1) optical DQPSK
光差分正交相移键控
1.
The principle and simulation of optical DQPSK modulation formats;
文章简单介绍了光差分正交相移键控(DQPSK)调制格式的调制和解调方式,对光DQPSK的预编码也进行了必要的说明。
2) QDPSK Quadrature Differential Phase C Shift Keying
正交微分相移键控,四相差分移相键控
3) DQPSK
差分正交相移键控
1.
This article theoretically derives the formulas for the principles of Carrier-Suppressed Return-to-Zero(CSRZ) and Differential Quadrature Phase Shift Keying(DQPSK) modem,presents the specific processes of their implementation and obtains by simulation their spectra after modulation and eye diagrams after demodulation.
文章从理论上推导出了载波抑制归零(CSRZ)码和差分正交相移键控(DQPSK)的调制解调原理公式,给出了实现的具体过程,以及仿真得到的调制后的频谱图和解调后的眼图。
2.
And an all-optical regenerator design scheme for quadrature phase-shift keying(QPSK) and differential quadrature phase-shift keying(DQPSK) signals was investigated through numerical simulations.
对适用于正交相移键控和差分正交相移键控信号的全光再生器进行了仿真。
3.
Differential Quadrature Phase Shift Keying(DQPSK) has higher spectral efficiency and greater robustness to chromatic and polarization mode dispersion than On-Off Keying(OOK).
40 Gbit/s波分复用系统已开始商用,在这种系统中,差分正交相移键控(DQPSK)比开关键控有更高的谱效率并且对色散和偏振模色散等有更高的鲁棒性。
4) return-to-zero/carrier-suppressed return-to-zero differential quadrature phase-shift keyed
差分正交相移键控载波抑制归零码
5) Differential quadrature phase-shift keying (DQPSK)
光差分相移键控调制
6) QPSK
正交相移键控
1.
The quadrature phase-shift keying(QPSK)modulation technique has widespread application in engineering.
正交相移键控(QPSK)调制技术已经在工程中得到了广泛应用,然而随着电子对抗技术的发展,QPSK的非平衡调制技术水平也得到了相应的提高,以专门针对通信或定位中的QPSK调制进行干扰。
2.
And an all-optical regenerator design scheme for quadrature phase-shift keying(QPSK) and differential quadrature phase-shift keying(DQPSK) signals was investigated through numerical simulations.
对适用于正交相移键控和差分正交相移键控信号的全光再生器进行了仿真。
补充资料:示差分光光度法
分子式:
CAS号:
性质:用已知适宜浓度的标准溶液作为参比溶液调零和100%标度,测量试样溶液对已知标准参比溶液的透射比。故又称透射比法(transmittance tatio measurement method)。有高吸光度法、低吸光度法和最精确法。适用于高浓或低浓试样,可提高方法的准确度和精密度。
CAS号:
性质:用已知适宜浓度的标准溶液作为参比溶液调零和100%标度,测量试样溶液对已知标准参比溶液的透射比。故又称透射比法(transmittance tatio measurement method)。有高吸光度法、低吸光度法和最精确法。适用于高浓或低浓试样,可提高方法的准确度和精密度。
说明:补充资料仅用于学习参考,请勿用于其它任何用途。
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