Claims
- 1. A system, comprising:
at least one pacing electrode; at least a first defibrillation electrode and a second defibrillation electrode; a sensing system coupled to the at least one pacing electrode and the first defibrillation electrode and the second defibrillation electrode, wherein the sensing system detects a first cardiac signal between the first defibrillation electrode and the second defibrillation electrode and a second cardiac signal through the at least one pacing electrode; a control system coupled to the sensing system, where the control system monitors the first cardiac signal for a first cardiac complex and the second cardiac signal for a second cardiac complex, wherein the first cardiac complex and the second cardiac complex represent a cardiac cycle; an alignment circuit coupled to the control system, wherein the alignment circuit detects the first cardiac complex in the first cardiac signal; an R-wave detector circuit coupled to the control system, where the R-wave detector circuit detects the second cardiac complex in the second cardiac signal and provides the second cardiac signal to the alignment circuit, where the alignment circuit analyzes the second cardiac complex to locate a predetermined alignment feature on the second cardiac complex and positions a datum at a specified interval from the alignment feature on the second cardiac complex; and a morphology analyzing circuit coupled to the control system, where the morphology analyzing circuit measures a voltage value of the first cardiac signal at each of two or more measurement intervals from the datum.
- 2. The system of claim 1, including a vector comparison circuit coupled to the control system, where the vector comparison circuit receives the voltage values measured at the measurement intervals, creates the complex feature vector for the sensed cardiac complex, compares the complex feature vector to a template feature vector, and classifies the first cardiac complex based on the comparison of the complex feature vector and the template feature vector.
- 3. The system of claim 2, where the vector comparison circuit calculates a correlation coefficient from the template feature vector and the complex feature vector and classifies the first cardiac complex as a VT complex when the correlation coefficient is less than or equal to a predetermined threshold, and classifies the first cardiac complex as an SVT complex when the correlation coefficient is greater than the predetermined threshold.
- 4. The system of claim 3, where the sensing system detects a plurality of the cardiac cycles in the first cardiac signal and the second cardiac signal, the vector comparison circuit classifies a predetermined number of the first cardiac complexes, and the control system declares a ventricular tachycardia episode when a threshold number of the predetermined number of the first cardiac complexes are classified as ventricular tachycardia complexes.
- 5. The system of claim 4, where the control system declares a supraventricular tachycardia episode when the threshold number of the predetermined number of the first cardiac complexes are classified as supraventricular tachycardia complexes.
- 6. The system of claim 2, including a supraventricular pacing electrode and a pace output circuit, where the supraventricular pacing electrode is coupled to the pace output circuit, and the pace output circuit is coupled to the control system, where the pace output circuit delivers electrical pulses to the supraventricular pacing electrode under the control of the control system; and wherein
the control system monitors the first cardiac signal for a first model cardiac complex and the second cardiac signal for a second model cardiac complex as electrical pulses are delivered to the supraventricular pacing electrode; the alignment circuit detects the first model cardiac complex in the first cardiac signal; the R-wave detector circuit detects the second model cardiac complex in the second cardiac signal and provides the second cardiac signal to the alignment circuit, where the alignment circuit analyzes the second model cardiac complex to locate the predetermined alignment feature on the second model cardiac complex and positions the datum at the specified interval from the alignment feature on the second model cardiac complex; and the morphology analyzing circuit measures the voltage value of the first model cardiac signal at each of the two or more measurement intervals from the datum to create the template feature vector.
- 7. The system of claim 6, including a transmitter/receiver coupled to the control system, where the transmitter/receiver transmits signals to and receives signals from a medical device programmer, where the medical device programmer transmits a first signal to control the alignment circuit to locate the predetermined alignment feature on the second model cardiac complex and to position the datum at the specified interval from the alignment feature on the second model cardiac complex, and transmits a second signal to supply the two or more measurement intervals to the morphology analyzing circuit.
- 8. The system of claim 2, wherein the control system monitors the first cardiac signal for a first model cardiac complex and the second cardiac signal for a second model cardiac complex during normal sinus rhythm;
the alignment circuit detects the first model cardiac complex in the first cardiac signal; the R-wave detector circuit detects the second model cardiac complex in the second cardiac signal and provides the second cardiac signal to the alignment circuit, where the alignment circuit analyzes the second model cardiac complex to locate the predetermined alignment feature on the second model cardiac complex and positions the datum at the specified interval from the alignment feature on the second model cardiac complex; and the morphology analyzing circuit measures the voltage value of the first model cardiac signal at each of the two or more measurement intervals from the datum to create the template feature vector.
- 9. The system of claim 8, including a transmitter/receiver coupled to the control system, where the transmitter/receiver transmits signals to and receives signals from a medical device programmer, where the medical device programmer transmits a first signal to control the alignment circuit to locate the predetermined alignment feature on the second model cardiac complex and to position the datum at the specified interval from the alignment feature on the second model cardiac complex, and transmits a second signal to supply the two or more measurement intervals to the morphology analyzing circuit.
- 10. A system, comprising:
a supraventricular pacing electrode; at least a first defibrillation electrode and a second defibrillation electrode; a sensing system coupled to the supraventricular pacing electrode and the first defibrillation electrode and the second defibrillation electrode, wherein the sensing system detects a first cardiac signal between the first defibrillation electrode and the second defibrillation electrode; a control system coupled to the sensing system, where the control system monitors the first cardiac signal for first model cardiac complexes; a pace output circuit coupled to the control system, where the pace output circuit delivers electrical pulses to the supraventricular pacing electrode under the control of the control system, and wherein the control system monitors the first cardiac signal for the first model cardiac complexes as electrical pulses are delivered to the supraventricular pacing electrode; and a morphology analyzing circuit coupled to the control system, where the morphology analyzing circuit receives the first model cardiac complexes for the creation of a template.
- 11. The system of claim 10, including a pacing electrode, where the pacing electrode is coupled to the sensing system which detects a second cardiac signal through the pacing electrode; and wherein
the control system monitors the second cardiac signal for second model cardiac complexes as electrical pulses are delivered to the supraventricular pacing electrode; an R-wave detector circuit coupled to the control system, where the R-wave detector circuit detects the second model cardiac complexes in the second cardiac signal and provides the second cardiac signal to the alignment circuit, where the alignment circuit analyzes each of the second model cardiac complexes to locate a predetermined alignment feature on each of the second model cardiac complexes and positions a datum at a specified interval from the alignment feature on each of the second model cardiac complexes; and the morphology analyzing circuit measures a voltage value of the first cardiac signal at each of two or more measurement intervals from the datum for each of the first model cardiac complexes from which the template for the classification of cardiac complexes sensed is created from the voltage value of the first cardiac signal at each of two or more measurement intervals from the datum for each of the first model cardiac complexes.
- 12. The system of claim 10, where the sensing system detects an atrial cardiac signal from the supraventricular pacing electrode, the control system monitors the atrial cardiac signal for atrial cardiac complexes and calculates an average intrinsic atrial rate from the detected atrial cardiac complexes; and the pace output circuit delivers electrical pulses to the supraventricular pacing electrode at a predetermined rate which is faster than the average intrinsic atrial rate.
- 13. A method, comprising:
delivering electrical pulses to a supraventricular location; detecting a first cardiac signal as the electrical pulses are delivered to the supraventricular location; detecting cardiac complexes in the first cardiac signal; and creating a template from the detected cardiac complexes.
- 14. The method of claim 13, including
detecting an atrial cardiac signal; detecting atrial cardiac complexes in the atrial cardiac signal; calculating an average intrinsic atrial rate from the detected atrial cardiac complexes; and wherein delivering electrical pulses to the supraventricular location includes delivering electrical pulses to the supraventricular location at a predetermined rate which is faster than the average intrinsic atrial rate.
- 15. The method of claim 14, including
setting the predetermined rate at a predetermined percentage above the average intrinsic atrial rate.
- 16. The method of claim 15, including setting the predetermined percentage in a range of five to fifty percent.
- 17. The method of claim 14, including
setting the predetermined rate at a predetermined target heart rate, wherein the predetermined target heart rate is forty to one hundred sixty five pulses/minute.
- 18. The method of claim 13, where creating the template includes:
locating a predetermined alignment feature relative the first cardiac signal when an electrical pulse of the electrical pulses is delivered to the supraventricular location; identifying a cardiac complex of the first cardiac signal after the electrical pulse is delivered; defining a datum at a specified interval from the predetermined alignment feature; measuring a voltage value of the first cardiac signal for the cardiac complex at each of two or more measurement intervals from the datum; and storing the voltage values of the first cardiac signal at each of the two or more measurement intervals from the datum.
- 19. The method of claim 13, where creating the template includes:
locating a predetermined alignment feature relative the first cardiac signal for each electrical pulse of the electrical pulses delivered to the supraventricular location; identifying a cardiac complex of the first cardiac signal after each of the electrical pulses is delivered; defining a datum at a specified interval from the predetermined alignment feature for each cardiac complex identified in the first cardiac signal; and measuring a voltage value of the first cardiac signal for each cardiac complex at each of two or more measurement intervals from the datum.
- 20. The method of claim 19, including:
calculating an average value for each of the two or more measurements intervals; and storing the average value for each of the two or more measurements intervals.
- 21. The method of claim 19, including:
calculating a median value for each of the two or more measurements intervals; and storing the average value for each of the two or more measurements intervals.
- 22. The method of claim 13, including setting a predetermined number of electrical pulses in a range of one to thirty electrical pulses.
- 23. A method comprising:
detecting, at first and second locations, respective first and second cardiac complexes associated with a first heart depolarization instance; detecting a fiducial point in the first cardiac complex and noting a corresponding first cardiac complex fiducial point time; establishing measurement intervals based on times corresponding to features in the second cardiac complex relative to the first cardiac complex fiducial point time; detecting, at the first and second locations, respective third and fourth cardiac complexes associated with a second heart depolarization instance; detecting said fiducial point in the third cardiac complex and noting a corresponding third cardiac complex fiducial point time; and measuring voltages of the fourth cardiac complex at times based on said measurement intervals taken relative to the third cardiac complex fiducial point time.
- 24. The method of claim 23, comprising:
measuring voltages of the second cardiac complex at the measurement intervals; forming a first vector from the measured voltages of the second cardiac complex; forming a second vector from the measured voltages of the fourth cardiac complex; and comparing the first and second vectors.
- 25. The method of claim 24, further comprising detecting whether a tachyarrhythmia is present, and wherein detecting the first and second cardiac complexes is carried out in the absence of the tachyarrhythmia, and wherein detecting the third and fourth cardiac complexes is carried out in the presence of the tachyarrhythmia, and further comprising classifying the tachyarrhythmia as a supraventricular tachyarrhythmia (SVT) or a ventricular tachyarrhythmia (VT) based on the comparing of the first and second vectors.
- 26. The method of claim 25, wherein comparing the first and second vectors comprises computing a correlation coefficient between the first and second vectors, and wherein classifying the tachyarrhythmia includes classifying the tachyarrhythmia as SVT if the correlation coefficient exceeds a predetermined threshold and classifying the tachyarrhythmia as VT if the correlation coefficient is less than or equal to the predetermined threshold.
- 27. The method of claim 23, wherein establishing measurement intervals comprises:
defining a reference time at a specified interval from the first cardiac complex fiducial point time; and defining the measurement times relative to the reference time.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application is a division of U.S. patent application Ser. No. 09/352,056, filed Jul. 14, 1999, which is incorporated herein by reference.
Divisions (1)
|
Number |
Date |
Country |
Parent |
09352056 |
Jul 1999 |
US |
Child |
10202297 |
Jul 2002 |
US |