METHOD AND SYSTEM FOR FACILITATING PATIENT SELF-MEASURING AND RECORDING
20170055858 ยท 2017-03-02
Inventors
Cpc classification
G16H20/30
PHYSICS
A61B5/08
HUMAN NECESSITIES
G16H10/60
PHYSICS
A61B5/6887
HUMAN NECESSITIES
A61B5/72
HUMAN NECESSITIES
G16H50/30
PHYSICS
A61B5/0002
HUMAN NECESSITIES
A61B5/02438
HUMAN NECESSITIES
A61B5/0205
HUMAN NECESSITIES
International classification
A61B5/0205
HUMAN NECESSITIES
A61B5/00
HUMAN NECESSITIES
Abstract
Systems and methods for facilitating patient self-measuring and recording are provided. In some embodiments, an exhalation pressure of a patient may be measured via a pressure transducer during a time period associated with an examination. A graphical component (indicating the exhalation pressure measurement) may be presented on a display such that the graphical component is continuously updated in real-time, as the exhalation pressure is being measured, until at least the end of the time period associated with the examination. Another graphical component (indicating a remaining time of the time period) may be presented on the display such that the other graphical component is continuously updated in real-time, as the exhalation pressure is being measured, until at least the end of the time period associated with the examination. A heart rate of the patient may be measured via electrocardiogram (ECG) electrodes during the time period associated with the examination.
Claims
1. A system for facilitating patient self-measuring and recording, the system: a pressure transducer, a display, electrocardiogram (ECG) electrodes, and a processor, the processor being configured to: measure, via the pressure transducer, an exhalation pressure of a patient during a time period associated with an examination; cause a first graphical component indicating the exhalation pressure measurement to be presented on the display such that the first graphical component is continuously updated in real-time, as the exhalation pressure is being measured, until at least the end of the time period associated with the examination; cause a second graphical component indicating a remaining time of the time period to be presented on the display such that the second graphical component is continuously updated in real-time, as the exhalation pressure is being measured, until at least the end of the time period associated with the examination; measure, via the ECG electrodes, a heart rate of the patient during the time period associated with the examination; and calculate heart rate variability of the time period associated with the examination based on the heart rate measurement and cause a graphical component indicating the heart rate variability to be presented on the display.
2. The system of claim 1, wherein the processor is further configured to: measure, via the pressure transducer, a blood pressure of the patient during the time period associated with the examination.
3. The system of claim 1, wherein the processor is further configured to: measure, via the pressure transducer, a hand grip squeeze pressure of the patient during the time period associated with the examination.
4. The system of claim 1, further comprising a baroreflex sensitivity recording unit.
5. The system of claim 1, further comprising a plurality of push buttons configured to provide control signals to the processor.
6. The system of claim 1, wherein the system is adapted to simultaneously measure pressure and ECG signals.
7. The system of claim 1, wherein the processor is further configured to: cause step-by-step instructions for performing patient self-measuring to be presented on the display during the examination and prior to the time period associated with the examination.
8. The system of claim 1, wherein the processor is further configured to: cause step-by-step instructions for performing patient self-measuring to be presented on the display prior to and during the time period associated with the examination.
9. The system of claim 1, wherein the processor is further configured to: cause one or more results of the examination to be presented on the display subsequent to the time period associated with the examination.
10. A method for facilitating patient self-measuring and recording, the method being implemented by a computer system comprising one or more processors executing computer program instructions that, when executed, perform the method, the method comprising: measuring, via a pressure transducer, an exhalation pressure of a patient during a time period associated with an examination; causing a first graphical component indicating the exhalation pressure measurement to be presented on a display such that the first graphical component is continuously updated in real-time, as the exhalation pressure is being measured, until at least the end of the time period associated with the examination; causing a second graphical component indicating a remaining time of the time period to be presented on the display such that the second graphical component is continuously updated in real-time, as the exhalation pressure is being measured, until at least the end of the time period associated with the examination; measuring, via electrocardiogram (ECG) electrodes, a heart rate of the patient during the time period associated with the examination; and calculating heart rate variability of the time period associated with the examination based on the heart rate measurement and cause a graphical component indicating the heart rate variability to be presented on the display.
11. The method of claim 10, further comprising: measuring, via the pressure transducer, a blood pressure of the patient during the time period associated with the examination.
12. The method of claim 10, further comprising: measuring, via the pressure transducer, a hand grip squeeze pressure of the patient during the time period associated with the examination.
13. The method of claim 10, further comprising: causing step-by-step instructions for performing patient self-measuring to be presented on the display during the examination and prior to the time period associated with the examination.
14. The method of claim 10, further comprising: causing step-by-step instructions for performing patient self-measuring to be presented on the display prior to and during the time period associated with the examination.
15. The method of claim 10, further comprising: causing one or more results of the examination to be presented on the display subsequent to the time period associated with the examination.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0020] The invention will now be explained more fully with reference to the drawings, in which:
[0021]
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DETAILED DESCRIPTION OF THE INVENTION
[0031]
[0032] Moreover, in addition to the blood pressure signal 1, ECG signal 2 from the same measurement object is shown. The ECG signal 2 is shown with the same horizontal timescale, as the blood pressure signal 1, and the vertical axis for the ECG signal likewise specifies the amplitude of this signal.
[0033] It is common clinical practice to express the heart pulse on the basis of the distance between the so-called R signal components (the dominating peak) in the ECG signal based on the formula: Pulse=60/(R-R distance measured in seconds).
[0034] As it is seen from the two curve sequences for respectively blood pressure and the ECG, these proceed simultaneously over time.
[0035] Experiments have shown that it is possible by using an appropriate signal processing of the blood pressure signal to derive the heart pulse information from the blood pressure signal with a precision, which is comparable with the calculation based on the RR interval from the ECG signal.
[0036] When the heart pulse is derived on the background of the blood pressure signal, the ECG measurement device or similar special measurement devices can be excluded for physiological examinations, which link blood pressure and heart pulse.
[0037]
[0038] The measurement device consists of a central processing unit marked C, which can in practice be a digital signal processor or another similar component device.
[0039] The processing unit C is controlled by a control unit, which can e.g. be a keyboard or a number of pushbuttons.
[0040] To the central process unit C is also connected an output medium, which can e.g. be a display or a monitor including one, which includes a sound device.
[0041] The central processor C moreover receives data from some input signals, including data from a blood pressure measuring unit, from which both blood pressure and the heart pulse can be derived.
[0042] The central processor C can moreover be provided with additional input signal units, which can give information about e.g. exhale pressure and handgrip squeeze pressure as well as one or more additional aux signal input units for other specific measurement data.
[0043] By application of the shown hardware configuration the same, in the principle simple, measurement device can be used for recording and presentation of many different important physiological examinations.
[0044]
[0045] The specified examinations include (1) resting heart rate, (2) beat-to-beat heart rate variation, (3) heart rate response to standing, (4) heart rate response to Valsalva maneuver, (5) systolic blood pressure response to standing, or (6) diastolic blood pressure response to isometric exercise.
[0046] All the shown examinations can be carried out with the measurement device (e.g., shown in
[0047] As it will appear from
[0048] It is a part of the present invention that the apparatus/device as shown in
[0049] As an example of this the so-called Heart rate response to Valsalva maneuver examination can be mentioned, which is based on that the examined person exhales air with a pressure of 40 mmHg in a period of 15 seconds.
[0050] Here, the measuring apparatus shown in
[0051]
[0052] After the data collection the measuring device can, controlled by implemented calculation algorithms, subsequently derive the desired results and show these on the display unit or via a wireless data communication unit transmit these to an external unit such as a computer including an electronic patient record.
[0053] With integration of a wireless data communication unit it will also be possible to record data wirelessly from the object being measured, so that wires etc. connected to the measuring object can be reduced to a minimum.
[0054] With the simplified measuring apparatus in accordance to the invention, it will be possible to move even complex physiological examinations away from dedicated examination laboratories and out in the environments, where the examined are normally to be found, which will be able to improve the physiological information.
[0055] The invention is not limited to the methods and devices, which are directly described or illustrated in this present document, but also includes all methods and devices/apparatus, which can indirectly be inferred from the text or the figures or a combination of these.