Patents Examined by Hanh Phan
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Patent number: 11901953Abstract: An optical transmission system, in which an optical transmission apparatus and an optical reception apparatus are provided, includes a coefficient determination unit configured to optimize, based on a reception signal received by the optical reception apparatus, a coefficient to be used to compensate for deterioration according to characteristics of each device configuring a transmission path between the optical transmission apparatus and the optical reception apparatus, and a device characteristic estimation unit configured to estimate the characteristics of each device by using the optimized coefficient.Type: GrantFiled: March 31, 2020Date of Patent: February 13, 2024Assignee: NIPPON TELEGRAPH AND TELEPHONE CORPORATIONInventors: Takeo Sasai, Masanori Nakamura, Asuka Matsushita, Yoshiaki Kisaka
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Patent number: 11888535Abstract: A powered device includes a photoelectric conversion element, a thermoelectric conversion element and a first power line. The photoelectric conversion element receives and converts feed light into electric power. The thermoelectric conversion element is disposed such that heat can be conducted thereto from the photoelectric conversion element. The first power line transmits, to a load, electric power obtained by conversion by the thermoelectric conversion element.Type: GrantFiled: May 20, 2020Date of Patent: January 30, 2024Assignee: KYOCERA CORPORATIONInventor: Shuichi Tamate
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Patent number: 11888529Abstract: A coherent transmitter includes a first beam splitter that splits an input first optical signal to obtain a second optical signal and a third optical signal, a first modulator that modulates the second optical signal to obtain a first modulated signal, a phase shift adjustment unit that adjusts a phase of a first sub-signal in the first modulated signal and adjusts a phase of a fourth sub-signal in the phase-adjusted first sub-signal, a first beam combiner that combines a second sub-signal in the first modulated signal and the phase-adjusted fourth sub-signal to obtain a first combined signal, a first PD that performs optical-to-electrical conversion on the first combined signal to obtain a first electrical signal, and a controller that controls, based on the first electrical signal, a voltage applied to the phase shift adjustment unit.Type: GrantFiled: July 15, 2022Date of Patent: January 30, 2024Assignee: HUAWEI TECHNOLOGIES CO., LTD.Inventors: Rui Li, Xu Sun, Xiaolu Song
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Patent number: 11888519Abstract: Provided herein are various enhanced systems, apparatuses, and techniques for optical communication among a constellation of satellites. One example includes establishing an initial cross-connect configuration comprising optical communication links among a constellation of satellites. In the initial cross-connect configuration, the satellites can optically communicate with both adjacently positioned and non-adjacently positioned satellites in the constellation. The satellites obtain angular states of the optical communication links resultant from orbital motion of the satellites. When angular states of a portion of the optical communication links reach an exclusion range, the satellites establish a subsequent cross-connect configuration to avoid optically communicating within the exclusion range.Type: GrantFiled: April 1, 2022Date of Patent: January 30, 2024Assignee: Lockheed Martin CorporationInventors: Matthew Henry Rosenbrock, Neil Evan Goodzeit, Harald J. Weigl, Joseph F. Eder
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Patent number: 11881893Abstract: An optical communication system according to the present invention cancels waveform distortion due to wavelength dispersion by extracting the spectrum of a transmitted optical signal and passing the optical signal to a fiber having a dispersion value opposite to a dispersion amount corresponding to a transmission distance received by the spectrum component and compensates for a transmission path loss due to the fiber having the opposite dispersion value using optical splitters having different split ratios. With this configuration, the present invention can compensate for waveform distortion due to wavelength dispersion by a simple method in an access network and achieve an increase in the reachable transmission distance of the farthest user or an increase in the number of connectable users.Type: GrantFiled: February 12, 2020Date of Patent: January 23, 2024Assignee: NIPPON TELEGRAPH AND TELEPHONE CORPORATIONInventors: Kazutaka Hara, Yasutaka Kimura, Atsuko Kawakita
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Patent number: 11876559Abstract: An optical transmission system includes a first optical node, a second optical node, and an optical fiber provided between the first optical node and the second optical node. The optical transmission system further includes: a signal generator provided in the first optical node and configured to generate an optical signal including a plurality of wavelength channels and an empty channel; an optical transmission circuit provided in the first optical node and configured to output the optical signal to the optical fiber; an optical channel monitor provided in the second optical node and configured to measure reception power of each channel in the optical signal received through the optical fiber; and a processor configured to determine a type of the optical fiber based on the reception power of the empty channel, the reception power being measured by the optical channel monitor.Type: GrantFiled: July 29, 2022Date of Patent: January 16, 2024Assignee: FUJITSU LIMITEDInventors: Goji Nakagawa, Takafumi Terahara, Hiroki Oi
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Patent number: 11873988Abstract: A light shaping assembly comprises a printed circuit board (PCB) and a two-dimensional (2D) array formed of a plurality of rows, each row comprising a plurality of light sources mounted on the PCB, each light source comprising a pair of supporting pins for mounting the light source on the PCB. The supporting pins of each light source are bent at an angle that is increasing as a function of a distance between each light source and a selected point on the PCB so that light beams emitted by the light sources are collectively directed toward a common target.Type: GrantFiled: September 10, 2021Date of Patent: January 16, 2024Assignee: SACO TECHNOLOGIES INC.Inventors: Bassam Jalbout, Brian Wong
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Patent number: 11870552Abstract: Coherent optical multiplexing 1+1 protection disclosed herein uses multiplexers, each having multiplexing and demultiplexing sub-units. Relay ports of a node are connected with the multiplexers, and each relay port is configured to input and output optical signals with the corresponding multiplexer. Two transmission ports of the node are connected with disjoint paths and are configured to input and output optical signals therewith. The node includes: a first optical splitter having input ports connected with the relay ports and two output ports connected with the two transmission ports; an optical switch connected with the transmission ports respectively via two input interfaces; a second optical splitter, which is a 1×N optical splitter, having one input port connected with an output interface of the optical switch and having output ports connected with the relay ports. The solution is reliable in implementation, has low insertion loss, and has good transmission performance.Type: GrantFiled: March 21, 2023Date of Patent: January 9, 2024Assignee: II-VI DELAWARE, INC.Inventors: Peigang Hu, Yajun Wang
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Patent number: 11855696Abstract: Methods, systems, and devices for network communications to reduce optical beat interference (OBI) in upstream communications are described. For example, a fiber node may provide a narrow band seed source to injection lock upstream laser diodes. Therefore, upstream communications from each injection locked laser diode may primarily include the wavelength associated with each seed source. The seed sources may be unique to each end device and configured to minimize OBI. That is, the upstream laser diodes may be generic, but the received seed source may enable upstream communications at varying wavelengths. The fiber node may provide each seed source by filtering (e.g., by a grating filter) a broadband light source.Type: GrantFiled: July 18, 2022Date of Patent: December 26, 2023Assignee: Cable Television Laboratories, Inc.Inventor: Luis Alberto Campos
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Patent number: 11842628Abstract: A remote control device for remotely controlling a target device to be controlled is provided.Type: GrantFiled: July 5, 2022Date of Patent: December 12, 2023Assignee: OHSUNG ELECTRONICS CO., LTD.Inventors: Gyung Hwan Chu, Ji Hoon Kim, So Young Lee, Jae Geun Lee
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Patent number: 11835753Abstract: A hollow core fiber (HCF) link is characterized by structural properties selected to support and sustain light propagation in a fundamental mode and in at least one higher-order mode. Connected to a proximal end of the HCF link, there is a mode coupler configured to couple a data signal into the fundamental mode and to couple an obfuscating signal into the at least one higher-order mode for simultaneous propagation of the data signal and the obfuscating signal on the HCF link, where the obfuscating signal substantially overlaps the data signal in spectral content. At a distal end of the HCF link, there is a mode splitter configured to split a first optical signal detected in the fundamental mode from a second optical signal detected in the at least one higher-order mode.Type: GrantFiled: October 25, 2021Date of Patent: December 5, 2023Assignee: Ciena CorporationInventors: Michael Y. Frankel, John Israel, James Westdorp
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Patent number: 11835733Abstract: Optical wavefront shaping has been the standard technique to control light through scattering media. Implicit in this dominance is the assumption that knowledge of the optical phase is a necessity for optical control through scattering media. In this paper, we challenge this assumption by reporting on an intensity-only approach for light control through (or reflected from) a disordered scattering medium—optical-channel-based intensity streaming (OCIS). Instead of actively tuning the interference between the optical paths via wavefront shaping, OCIS can control light and transmit information through or from scattering media with linear intensity operation, which not only simplifies and speeds up the system but also enables new applications. We experimentally created focus patterns through scattering media in a sub-millisecond timescale with a phase-manipulation-free setup. We also demonstrate that, unlike wavefront shaping, OCIS can readily generate distinct energy null points through scattering media.Type: GrantFiled: September 16, 2020Date of Patent: December 5, 2023Assignee: CALIFORNIA INSTITUTE OF TECHNOLOGYInventors: Haowen Ruan, Changhuei Yang, Jian Xu
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Patent number: 11831354Abstract: Systems and methods are described for transmitting information optically. For instance, a system may include an optical source configured to generate a beam of light. The system may include at least one modulator configured to encode data on the beam of light to produce an encoded beam of light/encoded plurality of pulses. The system may include a spectrally-equalizing amplifier configured to receive the encoded beam of light/encoded plurality of pulses from the at least one modulator and both amplify and filter the encoded beam of light/encoded plurality of pulses to produce a filtered beam of light/filtered plurality of pulses, thereby spectrally equalizing a gain applied to the encoded beam of light. In some cases, the system may slice the beam of slight, to ensure a detector has impulsive detection. In some cases, the system may include a temperature controller to shift a distribution curve of wavelengths of the optical source.Type: GrantFiled: August 2, 2023Date of Patent: November 28, 2023Assignee: Attochron, LLCInventors: Thomas M. Chaffee, Wayne H. Knox
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Patent number: 11824320Abstract: An optical amplifier uses, in a gain medium, a multicore optical fiber having a plurality of cores, and comprises: an input-light power monitor that monitors the optical power of input light to the plurality of cores of the multicore optical fiber; an output-light power monitor that monitors the optical power of medium-passed output light from the plurality of cores that has passed through the multicore optical fiber; a crosstalk monitor that monitors the amount of inter-core crosstalk among the plurality of cores; and a controller that controls the pump-light power of pump light superimposed on the input light to the plurality of cores on the basis of the monitored optical power of input light, the monitored optical power of output light, and the monitored amount of inter-core crosstalk.Type: GrantFiled: February 19, 2020Date of Patent: November 21, 2023Assignee: NEC CORPORATIONInventors: Shigeyuki Yanagimachi, Emmanuel Le Taillandier De Gabory
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Patent number: 11817902Abstract: An orientation direction control device includes: an orientation direction control information acquisition unit to acquire orientation direction control information for controlling an orientation direction in which a first optical communication terminal as a first transmission/reception device transmits and receives light; and a capture and tracking control unit as an orientation direction control unit to control an orientation direction in which a second optical communication terminal as a second transmission/reception device transmits and receives the light or a radio wave on the basis of the orientation direction control information acquired by the orientation direction control information acquisition unit.Type: GrantFiled: June 9, 2022Date of Patent: November 14, 2023Assignee: MITSUBISHI ELECTRIC CORPORATIONInventors: Yuta Takemoto, Toshiyuki Ando
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Patent number: 11810995Abstract: A GaN based LED, with an active region of the LED containing one or more quantum wells (QWs), with the QWs separated by higher energy barriers, with the barriers doped, may be part of an optical communications system.Type: GrantFiled: December 3, 2021Date of Patent: November 7, 2023Assignee: AvicenaTech Corp.Inventors: Bardia Pezeshki, Cameron Danesh
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Patent number: 11804904Abstract: A beam steering subsystem is provided in an optical communication system. The beam steering subsystem is configured for steering a free-space optical (FSO) beam from a first transceiver to a second transceiver disposed remotely from the first receiver. The beam steering subsystem includes a beam steering device disposed between the first transceiver and the second transceiver, and an optical tracking unit in optical communication and electrical communication with the beam steering device. The wherein the beam steering device is further configured to (i) receive the FSO beam from the first transceiver, (ii) receive an optical tracking signal from the second transceiver, (iii) optically relay the received optical tracking signal to the optical tracking unit, and (iv) steer the FSO beam to the second transceiver based on an electrical feedback control signal from optical tracking unit.Type: GrantFiled: July 23, 2021Date of Patent: October 31, 2023Assignee: Cable Television Laboratories, Inc.Inventors: Haipeng Zhang, Zhensheng Jia, Junwen Zhang, Mu Xu, Luis Alberto Campos
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Patent number: 11799560Abstract: An asymmetric coherent receiver includes an optical front end configured to split a received optical signal into two paths, wherein the split received optical signal experiences a different optical transfer function in one of the two paths; two photodetectors each configured to detect power one of the split received optical signals in each of the two paths to obtain corresponding electrical signals; and circuitry configured to perform electrical domain extraction of information of each of the corresponding electrical signals from the two paths, wherein the different optical transfer function provides additional information utilized in optical field reconstruction via direct detection.Type: GrantFiled: January 19, 2022Date of Patent: October 24, 2023Assignee: Ciena CorporationInventors: Xueyang Li, Maurice O'Sullivan, Zhenping Xing, David V. Plant, Mohammad E. Mousa Pasandi
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Patent number: 11800264Abstract: A system for sending data in an optical network comprising a plurality of source nodes and destination nodes is disclosed. In one aspect, a source node generates, in a spectral band that is associated with it, a multi-carrier optical data signal obtained by modulation of a source signal at a source wavelength and sends it in the form of single-band data bursts that can be associated with distinct source wavelengths. A single-band data burst comprises, in addition to payload data symbols (PL), a sequence of learning symbols (TS) composed of a plurality of learning symbols. A control unit belonging to the control plane of the optical network determines, for at least one of the source nodes, instants of sending of the single-band data bursts and source wavelengths to be used for sending these single-band data bursts, as a function of a path time of the data bursts between the source node and one of the destination nodes associated with the source wavelength.Type: GrantFiled: February 14, 2019Date of Patent: October 24, 2023Assignee: OrangeInventors: Bing Han, Paulette Gavignet, Erwan Pincemin
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Patent number: 11791897Abstract: A detection unit detecting adjustment patterns formed by a discharging head discharging color ink on a medium is provided, in which the detection unit includes a light emitting unit irradiating the medium with visible light, a light receiving unit receiving reflected light of the visible light, and at least one filter disposed on an optical path from the light emitting unit to the light receiving unit, and configured to attenuate an amount of light, and the filter, when a first absorption bandwidth is a wavelength range centered at a peak wavelength of an absorption wavelength in an absorption spectrum of a color of ink used to form the adjustment patterns and a first emission bandwidth is a wavelength range, corresponding to the first absorption bandwidth, of an emission spectrum of the visible light, is attenuated the visible light having a wavelength in an outside range of the first emission bandwidth.Type: GrantFiled: February 23, 2021Date of Patent: October 17, 2023Assignee: Seiko Epson CorporationInventor: So Yokota