The present application generally relates to wireless communications between electronic devices, and more particularly relates to systems and methods for enabling NFC communications with a wearable biosensor
Computing devices may communicate with other computing devices using wireless communications techniques, such as Bluetooth (“BT”), BT low-energy (“BLE”), WiFi, near-field communications (“NFC”), etc. Depending on the type of wireless communication technique employed, the computing devices may be located at great distances from each other, or may need to be brought into close proximity. In addition, different wireless communication techniques may require different levels of power consumption to enable effective wireless communication. Thus, different wireless communication techniques may be suited for different types of computing devices or use cases than others.
Various examples are described for systems and methods for enabling NFC communications with a wearable biosensor. For example, one system includes a biosensor applicator comprising: a housing defining a cavity configured to receive and physically couple to a biosensor device, and to apply the biosensor device to a wearer; a first applicator coil antenna physically coupled to the housing and defined within a first plane; and a second applicator coil antenna physically coupled to the housing and defined within a second plane substantially parallel to and different from the first plane, the second applicator coil antenna positioned coaxially with respect to the first applicator coil antenna, wherein the first applicator coil antenna is configured to wirelessly receive electromagnetic (“EM”) energy from a transmitter coil antenna of a remote device and provide at least a first portion of the received EM energy to the second coil antenna; and a biosensor device comprising: a biosensor coil antenna defined within a third plane substantially parallel to and different than the first and second planes; a wireless receiver electrically coupled to the biosensor coil antenna; wherein the biosensor device is physically coupled to the biosensor applicator and positioned within the cavity; wherein the biosensor coil antenna is positioned and oriented substantially coaxially with respect to the second applicator coil antenna, and wherein the second applicator coil antenna is configured to receive EM energy from the first applicator coil antenna and wirelessly transmit at least a second portion of the received EM energy to the biosensor coil antenna
One example biosensor applicator includes a biosensor applicator housing configured to receive and physically couple to a biosensor device, the biosensor applicator configured to apply the biosensor device to a wearer; a first coil antenna physically coupled to the biosensor applicator housing; and a second coil antenna physically coupled to the biosensor applicator housing, the second coil antenna located distant from the first coil antenna and substantially co-axially aligned with the first coil antenna, and wherein the first coil antenna is configured to: wirelessly receive electromagnetic (“EM”) energy from a transmitter coil antenna; and provide at least a portion of the received EM energy to the second coil antenna.
A further example biosensor applicator includes a biosensor applicator housing configured to receive and physically couple to a biosensor device, the biosensor applicator configured to apply the biosensor device to a wearer; a first coil antenna; wherein the first coil antenna is configured to: wirelessly receive electromagnetic (“EM”) energy from a transmitter coil antenna, and provide at least a portion of the received EM energy to a biosensor coil antenna of a biosensor device.
One example method includes generating, using an electronic device, an alternating electromagnetic field (“EMF”), the electronic device comprising a wireless transmitter and a transmitter coil antenna, the wireless transmitter electrically coupled to the wireless transmitter; receiving, by a first coil antenna of a biosensor applicator, energy from the alternating EMF, wherein the biosensor applicator comprises: the first coil antenna; and a second coil antenna, the second coil antenna located distant from and substantially co-axially aligned with the first coil antenna; transmitting, by the first coil antenna, energy received from the alternating EMF to the second coil antenna; transmitting, by the second coil antenna, energy received from the first coil antenna to a biosensor coil antenna of a biosensor device, wherein the biosensor device comprises the biosensor coil antenna and a wireless receiver, the biosensor coil antenna electrically coupled to the wireless receiver.
A further example method includes generating, using an electronic device, an alternating electromagnetic field (“EMF”), the electronic device comprising a wireless transmitter and a transmitter coil antenna electrically coupled to the wireless transmitter; receiving, by a first coil antenna of a biosensor applicator, energy from the alternating EMF, the biosensor applicator comprising the first coil antenna; and transmitting, by the first coil antenna to a biosensor coil antenna, the energy received from the alternating EMF.
These illustrative examples are mentioned not to limit or define the scope of this disclosure, but rather to provide examples to aid understanding thereof. Illustrative examples are discussed in the Detailed Description, which provides further description. Advantages offered by various examples may be further understood by examining this specification.
The accompanying drawings, which are incorporated into and constitute a part of this specification, illustrate one or more certain examples and, together with the description of the example, serve to explain the principles and implementations of the certain examples.
Examples are described herein in the context of systems and methods for enabling NFC communications with a wearable biosensor. Those of ordinary skill in the art will realize that the following description is illustrative only and is not intended to be in any way limiting. Reference will now be made in detail to implementations of examples as illustrated in the accompanying drawings. The same reference indicators will be used throughout the drawings and the following description to refer to the same or like items.
In the interest of clarity, not all of the routine features of the examples described herein are shown and described. It will, of course, be appreciated that in the development of any such actual implementation, numerous implementation-specific decisions must be made in order to achieve the developer's specific goals, such as compliance with application- and business-related constraints, and that these specific goals will vary from one implementation to another and from one developer to another.
Wearable biosensors may be used for a variety of different reasons and may be used to sense many different physiological characteristics of a wearer. For example, referring to
In this example, the CGM 120 is configured to use NFC communications to communicate with the wearer's smartphone 110 (or other computing device) as shown in
To alleviate this potential problem, the CGM applicator 130 has an NFC coil antenna embedded within it. The CGM applicator's coil antenna 132 can receive NFC communications from the smartphone 110 and relay them to the CGM's NFC antenna 122. In this example, to help enable this relay functionality, the CGM applicator's coil antenna 132 is co-axially aligned with the CGM's coil antenna 122. When a varying electromagnetic field (“EMF”) is applied to the CGM applicator's coil antenna 132, it energizes and is able to electromagnetically couple with the CGM's coil antenna 122, thereby transferring energy from the received EMF to the CGM's coil antenna 122 and NFC receiver.
Thus, to activate the CGM 120, the wearer launches an app on her smartphone 110 and selects an option to activate a new CGM. The app then activates the smartphone's NFC communication system and energizes its coil antenna to generate a varying EMF. Since NFC has an effective communications range on the order of a few centimeters to a few tens of centimeters, she brings her smartphone close to the new CGM system 100, which includes the CGM applicator 130 and the CGM 120. She then aligns her smartphone with a coil antenna within the CGM applicator 130, such as by visually locating the coil antenna 132 itself, or finding one or more alignment markings on the CGM applicator 130.
When she brings the smartphone 110 near the CGM applicator's coil antenna 132, i.e., she brings the smartphone 110 within the effective transmission range of the CGM applicator's coil antenna 132, the generated EMF electromagnetically couples the smartphone's coil antenna with the CGM applicator's coil antenna 132. The CGM applicator's coil antenna 132, after receiving the energy from the EMF, electromagnetically couples with the CGM's coil antenna 122 and transfers the energy to the CGM using the electromagnetic coupling.
In this example, the varying EMF field generated by the wearer's smartphone 110 includes an activation command that is propagated to the CGM 120 via the coil antennas as discussed above. After receiving the activation command, the CGM 120 activates and transmits a confirmation to the smartphone 110 using the same propagation technique, but in reverse from the CGM 120 back to the smartphone 110. Upon receiving the confirmation from the CGM 120, the app presents a notification to the wearer that the CGM 120 was successfully activated.
After receiving confirmation that the CGM 120 has been activated, the wearer then uses the CGM applicator 130 to apply the CGM 120 to her body and affix it to her skin. She then discards the CGM applicator 130, leaving the CGM 120 in place.
The CGM applicator 130 in this example enables NFC communications between the wearer's smartphone 110 (or other computing device) and the CGM's NFC receiver by providing an intermediate coil antenna to relay EMF energy to the CGM. The EMF energy may be used to send commands to the CGM or to power the CGM (or both). Thus, the CGM applicator enables NFC communications that might otherwise be prevented or degraded because the CGM applicator itself prevents the wearer's smartphone 110 from moving within effective communications range of the CGM's coil antenna 122, or otherwise interferes with communication between the two. And while the example above was in the context of a CGM and CGM applicator, any suitable biosensor device, including wearable biosensors, may be employed according to different examples. Further, and as will be discussed in more detail below, other intermediate coil configurations including multiple coils may be employed in some examples to extend the range of NFC communications between a smartphone (or other wireless computing device) and a receiving coil antenna.
This illustrative example is given to introduce the reader to the general subject matter discussed herein and the disclosure is not limited to this example. The following sections describe various additional non-limiting examples and examples of systems and methods for enabling NFC communications with a wearable biosensor.
Referring now to
The sensor electronics 230 may include one or more processors, memory, a battery or other power supply (e.g., photovoltaic cells), etc. The sensor electronics 230 are communicatively coupled with the wireless receiver 220 to allow communications between the wireless receiver 220 and the sensor electronics 230. Communications may include data, commands, electrical power, etc. according to different examples.
In this example, the wireless receiver 220 is part of a wireless transceiver that enables wireless communications with a remote device using the coil antenna 210; however it should be appreciated that according to different examples, the biosensor 200 may not include a wireless transceiver, but only a wireless receiver 220. The wireless receiver 220 is configured to receive NFC communications; however, any suitable short-range wireless communications protocol may be employed according to different examples. In the context of this application, “short-range” refers to implementations of communications techniques that have an effective range of a few centimeters (“cm”) (e.g., less than 30 cm) without intervening physical obstructions.
The coil antenna 210 is an electrical conductor, e.g., a wire or electrical trace formed on a substrate, formed in a coil shape to enable electromagnetic coupling with another coil antenna via a varying EMF and to electromagnetically couple to the receiver 220. In this example, the coil antenna 210 substantially planar, however, example coil antennas 210 may instead be helical. In this example, the coil antenna 210 has a rectangular shape, suitable coil antennas may have any shape, including circular, ovoid, etc. Further, suitable coil antennas may be substantially planar or may extend along an axis, such as in a helical configuration.
Referring now to
In this example,
Referring to
It should be appreciated that while the antennas 310, 320 in this example do not have circular cross-section, in some examples, one or both of the antennas 310, 320 may have a substantially circular cross-section. In some examples, however, any suitable coil shape may be employed.
Referring now to
In this example, the applicator's two coil antennas 310, 320 each have a radius of substantially 4 cm; however, any suitable radius or width may be employed. It should be appreciated, however, that an effective electromagnetic coupling distance may be up to substantially twice the radius or width of an electromagnetic coil in some examples. Therefore, a size of one or more coil antennas may be selected based on a needed effective range. For example, if distance between the biosensor coil antenna 210 and the top surface of the applicator is 6 cm, a single coil antenna, e.t., first antenna 310, may have a radius of substantially 3 cm. Alternatively, if two coil antennas are employed, smaller radii may be employed based on the positions of the coil antennas within the applicator 300.
In operation, a reader device with an NFC transmitter and coil antenna, such as the smartphone 110 shown in
Referring now to
As can be seen, the biosensor 200 is positioned within the applicator 300 such that the applicator's two antennas 310, 320 sit above the biosensor 200. And while the biosensor 200 is entirely disposed within the applicator in this example, in other examples, the biosensor 200 may partially protrude from the applicator 300, or it may physically couple to an outer surface of the applicator's housing 302.
In this example, the biosensor's antenna 210 is offset from the coaxially aligned antennas 310, 320 in the applicator; however, in some examples, the biosensor's antenna 210 may be coaxially aligned with the applicator's antennas 310, 320. In addition, in this example, the biosensor's antenna 210 has a smaller radius than the radii of the applicator's antennas 310, 320; however, in some examples, the biosensor's antenna 210 may have substantially the same radius or a larger radius than the applicator's antenna's 310, 320.
In this example, the first antenna 310 is positioned on an inside of the top surface of the applicator 300. Thus, when a reader device, such as a smartphone, energizes its transmission coil antenna within effective range of the first antenna 310, the first antenna 310 electromagnetically couples with the reader device's coil antenna and receives EMF energy from the reader device. The first antenna 310 then uses the received energy received to electromagnetically couple with the second antenna 320. The second antenna 320 then receives the EMF energy from the first antenna 310, and uses the received EMF energy to electromagnetically couple with the biosensor's coil antenna 210, which transfers EMF energy to the biosensor's coil antenna 210. Thus, the arrangement of antennas 210, 310, 320 in the applicator and biosensor effectively extend the range of the reader device's own transmission coil antenna, allowing the energy emitted by the reader device to effectively reach the biosensor's coil antenna 210 despite potentially being outside of an effective range of the transmission coil.
In this example, because the first antenna 310 is located on the interior of the applicator's housing, such as to protect to the first antenna 310 from damage, an alignment marking 330 is provided on the outer top surface of the applicator 300.
Referring now to
In this example, unlike the example discussed above with respect to
Thus, similar to the example shown in
Referring now to
In this example, similar to the example shown in
Referring now to
Example applicators or similar devices according to this disclosure employing only one coil antenna, similar to those employing two or more coil antennas as discussed above with respect to
Referring now to
At block 810, a reader device 1000 generates an EMF using a wireless transmitter 1012 that is electrically coupled to a coil antenna 1014. In this example, the reader device 1000 generates a varying EMF using the transmitter 1012 according to a NFC technique; however, any suitable near-field wireless communication technique may be employed.
At block 820, the reader device 1000 is brought into proximity of a device having a coil antenna. In this example, the device is a system 400 including a biosensor applicator 300 with an installed biosensor 200. The biosensor applicator 300 includes two coil antennas 310, 320. In this example, the reader device is positioned such that the first antenna 310 within the biosensor applicator 300 is within the effective range of the reader device's coil antenna 1014, such as within a few centimeters. After the reader device's coil antenna 1014 is energized by the transmitter 1012 and is generating an EMF, the reader device's coil antenna 1014 electromagnetically couples with the applicator's first antenna 310, thereby transferring energy to the first antenna 310.
At block 830, the applicator's first coil antenna 310 uses the received energy from the reader device 1000 to electromagnetically couple with the applicator's second antenna 320, thereby transferring energy to it. It should be appreciated that if the device does not include a second antenna, such as in the examples shown in
At block 840, the second coil antenna 320 uses received energy from the first antenna 310 to electromagnetically couple to the biosensor's coil antenna 210. The energy received at the biosensor's coil antenna 210 is then conducted to its wireless receiver 220, where it may be used by the biosensor.
At block 850, the reader device 1000 transmits a command to the biosensor using the indirect electromagnetic coupling, provided by the applicator's first and second coil antennas 310, 320, to the biosensor's coil antenna 210. In this example, the reader device 1000 transmits an activation command to the biosensor 200. The activation command is configured to cause the biosensor to activate, which may include emerging from a sleep or pre-use mode, activating a power supply within the biosensor 200, activating one or more electronic components within the biosensor, etc. In response to the activation command, the biosensor 200 may also transmit a response to the activation command using the indirect electromagnetic coupling between the biosensor's coil antenna 210 and the reader device's coil antenna 1014. And while this example employed an activation command, it should be appreciated that any suitable command or data may be communicated using the indirect electromagnetic coupling between the reader device's coil antenna 1014 and the biosensor's coil antenna 210.
In some examples, rather than transmitting a command or data, the reader device 1000 may provide power to the biosensor 210, such as to charge a battery within the biosensor 200. In some examples, the reader device 1000 may transmit both power to charge a battery and to provide one or more commands to the biosensor.
Referring now to
At block 910, the reader device's wireless transmitter 1012 generates an EMF using its coil antenna 1014 substantially as described above with respect to block 1010.
At block 920, the reader device's coil antenna 1014 electromagnetically couples to the applicator's coil antenna 610, substantially as discussed above with respect to block 1020.
At block 930, the applicator's coil antenna 610 electromagnetically couples to the applicator's coil antenna 610 substantially as discussed above with respect to block 1040. Thus, in contrast to the example shown in
At block 940, the reader device 1000 transmits a command to the biosensor 200 substantially as discussed above with respect to block 850.
Referring now to
While some examples of methods and systems herein are described in terms of software executing on various machines, the methods and systems may also be implemented as specifically-configured hardware, such as field-programmable gate array (“FPGA”) specifically to execute the various methods. For example, examples can be implemented in digital electronic circuitry, or in computer hardware, firmware, software, or in a combination thereof. In one example, a device may include a processor or processors. The processor comprises a computer-readable medium, such as a random access memory (“RAM”) coupled to the processor. The processor executes computer-executable program instructions stored in memory, such as executing one or more computer programs. Such processors may comprise a microprocessor, a digital signal processor (“DSP”), an application-specific integrated circuit (“ASIC”), field programmable gate arrays, and state machines. Such processors may further comprise programmable electronic devices such as programmable logic controllers (“PLCs”), programmable interrupt controllers (“PICs”), programmable logic devices (“PLDs”), programmable read-only memories (“PROMs”), electronically programmable read-only memories (“EPROMs” or “EEPROMs”), or other similar devices.
Such processors may comprise, or may be in communication with, media, for example computer-readable storage media, that may store instructions that, when executed by the processor, can cause the processor to perform the steps described herein as carried out, or assisted, by a processor. Examples of computer-readable media may include, but are not limited to, an electronic, optical, magnetic, or other storage device capable of providing a processor, such as the processor in a web server, with computer-readable instructions. Other examples of media comprise, but are not limited to, a floppy disk, CD-ROM, magnetic disk, memory chip, ROM, RAM, ASIC, configured processor, all optical media, all magnetic tape or other magnetic media, or any other medium from which a computer processor can read. The processor, and the processing, described may be in one or more structures, and may be dispersed through one or more structures. The processor may comprise code for carrying out one or more of the methods (or parts of methods) described herein.
The foregoing description of some examples has been presented only for the purpose of illustration and description and is not intended to be exhaustive or to limit the disclosure to the precise forms disclosed. Numerous modifications and adaptations thereof will be apparent to those skilled in the art without departing from the spirit and scope of the disclosure.
Reference herein to an example or implementation means that a particular feature, structure, operation, or other characteristic described in connection with the example may be included in at least one implementation of the disclosure. The disclosure is not restricted to the particular examples or implementations described as such. The appearance of the phrases “in one example,” “in an example,” “in one implementation,” or “in an implementation,” or variations of the same in various places in the specification does not necessarily refer to the same example or implementation. Any particular feature, structure, operation, or other characteristic described in this specification in relation to one example or implementation may be combined with other features, structures, operations, or other characteristics described in respect of any other example or implementation.
Use herein of the word “or” is intended to cover inclusive and exclusive OR conditions. In other words, A or B or C includes any or all of the following alternative combinations as appropriate for a particular usage: A alone; B alone; C alone; A and B only; A and C only; B and C only; and A and B and C.
This application claims the benefit of U.S. Application No. 62/714,799, filed Aug. 6, 2018, titled “Systems And Methods For Enabling NFC Communications With A Wearable Biosensor,” which is incorporated herein by reference in its entirety.
Number | Name | Date | Kind |
---|---|---|---|
7031945 | Donner | Apr 2006 | B1 |
8798541 | Scott | Aug 2014 | B1 |
8947041 | Cook et al. | Feb 2015 | B2 |
9110897 | Park et al. | Aug 2015 | B2 |
9246555 | Griffin et al. | Jan 2016 | B2 |
9901293 | Dehennis et al. | Feb 2018 | B2 |
9967001 | Biederman | May 2018 | B2 |
20030012566 | Kindaichi | Jan 2003 | A1 |
20030050009 | Kurisko et al. | Mar 2003 | A1 |
20060173260 | Gaoni et al. | Aug 2006 | A1 |
20070008139 | Saarisalo et al. | Jan 2007 | A1 |
20080116847 | Loke et al. | May 2008 | A1 |
20100045425 | Chivallier | Feb 2010 | A1 |
20100148723 | Cook et al. | Jun 2010 | A1 |
20100292556 | Golden | Nov 2010 | A1 |
20110022411 | Hjelm et al. | Jan 2011 | A1 |
20110046548 | Sakata et al. | Feb 2011 | A1 |
20110221590 | Baker et al. | Sep 2011 | A1 |
20120003933 | Baker et al. | Jan 2012 | A1 |
20120028575 | Chen et al. | Feb 2012 | A1 |
20130029596 | Preston et al. | Jan 2013 | A1 |
20130069753 | Kurs et al. | Mar 2013 | A1 |
20130217979 | Blackadar et al. | Aug 2013 | A1 |
20130274629 | Duesterhoft | Oct 2013 | A1 |
20140138432 | Park et al. | May 2014 | A1 |
20140184422 | Mensinger et al. | Jul 2014 | A1 |
20140273821 | Miller et al. | Sep 2014 | A1 |
20140313052 | Yarger et al. | Oct 2014 | A1 |
20150018643 | Cole et al. | Jan 2015 | A1 |
20150054621 | Lin et al. | Feb 2015 | A1 |
20150075770 | Fripp et al. | Mar 2015 | A1 |
20150343144 | Altschul et al. | Dec 2015 | A1 |
20160015267 | Bernstein et al. | Jan 2016 | A1 |
20160183854 | Lee | Jun 2016 | A1 |
20160242685 | DeHennis et al. | Aug 2016 | A1 |
20160310663 | Dantsker | Oct 2016 | A1 |
20160331232 | Love et al. | Nov 2016 | A1 |
20160331283 | Rao et al. | Nov 2016 | A1 |
20170040818 | Kong et al. | Feb 2017 | A1 |
20170047636 | Lee et al. | Feb 2017 | A1 |
20170079587 | Fougere | Mar 2017 | A1 |
20170173262 | Veltz | Jun 2017 | A1 |
20170185284 | Bhavaraju et al. | Jun 2017 | A1 |
20170337461 | Jesme | Nov 2017 | A1 |
20180026678 | Biederman | Jan 2018 | A1 |
20180192514 | Seo | Jul 2018 | A1 |
20180199813 | Love et al. | Jul 2018 | A1 |
20180234133 | Biederman | Aug 2018 | A1 |
Number | Date | Country |
---|---|---|
2553507 | Nov 2009 | CA |
101193671 | Jun 2008 | CN |
102144239 | Aug 2011 | CN |
204576485 | Aug 2015 | CN |
105686807 | Jun 2016 | CN |
2013063634 | May 2013 | WO |
2016081244 | Jun 2016 | WO |
2018022235 | Feb 2018 | WO |
Entry |
---|
“NFC Antenna : Add-on for your NFC Patch”, <https://flomio.com/shop/readers/nfc-antenna/> downloaded Oct. 14, 2019. |
“NFC Patch Kit : Extend your NFC reach”, <https://flomio.com/shop/nfc-readers/nfc-patch-kit/> downloaded Oct. 14, 2019. |
U.S. Appl. No. 15/218,587 , Advisory Action, dated Oct. 5, 2017, 3 pages. |
U.S. Appl. No. 15/218,587 , Final Office Action, dated Jul. 24, 2017, 16 pages. |
U.S. Appl. No. 15/218,587 , Non-Final Office Action, dated Jan. 12, 2017, 13 pages. |
U.S. Appl. No. 15/218,587 , Notice of Allowance, dated Jan. 10, 2018, 8 pages. |
U.S. Appl. No. 15/945,286 , Advisory Action, dated Feb. 7, 2019, 3 pages. |
U.S. Appl. No. 15/945,286 , Final Office Action, dated Nov. 2, 2018, 19 pages. |
U.S. Appl. No. 15/945,286 , Non Final Office Action, dated Jun. 4, 2018, 17 Pages. |
U.S. Appl. No. 16/030,383 , Advisory Action, dated Feb. 19, 2020, 3 pages. |
U.S. Appl. No. 16/030,383 , Advisory Action, dated Apr. 12, 2019, 5 pages. |
U.S. Appl. No. 16/030,383 , Final Office Action, dated Nov. 19, 2019, 25 pages. |
U.S. Appl. No. 16/030,383 , Final Office Action, dated Feb. 8, 2019, 26 pages. |
U.S. Appl. No. 16/030,383 , Non-Final Office Action, dated Oct. 9, 2018, 22 pages. |
U.S. Appl. No. 16/030,383 , Non-Final Office Action, dated Jul. 12, 2019, 24 pages. |
Chinese Application No. CN201780046360.7 , Notice of Decision to Grant, dated Jul. 3, 2020, 2 pages. |
Chinese Application No. CN201780046360.7 , Office Action, dated Nov. 11, 2019, 9 pages. |
Jara et al., “Communication Protocol for Enabling Continuous Monitoring of Elderly People through Near Field Communications”, Interacting with Computers, May 15, 2013, 2 pages. |
International Application No. PCT/U52017/039380 , International Preliminary Report on Patentability, dated Feb. 7, 2019, 8 pages. |
International Application No. PCT/U52017/039380 , International Search Report and Written Opinion, dated Sep. 7, 2017, 11 pages. |
International Application No. PCT/US2019/044789 , International Search Report and Written Opinion, dated Nov. 7, 2019, 12 pages. |
Number | Date | Country | |
---|---|---|---|
20200044695 A1 | Feb 2020 | US |
Number | Date | Country | |
---|---|---|---|
62714799 | Aug 2018 | US |