Configurable physiological measurement system
10123726 ยท 2018-11-13
Assignee
Inventors
- Ammar Al-Ali (San Juan Capistrano, CA)
- Massi Joe E. Kiani (Laguna Niguel, CA)
- Walter M. Weber (Laguna Hills, CA)
Cpc classification
A61B5/14546
HUMAN NECESSITIES
A61B5/7475
HUMAN NECESSITIES
A61B5/02416
HUMAN NECESSITIES
A61B2562/08
HUMAN NECESSITIES
A61B2562/222
HUMAN NECESSITIES
A61B5/0205
HUMAN NECESSITIES
Y10S439/909
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
A61B5/7278
HUMAN NECESSITIES
A61B5/0022
HUMAN NECESSITIES
A61B1/00
HUMAN NECESSITIES
A61B2562/085
HUMAN NECESSITIES
A61B5/7221
HUMAN NECESSITIES
A61B5/0295
HUMAN NECESSITIES
A61B5/7246
HUMAN NECESSITIES
A61B5/14532
HUMAN NECESSITIES
G16H10/40
PHYSICS
A61B5/7275
HUMAN NECESSITIES
A61B5/1455
HUMAN NECESSITIES
A61B5/746
HUMAN NECESSITIES
International classification
A61B5/1455
HUMAN NECESSITIES
A61B5/0295
HUMAN NECESSITIES
A61B5/145
HUMAN NECESSITIES
A61B5/00
HUMAN NECESSITIES
Abstract
A physiological measurement system has a sensor, a processor, a communications link and information elements. The sensor is configured to transmit light having a plurality of wavelengths into a tissue site and to generate a sensor signal responsive to the transmitted light after tissue attenuation. The attenuated light can be used by the system to determine a plurality of physiological measurements. The processor is configured to operate on the sensor signal so as to derive at least one physiological parameter after which of the plurality of physiological measurements the system is configured to or capable of measuring.
Claims
1. A physiological measurement system comprising: a first physical component comprising a sensor configured to transmit light having a plurality of wavelengths into a tissue site and to generate a sensor signal responsive to the transmitted light after tissue attenuation, wherein the first physical component is configured to provide first information specifying a plurality of physiological measurements the first physical component is capable of supporting; and a hardware processor configured to: receive the first information from the first physical component; determine, based on the first information, a subset of the plurality of physiological measurements that the hardware processor is configured to support, wherein the subset of the plurality of physiological measurements includes fewer than all of the plurality of physiological measurements; and calculate, based on the sensor signal, physiological measurements corresponding to the subset of the plurality of physiological measurements using the first physical component.
2. The physiological measurement system of claim 1 further comprising: a second physical component comprising at least one of a daughterboard, a patient cable, a sensor cable, a reusable portion of the sensor, or a disposable portion of the sensor, wherein the second physical component is configured to provide second information specifying a plurality of physiological measurements the second physical component is capable of supporting, wherein the hardware processor is further configured to: receive the second information from the second physical component; determine, based on the first and second information, a subset of a common set of physiological measurements that both the first and second physical components are capable of supporting that the hardware processor is configured to support; and calculate, based on the sensor signal, physiological measurements corresponding to the subset of the common set of physiological measurements using the first and second physical components.
3. The physiological measurement system of claim 2, wherein at least one of the first or second physical components is further configured to provide characterization information.
4. The physiological measurement system of claim 3, wherein the characterization information is useable by the physiological measurement system to configure the hardware processor to determine measurements of each of the physiological measurements of the subset of the common set.
5. The physiological measurement system of claim 4, wherein the characterization information includes calibration data.
6. The physiological measurement system of claim 5, wherein the hardware processor is further configured to: configure the physiological measurement system to measure the subset of the common set of physiological measurements based on the calibration data.
7. The physiological measurement system of claim 5, wherein the hardware processor is further configured to: provide a drive signal to the sensor based on the calibration data.
8. The physiological measurement system of claim 1, wherein the first physical component is further configured to provide characterization information.
9. The physiological measurement system of claim 1, wherein the hardware processor is further configured to: configure the physiological measurement system to measure the subset of the plurality of physiological measurements based on the characterization information.
10. The physiological measurement system of claim 1, wherein the hardware processor is further configured to: receive identification information from the first physical component; and determine, by the hardware processor, a type of the first physical component based on the identification information.
11. The physiological measurement system of claim 10, wherein the hardware processor is further configured to: further determine, based on the identification information, that the hardware processor is configured to support the subset of the plurality of physiological measurements.
12. The physiological measurement system of claim 1, wherein the hardware processor is further configured to: receive first life span information from the first physical component; and determine, based on the first life span information, whether a life span of the first physical component is exhausted.
13. The physiological measurement system of claim 1, wherein the subset of the plurality of physiological measurements include at least one of: SpO2, HbCO, MetHb, fractional SpO2, Hbt, NIBP, or blood glucose.
14. The physiological measurement system of claim 1, wherein the sensor comprises a resposable sensor.
15. A method of a physiological parameter system, the method comprising: receiving first information from a sensor configured to transmit light having a plurality of wavelengths into a tissue site and to generate a sensor signal responsive to the transmitted light after tissue attenuation, wherein the first information specifies a plurality of physiological measurements the sensor is capable of supporting; determining, by a hardware processor and based on the first information, a subset of the plurality of physiological measurements that the hardware processor is configured to support, wherein the subset of the plurality of physiological measurements includes fewer than all of the plurality of physiological measurements; and calculating, based on the sensor signal, physiological measurements corresponding to the subset of the plurality of physiological measurements using the sensor.
16. The method of claim 15 further comprising: receiving second information from a physical component comprising at least one of a daughterboard, a patient cable, a sensor cable, a reusable portion of the sensor, or a disposable portion of the sensor, wherein the second information specifies a plurality of measurements the physical component is capable of supporting; determining, by the hardware processor and based on the first and second information, a subset of a common set of physiological measurements that both the sensor and the physical component are capable of supporting that the hardware processor is configured to support; and calculate, based on the sensor signal, physiological measurements corresponding to the subset of the common set of physiological measurements using the sensor and the physical component.
17. The method of claim 16, wherein at least one of the sensor or the physical component is further configured to provide characterization information and wherein the characterization information is useable by the physiological measurement system to configure the hardware processor to determine measurements of each of the physiological measurements of the subset of the common set.
18. The method of claim 15, wherein the hardware processor is further configured to: receive identification information from the sensor; and determine, by the hardware processor, a type of the sensor based on the identification information.
19. The method of claim 18, wherein the hardware processor is further configured to: further determine, based on the identification information, that the hardware processor is configured to support the subset of the plurality of physiological measurements.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(6) In this application, reference is made to many blood parameters. Some references that have common shorthand designations are referenced through such shorthand designations. For example, as used herein, HbCO designates carboxyhemoglobin, HbMet designates methemoglobin, and Hbt designates total hemoglobin. Other shorthand designations such as COHb, MetHb, and tHb are also common in the art for these same constituents. These constituents are generally reported in terms of a percentage, often referred to as saturation, relative concentration or fractional saturation. Total hemoglobin is generally reported as a concentration in g/dL. The use of the particular shorthand designators presented in this application does not restrict the term to any particular manner in which the designated constituent is reported.
(7)
(8) The processor 110 generates drive signals so as to activate the sensor emitters and inputs and processes the corresponding detector signal so as determine the relative concentrations of two or more blood constituents. The communications link 130 provides communications between the processor 110 and sensor 120 including transmitting the drive signals from the processor 110 to the sensor 120 and the detector signals from the sensor 120 to the processor 110. In one embodiment, the communications link 130 is a cable and corresponding sensor and processor connectors that provide a wired connection between the processor 110 and connector 120. In another embodiment, the communications link 130 provides a wireless connection between the processor 110 and connector 120. The wireless connection may utilize Bluetooth?, IEEE 802.11 or similar wireless technologies.
(9) As shown in
(10)
(11) Also shown in
(12) Further shown in
(13)
(14) As shown in
(15) Also shown in
(16)
(17) Life, for example, may be a predetermined counter written into an EEPROM to indicate the number of uses or the length of use of a particular component. Then, Life is counted down, say each time power is applied, until a zero value is reached, indicating component expiration.
(18) Parameters specifies the measurements the component is capable of supporting, which may include, for example, one or more of SpO.sub.2, HbCO, MetHb, fractional SpO.sub.2, Hbt, NIBP and blood glucose to name just a few. With respect to a sensor, Parameters depend on the number of emitters, emitter wavelength and emitter configuration, for example. For a cable, Parameters depend on the number of conductors and connector pinouts, for example. Parameters may also simply reflect a license to use a component, such as disposable tape, with respect to a particular system configuration.
(19) Features set the mode for the processor or other system elements. As one example, Features specify the mode or modes of one or more algorithms, such as averaging.
(20) Characterization allows the processor to plug and play with a particular component. For example, if the component is a sensor, Characterization may include information necessary to drive the emitters, such as the LED wavelengths and drive pattern. Characterization may also include calibration data for the parameters measured. As another example, Characterization for a sensor component 220 (
(21) As shown in
(22)
(23) As shown in
(24)
(25) Forward and backward sensor compatibility is described above with respect to configurable physiological measurement systems 200 having various processor 210 capabilities and sensor 220 capabilities. The configurable physiological measurement systems 200 can have any or all of the processor 210, sensor 220 and cable 230 components described with respect to
(26) A configurable physiological measurement system has been disclosed in detail in connection with various embodiments. These embodiments are disclosed by way of examples only and are not to limit the scope of the claims that follow. One of ordinary skill in the art will appreciate many variations and modifications.