Laser & Optoelectronics Progress, Volume. 56, Issue 13, 130604(2019)
High-Precision Fourth Power Carrier Phase Recovery Algorithm
Fig. 2. Constellation diagrams when frequency offset is ignored . (a) Constellation diagram when carrier phase recovery is not performed; (b) constellation diagram after processing by traditional M-th power carrier phase recovery algorithm; (c) constellation diagram after processing by proposed algorithm
Fig. 3. Error between signal phase and original modulation phase. (a) Error after phase compensation using traditional M-th power carrier phase recovery algorithm; (b) error after phase compensation using proposed algorithm
Fig. 4. Constellation diagrams. (a) Constellation diagram when 1-GHz frequency offset is added and carrier phase recovery is not performed; (b) constellation diagram after phase recovery using traditional M-th power carrier phase recovery algorithm, without compensation for frequency offset; (c) constellation diagram after phase recovery using proposed algorithm, without compensation for frequency offset
Fig. 5. Maximum frequency offset that proposed algorithm can tolerate as function of signal-to-noise ratio without compensation for frequency offset
Fig. 6. Minimum signal-to-noise ratio that meets requirement of proposed algorithm as function of linewidth with and without compensation for frequency offset
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Jie Zhang, Qi Qiu. High-Precision Fourth Power Carrier Phase Recovery Algorithm[J]. Laser & Optoelectronics Progress, 2019, 56(13): 130604
Category: Fiber Optics and Optical Communications
Received: Jan. 10, 2019
Accepted: Jan. 31, 2019
Published Online: Jul. 11, 2019
The Author Email: Qiu Qi (qqiu@uestc.edu.cn)