TY - GEN
T1 - Quantum-behaved particle swarm optimization for the synthesis of fibre Bragg gratings filter
AU - Yu, Xuelian
AU - Sun, Yunxu
AU - Yao, Yong
AU - Tian, Jiajun
AU - Cong, Shan
PY - 2011
Y1 - 2011
N2 - A method based on the quantum-behaved particle swarm optimization algorithm is presented to design a bandpass filter of the fibre Bragg gratings. In contrast to the other optimization algorithms such as the genetic algorithm and particle swarm optimization algorithm, this method is simpler and easier to implement. To demonstrate the effectiveness of the QPSO algorithm, we consider a bandpass filter. With the parameters the half the bandwidth of the filter 0.05 nm, the Bragg wavelength 1550 nm, the grating length with 2cm is divided into 40 uniform sections and its index modulation is what should be optimized and whole feasible solution space is searched for the index modulation. After the index modulation profile is known for all the sections, the transfer matrix method is used to verify the final optimal index modulation by calculating the refection spectrum. The results show the group delay is less than 12ps in band and the calculated dispersion is relatively flat inside the passband. It is further found that the reflective spectrum has sidelobes around-30dB and the worst in-band dispersion value is less than 200ps/nm . In addition, for this design, it takes approximately several minutes to find the acceptable index modulation values with a notebook computer.
AB - A method based on the quantum-behaved particle swarm optimization algorithm is presented to design a bandpass filter of the fibre Bragg gratings. In contrast to the other optimization algorithms such as the genetic algorithm and particle swarm optimization algorithm, this method is simpler and easier to implement. To demonstrate the effectiveness of the QPSO algorithm, we consider a bandpass filter. With the parameters the half the bandwidth of the filter 0.05 nm, the Bragg wavelength 1550 nm, the grating length with 2cm is divided into 40 uniform sections and its index modulation is what should be optimized and whole feasible solution space is searched for the index modulation. After the index modulation profile is known for all the sections, the transfer matrix method is used to verify the final optimal index modulation by calculating the refection spectrum. The results show the group delay is less than 12ps in band and the calculated dispersion is relatively flat inside the passband. It is further found that the reflective spectrum has sidelobes around-30dB and the worst in-band dispersion value is less than 200ps/nm . In addition, for this design, it takes approximately several minutes to find the acceptable index modulation values with a notebook computer.
KW - Fiber Bragg grating
KW - Filter
KW - Particle swarm optimization
KW - Quantum-behaved particle swarm optimization
KW - Synthesis
UR - https://www.scopus.com/pages/publications/85086489646
U2 - 10.1364/acp.2011.83071p
DO - 10.1364/acp.2011.83071p
M3 - 会议稿件
AN - SCOPUS:85086489646
SN - 9780819489555
T3 - Optics InfoBase Conference Papers
BT - Asia Communications and Photonics Conference and Exhibition, ACP 2011
PB - Optical Society of America (OSA)
T2 - Asia Communications and Photonics Conference and Exhibition, ACP 2011
Y2 - 13 November 2011 through 16 November 2011
ER -