IP Library Granted Patent US 8,064,974
Granted Patent B2
US 8,064,974 · App. 11/445,416 · Granted Nov 22, 2011

Method and circuit for storing and providing historical physiological data

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Quick Facts
Patent No.
US 8,064,974
App. No.
11/445,416
Granted
Nov 22, 2011
Kind
B2
Abstract

Embodiments of the present invention include systems and methods that relate to pulse oximetry. Specifically, one embodiment includes an oximeter sensor comprising a light emitting element configured to emit light, a light detector configured to detect the light, a resistor having a resistance value that is detectable by a monitor, and a memory storing a contact resistance value of a connector that is disposed between the monitor and the resistor when the monitor and the oximeter sensor are communicatively coupled.

Claims (39)

1. An oximeter sensor, comprising:

a light emitting element configured to emit light;

a light detector configured to detect the light;

a resistor having a resistance value that is detectable by a monitor; and

a memory storing a contact resistance value of a connector that is disposed between the monitor and the resistor when the monitor and the oximeter sensor are communicatively coupled, the contact resistance value being readable by the monitor to be used in a correction mechanism of the monitor to correct the resistance value based on an algorithm that incorporates the resistance value and the contact resistance value.

2. The oximeter sensor of claim 1 , wherein the resistance value corresponds to a calibration resistance value that facilitates obtaining calibration coefficients in the monitor.

3. A method of manufacturing an oximeter sensor, comprising:

providing a light emitting element within the oximeter sensor, the light emitting element configured to project light;

providing a light detector within the oximeter sensor, the light detector configured to detect the light;

providing a resistor within the oximeter sensor, wherein the resistor includes a resistance value that is detectable by a monitor; and

providing a memory within the oximeter sensor, wherein the memory is storing a contact resistance value of a connector that is disposed between the monitor and the resistor when the monitor and the oximeter sensor are communicatively coupled, the contact resistance value being readable by the monitor to be used in a correction mechanism of the monitor to correct the resistance value based on an algorithm that incorporates the resistance value and the contact resistance value.

4. The method of claim 3 , comprising storing a calibration resistance value in the memory, the calibration resistance value facilitating obtaining calibration coefficients in the monitor.

5. An oximeter system, comprising:

an oximeter sensor, comprising:

a light emitting element configured to emit light;

a light detector configured to detect the light;

a resistor having a resistance value; and

a memory storing a contact resistance value of a connector that provides communicative access to the resistor; and

an oximeter monitor, comprising:

a drive circuit configured to provide signals to circuitry of the oximeter sensor;

a read circuit configured to read the resistance value of the resistor and the contact resistance value from the memory; and

a correction mechanism configured to correct the resistance value based on an algorithm that incorporates the resistance value and the contact resistance value.

6. An oximeter monitor, comprising:

a drive circuit configured to provide signals to circuitry of an oximeter sensor;

a first read circuit configured to read a resistance value of a resistor of the oximeter sensor;

a second read circuit configured to read a contact resistance value from a memory of the oximeter sensor; and

a correction mechanism configured to correct the resistance value based on an algorithm that incorporates the resistance value and the contact resistance value.

7. The monitor of claim 6 , comprising a monitor memory storing a calibration table of resistance values and calibration coefficients.

8. A method of monitor operation, comprising:

providing signals to circuitry of an oximeter sensor;

reading a resistance value of a resistor of the oximeter sensor;

reading a contact resistance value from a memory of the oximeter sensor; and

correcting the resistance value based on an algorithm that incorporates the resistance value and the contact resistance value.

9. The method of claim 8 , comprising storing a calibration table of resistance values and calibration coefficients.

10. A method of operating an oximeter sensor, comprising:

projecting light from a light emitting element;

detecting the light with a light detector; and

producing a resistance value with a resistor, the resistance value being detectable by a monitor; and

providing the monitor access to a value stored in a sensor memory, wherein the stored value is a contact resistance value of a connector that is disposed between the monitor and the resistor when the monitor and the oximeter sensor are communicatively coupled, the contact resistance value being readable by the monitor to be used in a correction mechanism of the monitor to correct the resistance value based on an algorithm that incorporates the resistance value and the contact resistance value.

Assignments (1)
CHANGE OF NAME Recorded Jan 9, 2024
From: TYCO HEALTHCARE GROUP LP
To: COVIDIEN LP
Reel/Frame 066241/0558 →