A61B5/0428

Universal ECG Monitor
20200375493 · 2020-12-03 ·

This invention relates to a universal ECG monitor of cardiac signals with enhances possibilities of scanning. The prior art monitors of cardiac signals make possible either a short-time touching by fingers or by other part of the human body of the electrodes, or they are permanently for a long time by means of a chest belt or by other means attached to the human body, wherein, such means are impractical and non-emergency. The equipment according to the present invention is a universal ECG monitor of a compact and easily portable design, which monitor substitutes the prior art costly and with difficulty movable hospital equipment. Moreover, it is a very economical solution, which makes possible to obtain a complete set ECG curves, i.e. the 12-lead ECG, by means of one of the monitor subsequently moved into various positions, and so to scan signals from different parts of the human body.

CAPTURING ECG MEASUREMENTS IN A PORTABLE SENSOR DEVICE
20200375494 · 2020-12-03 · ·

It is presented a method for obtaining data for an Electrocardiogram, ECG, using a portable sensor device comprising two electrodes. The method comprising the steps of: receiving a trigger to obtain measurements for the ECG; setting at least one switch in a conducting state to close a connection between the two electrodes; setting the at least one switch in a blocking state to conductively separate the two electrodes; and capturing measurements for the ECG using the at least two electrodes.

ELECTRODE STRUCTURE FOR ELECTROCARDIOGRAM (ECG) WAVEFORM MEASUREMENT
20200367777 · 2020-11-26 ·

An electrode for electrocardiogram (ECG) waveform measurement of the present disclosure is proposed. The present disclosure provides an electrode device capable of accurately measuring and monitoring an electrocardiogram of a person by maintaining a uniform amount of electric charge even when a contact area of the electrode changes due to vigorous physical activity such as walking or running, or moisture permeation due to ambient conditions or sweat released during exercise.

Electrocardiogram (ECG) sensor chip, system on chip (SoC), and wearable appliance

An ECG sensor chip used in a wearable appliance includes; a switch controlled by a switching signal, an amplifier that amplifies a difference between first and second ECG signals, and a location indicator that generates the switching signal. The switch passes either a first ECG signal or second ECG signal in response to the switching signal.

Apparatus and methods for removing a large- signal voltage offset from a biomedical signal

Apparatus and methods remove a voltage offset from an electrical signal, specifically a biomedical signal. A signal is received at a first operational amplifier and is amplified by a gain. An amplitude of the signal is monitored, by a first pair of diode stages coupled to an output of the first operational amplifier, for the voltage offset. The amplitude of the signal is then attenuated by the first pair of diode stages and a plurality of timing banks. The attenuating includes limiting charging, by the first pair of diode stages, of the plurality of timing banks and setting a time constant based on the charging. The attenuating removes the voltage offset persisting at a threshold for a duration of at least the time constant. Saturation of the signal is limited to a saturation recovery time while the saturated signal is gradually pulled into monitoring range over the saturation recovery time.

Configurable multi-channel ECG and EEG monitor

A monitor that includes multiple detection channels having multiple input ports for receiving a group of electrical physiological signals from a person; wherein multiple switching circuits of the monitor are configured according to a first configuration when the monitor operates in a first mode, thereby causing each electrical physiological signal of the group to be processed by up to a single selected detection channel of the multiple detection channels; wherein the multiple switching circuits of the monitor are configured according to a second configuration when the monitor operates in a second mode thereby causing one or more of the multiple electrical physiological signals of the group to be processed by at least two selected detection channels of the multiple detection channels.

COMPRESSED-SENSING OF SPATIOTEMPORALLY-CORRELATED AND/OR RAKENESS-PROCESSED ELECTROGRAMS
20200337579 · 2020-10-29 ·

An apparatus includes data acquisition circuitry and a processor. The data acquisition circuitry is configured to acquire multiple signals using multiple respective electrodes of an array of electrodes coupled to one of an organ of a patient and tissue or a cell culture. The processor is configured to hold a definition of a mixed-norm that is defined as a function of relative positions of the electrodes in the array, and jointly compress the multiple signals in a compressed-sensing (CS) process that minimizes the mixed-norm.

Selection of optimal channel for rate determination

According to at least one example, an ambulatory medical device is provided. The device includes a plurality of electrodes disposed at spaced apart positions about a patient's body and a control unit. The control unit includes a sensor interface, a memory and a processor. The sensor interface is coupled to the plurality of electrodes and configured to receive a first ECG signal from a first pairing of the plurality of electrodes and to receive a second ECG signal from a second pairing of the plurality of electrodes. The memory stores information indicating a preferred pairing, the preferred pairing being either the first pairing or the second pairing. The processor is coupled to the sensor interface and the memory and is configured to resolve conflicts between interpretations of first ECG signal and the second ECG signal in favor of the preferred pairing.

Circuits for wearable ECG system

A wearable ECG system includes a plurality of electrodes; a multiplexor, the multiplexor including an input port, two output ports, and a control port, the input port of the multiplexor being connected with the electrodes; an analog detection module being connected with one output port of the multiplexor; a digital detection module being connected with the other output port of the multiplexor; a processor being connected with the control port of the multiplexor and the digital detection module; and a motion detection module connected with the processor and configured to detect acceleration of the wearable ECG system and output an electrical signal accordingly. The processor is configured to receive the electrical signal from the motion detection module, and control the multiplexor to selectively transmit output of the electrodes to the analog detection module or the digital detection module based on the electrical signal.

PHYSIOLOGICAL MONITORING DEVICE ATTACHMENT ASSEMBLY
20200330037 · 2020-10-22 ·

An assembly for enabling a caregiver to secure a physiological monitoring device to an arm of a user can include the physiological monitoring device a cradle configured to removably secure to the physiological monitoring device and to the user's arm. The physiological monitoring device can include a first connector port configured to electrically connect to a first cable and a first locking tab movable between an extended position and a retracted position. The cradle can include a base, first and second sidewalls, a back wall connected to the base and the first and second sidewalls. The cradle can further include a first opening in the back wall configured to receive the first connector port and a second opening in the first sidewall configured to receive the first locking tab when the physiological monitoring device is secured to the cradle and the first locking tab is in the extended position.