Patents Examined by David W Lambert
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Patent number: 10448472Abstract: A function disabler system includes a personal electronic device having at least one component such as a camera, and a processor having pulsed light communication software enabling receipt and transmission of pulsed light communication signals. The processor additionally includes a hosting customer software application, where the personal electronic device receives at least one pulsed light communication signal within a designated area and the pulsed light communication signal includes an instruction signal which instructs the hosting customer software application to disable the at least one component when the personal electronic device is positioned in the designated area.Type: GrantFiled: December 5, 2018Date of Patent: October 15, 2019Assignee: Federal Law Enforcement Development Services, Inc.Inventor: John C. Pederson
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Patent number: 10425155Abstract: Provided are a device and method for free space coherent optical communications by means of an automatic compensation for phase noise in atmosphere using a femtosecond laser optical comb, and more particularly, a device and method for free space coherent optical communications by means of an automatic compensation for phase noise in atmosphere using a femtosecond laser optical comb, in which a phase shift value due to atmospheric turbulence is obtained from reflected light of transmission light generated from a femtosecond laser optical comb and the transmission light is pre-distorted on the basis of the phase shift value, thereby pre-compensating, in a transmission end, for phase noise due to atmospheric turbulence.Type: GrantFiled: August 21, 2015Date of Patent: September 24, 2019Assignee: Korea Advanced Institute of Science and TechnologyInventors: Seung-Woo Kim, Young-Jin Kim, Byung Jae Chun, Hyun Jay Kang
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Patent number: 10419124Abstract: A method and device for optical data transmission are disclosed. Data bits are transmitted in the form of data symbols, by modulating an optical signal in dependence on the data bits and in accordance with two or more constellation schemes. The data bits are transmitted, by generating first data symbols, which represent respective sets of data bits containing an even number of data bits. The first data symbols are generated, by modulating the optical signal in accordance with a first constellation scheme. Furthermore, the data bits are transmitted, by generating second data symbols, which represent respective sets of data bits having an odd number of data bits. The second data symbols are generated, by modulating the optical signal in accordance with a second constellation scheme. The first and the second data symbols are generated at a predefined symbol rate, such that the first and the second data symbols are interleaved in time.Type: GrantFiled: December 9, 2013Date of Patent: September 17, 2019Assignee: Alcatel LucentInventors: Jeremie Renaudier, Rafael Rios Muller, Gabriel Charlet
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Patent number: 10419112Abstract: A monitoring system using an optical line is disclosed. The monitoring system using an optical line according to the present invention comprises: a laser diode for generating an input optical signal; an optical element for receiving the input optical signal through a first port and outputting same through a second port, and for receiving a reflected optical signal through the second port and outputting same through a third port; an optical switch unit for receiving the input optical signal through an input port connected to the second port of the optical element, and for distributing same through at least two output ports; at least one optical monitoring line connected to the output ports of the optical switch unit; a photodiode connected to the third port of the optical element, for detecting the reflected optical signal; and a signal processing unit for processing the signal detected by the photodiode.Type: GrantFiled: July 3, 2015Date of Patent: September 17, 2019Inventor: Jae Hee Byun
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Patent number: 10411823Abstract: An optical transmitter includes: a plurality of laser diodes each of which outputs signal light having a wavelength that is different from a wavelength of other signal light; an optical multiplexer that is disposed adjacently to the laser diodes along a first direction, and that multiplexes the signal light output from the respective laser diodes; and a driving circuit that is disposed adjacently to the optical multiplexer along a second direction that is different from the first direction, and that drives the laser diodes. The optical multiplexer and the driving circuit are integrated.Type: GrantFiled: May 4, 2018Date of Patent: September 10, 2019Assignee: FUJITSU OPTICAL COMPONENTS LIMITEDInventor: Koji Otsubo
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Patent number: 10404379Abstract: An optical communication apparatus includes: a light-receiving device that receives an optical signal transmitted from another optical communication apparatus through an optical fiber and converts the optical signal into an electrical signal; a first measurement circuit that measures an average power and a modulation power of the optical signal based on the electrical signal; a light-emitting device that transmits the optical signal to the another optical communication apparatus by emitting light in accordance with a driving current; a driver that causes the light-emitting device to transmit the optical signal according to a transmission signal by controlling the driving current based on the transmission signal; and a processor that adjusts the driving current based on the average power and the modulation power.Type: GrantFiled: January 22, 2018Date of Patent: September 3, 2019Assignee: FUJITSU LIMITEDInventor: Takashi Shiraishi
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Patent number: 10404378Abstract: A transmitter is provided that transmits data in either a “quasi-DP-BPSK” (“QDP”) mode or in a DP-QPSK mode. In the QDP mode, data bits are transmitted as changes in phase between first and second phase states along a first axis or as changes in phase between third and fourth phase states along a second axis in the IQ plane. A sequence bit identifies which axis carries the data bit. The sequence bit is one of a series of sequence bits that may be generated by a pseudo-random number generator. The series of sequence bits can be relatively long to permit sufficiently random changes in the axis that carries the data. Thus, unlike conventional BPSK, in which data is transmitted between phase states along a single axis, the present disclosure provides an apparatus and related method for randomly selecting one of two axes, for example, for each transmitted bit.Type: GrantFiled: March 23, 2017Date of Patent: September 3, 2019Assignee: Infinera CorporationInventors: John D. McNicol, Kuang-Tsan Wu
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Patent number: 10404364Abstract: An example system includes circuitry to receive an input signal, to provide a related signal based on informational content of the input signal, and to obtain parametric data associated with the input signal. The parametric data represents one or more signal characteristics other than the informational content. The example system also includes a first switch that is configurable to provide first data based on the related signal to one or more first channels of the system; and a second switch that is configurable to provide second data based on the parametric data to one or more second channels of the system.Type: GrantFiled: May 1, 2017Date of Patent: September 3, 2019Assignee: Teradyne, Inc.Inventors: Tushar K. Gohel, David Kaushansky, Pavel Gilenberg, Pedro M. Teixeira, Casey A. Hersey, Frank L. Booth, Jr.
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Patent number: 10396865Abstract: A telecommunications system may include a measurement receiver to confirm the presence of a MIMO signal prior to decoding signals to avoid decoding spectrum that does not include MIMO signals. The measurement receiver may determine a fast Fourier transform (FFT) spectrum for asynchronous wideband digital signals received from two or more ports. The measurement receiver may determine an average FFT spectrum based on the determined FFT spectrum and identify a bandwidth of signals present in the average FFT spectrum. The measurement receiver may identify the MIMO signals present in the bandwidth of signals and decode only the identified MIMO signals.Type: GrantFiled: July 14, 2015Date of Patent: August 27, 2019Assignee: CommScope Technologies LLCInventors: Zhao Li, Kevin Walkup
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Patent number: 10389443Abstract: Markers 200-0˜200-3 emit light, according to control by as server 100, in accordance with a light emission pattern. On the other hand, a mobile device 300 distinguishes a reference signal and a numerical signal based on a mode of light emission of the markers 200-0˜200-3, and displays, upon receiving the numerical signal, a numerical value at a position of the marker 200 corresponding to the numerical signal in a frame, and displays, upon receiving the reference signal, ongoing reception of an ID at a position of the marker 200-0 corresponding to the reference signal in the frame. Furthermore, the mobile device 300 displays, at timing when all of the reference signals and the numerical signals are received, at a position of the marker 200-0 in the frame, a plurality of numerical values and units of the plurality of numerical values being integrated.Type: GrantFiled: March 10, 2016Date of Patent: August 20, 2019Assignee: CASIO COMPUTER CO., LTD.Inventor: Masaaki Kikuchi
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Patent number: 10374700Abstract: An integrating sphere-equipped optical measurement device and optical connector polarity and type identification and loss measurement are provided. The optical measurement device receives one or more optical signals that respectively emanate from one or more optical fibers of a plurality of optical fibers of an optical fiber cable. The optical measurement device determines one or more respective positions where the one or more optical signals impinged on a sensor. The optical measurement device determines based on the one or more positions, one or more receiving positions of the one or more optical signals, respectively. The optical measurement device determines a polarity of the optical fiber cable based on both the one or more receiving positions and one or more or transmitting positions of the one or more optical signals, respectively.Type: GrantFiled: March 17, 2017Date of Patent: August 6, 2019Assignee: Fluke CorporationInventors: J. David Schell, Seymour Goldstein, Piotr Anatolij Levin
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Patent number: 10361779Abstract: In the optical transmission system to transmit optical signals using a plurality of adjacent paths, it is difficult to detect a delay difference between a plurality of paths and chromatic dispersion with a high degree of accuracy due to a crosstalk; therefore, a method for detecting optical signal information according to an exemplary aspect of the present invention includes generating a plurality of data signal sequences corresponding to a plurality of paths multiplexed spatially, each of the plurality of data signal sequences obtained by inserting periodically a training signal with a plurality of frequency components in a data signal, in the plurality of data signal sequences, the training signals respectively included in the data signal sequences to be propagated through adjacent paths at least having different frequency components from each other at the same timing, each of a plurality of the training signals included in one of the data signal sequences having the plurality of frequency components whoseType: GrantFiled: March 17, 2016Date of Patent: July 23, 2019Assignee: NEC CORPORATIONInventors: Manabu Arikawa, Emmanuel Le Taillandier De Gabory, Toshiharu Ito
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Patent number: 10361781Abstract: A system for digital aggregation of upstream traffic in a network includes optical nodes coupled to a customer distribution network. Dedicated optical fiber spans are coupled to the optical nodes, where each optical node is assigned a dedicated optical fiber span. An upstream aggregator is coupled to each of dedicated optical fiber spans. The upstream aggregator receives digital data from each optical node over each dedicated optical fiber spans assigned to the optical nodes, aggregates the digital data received from each optical node, and outputs the aggregated digital data. The system further includes a digital receiver coupled to the upstream aggregator. The digital receiver receives the aggregated digital data from the upstream aggregator, processes the aggregated digital data; and outputs the processed aggregated digital data to the network.Type: GrantFiled: February 12, 2018Date of Patent: July 23, 2019Assignee: SEALIGHT TECHNOLOGIES, INC.Inventor: Moshe Frozenfar
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Patent number: 10326531Abstract: An out-of-band (OOB) signal detector is disclosed. The OOB signal detector may include a first node configured to receive an alternating current (AC) portion and a direct current (DC) portion of an electrical signal. The AC portion may include modulated OOB data carried by the electrical signal. The OOB signal detector may also include a current to voltage processing circuit configured to extract the AC portion of the electrical signal. The OOB signal detector may additionally include a limiting amplifier circuit configured to receive the extracted AC portion and to generate an amplified signal based on the extracted AC portion. The OOB signal detector may further include an analog-to-digital convertor circuit configured to sample the amplified signal and to generate a digital sample that represents the modulated OOB data.Type: GrantFiled: September 18, 2018Date of Patent: June 18, 2019Assignee: FINISAR CORPORATIONInventors: Andrew Zocher, Theron Jones, Lucy Hosking
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Patent number: 10326528Abstract: There is provided an optical transceiver including a laser light source configured to transmit a first optical signal via an optical transmission member having optical fibers, a photodetector configured to receive a second optical signal via the optical transmission member, a visible light source configured to emit visible light which is incident to the optical transmission member, and a control circuit configured to, when the photodetector detects not to receive the second optical signal, control the laser light source to stop transmitting the first optical signal and the visible light source to start emitting the visible light.Type: GrantFiled: February 2, 2018Date of Patent: June 18, 2019Assignee: FUJITSU LIMITEDInventor: Mariko Kase
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Patent number: 10302529Abstract: An integrating sphere-equipped optical measurement device and optical connector polarity and type identification and loss measurement are provided. The optical measurement device includes at least two photodetectors that are optically responsive over different ranges of wavelengths. The optical measurement device receives one or more optical signals emanate from optical fibers of an optical fiber cable. The optical measurement device determines an optical intensity or loss of the one or more optical signals based on a measurement made by a corresponding photodetector whose responsivity range includes a wavelength of the one or more optical signals. The optical measurement device determines one or more respective positions where the one or more optical signals impinged on a sensor. The optical measurement device determines a polarity of the optical fiber cable based on both the one or more positions and one or more or transmitting positions of the one or more optical signals, respectively.Type: GrantFiled: January 8, 2018Date of Patent: May 28, 2019Assignee: Fluke CorporationInventors: J. David Schell, Seymour Goldstein, Piotr Anatolij Levin
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Patent number: 10299019Abstract: A communication method includes combining first and second optical signals into a third optical signal, processing the third optical signal, and separating the third optical signal back into the first and second optical signals. The method includes sending the first optical signal out a first system port, sending the second optical signal out a second system port, receiving a fourth optical signal in the first system port, and receiving a fifth optical signal in the second system port. The method also includes combining the fourth and fifth optical signals into a sixth optical signal, processing the sixth optical signal, and separating the sixth optical signal back into the fourth and fifth optical signals.Type: GrantFiled: June 23, 2017Date of Patent: May 21, 2019Assignee: X DEVELOPMENT LLCInventors: Chiachi Wang, Romain Clement
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Patent number: 10289213Abstract: The invention is directed at a remote control device for controlling one or more user devices, comprising a directional optical sensor for receiving one or more optical signals from the user devices and for detecting an incoming direction of said received optical signals, and a processor. For identification of at least one of said user devices, the processor is arranged for analyzing at least one of said received optical signals for associating thereof with the at least one of said user devices and for keeping track of the at least one of said optical signals upon changing of said incoming direction. The one or more optical signals comprise high and low signal states, wherein each optical signal consists of one or more signal fragments.Type: GrantFiled: September 28, 2015Date of Patent: May 14, 2019Assignee: KONINKLIJKE PHILIPS N.V.Inventors: Hendricus Theodorus Gerardus Maria Penning De Vries, Henk Kok, Johannes Yzebrand Tichelaar
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Patent number: 10284295Abstract: The disclosure is directed to a radio over fiber (RoF) network node, base station, and communication system. In one of the exemplary embodiments, the disclosure is directed to a radio over fiber (RoF) network node which includes not limited to: a laser source which transmits a first laser beam having a first wavelength; a first Electroabsorption Modulated Laser (EML) which modulates a first electrical signal into a second laser beam that is modulated and has a second wavelength; and a first optical coupler which is coupled to the laser source and the EML and transmits an output laser beam having a first carrier frequency which is determined based on a difference between the first wavelength and the second wavelength.Type: GrantFiled: October 21, 2016Date of Patent: May 7, 2019Assignee: Industrial Technology Research InstituteInventor: Che-Hao Li
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Patent number: 10270536Abstract: Methods, systems, and apparatus for phase-sensitive regeneration of a signal without a phase-locked loop and using Brillouin amplification. The system for phase-sensitive regeneration includes a data channel, one or more pumps and a mixing stage. The one or more pumps are coupled with the data channel. The mixing stage is coupled with the data channel and is for processing a data signal that is combined with an output of the one or more pumps and idler or higher harmonic. The mixing stage is configured to amplify the idler or higher harmonic using Brillouin amplification in a Brillouin gain medium to keep the one or more pumps and the data channel phase-locked.Type: GrantFiled: March 20, 2017Date of Patent: April 23, 2019Assignee: UNIVERSITY OF SOUTHERN CALIFORNIAInventors: Ahmed Almaiman, Alan E. Willner, Yinwen Cao, Morteza Ziyadi