The invention is in the field of home diagnostic medical devices, and in particular to an ECG device usable like a household thermometer.
Home medical devices that measure one or more vital parameters, including ECG, are disclosed in the prior art:
US2018/0110418A discloses a self-contained hand-held device. The device can obtain all vital signs +ECG and pulse-ox by being held by the patient for approximately half a minute. The device contains sensors on the hand-held unit as well as on the individual/disposable mouthpiece. The method of the present invention includes simultaneously acquiring the following measurements: temperature, pulse rate, breathing rate, blood pressure, electrocardiogram, heart rate and pulse-ox waveform and blood oxygen level.
US2013/0253286 discloses an intraoral multisensor device that includes a mouthpiece, a plurality of sensors at least one of attached to or integrated with the mouthpiece, and a data communications unit configured to receive signals from the plurality of sensors. The mouthpiece has a form to permit stable arrangement at least partially within a person's mouth such that it can remain for hands-free sensing of a plurality of biological parameters. Also, an intraoral multisensor system includes an intraoral multisensor device and a data processing device adapted to communicate with the intraoral multisensor device.
The present invention advances the state-of-the-art in multi-functional home medical devices, as further described below.
A number of different types of ECG exist. The simplest is the 2-contact, 1-lead ECG, which is typically measures between the left hand and the right hand. More complex versions include a 3-contact 3- or 6-lead ECG, 12-lead ECG and 15-lead ECG. In order to increase the likelihood that arrhythmias, ventricular fibrillation, atrial fibrillation etc. will be detected, it is preferable to have at least a 3-lead ECG trace for a physician to analyze.
Applying a 3-lead ECG to the body is relatively more cumbersome than a 1-lead ECG as the third contact needs to be attached to the left leg. This requires some sort of cable to be extended from the device to the leg or lower abdomen, and some form of electrode to be attached to the foot or elsewhere on the leg or lower abdomen.
Unlike the thermometer— which is the one medical device present in most homes in the developed world—the use of an ECG at home is unfamiliar and requires some kind of learning curve. There is therefore a need to provide a simple form of ECG which is easy to use and exploits the familiar thermometer format; and where both types of readings—temperature and ECG—are performed at the same time.
It is within the scope of the present invention to provide an oral 3-lead ECG device in the shape of a digital-thermometer comprising three contact electrodes:
It is further within the scope of the present invention to provide the abovementioned oral 3-lead ECG device, wherein the processor is configured to perform the transformation by
It is further within the scope of the present invention to provide any one of the abovementioned oral 3-lead ECG devices, further comprising one or more sensors from a group consisting of an oral temperature sensor disposed in the metallic tip, a pulse-oximetry sensor, a respiratory rate sensor, a skin temperature sensor, a body impedance sensor, a galvanic skin response sensor, and a blood-flow sensor.
It is further within the scope of the present invention to provide the previous oral 3-lead ECG devices, wherein the pulse-oximetry sensor is positioned proximate to or opposite the left-hand contact electrode or right-hand contact electrode.
It is further within the scope of the present invention to provide any one of the abovementioned oral 3-lead ECG devices, further comprising a communications module enabling the display of the ECG trace on an external device (e.g., smartphone or computer).
It is further within the scope of the present invention to provide the previous oral 3-lead ECG device, wherein the display further comprises sensor data from one or more sensors from the group consisting an oral temperature sensor, a pulse-oximetry sensor, a respiratory rate sensor, a skin temperature sensor, a body impedance sensor, a galvanic skin response sensor, and a blood-flow sensor; and the oral 3-lead ECG device further comprises the one or more sensors.
It is further within the scope of the present invention to provide any one of the previous two oral 3-lead ECG devices, further comprising a data-transfer agent module installed in the external device, the data-transfer agent module configured to transmit the ECG and/or sensor data over the Internet to a remote device (e.g., for storage and/or analysis).
It is further within the scope of the present invention to provide the previous oral 3-lead ECG device, further comprising a remote agent module installed in the remote device; the remote agent module is configured to perform medical analysis of the transmitted ECG data and/or the transmitted sensor data.
It is further within the scope of the present invention to provide any one of the previous two oral 3-lead ECG devices, comprising either:
It is further within the scope of the present invention to provide a method for transformation of the signals from ECG leads of an oral 3-lead ECG, comprising steps of
It is further within the scope of the present invention to provide an oral 1-lead ECG/thermometer device comprising
It is further within the scope of the present invention to provide the abovementioned oral 1-lead ECG/thermometer device, further comprising one or more sensors from a group consisting of a pulse-oximetry sensor, a respiratory rate sensor, a skin temperature sensor, a body impedance sensor, a galvanic skin response sensor, and a blood-flow sensor.
It is further within the scope of the present invention to provide the previous oral 1-lead ECG/thermometer device, wherein the pulse-oximetry sensor is positioned proximate to or opposite the left-hand contact electrode or right-hand contact electrode.
It is further within the scope of the present invention to provide any one of the abovementioned oral 1-lead ECG/thermometer devices, further comprising a communications module enabling the display of the ECG trace on an external device (e.g., smartphone or computer).
It is further within the scope of the present invention to provide the previous oral 1-lead ECG/thermometer device, wherein the display further comprises sensor data from one or more sensors from the group consisting an oral temperature sensor, a pulse-oximetry sensor, a respiratory rate sensor, a skin temperature sensor, a body impedance sensor, a galvanic skin response sensor, and a blood-flow sensor; and the oral 1-lead ECG/thermometer device further comprises the one or more sensors.
It is further within the scope of the present invention to provide any one of the previous two oral 1-lead ECG/thermometer devices, further comprising a data-transfer agent module installed in the external device, the data-transfer agent module configured to transmit the ECG and/or sensor data over the Internet to a remote device (e.g., for storage and/or analysis).
It is further within the scope of the present invention to provide the previous oral 1-lead ECG/thermometer device, further comprising a remote agent module installed in the remote device; the remote agent module is configured to perform medical analysis of the transmitted ECG data and/or the transmitted sensor data.
Reference is now made to
A device of the present invention comprises a thermometer-shaped device 100 comprising a body 105 and a neck 110. The body 105 contains at least one contact electrode 115, which can be circular as shown or any other shape. A contact electrode 115 may be disposed on the floor of a surrounding indent; the indent can serve as a guide for placement of a finger on the contact electrode 115. Contact electrodes 115 may be disposed on the front of the device, as shown. Alternatively, one or more of the contact electrodes 115 may be disposed on the reverse side of the device, such that a thumb is placed on a contact electrode 115. The neck 110 comprises a thermally and electrically conductive (typically metallic) tip 120 having a temperature sensor within, for measuring body temperature. In preferred embodiments, the body 105 further comprises a display 125 such as an LCD display, which can show at least body temperature.
A potential advantage of monitoring ECG and temperature is that a fever is known to cause electrocardiographic changes that can mimic life-threatening conditions [Mody, P., Pandey, A. & Joglar, J. Fever-Induced Electrocardiographic Changes. J GEN INTERN MED 30, 136-137 (2015)]. An elevated body temperature measured by the device 100 can therefore serve as an indication that the ECG trace generated by the device 100 is less reliable.
The pulse oximetry sensor 127 provides additional function to the device 100 while also enabling ECG-pulse oximeter sensor fusion, for example to provide cross-verification between the ECG and pulse oximetry sensor 127.
Reference is now made to
Reference is now made to
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Surprisingly, even though the two configurations shown in
Reference is made now to
The transformation that therefore needs to be performed in order to transform the electrical signals received from the ECG device 20 of the present invention, shown in
The traces of the transformed waveforms from the oral 3-lead ECG 20, shown in
Advantageously, by providing ECG trace displays which mimic a standard one, the display can readily be understood by a physician and/or remote physician viewing it, and also be interpreted by software programs which interpret ECG traces. Such programs are available over the Internet, enabling ECG interpretation to be performed in the cloud.
Advantageously, implementing a 3-lead ECG device in accordance with the current invention makes the device very simple to use as (a) the thermometer shape is familiar and convenient, and (b) the need to run a cable down to the left leg is obviated.
Unlike ECG devices like the Apple Watch or the KardiaMobile ECG product (AliveCor, Mountain View, Calif., USA), where the patient places a finger on an electric plate—and therefore the quality of the skin-electrode contact is subject to shaking of the finger—the device 20 of the present invention is grasped between the forefinger and the thumb, such that the finger against the electrode is held there stably due to the counterposing force from the thumb underneath the device. Advantageously, this stable connection between the electrode(s) and the finger(s) represents an additional synergy between the thermometer shape and the ECG implementation therein.
Additional advantages deriving from the thermometer-based shape of devices 20, 100 of the present invention include the ability to measure vital signs and other physiological data as measured using sensors mounted on or within the body of the device together with the ECG signals gathered by the device 20, 100. The sensors can include any combination of the following: an oral temperature sensor implemented within the oral tip of the device, a pulse-oximetry sensor, a respiratory rate sensor, a skin temperature sensor, a body impedance sensor, a galvanic skin response sensor and a blood-flow sensor.
In a preferred embodiment of the device, the output is displayed on a smartphone or PC connected to the device 20, 100 either wirelessly over Bluetooth or WiFi, etc., or via a wired connection. This display may contain a 1-lead ECG output (not shown) or a transformed 3-lead ECG trace as per
Advantageously, the combination of providing an ECG trace while also providing additional medical data such as temperature and pulse oximetry enables the patient to perform an extensive and comprehensive medical check during one simple deployment of the device 20.
Reference is now made to
For embodiments comprising a thermometer, a thermistor 135 for temperature sensing may comprise an MF51E2252F3950C thermistor from Cantherm (Montreal, Canada). A microprocessor 140 may comprise one of the PSoC 63 family MCU from Cypress Semiconductors (San Jose, Calif., USA). Some embodiments comprise a communication chip 150, for wireless or wired communication with an external device. However, in preferred embodiments the microprocessor 140 comprises built-in communication function, such as Bluetooth Low Energy (BLE), such that a separate communication chip 150 is not required. In embodiments with a pulse oximetry sensor 127, electronic components further comprise a pulse oximeter circuit 155.
Filing Document | Filing Date | Country | Kind |
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PCT/IL2020/050874 | 8/11/2020 | WO |
Number | Date | Country | |
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62863890 | Jun 2019 | US |