IP Library Granted Patent US 11,801,386
Granted Patent B2
US 11,801,386 · App. 17/350,153 · Granted Oct 31, 2023

Device and method for determining a cardiac sensing control parameter

Inventors: Xusheng Zhang (Shoreview, MN); Yuanzhen Liu (Minneapolis, MN)
Assignee: Medtronic, Inc.
A61N1/3702A61B5/341A61B5/363A61B5/4836A61B5/7435A61N1/3625A61N1/39622A61B2560/02
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Quick Facts
Patent No.
US 11,801,386
App. No.
17/350,153
Granted
Oct 31, 2023
Kind
B2
Abstract

A medical device processor is configured to receive a first cardiac electrical signal sensed from a first sensing electrode vector, receive a second cardiac electrical signal sensed from a second sensing electrode vector different than the first sensing electrode vector, and construct a third cardiac electrical signal from the first cardiac electrical signal and the second cardiac electrical signal. In some examples, the system determines sensed cardiac events according to at least one setting of a cardiac event sensing threshold control parameter from at least the third cardiac electrical signal and may determine at least one acceptable setting of a sensing control parameter based on the determined sensed cardiac events. The processor may generate an output representative of the determined sensed cardiac events.

Claims (90)

1. A medical device comprising a processor configured to:

receive at least a first sensed cardiac electrical signal and a second sensed cardiac electrical signal;

construct a third cardiac electrical signal from the first sensed cardiac electrical signal and the second sensed cardiac electrical signal;

from at least the third cardiac electrical signal, determine sensed cardiac events according to at least one setting of a cardiac event sensing threshold control parameter;

determine a rate of the determined sensed cardiac events;

determine that the rate meets expected rate criteria;

determine that an associated sensing control parameter used to determine the sensed cardiac events is an acceptable sensing control parameter in response to the determined rate meeting the expected rate criteria; and

generate an output representative of the determined sensed cardiac events.

2. The medical device of claim 1 , wherein the processor is configured to determine the sensed cardiac events according to the at least one setting of the cardiac event sensing threshold control parameter by:

adjusting at least one of a sensitivity, a starting amplitude of a cardiac event sensing threshold amplitude, an intermediate amplitude of the cardiac event sensing threshold amplitude, or a time interval used for making an amplitude adjustment to the cardiac event sensing threshold amplitude.

3. The medical device of claim 1 , wherein:

the device includes a display unit;

the processor is further configured to:

determine the acceptable sensing control parameter by determining an acceptable setting of at least one of a sensing electrode vector and a cardiac event sensing threshold control parameter based on the determined sensed cardiac events; and

generate the output representative of the determined sensed cardiac events comprising the acceptable setting;

the display unit being configured to display the acceptable setting.

4. The medical device of claim 1 , wherein the processor is further configured to:

detect a tachyarrhythmia based on the determined sensed cardiac events from at least one of the first cardiac electrical signal, the second cardiac electrical signal or the third cardiac electrical signal;

determine at least one acceptable setting of a sensing control parameter by identifying a sensing control parameter associated with detecting the tachyarrhythmia.

5. The medical device of claim 4 , wherein the processor is further configured to determine the at least one acceptable setting of the sensing control parameter by:

determining a time to detect the tachyarrhythmia for each of a plurality of settings of a cardiac event sensing threshold control parameter for a given one of the first cardiac electrical signal, the second cardiac electrical signal and the third cardiac electrical signal;

determining that the time to detect the tachyarrhythmia for at least one setting of the plurality of settings of the cardiac event sensing threshold control parameter is within a tachyarrhythmia detection time limit; and

determining the at least one acceptable setting of the sensing control parameter by identifying the at least one setting of the plurality of settings of the cardiac event sensing threshold control parameter for which the determined time to detect the tachyarrhythmia is within the tachyarrhythmia detection time limit.

6. The medical device of claim 5 , wherein the processor is further configured to determine the tachyarrhythmia detection time limit by:

determining a minimum time to detect the tachyarrhythmia from among the determined times to detect the tachyarrhythmia; and

determining the tachyarrhythmia detection time limit as the minimum time plus a predetermined increase in the time to detect the tachyarrhythmia.

7. The medical device of claim 5 , wherein the processor is configured to:

determine the time to detect the tachyarrhythmia for each of the plurality of settings of the cardiac event sensing threshold control parameter by determining the time to detect the tachyarrhythmia for each of a plurality of sensitivity settings used to set a lowest amplitude of a cardiac event sensing threshold;

determine a highest value of the plurality of sensitivity settings for which the determined time to detect the tachyarrhythmia is within the tachyarrhythmia detection time limit; and

determine the at least one acceptable setting of the sensing control parameter by identifying an acceptable sensitivity setting that is a factor of the determined highest value of the plurality of sensitivity settings for which the determined time to detect the tachyarrhythmia is within the tachyarrhythmia detection time limit,

wherein the factor corresponds to a predetermined safety margin for sensing cardiac event signals.

8. The medical device of claim 1 , wherein:

the processor receives the first cardiac electrical signal via a first sensing electrode vector comprising a first electrode and a second electrode;

the processor receives the second cardiac electrical signal via a second sensing electrode vector comprising the first electrode and a third electrode, and

the processor is configured to construct the third cardiac electrical signal corresponding to a third sensing electrode vector including the second electrode and the third electrode.

9. The device of claim 1 , further comprising a display unit,

wherein the processor is configured to generate the output by generating data corresponding to the determined sensed cardiac events for display by the display unit in a graphical user interface.

10. A method comprising:

receiving at least a first sensed cardiac electrical signal and a second sensed cardiac electrical signal;

constructing a third cardiac electrical signal from the first sensed cardiac electrical signal and the second sensed cardiac electrical signal;

from at least the third cardiac electrical signal, determining sensed cardiac events according to at least one setting of a cardiac event sensing threshold control parameter;

detecting a tachyarrhythmia based on the determined sensed cardiac events from at least one of the first cardiac electrical signal, the second cardiac electrical signal or the third cardiac electrical signal;

determining a time to detect the tachyarrhythmia for each of a plurality of settings of a cardiac event sensing threshold control parameter for a given one of the first cardiac electrical signal, the second cardiac electrical signal and the third cardiac electrical signal;

determining that the time to detect the tachyarrhythmia for at least one setting of the plurality of settings of the cardiac event sensing threshold control parameter is within a tachyarrhythmia detection time limit;

determining at least one acceptable setting of the sensing control parameter by identifying the at least one setting of the plurality of settings of the cardiac event sensing threshold control parameter for which the determined time to detect the tachyarrhythmia is within the tachyarrhythmia detection time limit; and

generating an output representative of the determined sensed cardiac events.

11. The method of claim 10 , wherein determining the sensed cardiac events according to at least one cardiac event sensing threshold control parameter comprises:

adjusting at least one of a sensitivity, a starting amplitude of a cardiac event sensing threshold amplitude, an intermediate amplitude of the cardiac event sensing threshold amplitude, or a time interval used for an amplitude adjustment to the cardiac event sensing threshold amplitude.

12. The method of claim 10 , further comprising:

determining the acceptable setting by determining an acceptable setting of at least one of a sensing electrode vector and a cardiac event sensing threshold control parameter based on the determined sensed cardiac events;

generating the output representative of the determined sensed cardiac events comprising the acceptable setting; and

displaying the acceptable setting by a display unit.

13. The method of claim 12 , further comprising determining at least one acceptable sensing control parameter setting based on the determined sensed cardiac events by:

determining a rate of the determined sensed cardiac events;

determining that the rate meets expected rate criteria; and

determining that an associated sensing control parameter used to determine the sensed cardiac events is the acceptable sensing control parameter in response to the rate meeting the expected rate criteria.

14. The method of claim 10 , further comprising determining the tachyarrhythmia detection time limit by:

determining a minimum time to detect the tachyarrhythmia from among the determined times to detect the tachyarrhythmia; and

determining the tachyarrhythmia detection time limit as the minimum time plus a predetermined increase in the time to detect the tachyarrhythmia.

15. The method of claim 10 , wherein:

determining the time to detect the tachyarrhythmia for each of the plurality of settings of the cardiac event sensing threshold control parameter comprises determining the time to detect the tachyarrhythmia for each of a plurality of sensitivity settings used to set a lowest amplitude of a cardiac event sensing threshold;

determining a highest value of the plurality of sensitivity settings for which a determined time to detect the tachyarrhythmia is within the tachyarrhythmia detection time limit; and

determining the at least one acceptable setting of the sensing control parameter by identifying an acceptable sensitivity setting that is a factor of the determined highest value of the plurality of sensitivity settings for which the determined time to detect the tachyarrhythmia is within the tachyarrhythmia detection time limit,

wherein the factor corresponds to a predetermined safety margin for sensing cardiac event signals.

16. The method of claim 10 , comprising:

receiving the first cardiac electrical signal via a first sensing electrode vector comprising a first electrode and a second electrode;

receiving the second cardiac electrical signal via a second sensing electrode vector comprising the first electrode and a third electrode, and

constructing the third cardiac electrical signal corresponding to a third sensing electrode vector including the second electrode and the third electrode.

17. The method of claim 10 , wherein generating the output comprises:

generating data corresponding to the determined sensed cardiac events; and

displaying the generated data in a graphical user interface.

18. A non-transitory computer-readable medium storing a set of instructions which, when executed by a processor of a medical device, cause the device to:

receive at least a first sensed cardiac electrical signal and a second sensed cardiac electrical signal;

construct a third cardiac electrical signal from the first sensed cardiac electrical signal and the second sensed cardiac electrical signal;

from at least the third cardiac electrical signal, determine sensed cardiac events according to at least one setting of a cardiac event sensing threshold control parameter;

determine a rate of the determined sensed cardiac events;

determine that the rate meets expected rate criteria;

determine that an associated sensing control parameter used to determine the sensed cardiac events is an acceptable sensing control parameter in response to the determined rate meeting the expected rate criteria; and

generate an output representative of the determined sensed cardiac events.

19. A graphical user interface system, comprising:

a processor configured to:

receive at least a first sensed cardiac electrical signal and a second sensed cardiac electrical signal;

construct a third cardiac electrical signal from the first sensed cardiac electrical signal and the second sensed cardiac electrical signal;

from at least the third cardiac electrical signal, determine sensed cardiac events according to at least one setting of a cardiac event sensing threshold control parameter;

determine a rate of the determined sensed cardiac events;

determine that the rate meets expected rate criteria; and

determine that an associated sensing control parameter used to determine the sensed cardiac events is an acceptable sensing control parameter in response to the determined rate meeting the expected rate criteria;

wherein determining the acceptable sensing control parameter comprises determining an acceptable setting of at least one of a sensing electrode vector and a cardiac event sensing threshold control parameter for detecting tachyarrhythmia based on the determined sensed cardiac events; and

a display unit coupled to the processor and configured to:

display a visual representation of the acceptable setting.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 17, 2021
From: ZHANG, XUSHENG; LIU, YUANZHEN
To: MEDTRONIC, INC. (CVG)
Reel/Frame 056572/0837 →
Continuity (3)
Provisional Application 63145687 · Feb 4, 2021
Provisional Application 63045567 · Jun 29, 2020
Related Publication 20210402190A1 · Dec 30, 2021
Cited By (1)
US 12,414,727