WIRE-FREE MONITORING DEVICE FOR ACQUIRING, PROCESSING AND TRANSMITTING PHYSIOLOGICAL SIGNALS
20180116513 ยท 2018-05-03
Assignee
Inventors
Cpc classification
A61B5/394
HUMAN NECESSITIES
A61B5/398
HUMAN NECESSITIES
A61B2562/0209
HUMAN NECESSITIES
A61B5/002
HUMAN NECESSITIES
A61B5/684
HUMAN NECESSITIES
A61B2562/0219
HUMAN NECESSITIES
International classification
A61B5/00
HUMAN NECESSITIES
Abstract
Embodiments of the present disclosure relate to an electrode device to acquire, process and transmit physiological signals. The device eliminates the need for inconvenient wires attached at different locations on patient's body. The device comprises a sensor patch comprising plurality of sensors/electrodes, configured to be in contact with a skin surface of a human body, to measure physiological of the patient. Also, the, device comprises a wire-free module,, embedded in the sensor patch, comprising an auto-orientation module to detect the orientation of the sensor patch on the human body using a plurality of sensors. The wire-free module comprises a processing module to process one or more signals received from the plurality of sensors/electrodes. Further, the wire-free module comprises a detection module to detect one or more processed signals as a predefined physiological signal and a transmission module to transmit the detected physiological signal to a mobile device.
Claims
1. A wireless physiological device for acquiring and processing physiological signals, the device comprising: a sensor patch comprising plurality of electrodes, configured to be in contact with a skin surface of a human body, to measure physiological of the patient; and at least one wire-free module, embedded in the sensor patch, comprising an auto-orientation module to detect the orientation of the sensor patch on the human body using a plurality of sensors; a processing module to process one or more signals received from the plurality of electrodes; a detection module to detect one or more processed signals as a predefined physiological data; and a transmission module to transmit the detected physiological data to a mobile device.
2. The device as claimed in claim 1 further comprises a power source configured to supply power to the device.
3. The device as claimed in claim 1 further comprises a storage unit for storing at least one of signals sensed by the sensor patch, the processed signals and data detected physiological signals.
4. The device as claimed in claim 1 further comprises a compression module to compression the physiological signals to preserve in original form
5. The device as claimed in claim 1, wherein the auto-orientation module comprises plurality of sensors to detect the orientation of the sensor patch.
6. The device as claimed in claim 5, wherein each of the plurality of sensor is one of accelerometer, gyroscope and magnetometer.
7. The device as claimed in claim 1, wherein the processing module comprising: front end module comprising at least one instrumentation block to amplify a plurality of signals sensed by the plurality of electrodes; at least one filter to filter out noise from the amplified sensed signals; and an analog to digital converter (ADC) to convert the amplified sensed signals in to digital signal.
8. The device as claimed in claim 1, wherein the transmission module uses at least one data transmission protocol selected from at least one of Bluetooth, Wireless fidelity (Wi-Fi), second generation (2G), third generation (3G), long term evolution (LTE) and any other wireless protocol.
9. The device as claimed in claim 1, wherein the transmission module comprises a data manager block to perform machine learning from the physiological data to obtain one of critical and non-critical event.
10. The device as claimed in claim 1, wherein the transmission module transmits physiological data using at least one of minimum available bandwidth data network for non-critical events and any available data network for critical events.
11. A method of acquiring and processing physiological signals using a wireless monitoring device, the method comprising: identifying, by the wireless physiological device, orientation of a sensor patch placed on a human body; processing, by the wireless physiological device, one or more signals received from a plurality of electrodes configured in the sensor patch; detecting, by the wireless physiological device, a physiological data from the processed signals; and transmitting, by the wireless physiological device, the detected physiological data to a mobile device.
12. The method as claimed in claim 11 further comprises providing power supply to the wireless monitoring device.
13. The method as claimed in claim 11 further comprises storing at least one of signals sensed by the sensor patch, the processed signals and data detected physiological signals, in a storage unit.
14. The method as claimed in claim 11 further comprises compressing the physiological signals to preserve in original form
15. The method as claimed in claim 11, wherein the orientation of the sensor patch is detected using a plurality of sensors, wherein each of the plurality of sensors is one of accelerometer, gyroscope and magnetometer.
16. The method as claimed in claim 11, wherein the processing one or more signals received from a plurality of electrodes comprising: amplifying the one or more signals sensed by the plurality of electrodes; filtering the amplified signals to filter out high frequency noise from the amplified sensed signals; and converting the amplified sensed signals in to digital signal.
17. The method as claimed in claim 11, wherein the detected physiological signals are transmitted using at least one data transmission protocol selected from at least one of Bluetooth, Wireless fidelity (Wi-Fi), second generation (2G), third generation (3G), long term evolution (LTE) and any other wireless protocol.
18. The method as claimed in claim 11, wherein the transmission of physiological data further comprising performing machine learning from the physiological data to obtain one of critical and non-critical event.
19. The method as claimed in claim 11, wherein the transmission of physiological data using at least one of minimum available bandwidth data network for non-critical events and any available data network for critical events.
Description
BRIEF DESCRIPTION OF THE ACCOMPANYING DRAWINGS
[0018] The accompanying drawings, which are incorporated in and constitute a part of this disclosure, illustrate exemplary embodiments and, together with the description, serve to explain the disclosed principles. In the figures, the left-most digit(s) of a reference number identifies the figure in which the reference number first appears. The same numbers are used throughout the figures to reference like features and components. Some embodiments of device or system and/or methods in accordance with embodiments of the present subject matter are now described, by way of example only, and with reference to the accompanying figures, in which:
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DETAILED DESCRIPTION
[0029] In the present document, the word exemplary is used herein to mean serving as an example, instance, or illustration. Any embodiment or implementation of the present subject matter described herein as exemplary is not necessarily to be construed as preferred or advantageous over other embodiments.
[0030] While the disclosure is susceptible to various modifications and alternative forms, specific embodiment thereof has been shown by way of example in the drawings and will be described in detail below. It should be understood, however that it is not intended to limit the disclosure to the particular forms disclosed, but on the contrary, the disclosure is to cover all modifications, equivalents, and alternative falling within the spirit and the scope of the disclosure.
[0031] The terms comprises, comprising, or any other variations thereof, are intended to cover a non-exclusive inclusion, such that a setup, device or method that comprises a list of components or steps does not include only those components or steps but may include other components or steps not expressly listed or inherent to such setup or device or method. In other words, one or more elements in a device or system or apparatus proceeded by comprises . . . a does not, without more constraints, preclude the existence of other elements or additional elements in the device or system or apparatus.
[0032] In the following detailed description of the embodiments of the disclosure, reference is made to the accompanying drawings that form a part hereof, and in which are shown by way of illustration specific embodiments in which the disclosure may be practiced. These embodiments are described in sufficient detail to enable those skilled in the art to practice the disclosure, and it is to be understood that other embodiments may be utilized and that changes may be made without departing from the scope of the present disclosure. The following description is, therefore, not to be taken in a limiting sense.
[0033] An exemplary embodiment of the present disclosure is a device to acquire and physiological signals. The device is also referred as a system or a wire-free electrode.
[0034] The device eliminates the need for inconvenient wires attached at different locations on patient's body. In one embodiment, the device performs real-time cardiac event detection and automated data transmission from single wire-free/wireless electrode. The system comprises an arrangement of an electrode that allows acquisition of several cardiac bio-potentials or ECG signals.
[0035] Another embodiment of the present disclosure is a method of acquiring physiological signals. The method is performed by automated recognition of electrode orientation which facilitates determination of plurality of leads. The real-time detection classifies the sensed signals by the leads as one of critical events and non-critical events. Another embodiment is reducing patient noncompliance, which may be one of the biggest challenges for both short and long term remote cardiac monitoring, and minimize care giver/user errors involved in placement of traditional ECG leads that create artifacts, mimic pathologies, and hinder proper ECG interpretation.
[0036] In an aspect of the present disclosure, a wireless physiological device for acquiring and processing physiological signals is provided. The device comprises a sensor patch comprising plurality of sensors/electrodes, configured to be in contact with a skin surface of a human body, to measure physiological signals of the patient. The physiological signal is at least one of electrocardiogram (ECG), electroencephalogram (EEG), electromyogram (EMG), Electroretinogram (ERG), Electrooculography (EOG), Electroolfactogram (EOG), Electropalatogram (EPG), Electrogastroenterogram (EGEG), Electrocochleography (ECOG), Galvanic skin response (GSR) and any other physiological signal. Also, the device comprises at least one wire-free module embedded in the sensor patch, comprising an auto-orientation module to detect the orientation of the sensor patch on the human body using a plurality of sensors. The wire-free module is also referred as wireless module. The wire-free module comprises a processing module to process one or more signals received from the plurality of sensors/electrodes. Further, the wire-free module comprises a detection module to detect one or more processed signals as a predefined physiological signal and a transmission module to transmit the detected physiological signal to a mobile device.
[0037] Another aspect of the present disclosure is a method of acquiring, processing and transmitting physiological signals using a wireless monitoring device. The method comprises identifying orientation of a sensor patch placed on a human body. Next, processing one or more signals received from a plurality of sensors/electrodes configured in the sensor patch. Further, detecting a physiological signal from the processed signals and transmitting the detected physiological signal to a mobile device and thereafter to the server on the internet or cloud. In addition, the machine learning is done at either the sensor, mobile device or server based on the available connectivity and bandwidth.
[0038] In one embodiment of the present disclosure a remote cardiac monitoring device for monitoring electrocardiogram (ECG) signals remotely, is disclosed. The remote cardiac monitoring device is also referred as a cardiac system or wire-free cardiac device or wireless cardiac device or wireless cardiac electrode or wire-free cardiac electrode or wireless electrode or wire-free electrode. In one embodiment, the device is a single electrode. The device improves frequent patient noncompliance due to discomfort from wires around the body by making a device without wires and at the same time capture electrocardiogram signals. The device requires no effort from the user/care giver in affixing a single electrode on a part of body of the user without any requirement to fix the device in any particular orientation or in multiple places as in traditional devices, wherein the user may be a patient. The device comprising a new arrangement of a cardiac electrode that allows acquisition of several cardiac bio-potentials and a method for automated recognition of electrode orientation which facilitates determination of up-to 6 lead electrocardiogram equivalent to Lead I, Lead II, Lead III, aVR, aVL and aVF. The cardiac device would also remove any caregiver/user errors involved in placement of traditional electrocardiogram leads that create artifacts, mimic pathologies, and hinder proper electrocardiogram interpretation.
[0039] In one embodiment, the wire-free electrode comprises an on-board intelligence which facilitates real-time detection of cardiac events by classifying the events into at least one of critical and non-critical cardiac. The critical cardiac events have the highest priority in data transmission and alerting the care-giver or the doctor or medical practitioner, so that, an appropriate intervention is accorded and the situation is treated on a priority basis.
[0040] The cardiac electrode activates a monitor in association with symptoms of a patient, to keep a log of symptoms. Also, the cardiac electrode use event markers and trans-telephonically transmits the information. The complete cardiac system comprises a wire-free cardiac electrode, application module on a mobile device and at least one remote monitoring server. The at least one remote monitoring server stores the data from the cardiac electrode and performs analytics on the data based on the requirement. In an example, a patient may perform at least one of pressing of a button on the electrode to inform the system about a symptomatic event and logging or recording the event information along with the associated symptoms on the mobile device application module. The system is recognizes the type of data network such as, but not limited to, Wi-Fi, 2G, 3G, 4G, voice network and any other data network. Thereafter, the system manages data transmission according to significance allotted to cardiac events based on one of critical and non-critical nature. In one embodiment, the system by default may attempt to transmit ECG data via the lowest cost available data network and the critical events shall be transmitted on priority over any of the available network.
[0041]
[0042] As shown in
[0043] The device 100 is configured such that, a user or a patient may use the device with ease. Also, the device does not require the patient to orient the device in a particular angle on the predefined part of the human body. The device may be peeled like any other body worn bands/medical devices and pasted on to a predefined of the part human body. When the device is placed on the predefined part of the human body, the device self-orients itself to know the precise location of plurality of micro-sensors, configured in the device, in the X & Y plane. This self-orientation or auto-orientation is performed by the auto-orientation module 102 is also referred as an auto-orientation engine.
[0044] The wire-free electrode device 100 also comprises plurality of sensors as shown in
[0045] As shown in
[0046]
[0047]
[0048]
[0049] The automatic orientation of the device is performed by a plurality of sensors configured in the auto-orientation module 102. Each of the plurality of sensors is one of accelerometer, gyroscope and magnetometer, which facilitate measurement of orientation of the patch in the X & Y axis. The plurality of sensors is calibrated and any change in the orientation of the device 100 once placed on the human body, as shown in
[0050] As shown in
[0051] In one embodiment, Lead I+Lead III=Lead II. The voltage in lead I to that in lead III facilitate to provide voltage in the Lead II.
[0052] In one embodiment, the wire-free electrode use different types of sensors as shown in
[0053] The wet contact sensor comprises a small metal plate surrounded by an adhesive fabric, which is coated with a conducting wet gel to aid transmission of the signal. The sensor is assembled with an electrolyte gel in which the principle anion is Cl-. The Cl- is an attractive anion for sensors/electrode applications, since the skin interface contains an excess of chloride ions in solution or perspiration. A silver chloride is very slightly soluble in water, so most of the silver chloride precipitates out of the solution onto the silver sensors/electrode and contributes to a silver chloride deposit. The sensors are converted from metallic Ag to Ag/AgCl by electrolytic or chemical conversion processes. The metal plate can be replaced by any other conductive materials such as conductive carbon fiber loaded ABS plastic.
[0054] In one embodiment, the dry sensors comprises of plates made of metals such as, but not limited to silver, stainless steel, brass, and nickel; conductive carbon nanotubes or any other conductive material. A conductive adhesive is used to transfer the bio-potential signals from the surface of the skin to the sensors. The non-contact sensors comprise active electronic circuits to capacitive pick up the bio-potential signals.
[0055] Referring back to
[0056]
[0057] The interference is a common mode noise across both terminals of the differential amplifier. The interference is removed by at least one of isolating the analog front-end 202 ground electronics from the digital system, using one or more instrumentation amplifiers with very high common mode rejection ratios, and driving the patient body with an inverted common mode signal. User's or Patient's one sensor-node may be considered as reference and driven with a signal which is the inverted average of multiple available ECG channels to reduce the common mode interference; Shielding the device to prevent high frequency RF from being coupled into the system. The aim in the design of the front-end is to minimize the noise which is coupled into the system.
[0058] In one embodiment, baseline wander is a low frequency component present in the ECG system, which is due to offset voltages in the sensors/electrodes, respiration, and body movement. Also, an offset limits a maximum value of gain which may be obtained from the instrumentation amplifiers. At higher gains, the signal may saturate and the noise is removed using a high pass filter 204. One of the specifications of the ECG is the input referred noise which should be less than 30 uV for the entire system at 150 Hz bandwidth. In one embodiment, a high resolution Analog to Digital Converter (ADC) 206 is configured in the processing module 104, a single stage of gain achieved by the instrumentation amplifiers. The hardware-based high pass filter is removed, and the baseline wander is carried over into the digital domain. The filtering process performed in the digital domain is cost effective.
[0059] In one embodiment, a control unit or a microcontroller is configured into the system, which reduces the overall cost of the wire-free cardiac device or system.
[0060] According to the IEC specification, the bandwidth of the ECG required is from 0.5 Hz to 150 Hz. The cardiac device should have a mechanism to detect pacemakers, which may be detected by having one of hardware and application module. If the detection is performed by an application module, the sampling rate of the ADC must be of the order of 3 to 4 KSps. The advantage of having the application module for pacemakers is that changes in firmware may adapt the ECG machine to different kinds of pacemakers. In most of the high frequency noise may be filtered before it is sampled by the ADC. The device is shielded to prevent high frequency radiated noise from being coupled. Once the data is sampled by the ADC, a digital FIR filter having the desired cutoff frequency is implemented, which removes high frequency noises in the ECG trace. The amplitude of power line noise is very huge and generally gets coupled into the system despite care to prevent common mode noise in the digital domain. Power line noise is removed by implementing a notch filter at 50/60 Hz in the digital domain.
[0061] Referring back to
[0062] The data storage and compression module 108 receives the data from the detection module and stores the data in the internal memory or database. The data storage and compression module 108 is also referred as a compression module or compression engine. In one embodiment, the data from sensors may be stored on a flash memory configured in the sensor patch and may be retrieved using USB cable. The compression module 108 uses a lossless compression method to ensure the subtle changes in ECG signals are preserved in the original form and do not introduce any artifacts that may distort clinical diagnosis. As, the ECG signal comprises repetition of the basic morphologies of signal consisting of P, QRS & T waves. The substantial portions of the ECG signal involve minimal changes in amplitude called isoelectric baseline except for noise, P, QRS & T waves. The duration of the isoelectric baseline is inversely proportional to the heart rate. At normal heart rate range of 60 to 100 bpm, the duration of the isoelectric baselines is quite long. As amplitude changes are minimal at the isoelectric baseline, this portion of the signal requires significantly less number of bits and thereby enabling high compression.
[0063] The ECG data compression techniques are limited to the amount of time required for compression and reconstruction, the noise embedded in the raw ECG signal, and the need for accurate reconstruction of the P, Q, R, S, and T waves.
[0064] The data transmission module 110 is configured in the data transmission engine resides in the gateway and is divided in to three parts, a network manager, event manager and data request manager. The data transmission module 110 is also referred as data transmission engine or transmission module. The transmission module uses a data transmission protocol which is at least one of Bluetooth, Wireless fidelity (Wi-Fi), second generation (2G), third generation (3G), long term evolution (LTE) and any other wireless protocol. A network manager configured in this module 110 determines the wireless network characteristics such as, but not limited to availability, signal strength, bandwidth and call drops. Also, the network manager is responsible for transmission of bio-potential data such as ECG, cardio-thoracic impedance, body motion along with the events as prioritized by the event manager. The event manager is configured in data transmission module 110, to list the events based on the level of priority determined by the detection module 110. In a case where real-time bandwidth not available on the wireless network, the event manger will buffer the events with highest priority first and then order the remaining depending on the level of priority and timestamp.
[0065] In one embodiment, a data request manger is configured in the data transmission module 110, to handle requests from the server for performing at least one of changing clinician parameters for the machine learning module present on the gateway and the sensors status of the electronic components on the sensor and gateway along with the performance statistics which allows the system to understand the wear-tear-life of components on the field itself and change from automated transmission of all data such as, but not limited to real-time or transmission of data on-demand or transmission of events based on the machine learning systems on the sensor and/or gateway. The data manager block to perform machine learning from the physiological data to obtain one of critical and non-critical event. the transmission module transmits physiological data using at least one of minimum available bandwidth data network for non-critical events and any available data network for critical events.
[0066]
[0067] Also, the system acquires the ECG signals in real-time and performs data analysis of multiple lead electrocardiogram. The electrode comprises on-board intelligence which facilitates real-time detection of cardiac events by classifying critical versus non-critical cardiac ones, which is as shown in the
[0068] Further, the failure of patient to activate a monitor in association with symptoms, to keep a log of symptoms and use event markers and inability to trans-telephonically transmit the information significantly limits the diagnostic value of these devices. The system is an integrated platform consisting of the wire-free cardiac electrode, application module which is configured in a portable or a handheld device such as, but not limited to a mobile phone, laptop, tablet and PDA.
[0069] The remote monitoring server stores the data or information received from the wire-free cardiac single electrode, in the storage unit and performs analytics or analysis as on need basis. The remote server comprises a web-server module for communication or connectivity with a mobile device and wire-free cardiac electrode; an information security module for providing data security which is HIPPA compliance and provides information audit logs; a data analytics module for performing offline ECG analysis or analytics, aggregate data and provide summary about risk stratification and trend analysis; and at least one database for storing the data associated with the acquired ECG signals, opinion by an expert on the analyzed data, data analytics information.
[0070] One embodiment of the present disclosure is machine learning of the wire-free electrode for pattern recognition. For example, the cardiac events may be time critical from a therapeutic standpoint and require the highest emergency in case of certain critical events, in that scenario the device has intelligence that automatically decides the place where appropriate level of machine learning takes place based on the availability of wireless channels. The real-time machine learning will always reside on the place where the highest computing power resides when the wireless channels are available.
[0071]
[0072] The system incorporates the patient data and physician feedback into machine learning. Each event classified by the system will be corroborated by physician interpretation to make the system's learning stronger with time. The system should be able to detect cardiac events early in the life-cycle and determine the efficacy of therapeutic intervention provided by the physician.
[0073] Embodiments of the present disclosure relates to a method of acquiring and processing physiological signals using a wireless monitoring device. The method comprises identifying orientation of a sensor patch placed on a human body. Next, processing one or more signals received from a plurality of sensors/electrodes configured in the sensor patch. Further, detecting a physiological signal from the processed signals and transmitting the detected physiological signal to a mobile device. The method also comprises providing power supply to the wireless monitoring device. The orientation of the sensor patch is detected using a plurality of sensors, wherein each of the plurality of sensors is one of accelerometer, gyroscope and magnetometer. The processing one or more signals, received from a plurality of sensors, comprises amplifying the one or more signals, filtering the amplified signals to filter out high frequency noise from the amplified sensed signals and converting the amplified sensed signals in to digital signal. The detected physiological signals are transmitted using at least one data transmission protocol selected from at least one of Bluetooth, Wireless fidelity (Wi-Fi), second generation (2G), third generation (3G), long term evolution (LTE) and any other wireless protocol.
[0074] The described operations may be implemented as a method, system or article of manufacture using standard programming and/or engineering techniques to produce software, firmware, hardware, or any combination thereof. The described operations may be implemented as code maintained in a non-transitory computer readable medium, where a processor may read and execute the code from the computer readable medium. The processor is at least one of a microprocessor and a processor capable of processing and executing the queries. A non-transitory computer readable medium may comprise media such as magnetic storage medium (e.g., hard disk drives, floppy disks, tape, etc.), optical storage (CD-ROMs, DVDs, optical disks, etc.), volatile and non-volatile memory devices (e.g., EEPROMs, ROMs, PROMs, RAMs, DRAMs, SRAMs, Flash Memory, firmware, programmable logic, etc.), etc. Further, non-transitory computer-readable media comprise all computer-readable media except for a transitory. The code implementing the described operations may further be implemented in hardware logic (e.g., an integrated circuit chip, Programmable Gate Array (PGA), Application Specific Integrated Circuit (ASIC), etc.).
[0075] Still further, the code implementing the described operations may be implemented in transmission signals, where transmission signals may propagate through space or through a transmission media, such as an optical fiber, copper wire, etc. The transmission signals in which the code or logic is encoded may further comprise a wireless signal, satellite transmission, radio waves, infrared signals, Bluetooth, etc. The transmission signals in which the code or logic is encoded is capable of being transmitted by a transmitting station and received by a receiving station, where the code or logic encoded in the transmission signal may be decoded and stored in hardware or a non-transitory computer readable medium at the receiving and transmitting stations or devices. An article of manufacture comprises non-transitory computer readable medium, hardware logic, and/or transmission signals in which code may be implemented. A device in which the code implementing the described embodiments of operations is encoded may comprise a computer readable medium or hardware logic. Of course, those skilled in the art will recognize that many modifications may be made to this configuration without departing from the scope of the invention, and that the article of manufacture may comprise suitable information bearing medium known in the art.
[0076] The terms an embodiment, embodiment, embodiments, the embodiment, the embodiments, one or more embodiments, some embodiments, and one embodiment mean one or more (but not all) embodiments of the invention(s) unless expressly specified otherwise.
[0077] The terms including, comprising, having and variations thereof mean including but not limited to, unless expressly specified otherwise.
[0078] The enumerated listing of items does not imply that any or all of the items are mutually exclusive, unless expressly specified otherwise.
[0079] The terms a, an and the mean one or more, unless expressly specified otherwise.
[0080] A description of an embodiment with several components in communication with each other does not imply that all such components are required. On the contrary a variety of optional components are described to illustrate the wide variety of possible embodiments of the invention.
[0081] When a single device or article is described herein, it will be readily apparent that more than one device/article (whether or not they cooperate) may be used in place of a single device/article. Similarly, where more than one device or article is described herein (whether or not they cooperate), it will be readily apparent that a single device/article may be used in place of the more than one device or article or a different number of devices/articles may be used instead of the shown number of devices or programs. The functionality and/or the features of a device may be alternatively embodied by one or more other devices which are not explicitly described as having such functionality/features. Thus, other embodiments of the invention need not include the device itself.
[0082] Finally, the language used in the specification has been principally selected for readability and instructional purposes, and it may not have been selected to delineate or circumscribe the inventive subject matter. It is therefore intended that the scope of the invention be limited not by this detailed description, but rather by any claims that issue on an application based here on. Accordingly, the disclosure of the embodiments of the invention is intended to be illustrative, but not limiting, of the scope of the invention, which is set forth in the following claims.
[0083] While various aspects and embodiments have been disclosed herein, other aspects and embodiments will be apparent to those skilled in the art. The various aspects and embodiments disclosed herein are for purposes of illustration and are not intended to be limiting, with the true scope and spirit being indicated by the following claims.
TABLE-US-00001 Referral Numerals Reference Number Description 100 Wire-free electrode device 102 Auto-orientation module 104 Signal Processing Module 106 Detection Module 108 Compression Module 110 Data Transmission Module 202 Front end 204 Filter 206 Analog to Digital Converter (ADC)