Claims
- 1. A cardiorespiratory measurement device comprising:
means for determining a property of a signal generated by an implanted device; and means for generating a bioimpedance sensing signal correlative to the property that produces substantially no interference with the signal of the implanted device.
- 2. The device, as set forth in claim 1, wherein the determining means comprises means for detecting pulses generated by the implanted device.
- 3. The device, as set forth in claim 1, wherein the determining means comprises means for communicating with the implanted device.
- 4. The device, as set forth in claim 1, wherein the generating means comprises means for generating a pulsed bioimpedance sensing signal.
- 5. The device, as set forth in claim 1, wherein the generating means comprises means for generating a high frequency AC bioimpedance sensing signal.
- 6. A cardiorespiratory measurement device comprising:
means for detecting signal properties of a pulsed signal emitted by a bioimpedance sensor of an implanted device; means for analyzing the detected signal properties to determine properties of an impedance sensing signal; means for generating the impedance sensing signal that produces substantially no interference with the pulsed signal of the implanted device.
- 7. The device, as set forth in claim 6, wherein the detecting means comprises means for communicating with the implanted device.
- 8. The device, as set forth in claim 6, wherein the analyzing means comprises a processing circuit.
- 9. The device, as set forth in claim 6, wherein the generating means comprises means for generating a pulsed impedance sensing signal.
- 10. The device, as set forth in claim 6, wherein the generating means comprises means for generating a high frequency AC impedance sensing signal.
- 11. A cardiorespiratory monitor comprising:
a first pair of electrodes adapted to be coupled in spaced apart relation to one another on a patient's body; a second pair of electrodes adapted to be coupled in spaced apart relation to one another on the patient's body; a voltage sensor coupled to the first pair of electrodes to detect pulsed voltage signals within the patient's body generated by a device implanted in the patient's body; a processor coupled to the voltage sensor, the processor receiving the detected pulsed voltage signals and determining a frequency and timing of the detected pulsed voltage signals, and the processor generating a timing signal correlative to the frequency and timing of the detected pulsed voltage signals; and an impedance sensor control circuit coupled to receive the timing signal from the processor, the impedance sensor circuit generating an impedance sensing signal correlative to the timing signal and delivering the impedance sensing signal to one of the second pair of electrodes, the impedance sensing signal being timed to produce substantially no interference with the pulsed voltage signals generated by the implanted device.
- 12. The monitor, as set forth in claim 11, wherein the impedance sensor control circuit comprises a current source coupled to deliver a pulsed impedance sensing signal to one of the second pair of electrodes.
- 13. The monitor, as set forth in claim 11, wherein the impedance sensor control circuit comprises a current source coupled to deliver a high frequency AC impedance sensing signal to one of the second pair of electrodes.
- 14. The monitor, as set forth in claim 11, further comprising a voltage sampling device coupled to the impedance sensor control circuit, the voltage sampling device detecting the impedance sensing signal and delivering the detected impedance sensing signal to the processor, the processor generating at least one signal correlative to the detected impedance sensing signal.
- 15. A cardiorespiratory monitor comprising:
a first telemetry circuit adapted to communicate with a second telemetry circuit of an implantable device to receive a synchronization signal correlative to a pulsed voltage signal generated by the implantable device; a processor coupled to the first telemetry circuit, the processor receiving the synchronization signal and determining a frequency and timing of the pulsed voltage signal, and the processor generating a timing signal correlative to the frequency and timing of the pulsed voltage signal; an impedance sensor control circuit coupled to receive the timing signal from the processor, the impedance sensor circuit generating an impedance sensing signal correlative to the timing signal, the impedance sensing signal being timed to produce substantially no interference with the pulsed voltage signal generated by the implanted device; a first pair of electrodes adapted to be coupled in spaced apart relation to one another on a patient's body, the first pair of electrodes delivering the impedance sensing signal to the patient's body; and a second pair of electrodes adapted to be coupled in spaced apart relation to one another on the patient's body, the second pair of electrodes detecting the impedance sensing signal delivered by the first pair of electrodes and delivering the detected impedance sensing signal to the processor, the processor generating at least one signal correlative to the detected impedance sensing signal.
- 16. The monitor, as set forth in claim 15, wherein the impedance sensor control circuit generates a pulsed signal.
- 17. The monitor, as set forth in claim 15, wherein the impedance sensor control circuit generates a high frequency AC signal.
- 18. The monitor, as set forth in claim 15, wherein the second pair of electrodes delivers the detected impedance sensing signal to a voltage sampler that delivers the impedance sensing signal to the processor.
- 19. The monitor, as set forth in claim 18, wherein the voltage sampler operates synchronously with the impedance sensor control circuit.
- 20. The monitor, as set forth in claim 15, wherein the first telemetry circuit delivers the at least one signal correlative to the detected impedance sensing signal to the second telemetry circuit.
- 21. A cardiorespiratory monitor comprising:
a detector adapted to detect a pulsed voltage signal generated by the implantable device; a processor coupled to the detector, the processor receiving the detected pulsed voltage signal and determining a frequency and timing of the detected pulsed voltage signal, and the processor generating a timing signal correlative to the frequency and timing of the detected pulsed voltage signal; an impedance sensor control circuit coupled to receive the timing signal from the processor, the impedance sensor circuit generating an impedance sensing signal correlative to the timing signal, the impedance sensing signal being timed to produce substantially no interference with the pulsed voltage signal generated by the implanted device; a first pair of electrodes adapted to be coupled in spaced apart relation to one another on a patient's body, the first pair of electrodes delivering the impedance sensing signal to the patient's body; and a second pair of electrodes adapted to be coupled in spaced apart relation to one another on the patient's body, the second pair of electrodes detecting the impedance sensing signal delivered by the first pair of electrodes and delivering the detected impedance sensing signal to the processor, the processor generating at least one signal correlative to the detected impedance sensing signal.
- 22. The monitor, as set forth in claim 21, wherein the detector comprises a pulse detector.
- 23. The monitor, as set forth in claim 21, wherein the detector comprises a telemetry circuit.
- 24. The monitor, as set forth in claim 21, wherein the impedance sensor control circuit generates a pulsed signal.
- 25. The monitor, as set forth in claim 21, wherein the impedance sensor control circuit generates a high frequency AC signal.
- 26. The monitor, as set forth in claim 21, wherein the second pair of electrodes delivers the detected impedance sensing signal to a voltage sampler that delivers the impedance sensing signal to the processor.
- 27. The monitor, as set forth in claim 26, wherein the voltage sampler operates synchronously with the impedance sensor control circuit.
- 28. A device for calibrating a bioimpedance sensor of an implanted device, the device comprising:
a first telemetry circuit adapted to communicate with a second telemetry circuit of the implanted device to receive a synchronization signal correlative to a pulsed voltage signal generated by the implanted device; a processor coupled to the first telemetry circuit, the processor receiving the synchronization signal from the first telemetry circuit and determining a frequency and timing of the pulsed voltage signal, and the processor generating a timing signal correlative to the frequency and timing of the pulsed voltage signal; an impedance sensor control circuit coupled to receive the timing signal from the processor, the impedance sensor circuit generating an impedance sensing signal correlative to the timing signal, the impedance sensing signal being timed to produce substantially no interference with the pulsed voltage signal generated by the implanted device; a first pair of electrodes adapted to be coupled in spaced apart relation to one another on a patient's body, the first pair of electrodes delivering the impedance sensing signal to the patient's body; and a second pair of electrodes adapted to be coupled in spaced apart relation to one another on the patient's body, the second pair of electrodes detecting the impedance sensing signal delivered by the first pair of electrodes and delivering the detected impedance sensing signal to the processor, the processor generating a calibration signal correlative to the detected impedance sensing signal and delivering the calibration signal to the first telemetry circuit for delivery to the second telemetry circuit, the calibration signal being usable by the implanted device to calibrate the bioimpedance sensor of the implanted device.
- 29. The device, as set forth in claim 28, wherein the impedance sensor control circuit generates a pulsed signal.
- 30. The device, as set forth in claim 28, wherein the impedance sensor control circuit generates a high frequency AC signal.
- 31. The device, as set forth in claim 28, wherein the second pair of electrodes delivers the detected impedance sensing signal to a voltage sampler that delivers the impedance sensing signal to the processor.
- 32. The device, as set forth in claim 31, wherein the voltage sampler operates synchronously with the impedance sensor control circuit.
- 33. A method of sensing bioimpedance, the method comprising:
detecting impedance sensing signals generated by a first device; determining timing between the impedance sensing signals generated by the first device for a bioimpedance sensing signal to be generated by a second device; and delivering the bioimpedance sensing signal by the second device.
- 34. The method of claim 33 wherein the second device delivers pulsed bioimpedance signals.
- 35. The method of claim 33 wherein the pulsed signals are biphasic current pulses.
- 36. The method of claim 33 wherein the second device delivers AC bioimpedance signals.
- 37. The method of claim 33 wherein the first device comprises a pacemaker and the second device is a non-invasive cardiorespiratory monitor.
- 38. The method of claim 33 and further comprising receiving the bioimpedance sensing signals delivered by the second device.
- 39. The method of claim 38 and further comprising receiving an ECG signal.
- 40. The method of claim 39 and further comprising processing the received bioimpedance sensing signals and the ECG signal to provide at least one of a numerical value of heart rate, stroke volume, cardiac output and minute ventilation.
- 41. A method, comprising:
detecting a first bioimpedance sensing signal in a body; and analyzing the detected first bioimpedance signal to determine a time when a further bioimpedance signal such that the bioimpedance signals do not significantly interfere with each other.
- 42. The method of claim 41 wherein the second device delivers biphasic current pulses.
- 43. The method of claim 41 wherein the second device delivers AC bioimpedance signals.
- 44. The method of claim 41 wherein the first device comprises a pacemaker and the second device is a non-invasive cardiorespiratory monitor.
- 45. The method of claim 41 and further comprising:
receiving the bioimpedance sensing signals delivered by the second device. receiving an ECG signal; and processing the received bioimpedance sensing signals and the ECG signal to provide at least one of a numerical value of heart rate, stroke volume, cardiac output and minute ventilation.
- 46. A method, comprising:
detecting a first signal corresponding to bioimpedance sensing signal; and analyzing the first signal to determine a time when a further bioimpedance signal such that the bioimpedance signals do not significantly interfere with each other.
- 47. The method of claim 46 wherein the first signal is generated and detected by telemetry circuits.
- 48. The method of claim 46 wherein the first signal is generated by pacemaker telemetry circuit and identifies timing of the bioimpedance sensing signal generated by the pacemaker.
- 49. The method of claim 48 wherein the first signal is received by a telemetry circuit in an external monitor, and wherein the monitor determines the time, and delivers the further bioimpedance signal in accordance with the time.
- 50. A device, comprising:
a monitor that detects impedance sensing signals in a torso; and a circuit that senses impedance in the torso between the impedance sensing signals.
- 51. The device of claim 50 wherein the circuit comprises a current injection and sampling circuit.
- 52. The device of claim 51 wherein the current injection and sampling circuit generates and detects biphasic current pulses.
- 53. The device of claim 51 wherein the current injection and sampling circuit generates impedance sensing signals at times between the sensed impedance sensing signals such that there is substantially no interference between the generated and sensed impedance signals.
- 54. The device of claim 50 wherein the monitor further comprises a processing circuit that calculates a sampling interval based on the detected impedance sensing signals.
- 55. The device of claim 50 wherein the monitor further comprises a telemetry circuit to receive timing information from an implanted device that generates the impedance sensing signals.
- 56. A system, comprising;
a torso implanted pacemaker that generates bioimpedance sensing signals; a monitor that detects the bioimpedance sensing signals in the torso; and a circuit that senses bioimpedance in the torso between the bioimpedance sensing signals.
- 57. The system of claim 56 and further comprising a current injection and sampling circuit that injects pulses between the detected bioimpedance sensing signals in the torso and samples the injected pulses to sense bioimpedance.
CROSS-REFERENCE OF RELATED CASES
[0001] This application is a Continuation of U.S. application serial No. 09/460,744 filed Dec. 14, 1999 which is a continuation of U.S. application serial No. 09/020,277 filed Feb., 6, 1998 now issued as U.S. Pat. No. 6,022,322.
Continuations (2)
|
Number |
Date |
Country |
Parent |
09460744 |
Dec 1999 |
US |
Child |
10008950 |
Dec 2001 |
US |
Parent |
09020277 |
Feb 1998 |
US |
Child |
09460744 |
Dec 1999 |
US |