Related Experiment Video
Updated: Jun 27, 2026

Quasi-light Storage for Optical Data Packets
Published on: February 6, 2014
Computationally efficient fixed-state MLSD for 100G C-band dispersion-uncompensated IM/DD links
None:
Maximum likelihood sequence detection (MLSD) has been introduced in high-speed intensity modulation and direct detection (IM/DD) systems due to its ability to effectively mitigate severe inter-symbol interference (ISI). However, the use of digital noise-whitening post filter (PF) to enhance MLSD performance brings significant computational complexity, as the number of states grows exponentially with PF order and modulation level. To address this challenge, we propose a complexity-efficient MLSD (CE-MLSD) scheme that that selectively retains a small number of dominant states and symbol levels, while increasing PF taps to enhance frequency-domain compensation performance. Additionally, we provide a thorough comparison of the computational complexity and bit-error rate (BER) performance of different MLSD schemes. Compared to full-state MLSD, the CE-MLSD reduces the number of multiplications by 91.67%, 99.79%, and 99.68% for 100-Gb/s OOK, 120-Gb/s PAM-4, and 120-Gb/s PAM-6 signals over 80-km, 40-km, and 20-km standard single-mode fibers (SSMF), respectively, while maintaining similar BER performance. Furthermore, for PAM-4 and PAM-6 formats, the CE-MLSD offers additional complexity reduction over previously proposed schemes such as Trellis path-limitation MLSD (TL-MLSD) and fixed-state MLSD (FS-MLSD), achieving up to 99.63%, 43.75%, and 11.76%, 36.36% reductions in multiplication complexity, respectively. CE-MLSD provides a potential solution for low-cost, high-performance C-band IM/DD optical transmission systems with extended reach.
Related Concept Videos
Reducing Line Loss
With a step-up transformer at the source, the voltage is increased, thereby reducing the current in the transmission lines since power loss in...
Transmission Line Design Considerations
Lossless Lines
Maximum Power Flow and Line Loadability
Multimachine Stability
In analyzing the system, the nodal equations represent the relationship between bus voltages, machine voltages, and machine currents. The nodal equation is given by:
Load-frequency control

