EEG SIGNAL MONITORING ADAPTER DEVICE CONFIGURABLE ON EYEWEAR
Presented is an EEG adapter device for eyewear which can be worn invisibly and continuously by the user. The eyewear adapter includes a main body configured in the form of a sleeve so that an intended temple of the eyewear can slidably fit therein, a ring configured to fit over the eyewear's temple and operable by a user to move a first EEG electrode of the eyewear adapter toward or away from the main body to ensure the first EEG electrode is adjustably positioned at FT9/FT10 of the 10-10 system. The eyewear adapter further includes a second EEG electrode and positioned in the vicinity of a bony region behind the user's ears, a third EEG electrode positioned at T9/T10 position of the 10-10 system when in use, and an electronics unit configured to receive and process EEG-related data from the first, the second, and the third EEG electrodes.
This patent application claims the benefit of priority of U.S. Provisional Application No. 63/028,632 entitled “EEG (Electroencephalography) Measuring Adapter for Eyewears,” filed 22 May 2020, which is hereby incorporated herein by reference in its entirety.
FIELD OF THE INVENTIONThe present application generally relates to devices for monitoring, detecting, and processing electroencephalogram (EEG) signals of the human brain. More specifically, the present invention discloses an instant and discrete EEG monitoring device or adapter that can be used with eyewear.
BACKGROUNDGenerally speaking, EEG is a monitoring method that records the electrical activity of the brain. EEG measures the brainwaves noninvasively via electrodes/sensors placed on the scalp and helps to establish an accurate diagnosis of brain activity. In neurology, one of the common diagnostic applications of EEG is in diagnosing epilepsy. For patients with epilepsy, it is crucial, for medical professionals, to detect the unusual electrical activity in the brain when a seizure is triggered. When the patients do not experience a seizure the brain activity may remain normal. This means unless the patients experience a seizure during EEG recording, the doctor cannot diagnose the type of seizure in full confidence. Due to the unpredictable occurrence of seizures and the limited consulting duration per patient, e.g. a session of EEG in hospital, there is indeed an urgent need for a portable, invisible, and wearable EEG device that can be continuously worn by the patients throughout the day to overcome the current constraints of laboratory-based or hospital-based EEG tests.
Likewise, EEG monitoring also facilitates to optimize the efficiency of medical treatment of mental disorders, Parkinson's disease, and Alzheimer's disease. Several studies show that EEG signals can be used to determine the mental status, emotions, and moods of a user, and it has been applied to diagnose the mental disorders of patients. The detection of emotional profile via EEG signals is particularly important as it reflects the symptoms of mental disorders in the early stage and can be used to derive the patient's mood pattern (i.e. mood tracking), tracking the efficacy of the designated treatment accurately. In addition, the patient's emotional triggers can be found and further resolved with the professional's help to improve the life quality of the patient. At the moment, mood tracking is done manually by the patient to log at fixed time slots. It often lacks accuracy as it relies on memories to recall the moods throughout a day. Furthermore, the act of recalling negative feelings may aggravate the mental status of the patient. The application of EEG monitoring can resolve these inconveniences by providing automatic mood tracking. To achieve mood tracking for a long duration throughout the day, having an invisible EEG monitoring device is essential for the field of mental health.
Alzheimer's disease (AD) is a neurodegenerative disorder that is characterized by cognitive deficits that result in the reduced capacity of patients in daily life and behavioral disturbances. EEG has been demonstrated as a reliable tool in the research of AD and the diagnosis as it contributes to the differential diagnosis and the prognosis of the disease progression. Additionally, such recordings of EEG can add important information related to drug effectiveness. Similarly, EEG has been proven to be necessary for efficiently managing Parkinson's disease. A portable and invisible EEG device can facilitate the monitoring of these diseases without causing additional disturbances in daily life.
For all of these diseases and many more, effective monitoring of brain activities via EEG for a long duration is essential. This is because certain health information such as the occurrence of emotional triggers and other abnormalities of electrical activity in the brain does not only take place exclusively in hospitals, in laboratories, or in private, but anytime, anywhere. Various systems for monitoring EEG have been known for several years and with the general technological development, EEG monitoring systems, which may be worn continuously by a person to be monitored, have been devised. However, most of the existing prior art EEG devices have bulky and obvious structures that can be worn exclusively in laboratories or in private.
In the existing prior arts, several efforts have been made to provide EEG monitoring device with one or more electrodes integrated as a part of eyewear, for example, U.S. Pat. No. 9,016,857B2, US20160054569, CN103976733A, CN103690161A, and so on. The main issues with such systems are the EEG monitoring device and its sensors/electrodes are built in a specific piece of eyewear that just has one fixed structural configuration for all users. In such EEG systems embedded in eyewear, it is a fact that eyewear cannot be easily replaced by users due to the configured EEG monitoring device or sensors therein. The fixed structure of eyewear limits the adjustment to the individual user's head size so these existing EEG monitoring devices fail in fitting on the user comfortably. Consequently, these systems have issues such as discomfort during the use and poor quality of EEG signals. Furthermore, eyewear nowadays is not only considered as a tool, but also a fashion accessory. Imposing EEG-embedded eyewear with fixed appearances can limit the user's acceptance and further degrade the user's engagement with EEG monitoring.
In order to overcome these aforementioned issues, the inventor herein proposes a device in the form of an eyewear adapter that can be attached or configured on any existing eyewear without changing the overall look of the eyewear. The removable design of the proposed eyewear adapter gives users the freedom to mount it over different eyewear to optimize the user's engagement with, and adherence to, EEG monitoring.
SUMMARYIt is an objective of the present invention to provide an EEG monitoring device or adapter that can be removable and configured on eyewear.
Another objective of the present invention is to provide an eyewear adapter device that can be easily configured or integrated with eyewear and act as an invisible design without compromising the original looks of the eyewear.
Another objective of the present invention is to provide an EEG adapter for eyewear that ensures the user's maximum comfort and is capable of ensuring stable EEG signal acquisition. The proposed EEG adapter for eyewear is configurable onto the frames of eyewear, specifically onto the temples of the eyewear. The application of EEG dry electrodes makes this proposed eyewear adapter easy to use without extra preparation and suitable for all kinds of users. The proposed eyewear adapter is an invisible design, assuring instant, invisible, and stable EEG monitoring throughout daily life.
Another objective of the present invention is to provide an EEG adapter that is not only capable of measuring EEG signals of the human brain but is also capable of measuring electrooculogram (EOG) to provide more comprehensive information such as emotional recognition.
These and other features and advantages of the present invention will become apparent from the detailed description below, in light of the accompanying drawings.
The novel features of the present invention, as to its structure, organization, use, and method of operation, together with further objectives and advantages thereof, will be better understood from the following drawings in which various examples will be presented. It is expressly understood, however, that the drawings are for the purpose of illustration and description only and are not intended as a definition of the limits of the invention. Embodiments of this invention will now be described by way of example in association with the accompanying drawings in which:
As used in the specification and claims, the singular forms “a”, “an” and “the” may also include plural references. For example, the term “an article” may include a plurality of articles. Those with ordinary skill in the art will appreciate that the elements in the figures are illustrated for simplicity and clarity and are not necessarily drawn to scale. For example, the dimensions of some of the elements in the figures may be exaggerated, relative to other elements, in order to improve the understanding of the present invention. There may be additional components described in the foregoing application that are not depicted on one of the described drawings. In the event such a component is described, but not depicted in a drawing, the absence of such a drawing should not be considered as an omission of such design from the specification.
Before describing the present invention in detail, it should be understood that the present invention utilizes a combination of components as a result of an instant and invisible EEG monitoring device or adapter that can be used on top of eyewear. Accordingly, the components have been represented to show only specific and pertinent details for an understanding of the present invention, so as not to obscure the disclosure with details which will be readily apparent to those with ordinary skills in the art having the benefit of the description herein. As required, detailed embodiments of the present invention are disclosed herein; however, it should be understood that the disclosed embodiments are merely exemplary of the present invention, which can be embodied in various forms. Therefore, specific structural and functional details disclosed herein are not to be interpreted as limiting, but merely as a basis for the claims and as a representative basis for teaching one skilled in the art to variously employ the present invention in virtually any appropriately detailed structure. Furthermore, the terms and phrases used herein are not intended to be limiting but rather to provide an understandable description of the present invention.
References to “one embodiment”, “an embodiment”, “another embodiment”, “one example”, “an example”, “another example”, and so on, indicate that the embodiment(s) or example(s) so described may include a particular feature, structure, characteristic, property, element, or limitation, but that not every embodiment or example necessarily includes that particular feature, structure, characteristic, property, element, or limitation. Furthermore, repeated use of the phrase “in an embodiment” does not necessarily refer to the same embodiment. The words “comprising”, “having”, “containing”, and “including”, and other forms thereof, are intended to be equivalent in meaning and be open-ended so that an item or items following any one of these words is not meant to be an exhaustive listing of such an item or items or meant to be limited to only the listed item or items. Unless stated otherwise, terms such as “first” and “second” are used to arbitrarily distinguish between the elements or entities. Thus, these terms are not necessarily intended to indicate temporal or other prioritization of such elements or priorities.
The eyewear adapter of the present invention will be described with reference to the accompanying drawings, which should be regarded as merely illustrative without restricting the scope and ambit of the present invention. The proposed eyewear adapter facilitates EEG monitoring in users or patients in a more continuous and simpler fashion. One can use the removable adapter upon eyewear to conduct EEG measurements continuously and invisibly in daily life and receive the measurement result which can be further shared with medical professionals.
The eyewear adapter 106 of the present invention includes a main body 106a configured in the form of a sleeve so that the intended temples of the eyewear 100 (i.e. the left temple 103 or right temple 104) can be inserted by sliding inside the main body of the adapter 106a. The main body 106a may include one open aperture/opening or two open apertures/openings 106b, 106c at both ends as shown. In another embodiment, the main body 106a may just include an opening or aperture at one end and be closed at the other end. In such case, only the opening 106b is present and the temple tips 103a, 104a of the eyewear 100 may not be visible but covered by the main body 106a. Furthermore, the main body 106a is preferably configured in a length of less than half of the temple 103, 104 of the eyewear 100. However, this should not be construed as a limitation. Additionally, the main body 106a is made of elastic materials including but not limited to silicone and Thermoplastic Polyurethane (TPU) and has an adequate width of the openings so that every eyewear 100 can easily adapt to this main body 106a by sliding it over the temples 103, 104. At the same time, this combination of material properties and the adequate width of opening also assures a tight fit and the fixed position of the main body 106a over eyewear 100 during use.
The eyewear adapter 106 further includes a ring 106e which is made of similar material as that of the main body 106a. The ring 106e is sized to fit over the temple of the eyewear 100 and can be slid over the temple 103, 104 of the eyewear 100 along the hinged end of the temple 103, 104 and the main body 106a. In some other embodiment, the ring 106e may be configured in the form of a semicircular hook instead of a circular ring.
The eyewear adapter 106 further includes a strip 106d which is configured to connect the main body 106a and the ring 106e. The strip 106d further emobodies an EEG electrode 107c. The combination of the ring 106e and the strip 106d allows the user to place the EEG electrode 107c accurately at the locations FT9/FT10 of the 10-10 system (FT9/FT10 positions can be located from
In addition to the EEG electrode 107c, the main body 106a embodies an EEG electrode 107a that is located at the rear part of the eyewear adapter 106, for example near the temple tip 103a, 104a of the eyewear 100 as shown in
The main body 106a of the eyewear adapter 106 further includes a portion or housing 106f that houses an electronics unit (not seen) therein in a concealed manner. In some embodiments, the housing 106f may also be positioned at the lower end of the temple tip 103a, 104a, and embody the electronics unit therein.
Referring to
The electronics unit preferably include an analog-to-digital converter (ADC) 1601, a data processor 1602, a transceiver/communication module 1603, a memory 1604, a machine and deep learning module 1605 embedded or stored in the memory 1604, a display 1606, and a power supply 1607 as shown in a general block diagram in
In operation, the EEG electrodes 107a-107c configured on the eyewear adapter 106 acquire EEG signals from the user's brain at any instant of time. Once the EEG signals have been measured by one or more EEG electrodes 107a-107c, the captured EEG signals in the analog form are transmitted to ADC 1601 of the electronics unit. ADC 1601 converts analog EEG signals from the user to a digital form which is then communicated to the data processor 1602. The data processor 1602 includes one or more processors/micro-controllers known in the art and conducts signal analysis. This signal analysis by the processor 1602 is powered by machine learning or deep learning algorithms 1605 that may be optionally stored in the memory unit 1604 to distinguish if the captured signal by the EEG electrodes 107a-107c is within the acceptable EEG domain (e.g. frequency, amplitude). The machine learning or deep learning algorithms 1605 can be updated regularly via wired connection or via wireless communication. After the analysis is done by the processor 1602, the result is then displayed on the display unit 1606 if a display is present in the electronics unit or transmitted via the transceiver/communication module 1603 to a user's device 1702 such as mobile phones or tablets for display as shown in
The pre-processed EEG data shown to the user/patient on one's mobile device 1702 reminds the user to adjust the EEG eyewear adapter 106 on the eyewear 100 properly if the acquired EEG signal quality is not ideal. According to the embodiments of the present invention, the EEG data acquisition by the EEG electrodes 107a-107c will get initiated using either the user's mobile device 1702 or operating directly the electronics unit of EEG eyewear adapter 106. Additionally, the user's mobile device may be enabled to generate corresponding EEG data in various formats (.csv, .mat, .xlxs, etc.) to facilitate communication with medical professionals. The EEG analysis can be processed inside the EEG eyewear adapter 106 (by the processor 1602 of the electronics unit), the user's device 1702, or remotely on a computational cloud server 1706 via wireless communication. The server 1706 is preferably a high-end computing environment that includes all necessary components such as a storage unit, communication modules, processors, and so on. The technical details on the server 1706 are intentionally omitted in this disclosure as the server is well known in the art. The EEG data is then transferred to the mobile device 1702 to display the information to the user or the remote health facilities 1704, with the user's agreement for the purpose of patient monitoring, for further analysis or communication of health advice as shown in
As the essence of the proposed invention and as best viewed in
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Although the description and claims appended herein focus on describing and claiming parts, components of the proposed eyewear adapter configured on one of the temples of the eyewear, as seen in the accompanying figures, it should be understood that the identical adapter's parts or components are configured over both the temples of the eyewear.
Although particular embodiments of the invention have been described in detail for purposes of illustration, various modifications and enhancements may be made without departing from the spirit and scope of the invention. The scope of the invention is accordingly defined by the following claims.
Claims
1. An eyewear adapter device (106) for eyewear (100), comprising:
- a main body (106a) sized and configured in the form of a sleeve with at least one opening so that an intended temple (103, 104) of the eyewear (100) can slide therein;
- a ring (106e) configured to fit over the temple (103, 104) of the eyewear (100), the ring (106e) is operable by a user to move the first EEG electrode (107c) of the eyewear adapter (106) toward or away from the main body (106a) to ensure the first EEG electrode (107c) is adequately positioned at FT9/FT10 of the 10-10 system when in use;
- a second EEG electrode (107a) of the eyewear adapter (106) located near an intended temple tip (103a, 104a) of the eyewear (100), the eyewear adapter (106) when in use, the second EEG electrode (107a) is positioned in the vicinity of a bony region behind the user's ears;
- a third EEG electrode (107b) of the eyewear adapter (106) positioned in the main body (106a) corresponding to T9/T10 position of the 10-10 system when in use; and
- an electronics unit configured to receive and process EEG-related data from the first EEG electrode (107c), the second EEG electrode (107a), and the third EEG electrode (107b).
2. The eyewear adapter device (106) of claim 1, wherein the first EEG electrode (107c) of the eyewear adapter (106) is mounted over a strip (106d) that connects the main body (106a) and the ring (106e).
3. The eyewear adapter device (106) of claim 1, wherein the ring (106e) is slidably fitted over the temple of the eyewear (100) to facilitate the adjustment of the first EEG electrode (107c) of the eyewear adapter (106).
4. The eyewear adapter device (106) of claim 1, wherein the positioning of the first EEG electrode (107c) at FT9/FT10 locations of the user's skull further enables capturing of EOG signal that can be used for further interpretation.
5. The eyewear adapter device (106) of claim 1, wherein the first EEG electrode (107c), the second EEG electrode (107a), and the third EEG electrode (107b) are dry electrodes made of conductive polymer, non-skin-irritating metal, conductive ink, and conductive-resistant hydrogel.
6. The eyewear adapter device (106) of claim 1, wherein the electronics unit is located in a portion or housing (106f) of the main body (106a) in a concealed manner.
7. The eyewear adapter device (106) of claim 1, wherein the electronics unit (108) is located externally and electrically connected to the first EEG electrode (107c), the second EEG electrode (107a), and the third EEG electrode (107b) using an electrical cable (109).
8. The eyewear adapter device (106) of claim 1, wherein the electronics unit comprising at least one of:
- an analog to digital converter (1601);
- a power supply (1607)
- a data processor (1602);
- a transceiver/communication module (1603);
- a memory (1604), the memory (1604) includes a machine or deep learning algorithm (1605) stored therein; and
- a display (1606).
9. The eyewear adapter device (106) of claim 1, wherein the eyewear adapter device (106) consists of a flexible printed circuit (FPC) acting as an internal framework for the eyewear adapter device (106) and is made using a material selected from a group consisting of polyimide (PI) and polyethylene terephthalate (PET).
10. The eyewear adapter device (106) of claim 9, wherein the flexible printed circuit (FPC) consists of attachments for the first EEG electrode (107c), the second EEG electrode (107a), and the third EEG electrode (107b).
11. The eyewear adapter device (106) of claim 1, wherein the eyewear adapter device (106) is made using soft and elastic polymer overmolding around the flexible printed circuit (FPC) to provide freedom of movement to the eyewear adapter device (106) or a portion thereof in the direction toward or away from the user's head in the frontal plane and prevent movement in the direction toward or away from to the ear canal of the user in the sagittal plane.
12. The eyewear adapter device (106) of claim 1, wherein the second EEG electrode (107a) of the eyewear adapter (106) is positioned at mastoid points (A1 and A2 of the 10-10 system) behind the user's ears.
13. An eyewear adapter device (106) for eyewear (100), comprising:
- a main body (106a) sized and configured in the form of a sleeve with at least one opening so that an intended temple (103, 104) of the eyewear (100) can slidably fit therein;
- a first EEG electrode (107a) of the eyewear adapter (106) located near an intended temple tip (103a, 104a) of the eyewear (100), the eyewear adapter (106) when in use, the first EEG electrode (107a) is positioned in the vicinity of a bony region behind the user's ears;
- a second EEG electrode (107b) of the eyewear adapter (106) positioned in the main body (106 a) corresponding to T9/T10 position of the 10-10 system when in use;
- an electronics unit configured to receive and process EEG-related data from the first EEG electrode (107a) and the second EEG electrode (107b).
14. The eyewear adapter device (106) of claim 13, wherein the eyewear adapter device (106) extends downward along with the temple tips (103a, 104a) of the eyewear (100) or extends downward behind or before the temple tips (103a, 104a) of the eyewear 100.
15. The eyewear adapter device (106) of claim 13, wherein, the eyewear adapter device (106) is made using soft and elastic polymer overmolding around a flexible printed circuit (FPC) to provide freedom of movement to the eyewear adapter device (106) or a portion thereof in a direction toward or away from the user's head in the frontal plane and prevent movement in the direction toward or away from the ear canal of the user in the sagittal plane. The FPC acts as an internal framework for the eyewear adapter device (106) and is made using a material selected from a group consisting of polyimide (PI) and polyethylene terephthalate (PET).
16. An eyewear adapter device (200) for eyewear (100), comprising:
- a main body (201) sized and configured in the form of a sleeve with at least one opening (201a) so that an intended temple (103, 104) of the eyewear (100) can slidably fit therein;
- a curved earpiece (202) located as an extension extending out of the main body (201);
- a ring (208) configured to fit over the temple of the eyewear (100), the ring (208) is operable by a user to move a first EEG electrode (204c) of the eyewear adapter (200) toward or away from the main body (201) to ensure the first EEG electrode (204c) is accurately positioned at FT9/FT10 of the 10-10 system when in use;
- a second EEG electrode (204a) of the eyewear adapter (200) located on the curved earpiece (202), the eyewear adapter (200) when in use, the second EEG electrode (204a) can be adjustably located at various positions on a bony region behind the user's ears;
- a third EEG electrode (204b) of the eyewear adapter (200) positioned at T9/T10 of the 10-10 system when in use; and
- an electronics unit configured to receive and process EEG-related data from the first EEG electrode (204c), the second EEG electrode (204a), and the third EEG electrode (204b).
17. The eyewear adapter device (200) of claim 16, wherein the first EEG electrode (204c) of the eyewear adapter (200) is mounted over a strip (206) that connects the main body (201) and the ring (208).
18. The eyewear adapter device (200) of claim 16, wherein the electronics unit is located in the main body (201) or the curved earpiece (202) in a concealed manner.
19. The eyewear adapter device (200) of claim 16, wherein the electronics unit (210) is located externally and electrically connected to the first EEG electrode (204c), the second EEG electrode (204a), and the third EEG electrode (204b) using an electrical cable (209).
20. The eyewear adapter device (200) of claim 16, wherein the electronics unit comprising at least one of:
- an analog to digital converter (1601);
- a power supply (1607);
- a data processor (1602);
- a transceiver/communication module (1603);
- a memory (1604), the memory (1604) includes a machine and deep learning algorithm (1605) stored therein; and
- a display (1606).
21. The eyewear adapter device (200) of claim 16, wherein the eyewear adapter device (200) consists of a flexible printed circuit (FPC) acting as an internal framework for the eyewear adapter device (200) and is made using a material selected from a group consisting of polyimide (PI) and polyethylene terephthalate (PET).
22. The eyewear adapter device (200) of claim 21, wherein the flexible printed circuit (FPC) consists of attachments for the first EEG electrode (204c), the second EEG electrode (204a), and the third EEG electrode (204b).
23. The eyewear adapter device (200) of claim 16, wherein the eyewear adapter device (200) is made using soft and elastic polymer overmolding around the flexible printed circuit (FPC) to provide freedom of movement to the eyewear adapter device (200) in the direction toward or away from the user's head in the frontal plane and prevent movement in the direction toward or away from the ear canal of the user in the sagittal plane.
Type: Application
Filed: Dec 31, 2020
Publication Date: Feb 1, 2024
Patent Grant number: 11980470
Inventor: Hsin-Yin Chiang (Strasbourg)
Application Number: 17/138,964