TY - JOUR
T1 - Multidimensional hybrid modulations for ultrahigh-speed optical transport
AU - Djordjevic, Ivan B.
AU - Xu, Lei
AU - Wang, Ting
N1 - Funding Information:
Manuscript received September 14, 2011; revised October 16, 2011; accepted October 17, 2011. Date of publication October 24, 2011; date of current version November 8, 2011. This paper was supported in part by the National Science Foundation (NSF) under Grants CCF-0952711 and EEC-0812072 (NSF CIAN ERC) and in part by NEC Labs. Corresponding author: I. B. Djordjevic (e-mail: ivan@ece.arizona.edu).
PY - 2011
Y1 - 2011
N2 - From Shanon's theory, we know that information capacity is a logarithmic function of signal-to-noise ratio (SNR) but a linear function of the number of dimensions. By increasing the number of dimensions D, we can dramatically improve the spectral efficiency. At the same time, in D-dimensional space (D>2), for the same average symbol energy, we can increase the Euclidean distance between signal constellation points compared with the conventional in-phase (I)/quadrature (Q) 2-D signal space. The 4-D space, with two phase coordinates per polarization, has already been intensively studied. To satisfy the ever-increasing bandwidth demands, in this paper, we propose the D-dimensional signaling (Df>4) by employing all available degrees of freedom for transmission over a single carrier including amplitude, phase, polarization, and orbital angular momentum (OAM). The proposed modulation scheme can be called hybrid $D$-dimensional modulation as it employs all available degrees of freedom. The proposed hybrid 8-D coded-modulation scheme outperforms its 4-D counterpart by 3.97 dB at a bit error rate (BER) of 10 -8 while outperforming its corresponding polarization-division- multiplexed (PDM) iterative polar quantization (IPQ)-based counterpart by even a larger margin of 6.41 dB (at the same BER). The improvement of the proposed scheme for two amplitude levels per dimension and D = 8 over conventional PDM 64-quadrature amplitude modulation (QAM) is indeed a striking 8.28 dB at a BER of 2× 10-8.
AB - From Shanon's theory, we know that information capacity is a logarithmic function of signal-to-noise ratio (SNR) but a linear function of the number of dimensions. By increasing the number of dimensions D, we can dramatically improve the spectral efficiency. At the same time, in D-dimensional space (D>2), for the same average symbol energy, we can increase the Euclidean distance between signal constellation points compared with the conventional in-phase (I)/quadrature (Q) 2-D signal space. The 4-D space, with two phase coordinates per polarization, has already been intensively studied. To satisfy the ever-increasing bandwidth demands, in this paper, we propose the D-dimensional signaling (Df>4) by employing all available degrees of freedom for transmission over a single carrier including amplitude, phase, polarization, and orbital angular momentum (OAM). The proposed modulation scheme can be called hybrid $D$-dimensional modulation as it employs all available degrees of freedom. The proposed hybrid 8-D coded-modulation scheme outperforms its 4-D counterpart by 3.97 dB at a bit error rate (BER) of 10 -8 while outperforming its corresponding polarization-division- multiplexed (PDM) iterative polar quantization (IPQ)-based counterpart by even a larger margin of 6.41 dB (at the same BER). The improvement of the proposed scheme for two amplitude levels per dimension and D = 8 over conventional PDM 64-quadrature amplitude modulation (QAM) is indeed a striking 8.28 dB at a BER of 2× 10-8.
KW - Multimode fibers (MMFs)
KW - coded-modulation
KW - hybrid modulations
KW - low-density parity-check (LDPC) codes
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U2 - 10.1109/JPHOT.2011.2173327
DO - 10.1109/JPHOT.2011.2173327
M3 - Article
AN - SCOPUS:81355141696
SN - 1943-0655
VL - 3
SP - 1030
EP - 1038
JO - IEEE Photonics Journal
JF - IEEE Photonics Journal
IS - 6
M1 - 6059467
ER -