Patents Assigned to Advanced Bionics
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Publication number: 20090118804Abstract: A method of performing a medical procedure on a patient comprises forming a burr hole through the cranium of the patient, mounting a permanently integrated plug electrode within the burr hole, and electrically coupling the plug electrode to an electronics device. Another method of performing a medical procedure on a patient comprises forming a burr hole through the cranium of the patient, mounting an electrode within the burr hole, such that the electrode does not extend within the brain of the patient, and electrically coupling the electrode to an electronics device. A hybrid plug/electrode comprises a plug body configured for being anchored within a burr hole formed within a cranium of a patient, at least one electrode disposed on a distal-facing surface of the plug body, and at least one electrode lead affixed within the plug body in electrical communication with the at least one electrode.Type: ApplicationFiled: November 5, 2007Publication date: May 7, 2009Applicant: ADVANCED BIONICS CORPORATIONInventors: Michael Adam Moffitt, Jeffery Van Funderburk
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Publication number: 20090118796Abstract: An improved integrated external controller/charger system useable with an implantable medical device is disclosed. The system comprises two main components: an external controller and an external charging coil assembly that is coupleable thereto. When the external charging coil assembly is coupled to the external controller, the system can be used to both send and receive data telemetry to and from the implantable medical device, and to send power to the device. Specifically, the external controller controls data telemetry by energizing at least one coil within the external controller, and the external controller controls power transmission by energizing a charging coil in the external charging coil assembly, which is otherwise devoid of its own control, power, and user interface. The result is a cheaper, simpler, more compact, and more convenient data telemetry and charging solution for the patient having a medical implant.Type: ApplicationFiled: November 5, 2007Publication date: May 7, 2009Applicant: ADVANCED BIONICS CORPORATIONInventors: Joey Chen, Daniel Aghassian, Thomas Warren Stouffer
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Publication number: 20090118786Abstract: Methods, systems, and external programmers provide therapy to a patient having a dysfunction. In one aspect, stimulation energy is conveyed from a neurostimulator to electrodes located within a tissue region of the patient, thereby changing the status of the dysfunction. A physiological end-function of the patient indicative of the changed status of the dysfunction is measured, and stimulation parameters are programmed into the neurostimulator based on the measured physiological end-function. In another aspect, electrodes are placed adjacent to a tissue region of the patient, and stimulation energy is conveyed from the electrodes to the tissue region in accordance with the stimulation parameters, thereby changing the status of the dysfunction. A physiological end-function of the patient indicative of the changed status of the dysfunction is measured, and the stimulation parameters are adjusted based on the measured physiological end-function.Type: ApplicationFiled: November 2, 2007Publication date: May 7, 2009Applicant: ADVANCED BIONICS CORPORATIONInventors: Paul Milton Meadows, Michael Adam Moffitt
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Publication number: 20090118787Abstract: Methods, systems, and external programmers provide therapy to a patient having a dysfunction. In one aspect, electrical energy is conveyed between electrodes to create a stimulation region in tissue adjacent the electrodes. Physiological information from the patient is acquired and analyzed, and a locus of the stimulation region is electronically displaced relative to the tissue based on the analysis of the acquired physiological information. In another aspect, electrical energy is delivered to tissue of the patient in accordance with one or more stimulation parameters. A cognitive brain signals is sensed and analyzed, and the stimulation parameter(s) are modified based on the analysis of the cognitive brain signal.Type: ApplicationFiled: November 2, 2007Publication date: May 7, 2009Applicant: ADVANCED BIONICS CORPORATIONInventors: Michael Adam Moffitt, David K.L. Peterson, Paul Milton Meadows
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Patent number: 7526096Abstract: An In The Ear (ITE) microphone which converts audio sounds into electrical signals which are then processed by a speech processor to generate electrical pulses to stimulate nerves in the cochlea, improves the acoustic response of a Behind The Ear (BTE) Implantable Cochlear Stimulation (ICS) system during telephone use. An acoustic seal provided by holding a telephone earpiece against the ear provides improved coupling of low frequency (up to about 1 KHz) sound waves, sufficient to overcome losses due to the near field acoustic characteristics common to telephones. In an exemplary embodiment, the ITE microphone is connected to a removable ear hook of the BTE ICS system by a short bendable stalk.Type: GrantFiled: September 11, 2006Date of Patent: April 28, 2009Assignee: Advanced Bionics, LLCInventors: William Vanbrooks Harrison, Lee F Hartley, Philip A Segel, Scott Crawford, C. Geoffrey E Fernald
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Patent number: 7522961Abstract: The stimulation provided in the electrically stimulated cochlea is modulated in accordance with the amplitude of a received acoustic signal and the onset of a sound in a received acoustic signal to provide increased sound perception. An onset time that corresponds to the onset of a sound is detected in an acoustic signal associated with a frequency band. A forcing voltage and a transmitting factor are determined, wherein the forcing voltage and the transmitting factor are associated with the frequency band at the detected onset time. The acoustic signal is modulated as a function of the forcing voltage and the transmitting factor to generate an output signal. The generated output signal can be used to stimulate the cochlea. The modulation strategy can be used in conjunction with sound processing strategies that employ frequency modulation, amplitude modulation, or a combination of frequency and amplitude modulation.Type: GrantFiled: November 17, 2004Date of Patent: April 21, 2009Assignee: Advanced Bionics, LLCInventors: Gene Y. Fridman, Leonid M. Litvak
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Patent number: 7519428Abstract: In accordance with an aspect of the present invention, there is provided a multi-channel stimulator having a common supply voltage, the stimulator having an electrical circuit with a dual-range compliance voltage supply such that each channel of the multi-channel stimulator is configured to be selectable among two compliance voltages. Channels which can operate at half or less than half compliance voltage can operate in the lower voltage range and thereby achieve energy savings. The stimulator can be switched between a high and low compliance voltage in a bipolar or a monopolar electrode configuration.Type: GrantFiled: June 11, 2003Date of Patent: April 14, 2009Assignee: Advanced Bionics, LLCInventor: Logan P Palmer
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Patent number: 7515966Abstract: Sound processing strategies for use with cochlear implant systems utilizing simultaneous stimulation of electrodes are provided. The strategies include computing a frequency spectrum of a signal representative of sound, arranging the spectrum into channels and assigning a subset of electrodes to each channel. Each subset is stimulated so as to stimulate a virtual electrode positioned at a location on the cochlea that corresponds to the frequency at which a spectral peak is located within an assigned channel. The strategies also derive a carrier for a channel having a frequency that may relate to the stimulation frequency so that temporal information is presented. In order to fit these strategies, a group of electrodes is selected and the portion of the current that would otherwise be applied to electrode(s) having a partner electrode in the group is applied to the partner electrode.Type: GrantFiled: March 14, 2005Date of Patent: April 7, 2009Assignee: Advanced Bionics, LLCInventors: Leonid M. Litvak, Lakshmi N. Mishra, Gene Y. Fridman, Lee F. Hartley
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Publication number: 20090069869Abstract: An improved implantable medical device system having dual coils in one of the devices in the system is disclosed. The dual coils are used preferably in an external device such as an external controller or an external charger. The dual coils are wrapped around axes that are preferably orthogonal, although other non-zero angles could be used as well. When used to transmit, the two coils are driven (for example, with FSK-modulated data when the transmitting data) out of phase, preferably at 90 degrees out of phase. This produces a magnetic field which rotates, and which reduces nulls in the coupling between the external device and the receiving coil within the implanted device. Moreover, implementation of the dual coils to transmit requires no change in the receiver circuitry of the implanted device. Should the device with dual coils also receive transmissions from the other device (e.g.Type: ApplicationFiled: September 11, 2007Publication date: March 12, 2009Applicant: ADVANCED BIONICS CORPORATIONInventors: THOMAS WARREN STOUFFER, Lev Freidin, Daniel Aghassian
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Publication number: 20090062883Abstract: A spinal cord stimulation (SCS) system includes multiple electrodes, multiple, independently programmable, stimulation channels within an implantable pulse generator (IPG) which channels can provide concurrent, but unique stimulation fields, permitting virtual electrodes to be realized. The SCS system includes a replenishable power source (e.g., rechargeable battery), that may be recharged using transcutaneous power transmissions between antenna coil pairs. An external charger unit, having its own rechargeable battery can be used to charge the IPG replenishable power source. A real-time clock can provide an auto-run schedule for daily stimulation. An included bi-directional telemetry link in the system informs the patient or clinician the status of the system, including the state of charge of the IPG battery. Other processing circuitry in the IPG allows electrode impedance measurements to be made. Further circuitry in the external battery charger can provide alignment detection for the coil pairs.Type: ApplicationFiled: November 29, 2007Publication date: March 5, 2009Applicant: ADVANCED BIONICS CORPORATIONInventors: Paul M. Meadows, Carla Mann Woods, David K. Peterson, Joey Chen, David H. Payne
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Patent number: 7496405Abstract: Sound processing strategies for use with cochlear implant systems utilizing simultaneous stimulation of electrodes are provided. The strategies include computing a frequency spectrum of a signal representative of sound, arranging the spectrum into channels and assigning a subset of electrodes to each channel. Each subset is stimulated so as to stimulate a virtual electrode positioned at a location on the cochlea that corresponds to the frequency at which a spectral peak is located within an assigned channel. The strategies also derive a carrier for a channel having a frequency that may relate to the stimulation frequency so that temporal information is presented. In order to fit these strategies, a group of electrodes is selected and the portion of the current that would otherwise be applied to electrode(s) having a partner electrode in the group is applied to the partner electrode.Type: GrantFiled: March 14, 2005Date of Patent: February 24, 2009Assignee: Advanced Bionics, LLCInventors: Leonid M Litvak, Lee F Hartley, Tracey Kruger
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Patent number: 7496406Abstract: Alternative stimuli, i.e., stimuli other than the constant amplitude stimuli used in prior fitting schemes, is used to set the parameters of a cochlear implant system. The use of such alternative stimuli allows the entire fitting process to be completed in a very short time period, and generally eliminates the need for secondary adjustments. In one preferred embodiment, the alternative stimuli comprise white noise that is internally generated within the speech processor.Type: GrantFiled: August 29, 2003Date of Patent: February 24, 2009Assignee: Advanced Bionics, LLCInventors: Philip A. Segel, Edward H. Overstreet, Tracey L. Kruger, Lakshmi Narayan Mishra
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Publication number: 20090030485Abstract: A flap thickness measurement system includes a reference cochlear stimulation system. The reference cochlear stimulation system includes a sound processor, a transmitter that transmits a telemetric signal, and a cochlear stimulator having a receiver that receives the telemetric signal and transmits a signal back to the transmitter. The system further includes one or more flap simulators having one or more known thicknesses that is positioned between the transmitter and receiver. Also included is a microprocessor that receives and processes data representative of tank voltage from the reference cochlear stimulation system.Type: ApplicationFiled: October 2, 2008Publication date: January 29, 2009Applicant: Advanced Bionics, LLCInventors: Lakshmi Narayan Mishra, Michael A. Faltys
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Publication number: 20090024185Abstract: Among other things, enhancing spectral contrast for a cochlear implant listener includes detecting a time domain signal. A first transformation is applied to the detected time domain signal to convert the time domain signal to a frequency domain signal. A second transformation is applied to the frequency domain signal to express the frequency domain signal as a sum of two or more components. A sensitivity of the cochlear implant listener to detect modulation of each component is obtained.Type: ApplicationFiled: July 17, 2008Publication date: January 22, 2009Applicant: ADVANCED BIONICS, LLCInventors: ABHIJIT KULKARNI, LEONID M. LITVAK, ANIKET SAOJI
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Publication number: 20090024179Abstract: A driving circuit useful in a magnetic inductive coupling wireless communication system is disclosed. The circuit includes an inductor (coil; L) and capacitor (C) in series selectively coupled to a power source such as a rechargeable battery. The LC circuit is made to resonate in accordance with a Frequency Shift Keying (FSK) or other protocol. Such resonance produces a voltage across the inductor. This voltage is used to create a first voltage either by tapping into the coil, or by providing a transformer. The first voltage is coupled to the rechargeable battery by a diode. When the circuit resonates, and when the first voltage exceeds the voltage of the power source, the diode turns on, thus shunting excess current back to recharge the rechargeable battery. By use of this circuit, energy is conserved. Additionally, oscillations can be quickly dampened so as to allow the circuit to transmit at high data rates.Type: ApplicationFiled: July 19, 2007Publication date: January 22, 2009Applicant: ADVANCED BIONICS CORPORATIONInventor: VASILY DRONOV
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Publication number: 20090018616Abstract: Exemplary cochlear implant systems include an implantable cochlear stimulator configured to be implanted within a patient and generate a stimulation current having an adjustable current level, one or more electrodes communicatively coupled to the stimulator and configured to apply the stimulation current to one or more locations within an ear of the patient, and a probe configured to acquire sound data used to derive an acoustic reflectance of the ear. The implantable cochlear stimulator is configured to adjust the current level of the stimulation current until a change in the acoustic reflectance above a threshold is detected.Type: ApplicationFiled: September 24, 2008Publication date: January 15, 2009Applicant: ADVANCED BIONICS, LLCInventors: Andrew P. Quick, Leonid M. Litvak, Aniket Saoji
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Publication number: 20090018618Abstract: An improved arbitration scheme for allowing concurrent stimulation and telemetry listening in a microstimulator is disclosed. A listening window for telemetry is permitted to proceed, and access to the microstimulator's coil granted, during at least a portion of the inter-pulse period that follows the issuance of a stimulation pulse. This is permissible because access to the coil is not needed during the entirety of the inter-pulse period. For example, the listening window can issue during that portion of the inter-pulse period when the decoupling capacitor is discharged, but cannot issue during that portion of the inter-pulse period when the compliance voltage is being generated for the next stimulation pulse. However, because compliance voltage generation occupies only a small portion of the inter-pulse period, the technique is not substantially limited.Type: ApplicationFiled: July 11, 2007Publication date: January 15, 2009Applicant: ADVANCED BIONICS CORPORATIONInventors: Jordi Parramon, Jess W. Shi
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Publication number: 20090012591Abstract: A lead includes an elongated lead body of non-conductive material and a plurality of conductive wires. Each wire has a first portion disposed within the lead body and a second portion extending out of the lead body. The second portion is coiled around the lead body to form a contact on the outer surface of the lead.Type: ApplicationFiled: July 5, 2007Publication date: January 8, 2009Applicant: Advanced Bionics CorporationInventor: John Michael Barker
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Publication number: 20080319497Abstract: An improved architecture for an implantable medical device such as an implantable pulse generator (IPG) is disclosed. In one embodiment, the various functional blocks for the IPG are incorporated into a signal integrated circuit (IC). Each of the functional blocks communicate with each other, and with other off-chip devices if necessary, via a centralized bus governed by a communication protocol. To communicate with the bus and to adhere to the protocol, each circuit block includes bus interface circuitry adherent with that protocol. Because each block complies with the protocol, any given block can easily be modified or upgraded without affecting the design of the other blocks, facilitating debugging and upgrading of the IPG circuitry. Moreover, because the centralized bus can be taken off the integrated circuit, extra circuitry can easily be added off chip to modify or add functionality to the IPG without the need for a major redesign of the main IPG IC.Type: ApplicationFiled: June 25, 2007Publication date: December 25, 2008Applicant: ADVANCED BIONICS CORPORATIONInventors: Paul J. Griffith, Jordi Parramon, Goran N. Marnfeldt, Daniel Aghassian, Kiran Nimmagadda, Emanuel Feldman, Jess W. Shi
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Publication number: 20080294211Abstract: A method and neurostimulation system of providing therapy to a patient is provided. A plurality of electrodes are placed in contact with tissue of a patient, a conditioning pulse is conveyed from the plurality of electrodes in one of a monopolar manner and a multipolar manner, and a stimulation pulse is conveyed from the plurality of electrodes in a different one of the monopolar manner and the multipolar manner. As one example, the sub-threshold conditioning pulse may be a depolarizing pulse conveyed from the plurality of electrodes to render a first region of the tissue less excitable to stimulation, and the stimulation pulse may be conveyed from the plurality of electrodes to stimulate a second different region of the tissue.Type: ApplicationFiled: May 23, 2007Publication date: November 27, 2008Applicant: ADVANCED BIONICS CORPORATIONInventor: Michael A. Moffitt