISSN 1387-974X, E-ISSN 1572-8188, Vol. 33, no 3, p. 328-333Article in journal (Refereed) Published
Abstract [en]

The presence of high phase noise in addition to additive white Gaussian noise in coherent optical systems affects the performance of forward error correction (FEC) schemes. In this paper, we propose a simple scheme for such systems, using block interleavers and binary Bose-Chaudhuri-Hocquenghem (BCH) codes. The block interleavers are specifically optimized for differential quadrature phase shift keying modulation. We propose a method for selecting BCH codes that, together with the interleavers, achieve a target post-FEC bit error rate (BER). This combination of interleavers and BCH codes has very low implementation complexity. In addition, our approach is straightforward, requiring only short pre-FEC simulations to parameterize a model, based on which we select codes analytically. We aim to correct a pre-FEC BER of around . We evaluate the accuracy of our approach using numerical simulations. For a target post-FEC BER of , codes selected using our method result in BERs around 3 target and achieve the target with around 0.2 dB extra signal-to-noise ratio.

Keywords
Optical fiber communications, Error correction codes, Block codes, Phase noise, Cycle slips
National Category
Telecommunications
Identifiers
urn:nbn:se:kth:diva-207878 (URN)10.1007/s11107-016-0645-0 (DOI)000400641700007 ()2-s2.0-84984643850 (Scopus ID)
Note

QC 20170530

Available from: 2017-05-30 Created: 2017-05-30 Last updated: 2024-03-18Bibliographically approved
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