METHOD, SYSTEM, AND NODE DEVICE FOR MONITORING OPTICAL PERFORMANCE OF WAVELENGTH CHANNEL
    1.
    发明申请
    METHOD, SYSTEM, AND NODE DEVICE FOR MONITORING OPTICAL PERFORMANCE OF WAVELENGTH CHANNEL 有权
    用于监测波长通道光学性能的方法,系统和节点设备

    公开(公告)号:US20150043906A1

    公开(公告)日:2015-02-12

    申请号:US14521956

    申请日:2014-10-23

    Inventor: Enbo ZHOU Sen Zhang

    Abstract: Embodiments of the present invention relate to the field of network communications and specifically discloses a method for monitoring optical performance of a wavelength channel, including: receiving, by a first node, an optical signal over an operating wavelength and obtaining, by the first node, optical performance of the unestablished wavelength channel by monitoring the optical signal at a receiving end. Embodiments of the present invention further disclose a system and a node device for monitoring optical performance of a wavelength channel.

    Abstract translation: 本发明的实施例涉及网络通信领域,具体公开了一种用于监视波长信道的光学性能的方法,包括:由第一节点在工作波长上接收光信号,并由第一节点获得, 通过监视接收端的光信号,建立未建立的波长信道的光学性能。 本发明的实施例还公开了一种用于监视波长信道的光学性能的系统和节点设备。

    OPTICAL SIGNAL PROCESSING METHOD AND COHERENT RECEIVER

    公开(公告)号:US20180191447A1

    公开(公告)日:2018-07-05

    申请号:US15906514

    申请日:2018-02-27

    Abstract: An optical signal processing method and a coherent receiver, wherein an in-phase signal XI in a first polarization direction and an in-phase signal YI in a second polarization direction are added up to obtain a signal I; a quadrature signal XQ in the first polarization direction and a quadrature signal YQ in the second polarization direction are added up to obtain a signal Q; and quantization, combination, and digital signal processing are performed on the I and the Q. After summation, two signals need to be quantized. Therefore, a quantity of ADCs is reduced by half. In addition, because power consumption of a summation component is less than that of an ADS, power consumption of optical signal processing can be reduced. In addition, because there is a preset value, the summation may be performed after phase-inversion is performed on one analog signal, thereby avoiding a signal loss caused by the summation.

    METHOD AND APPARATUS FOR DETERMINING GAIN OF RAMAN OPTICAL AMPLIFIER AND RAMAN OPTICAL AMPLIFIER
    3.
    发明申请
    METHOD AND APPARATUS FOR DETERMINING GAIN OF RAMAN OPTICAL AMPLIFIER AND RAMAN OPTICAL AMPLIFIER 有权
    用于确定拉曼光放大器和拉曼光放大器增益的方法和装置

    公开(公告)号:US20160329678A1

    公开(公告)日:2016-11-10

    申请号:US15216415

    申请日:2016-07-21

    Abstract: The present invention discloses a method and an apparatus for determining a gain of a Raman optical amplifier and a Raman optical amplifier. The method includes: acquiring present gain parameter information of a Raman optical amplifier; and determining a present gain of a monitoring channel of the Raman optical amplifier according to the present gain parameter information and a correspondence between a gain of the monitoring channel of the Raman optical amplifier and gain parameter information. According to the method and apparatus for determining a gain of a Raman optical amplifier and the Raman optical amplifier that are in embodiments of the present invention, a present gain of a monitoring channel can be accurately determined; therefore, a gain spectrum of the Raman optical amplifier can be accurately monitored, and the gain of the Raman optical amplifier can be accurately adjusted to a target gain.

    Abstract translation: 本发明公开了一种用于确定拉曼光放大器和拉曼光放大器的增益的方法和装置。 该方法包括:获取拉曼光放大器的当前增益参数信息; 以及根据本增益参数信息确定拉曼光放大器的监视通道的当前增益以及拉曼光放大器的监视通道的增益与增益参数信息之间的对应关系。 根据在本发明的实施例中的用于确定拉曼光放大器和拉曼光放大器的增益的方法和装置,可以准确地确定监视通道的当前增益; 因此,可以精确地监视拉曼光放大器的增益谱,并且可以将拉曼光放大器的增益准确地调整为目标增益。

    OPTOELECTRONIC COMPONENT AND FABRICATION METHOD THEREOF

    公开(公告)号:US20210219431A1

    公开(公告)日:2021-07-15

    申请号:US17206568

    申请日:2021-03-19

    Abstract: Embodiments of this application disclose an optoelectronic component and a fabrication method thereof. The optoelectronic component includes a capacitor, an inductor, a carrier component, and an optoelectronic element, where the capacitor, the inductor, and the optoelectronic element are all disposed on the carrier component. The inductor and the capacitor are configured to form a resonant circuit, where a resonance frequency of the resonant circuit is correlated with a signal output frequency of the optoelectronic element. A first electrode of the optoelectronic element is connected to a first electrode of the carrier component through the inductor, and a second electrode of the optoelectronic element is connected to a second electrode of the carrier component. A first electrode of the capacitor is connected to the first electrode of the carrier component, and a second electrode of the capacitor is connected to the second electrode of the carrier component.

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