Patents by Inventor Marco Mazzini
Marco Mazzini has filed for patents to protect the following inventions. This listing includes patent applications that are pending as well as patents that have already been granted by the United States Patent and Trademark Office (USPTO).
-
Publication number: 20240113776Abstract: Hot pluggable or swappable devices that are easily removed and replaced by a network operator may be monitored for faults and utilized in post-deployment use. Device specific local monitoring and storing of operational parameters during a deployment of a device in a network is described. Additionally, utilizing the recorded operational parameters of device to generate baseline conditions for the device and individualized recommendations for the device is also described.Type: ApplicationFiled: October 3, 2022Publication date: April 4, 2024Inventors: Malu JAYACHANDRAN, Shriti GUPTA, Li SUN, Vaishnavi V, Marco MAZZINI, Alberto CERVASIO
-
Patent number: 11922979Abstract: In accordance with an embodiment, a circuit is configured to vary an intensity of a drive current of a resistive heater element based on the digital control signal. The circuit includes and output circuit configured to control a respective slew rate and an electric energy dissipated in the resistive heater element independently of a resistance value of the resistive heater element.Type: GrantFiled: December 23, 2022Date of Patent: March 5, 2024Assignee: STMicroelectronics S.r.l.Inventors: Marco Mazzini, Marco Ciuffolini, Enrico Mammei, Paolo Pulici
-
Publication number: 20230245676Abstract: In accordance with an embodiment, a circuit is configured to vary an intensity of a drive current of a resistive heater element based on the digital control signal. The circuit includes and output circuit configured to control a respective slew rate and an electric energy dissipated in the resistive heater element independently of a resistance value of the resistive heater element.Type: ApplicationFiled: December 23, 2022Publication date: August 3, 2023Inventors: Marco Mazzini, Marco Ciuffolini, Enrico Mammei, Paolo Pulici
-
Publication number: 20220284381Abstract: A logistics method for a Product supply and distribution chain is described, the chain including a plurality of subjects in connection with one another through a centralized server for managing various activities for each subject in the chain and for using the data for the benefit of each subject in the chain, the method including the steps of: generating, through an electronic device of a Producer, a Digital Identity of a Product, the Digital Identity having an identifier and information about the Product; communicating, through said electronic device of the Producer, the association between the identifier and the Producer to a first database of a Certifying Body; associating the Digital Identity with the Product; recognizing, through an electronic device of a Customer, the identifier associated with the Product and transmitting the identifier to the centralized server; consulting, by the centralized server, the database of the Certifying Body and transmitting to the electronic device of the Customer an elecType: ApplicationFiled: July 27, 2020Publication date: September 8, 2022Inventors: Claudio Lupica Rinato, Dario Martinelli, Marco Mazzini
-
Patent number: 11374655Abstract: A link extender configured to extend a range of an optical transceiver module is provided. The link extender includes an array of semiconductor optical amplifiers (SOAs) configured to amplify an optical signal received from the optical transceiver module, a first plurality of variable optical attenuators (VOAs) configured to control a power output of the amplified optical signal output from the array of SOAs, and a plurality of dispersion compensation and filtering (DC&F) devices configured to compensate for chromatic dispersion of the optical signal.Type: GrantFiled: June 10, 2021Date of Patent: June 28, 2022Assignee: Cisco Technology, Inc.Inventors: Marco Mazzini, Alberto Cervasio, Jock T. Bovington
-
Publication number: 20220109503Abstract: Techniques for tuning an optical communication system are disclosed. The system includes a first signal path for transmitting data, including an optical source, a first one or more variable optical attenuators (VOAs), a modulator, and a transmission fiber. The system further includes a second signal path for receiving data, including a receiver fiber and a second one more VOAs. The first one or more VOAs are tuned using the optical source in the first signal path for transmitting data, based on comparing a plurality of optical signal power values in the first path while a first tuning mode is enabled. The second one or more VOAs are tuned, using the optical source in the first signal path for transmitting data, based on comparing a plurality of optical signal power values in the second path while a second tuning mode is enabled.Type: ApplicationFiled: October 2, 2020Publication date: April 7, 2022Inventors: Marco MAZZINI, Alberto CERVASIO
-
Patent number: 11296791Abstract: Techniques for tuning an optical communication system are disclosed. The system includes a first signal path for transmitting data, including an optical source, a first one or more variable optical attenuators (VOAs), a modulator, and a transmission fiber. The system further includes a second signal path for receiving data, including a receiver fiber and a second one more VOAs. The first one or more VOAs are tuned using the optical source in the first signal path for transmitting data, based on comparing a plurality of optical signal power values in the first path while a first tuning mode is enabled. The second one or more VOAs are tuned, using the optical source in the first signal path for transmitting data, based on comparing a plurality of optical signal power values in the second path while a second tuning mode is enabled.Type: GrantFiled: October 2, 2020Date of Patent: April 5, 2022Assignee: Cisco Technology, Inc.Inventors: Marco Mazzini, Alberto Cervasio
-
Patent number: 11249266Abstract: Embodiments herein describe an intelligent optical cable that includes an optical assembly disposed between two pluggable connectors. In one embodiment, the optical assembly in the intelligent optical cable are coupled to the pluggable connectors via respective ribbons, where first ends of the ribbons are connected to the optical assembly while second ends of the ribbons are connected to respective pluggable connectors. In one embodiment, the optical assembly includes a photonic chip which performs an optical function on the optical signals propagating in the optical cable.Type: GrantFiled: November 21, 2019Date of Patent: February 15, 2022Assignee: Cisco Technology, Inc.Inventors: Marco Mazzini, Alberto Cervasio
-
Patent number: 11101890Abstract: The present disclosure provides signal management with unequal eye spacing by: determining a dispersion slope of a channel between a transmitter and a receiver based on a temperature of the transmitter and a wavelength used by the transmitter to transmit signals over the channel; determining maximum and minimum powers for transmission over the channel; assigning a plurality of rails to a corresponding plurality of power levels, wherein amplitude differences between adjacent rails of the plurality of rails are based on the dispersion slope and produce a first eye pattern with a first Ratio of Level Mismatch (RLM) less than one; encoding, by the transmitter, data onto a conditioned signal according to the plurality of rails; and transmitting the conditioned signal over the channel, so that the conditioned signal demonstrates a second eye pattern with a second RLM greater than the first RLM when received at the receiver.Type: GrantFiled: July 20, 2020Date of Patent: August 24, 2021Assignee: Cisco Technology, Inc.Inventors: Marco Mazzini, Christopher R. S. Fludger, Alberto Cervasio, Matthew J. Traverso
-
Publication number: 20210157076Abstract: Embodiments herein describe an intelligent optical cable that includes an optical assembly disposed between two pluggable connectors. In one embodiment, the optical assembly in the intelligent optical cable are coupled to the pluggable connectors via respective ribbons, where first ends of the ribbons are connected to the optical assembly while second ends of the ribbons are connected to respective pluggable connectors. In one embodiment, the optical assembly includes a photonic chip which performs an optical function on the optical signals propagating in the optical cable.Type: ApplicationFiled: November 21, 2019Publication date: May 27, 2021Inventors: Marco MAZZINI, Alberto CERVASIO
-
Publication number: 20210058161Abstract: The present disclosure provides signal management with unequal eye spacing by: determining a dispersion slope of a channel between a transmitter and a receiver based on a temperature of the transmitter and a wavelength used by the transmitter to transmit signals over the channel; determining maximum and minimum powers for transmission over the channel; assigning a plurality of rails to a corresponding plurality of power levels, wherein amplitude differences between adjacent rails of the plurality of rails are based on the dispersion slope and produce a first eye pattern with a first Ratio of Level Mismatch (RLM) less than one; encoding, by the transmitter, data onto a conditioned signal according to the plurality of rails; and transmitting the conditioned signal over the channel, so that the conditioned signal demonstrates a second eye pattern with a second RLM greater than the first RLM when received at the receiver.Type: ApplicationFiled: July 20, 2020Publication date: February 25, 2021Inventors: Marco MAZZINI, Christopher R.S. FLUDGER, Alberto CERVASIO, Matthew J. TRAVERSO
-
Patent number: 10841010Abstract: A local node of an optical network obtains local operating parameters associated with a bi-directional link to a remote node of the optical network, including a nominal local wavelength and a local temperature. The local node also obtains remote operating parameters of the remote node, including a nominal remote wavelength and a remote temperature. The local node further determines a target local wavelength based on a comparison of the local operating parameters and the remote operating parameters, and tunes a local transmitter to generate light at the target local wavelength. The local node also tunes a local filter to transmit light at the target local wavelength and reflect light at a target remote wavelength. This may be done by exchanging a configuration identifier with the remote node. The configuration identifier from the remote node is encoded in pulses of light from a remote transmitter in the remote node.Type: GrantFiled: August 8, 2019Date of Patent: November 17, 2020Assignee: CISCO TECHNOLOGY, INC.Inventors: Marco Mazzini, Alberto Cervasio, Tao Ling
-
Patent number: 10720995Abstract: The present disclosure provides signal management with unequal eye spacing by: sending, from a local transmitter, first and second signals with different first and second known eye patterns to a remote receiver over a channel; sending temperature data of the local transmitter and operating wavelength data of the first and second signals to the remote receiver over the channel; receiving, from the remote receiver, tuning parameters based on a dispersion of the channel based on a first difference between the first known eye pattern as transmitted and as received and a second difference between the second known eye pattern as transmitted and as received; and adjusting transmission rail values used to encode data for transmission over the channel by the local transmitter based on the tuning parameters to produce a conditioned signal for transmission with an unequally spaced eye pattern.Type: GrantFiled: August 21, 2019Date of Patent: July 21, 2020Assignee: Cisco Technology, Inc.Inventors: Marco Mazzini, Christopher R. S. Fludger, Alberto Cervasio, Matthew J. Traverso
-
Publication number: 20200145106Abstract: A local node of an optical network obtains local operating parameters associated with a bi-directional link to a remote node of the optical network, including a nominal local wavelength and a local temperature. The local node also obtains remote operating parameters of the remote node, including a nominal remote wavelength and a remote temperature. The local node further determines a target local wavelength based on a comparison of the local operating parameters and the remote operating parameters, and tunes a local transmitter to generate light at the target local wavelength. The local node also tunes a local filter to transmit light at the target local wavelength and reflect light at a target remote wavelength. This may be done by exchanging a configuration identifier with the remote node. The configuration identifier from the remote node is encoded in pulses of light from a remote transmitter in the remote node.Type: ApplicationFiled: August 8, 2019Publication date: May 7, 2020Inventors: Marco Mazzini, Alberto Cervasio, Tao Ling
-
Patent number: 10439726Abstract: A local node of an optical network obtains local operating parameters associated with a bi-directional link to a remote node of the optical network, including a nominal local wavelength and a local temperature. The local node also obtains remote operating parameters of the remote node, including a nominal remote wavelength and a remote temperature. The local node further determines a target local wavelength based on a comparison of the local operating parameters and the remote operating parameters, and tunes a local transmitter to generate light at the target local wavelength. The local node also tunes a local filter to transmit light at the target local wavelength and reflect light at a target remote wavelength. This may be done by exchanging a configuration identifier with the remote node. The configuration identifier from the remote node is encoded in pulses of light from a remote transmitter in the remote node.Type: GrantFiled: November 1, 2018Date of Patent: October 8, 2019Assignee: Cisco Technology, Inc.Inventors: Marco Mazzini, Alberto Cervasio, Tao Ling
-
Patent number: 10135645Abstract: A method is disclosed for configuring equalization circuitry of a communication device. The method comprises determining, for a predefined first value of a tap weight of a decision feedback equalizer (DFE) of the equalization circuitry, whether a predefined error propagation condition occurs. The method further comprises iteratively updating the tap weight according to a predefined scheme, wherein each update of the tap weight occurs responsive to determining that the predefined error propagation condition occurs for a current value of the tap weight. The method further comprises ceasing the updating of the tap weight responsive to determining a difference between two adjacent values of the tap weight is less than a predefined resolution limit.Type: GrantFiled: October 18, 2017Date of Patent: November 20, 2018Assignee: Cisco Technology, Inc.Inventors: Marco Mazzini, Alberto Cervasio
-
Publication number: 20170272164Abstract: Aspects of the present disclosure provide techniques for spatial filtering of multilevel Pulse Amplitude Modulated (PAM) optical signals. An example method is provided for operations which may be performed by components of an optical network, including but not limited to an optical transceiver. The example method generally includes receiving an optical signal that is pulse amplitude modulated (PAM) to encode information of a network packet as a series of optical signal pulses transmitted via an optical fiber, performing spatial filtering, at a transition from the optical fiber to a receiver, on the optical signal, and performing demodulation of the spatially filtered optical signal to decode the information of the network packet.Type: ApplicationFiled: March 21, 2016Publication date: September 21, 2017Inventors: Marco MAZZINI, Matthew Joseph TRAVERSO, Mark NOWELL
-
Patent number: 9380003Abstract: Bandwidth translation may be provided. First, data may be transceived at a first data port. Next, the data may be transceived at a plurality of second data ports. The bandwidth of a path for the data between the first port and the plurality of second ports may be translated.Type: GrantFiled: October 11, 2013Date of Patent: June 28, 2016Assignee: Cisco Technology, Inc.Inventors: Norman Tang, Liang Ping Peng, David Lai, Anthony Nguyen, D. Brice Achkir, Marco Mazzini
-
Publication number: 20150104169Abstract: Bandwidth translation may be provided. First, data may be transceived at a first data port. Next, the data may be transceived at a plurality of second data ports. The bandwidth of a path for the data between the first port and the plurality of second ports may be translated.Type: ApplicationFiled: October 11, 2013Publication date: April 16, 2015Applicant: Cisco Technology, Inc.Inventors: Norman Tang, Liang Ping Peng, David Lai, Anthony Nguyen, D. Brice Achkir, Marco Mazzini
-
Patent number: 8963573Abstract: According to an example implementation, a universal tester includes a host interface slot connected to a first pluggable host card during an electrical test mode of operation to provide a stressed electrical signal to a host under test. The host interface slot is connected to a second pluggable host card during an optical test mode of operation, the second pluggable host card including an electrical-optical conversion block to convert a stressed electrical signal to a stressed optical signal that is provided to a host under test. A stressor generator may operation in pass-through mode or a loop-back mode.Type: GrantFiled: December 22, 2011Date of Patent: February 24, 2015Assignee: Cisco Technology, Inc.Inventors: D. Brice Achkir, Marco Mazzini, Stefano Riboldi, Cristiana Muzio