Patents by Inventor Charles Persico
Charles Persico 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).
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Patent number: 8526904Abstract: Techniques to reduce LO leakage by controlling the amplitude of LO signal based on the level of output signal after the frequency conversion process. An LO generator receives a VCO signal and generates an LO signal having a variable amplitude and a frequency that is related to the frequency of the VCO signal. A variable gain amplifier receives a control signal and adjusts the amplitude of the LO signal based on the control signal. The variable amplitude LO signal is used for frequency upconversion (e.g., direction upconversion) of an input signal (e.g., at baseband) to obtain an output signal (e.g., at RF). The relationship between LO signal amplitude and output signal level may be defined by a particular transfer function. In general, the LO signal is set higher for higher output signal level and is reduced proportionally for lower output signal level.Type: GrantFiled: November 26, 2008Date of Patent: September 3, 2013Assignee: Qualcomm IncorporatedInventors: Kevin Gard, Anthony Segoria, Gurkanwal (Kamal) Sahota, Charles Persico
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Publication number: 20090111419Abstract: Techniques to reduce LO leakage by controlling the amplitude of LO signal based on the level of output signal after the frequency conversion process. An LO generator receives a VCO signal and generates an LO signal having a variable amplitude and a frequency that is related to the frequency of the VCO signal. A variable gain amplifier receives a control signal and adjusts the amplitude of the LO signal based on the control signal. The variable amplitude LO signal is used for frequency upconversion (e.g., direction upconversion) of an input signal (e.g., at baseband) to obtain an output signal (e.g., at RF). The relationship between LO signal amplitude and output signal level may be defined by a particular transfer function. In general, the LO signal is set higher for higher output signal level and is reduced proportionally for lower output signal level.Type: ApplicationFiled: November 26, 2008Publication date: April 30, 2009Applicant: QUALCOMM IncorporatedInventors: Kevin Gard, Anthony Segoria, Gurkanwal (Kamal) Sahota, Charles Persico
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Patent number: 7460849Abstract: Techniques to reduce LO leakage by controlling the amplitude of LO signal based on the level of output signal after the frequency conversion process. An LO generator receives a VCO signal and generates an LO signal having a variable amplitude and a frequency that is related to the frequency of the VCO signal. A variable gain amplifier receives a control signal and adjusts the amplitude of the LO signal based on the control signal. The variable amplitude LO signal is used for frequency upconversion (e.g., direction upconversion) of an input signal (e.g., at baseband) to obtain an output signal (e.g., at RF). The relationship between LO signal amplitude and output signal level may be defined by a particular transfer function. In general, the LO signal is set higher for higher output signal level and is reduced proportionally for lower output signal level.Type: GrantFiled: November 9, 2005Date of Patent: December 2, 2008Assignee: QUALCOMM IncorporatedInventors: Kevin Gard, Anthony Segoria, Gurkanwal (Kamal) Sahota, Charles Persico
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Publication number: 20070104298Abstract: A wireless device achieves good performance using a crystal oscillator that is not compensated for temperature. The crystal oscillator provides a reference signal having a temperature dependent frequency error. A control unit estimates the frequency error (e.g., based on a received pilot) and provides a frequency error estimate. A clock generator generates a digital clock, which tracks chip timing, based on the reference signal and the frequency error estimate. A receiver frequency downconverts an input RF signal with a receive LO signal having the frequency error and provides an analog baseband signal. An ADC digitizes the analog baseband signal based on a sampling clock having the frequency error and provides ADC samples. A re-clocking circuit re-clocks the ADC samples based on a digital clock and provides data samples. A digital rotator frequency translates the data samples based on the frequency error estimate and provides frequency-translated samples centered near DC.Type: ApplicationFiled: November 7, 2005Publication date: May 10, 2007Inventors: Daniel Filipovic, Charles Persico, Christopher Riddle
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Patent number: 7204267Abstract: The modular plumbing accessary utilizes an open sided box secured during rough-in to and between exposed wall studs. A unitary water pipe and anti-hammer assembly is connected to the box with only an outlet pipe exposed in the box interior. The water inlet pipe and an anti-hammer assembly and its tee connection upstream of the outlet pipe are located outside of the box interior. A drain inlet is also exposed in the box interior. Rough-in connections are made between the building pipes and the respective water inlet and drain outlet pipes at the box. Further, a compression seal shutoff valve will be secured during rough-in to the water outlet pipe within the box interior. The open side of the box faces the sink, making line connections between the sink and the valve and drain inlet easy and reliable.Type: GrantFiled: February 2, 2006Date of Patent: April 17, 2007Assignee: Kyne Industries, Inc.Inventor: Charles Persico
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Publication number: 20060211430Abstract: A system and method in which the position update rate is adaptively modified, based on previous position measurements. By adjusting the update rate based on velocity predictions from two or more position fixes, a lower update rate may be used without exceeding the maximum error. Lowering the update rate reduces power consumption in the UE, providing longer battery operation. The updating method may comprise periodically repeating the velocity prediction and periodically adjusting the update rate responsive thereto. The update rate may be adjusted using additional information such as an acceleration prediction, a minimum update rate, or a preferred error. In some embodiments a model for user movement may be used to provide more accurate predictions, for example, stationary, walking, jogging, city driving, and freeway driving. The updating method may comprise receiving user input regarding the maximum position error.Type: ApplicationFiled: March 17, 2005Publication date: September 21, 2006Inventor: Charles Persico
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Publication number: 20060189293Abstract: Techniques to reduce LO leakage by controlling the amplitude of LO signal based on the level of output signal after the frequency conversion process. An LO generator receives a VCO signal and generates an LO signal having a variable amplitude and a frequency that is related to the frequency of the VCO signal. A variable gain amplifier receives a control signal and adjusts the amplitude of the LO signal based on the control signal. The variable amplitude LO signal is used for frequency upconversion (e.g., direction upconversion) of an input signal (e.g., at baseband) to obtain an output signal (e.g., at RF). The relationship between LO signal amplitude and output signal level may be defined by a particular transfer function. In general, the LO signal is set higher for higher output signal level and is reduced proportionally for lower output signal level.Type: ApplicationFiled: November 9, 2005Publication date: August 24, 2006Inventors: Kevin Gard, Anthony Segoria, Gurkanwal Sahota, Charles Persico
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Publication number: 20060135079Abstract: A wireless device is equipped with multiple (e.g., two) antennas, which may be of different designs. Each antenna interacts with the wireless environment in a different manner and achieves different scattering effect. The wireless device has one transmit signal path for each antenna. Each transmit signal path generates an RF output signal for transmission from the associated antenna. The wireless device controls the operation of one or more transmit signal paths to achieve a larger received signal level at a receiving base station. The wireless device may (1) autonomously adjust the transmit signal path(s) without relying on any feedback from the base station or (2) adjust the transmit signal path(s) based on transmit power control (TPC) commands received from the base station. The wireless device may selectively enable and disable each transmit signal path, vary the phase and/or gain of each transmit signal path, and so on.Type: ApplicationFiled: December 21, 2004Publication date: June 22, 2006Inventors: Kenneth Barnett, Charles Persico, Paul Peterzell
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Patent number: 7027793Abstract: Techniques to reduce LO leakage by controlling the amplitude of LO signal based on the level of output signal after the frequency conversion process. An LO generator receives a VCO signal and generates an LO signal having a variable amplitude and a frequency that is related to the frequency of the VCO signal. A variable gain amplifier receives a control signal and adjusts the amplitude of the LO signal based on the control signal. The variable amplitude LO signal is used for frequency upconversion (e.g., direction upconversion) of an input signal (e.g., at baseband) to obtain an output signal (e.g., at RF). The relationship between LO signal amplitude and output signal level may be defined by a particular transfer function. In general, the LO signal is set higher for higher output signal level and is reduced proportionally for lower output signal level.Type: GrantFiled: November 15, 2002Date of Patent: April 11, 2006Assignee: Qualcomm IncorporatedInventors: Kevin Gard, Anthony Segoria, Gurkanwal (Kamal) Sahota, Charles Persico
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Publication number: 20060009177Abstract: A low-power diversity receiver includes at least two receive paths, each of which is designated as a primary or secondary receive path. A primary receive path is compliant with system requirements (e.g., IS-98D requirements). A secondary receive path is not fully compliant with the system requirements and is designed for lower power, less area, and lower cost than the primary receive path. For a multi-antenna receiver, the two receive paths may be used to simultaneously process two received signals from two antennas. For a single-antenna receiver, either the primary or secondary receive path is selected, e.g., depending on whether or not large amplitude “jammers” are detected, to process a single input signal from one antenna. The receiver may include additional receive paths for additional frequency bands and/or GPS.Type: ApplicationFiled: November 18, 2004Publication date: January 12, 2006Inventors: Charles Persico, Kevin Gard, Gurkanwal Sahota, Shinichi Miyazaki, Steven Ciccarelli
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Publication number: 20050221790Abstract: To reduce power consumption, receiver circuit blocks within a wireless device are biased with less current whenever possible while still achieving the desired performance. The receiver circuit blocks may include a voltage controlled oscillator (VCO) that generates an oscillator signal used for frequency downconversion of a received signal from the forward link, a low noise amplifier (LNA) that amplifies the received signal, and a mixer that frequency downconverts the received signal. The VCO may be biased with less current if phase noise performance is less stringent, e.g., when (1) the wireless device is not transmitting on the reverse link, (2) a large amplitude jammer is not detected, and/or (3) the received signal level is sufficiently high. The bias currents of other receiver circuit blocks may also be adjusted based on transmitter activity, detected jammer, and/or received signal level.Type: ApplicationFiled: November 17, 2004Publication date: October 6, 2005Inventors: Charles Persico, Vladimir Aparin, Yue Wu
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Publication number: 20050107051Abstract: An adaptive filter suitable for fabrication on an RF integrated circuit and used for transmit (TX) leakage rejection in a wireless full-duplex communication system is described. The adaptive filter includes a summer and an adaptive estimator. The summer receives an input signal having a TX leakage signal and an estimator signal having an estimate of the TX leakage signal, subtracts the estimator signal from the input signal, and provides an output signal having the TX leakage signal attenuated. The adaptive estimator receives the output signal and a reference signal having a version of the transmit signal, estimates the TX leakage signal in the input signal based on the output signal and the reference signal, and provides the estimator signal. The adaptive estimator may utilize an LMS algorithm to minimize a mean square error between the TX leakage signal in the input signal and the TX leakage signal estimate in the estimator signal.Type: ApplicationFiled: March 2, 2004Publication date: May 19, 2005Inventors: Vladimir Aparin, Gary Ballantyne, Charles Persico
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Publication number: 20040097214Abstract: Techniques to reduce LO leakage by controlling the amplitude of LO signal based on the level of output signal after the frequency conversion process. An LO generator receives a VCO signal and generates an LO signal having a variable amplitude and a frequency that is related to the frequency of the VCO signal. A variable gain amplifier receives a control signal and adjusts the amplitude of the LO signal based on the control signal. The variable amplitude LO signal is used for frequency upconversion (e.g., direction upconversion) of an input signal (e.g., at baseband) to obtain an output signal (e.g., at RF). The relationship between LO signal amplitude and output signal level may be defined by a particular transfer function. In general, the LO signal is set higher for higher output signal level and is reduced proportionally for lower output signal level.Type: ApplicationFiled: November 15, 2002Publication date: May 20, 2004Inventors: Kevin Gard, Anthony Segoria, Gurkanwal Sahota, Charles Persico
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Publication number: 20020146993Abstract: A power amplifier having bias that may be automatically adjusted based on a detected output power level. The amplifier includes one or more amplifier stages operatively coupled to a control unit. The amplifier stage(s) couple together (e.g., in series) and receive and amplify an RF input signal to provide an RF output signal. A power detector detects the RF output signal level (or power) and provides a detected signal. A control unit conditions the detected signal (e.g., with a particular transfer characteristic) to provide at least one conditioned signal. A bias control generator receives the conditioned signal(s) and provides at least one bias control signal, with each bias control signal used to adjust the bias of a respective amplifier stage. The bias adjustment is performed in a manner to achieve the desired level of linearity while minimizing power consumption.Type: ApplicationFiled: April 4, 2001Publication date: October 10, 2002Inventors: Charles Persico, Jonathan Klaren, Vladimir Aparin
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Patent number: 5412351Abstract: A compact local oscillator network for use in a quadrature modulator and/or demodulator is presented. Single side band circuitry is configured to produce quadrature signals with a high degree of accuracy such that two equal amplitude signals are generated having a precise 90.degree. phase difference. The network accuracy is substantially not affected by phase or amplitude imbalances within or introduced into the network. For example, the network may include: a first quadrature circuit for dividing a first input signal into a first in-phase signal and a first quadrature signal 90.degree. out of phase; a second quadrature circuit for dividing a second input signal into a second in-phase signal and a second quadrature signal 90.degree.Type: GrantFiled: October 7, 1993Date of Patent: May 2, 1995Inventors: Christian Nystrom, Charles Persico