US20180109330A1 - Multi-antenna noise power measuring method and apparatus - Google Patents
Multi-antenna noise power measuring method and apparatus Download PDFInfo
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- US20180109330A1 US20180109330A1 US15/294,768 US201615294768A US2018109330A1 US 20180109330 A1 US20180109330 A1 US 20180109330A1 US 201615294768 A US201615294768 A US 201615294768A US 2018109330 A1 US2018109330 A1 US 2018109330A1
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B1/00—Details of transmission systems, not covered by a single one of groups H04B3/00 - H04B13/00; Details of transmission systems not characterised by the medium used for transmission
- H04B1/06—Receivers
- H04B1/10—Means associated with receiver for limiting or suppressing noise or interference
- H04B1/1027—Means associated with receiver for limiting or suppressing noise or interference assessing signal quality or detecting noise/interference for the received signal
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B15/00—Suppression or limitation of noise or interference
- H04B15/005—Reducing noise, e.g. humm, from the supply
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B17/00—Monitoring; Testing
- H04B17/0082—Monitoring; Testing using service channels; using auxiliary channels
- H04B17/0085—Monitoring; Testing using service channels; using auxiliary channels using test signal generators
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B17/00—Monitoring; Testing
- H04B17/10—Monitoring; Testing of transmitters
- H04B17/101—Monitoring; Testing of transmitters for measurement of specific parameters of the transmitter or components thereof
- H04B17/103—Reflected power, e.g. return loss
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B17/00—Monitoring; Testing
- H04B17/20—Monitoring; Testing of receivers
- H04B17/29—Performance testing
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B7/00—Radio transmission systems, i.e. using radiation field
- H04B7/02—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas
- H04B7/04—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas
- H04B7/0413—MIMO systems
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L43/00—Arrangements for monitoring or testing data switching networks
- H04L43/18—Protocol analysers
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B17/00—Monitoring; Testing
- H04B17/10—Monitoring; Testing of transmitters
- H04B17/101—Monitoring; Testing of transmitters for measurement of specific parameters of the transmitter or components thereof
Definitions
- the present disclosure generally relates to noise power measuring field, and more particularly to noise power measuring methods and apparatus for multiple input multiple output (MIMO) antenna system.
- MIMO multiple input multiple output
- MIMO technology can significantly improve channel capacity. Applying multiple antennas both to transmitting terminal and receiving terminal can significantly improve spectrum efficiency and transmission efficiency.
- people measure noise power of MIMO antennas by spectrum analyzer (SA), however, the SA can only measure the noise power of a single antenna subjected to its single signal port.
- SA In order to measure MIMO antennas noise power, the SA needs to increase peripheral circuits such as amplifier, switch and so on. This not only leads to high complexity, but also brings in external noise which will negatively influence the measuring. To conveniently obtain more precise measurements, a new type of MIMO antenna noise power measuring method and apparatus are needed.
- FIG. 1 shows a schematic diagram of a configuration for an apparatus for measuring noise power according to one embodiment of the disclosure.
- FIG. 2 shows a schematic diagram of a configuration for a test module in the apparatus of FIG. 1 according to an embodiment of the disclosure.
- FIG. 3 shows a diagram of system error according to an embodiment of the disclosure.
- FIG. 4 shows a flow diagram of a method for measuring noise power according to an embodiment of the disclosure.
- Coupled is defined as connected, whether directly or indirectly through intervening components, and is not necessarily limited to physical connections.
- the connection can be such that the objects are permanently connected or releasably connected.
- comprising when utilized, means “including, but not necessarily limited to”. it specifically indicates open-ended inclusion or membership in the so-described combination, group, series and the like.
- FIG. 1 shows an apparatus 10 for measuring antenna noise power according to one embodiment of the disclosure.
- the apparatus 10 comprises a network analyzer (NA) 110 and a shielding box 120 .
- the NA 110 is electrically connected to the shielding box 120 .
- a device under test (DUT) 121 is set in the shielding box 120 , and the DUT 121 can be any kind of device comprising the MIMO antenna system, such as LET, WIFI system, and so on.
- the DUT 121 is a MIMO antenna system.
- Each antenna of the DUT 121 is electrically connected to a port of the shielding box 120 .
- the shielding box 120 comprises three ports, they are a first port A, a second port B, and a third port C. In other embodiment, the shielding box 120 can have more or less ports.
- the DUT 121 electrically connects to the NA 110 to transmit data passing through each port.
- the NA 110 comprises at least one each of such devices as test module 111 , control module 112 , and display module 113 .
- the control module 112 comprises digital analog converter (DAC) and control chip, and the control chip can be digital signal processor (DSP).
- the display module 113 can be a light emitting diode (LED) display.
- the number of the test modules 111 and of the control module 112 is same as the number of shielding box 120 ports.
- FIG. 2 shows a test module 111 according to an embodiment of the disclosure.
- the test module 111 comprises a first signal source 1110 , a reference receiver 1111 , a second signal source 1112 , and a reflect receiver 1113 .
- the first signal source 1110 is electrically connected to the reference receiver 1111 , and the first signal source 1110 sends a first signal to the DUT 121 in the shielding box 120 .
- the reference receiver 1111 receives the first signal from the first signal source 1110 and measures a first signal amplitude and phase, and sends the first signal amplitude and phase to the control module 112 .
- a reflect signal of the first signal passing through the port of the shielding box 120 is transmitted to the reflect receiver 1113 to generate a third signal by mixing the reflect signal with a second signal generated by the second signal source 1112 , and the reflect receiver 1113 measures and sends a third signal amplitude and phase to the control module 112 .
- FIG. 3 shows a diagram of system errors according to an embodiment of the disclosure.
- system errors such as a directivity E D , a source match E S , and a reflection tracking E RT are generated when the first signal source 1110 generates the first signal.
- a measured S parameter S 11M of the DUT 121 can be obtained by the control module 112 according to signals from the reflect receiver 1113 and the reference receiver 1111 .
- the measured reflecting S parameter S 11M is different from an actual S parameter S 11A , and the actual S parameter S 11A can be obtained by the measured reflecting S parameter S 11M which eliminates the system errors.
- the directivity E D , source match E S and reflection tracking E RT are generated in signal transmission path, so the system errors above comprise the NA 110 system errors, line loss between the NA 110 and the shielding box 120 , and any other system errors caused by port mismatching.
- the control module 112 processes the first signal and the third signal to work out each port noise power P nRi .
- the first port A will be taken as an example.
- the control module 112 calculates first port noise power P nR1 and measured S parameter S 11M , and the control module 112 calculates an actual S parameter S 11A by eliminating the system errors according to equation (1) as follows.
- the control module 112 will obtain an actual noise power P n1A of an antenna of the MIMO antenna system which is electrically connected to the NA 110 via the first port A according to equation (2) as follows since noise does not have a phase.
- the control module 112 sends obtained data to the display module 113 to display to users.
- FIG. 4 shows a method for measuring noise power according to an embodiment of the disclosure.
- the method for measuring MIMO antenna system power noise comprises the following steps.
- Step S 100 and Step S 101 when the DUT 121 is electrically connected to the NA 110 , the user sets frequency, intermediate frequency (IF) bandwidth and power of the NA 110 according to measured antenna performance.
- IF intermediate frequency
- the center frequency of 2.4 G WIFI antenna is 2.437 GHz
- IF bandwidth of the 2.4G WIFI antenna is 1 Khz.
- the first signal source 1110 sends the first signal to the DUT 121
- the reference receiver 1111 measures the first signal amplitude and phase, and sends them to the control module 112 .
- the NA 110 transmits the first signal to the DUT 121 , and the reflect signal of the first signal reflected by the DUT 121 is transmitted to the reflect receiver 1113 .
- the reflect receiver 1113 processes the reflect signal and the second signal generated by the second signal source 1112 to generate the third signal.
- the reflect receiver 1113 measures the third signal amplitude and phase and sends the amplitude and phase to the control module 112 .
- the control module 112 obtains the directivity error E D , source match error E S and reflection tracking error E RT , and each port noise power P nRi and the measured S parameter S iiM .
- Step S 102 the NA 110 determines if the directivity error E D , source match error E S and reflection tracking error E RT are stored, if the system errors are not stored then step S 103 is executed, the step S 103 is returning to step S 100 and S 101 , otherwise step S 104 is executed.
- Step S 104 the NA 110 obtains the measured S parameter S iiM .
- Step S 105 the NA 110 obtains the actual S parameter S iiA according to the equation (1).
- Step S 106 the NA 110 obtains each port noise power P nRi respectively.
- Step S 107 the NA 110 obtains the MIMO antenna system each antenna power noise P niA according to the equation (2).
- Step S 108 the NA 110 displays the obtained parameters on the display module 113 to show the user.
- Step S 109 the NA 110 determines if continues to sweep to display real time date, if there is no need to continue to sweep, then the NA 110 ends of the work, otherwise, the step S 104 is executed.
- the method for measuring noise power utilizes the NA 110 , the method can be converted to an software inputted into the NA 110 to act as a function of the NA 110 , the function comprises the following steps.
- Step 1 connects the NA 110 to the shielding box 120 each port, and connects idle ports of the NA 110 to broadband load end.
- Step 2 calibrates the shielding box 120 each port when the shielding box 120 is on load.
- Step 3 sets the DUT 121 in the shielding box 120 and connects the DUT 121 each antenna to the NA 110 via the shielding box 120 each port respectively.
- Step 4 measures the DUT 121 each antenna noise power by the method simultaneously and synchronously.
- the MIMO antenna system noise power measuring method and apparatus of the disclosure take advantages of multi ports of the NA, and set reference planes in the shielding box and import measuring methods to the NA to obtain precise MIMO antenna system noise power.
- the apparatus can measure MIMO antenna system each antenna noise power simultaneously and synchronously. Due to wide radio frequency bandwidth of the NA, the method and apparatus can apply to different frequency band antenna product, e.g. ISM 2.4 GHz, UNIT frequency band, even the k frequency and Ka frequency band.
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- Monitoring And Testing Of Transmission In General (AREA)
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Abstract
Description
- The present disclosure generally relates to noise power measuring field, and more particularly to noise power measuring methods and apparatus for multiple input multiple output (MIMO) antenna system.
- With the development of wireless communication technology, people have higher and higher requirements on the wireless communication. MIMO technology can significantly improve channel capacity. Applying multiple antennas both to transmitting terminal and receiving terminal can significantly improve spectrum efficiency and transmission efficiency. Generally, people measure noise power of MIMO antennas by spectrum analyzer (SA), however, the SA can only measure the noise power of a single antenna subjected to its single signal port. In order to measure MIMO antennas noise power, the SA needs to increase peripheral circuits such as amplifier, switch and so on. This not only leads to high complexity, but also brings in external noise which will negatively influence the measuring. To conveniently obtain more precise measurements, a new type of MIMO antenna noise power measuring method and apparatus are needed.
- Implementations of the present technology will now be described, by way of example only, with reference to the attached figures, wherein:
-
FIG. 1 shows a schematic diagram of a configuration for an apparatus for measuring noise power according to one embodiment of the disclosure. -
FIG. 2 shows a schematic diagram of a configuration for a test module in the apparatus ofFIG. 1 according to an embodiment of the disclosure. -
FIG. 3 shows a diagram of system error according to an embodiment of the disclosure. -
FIG. 4 shows a flow diagram of a method for measuring noise power according to an embodiment of the disclosure. - It will be appreciated that for simplicity and clarity of illustration, where appropriate, reference numerals have been repeated among the different figures to indicate corresponding or analogous elements. In addition, numerous specific details are set forth in order to provide a thorough understanding of the embodiments described herein. However, it will be understood by those of ordinary skill in the art that the embodiments described herein can be practiced without these specific details. In other instances, methods, procedures, and components have not been described in detail so as not to obscure the related relevant feature being described. Also, the description is not to be considered as limiting the scope of the embodiments described herein. The drawings are not necessarily to scale and the proportions of certain parts may be exaggerated to better illustrate details and features of the present disclosure. The disclosure is illustrated by way of example and not by way of limitation in the figures of the accompanying drawings in which like references indicate similar elements. It should be noted that references to “an” or “one” embodiment in this disclosure are not necessarily to the same embodiment, and such references mean at least one.
- Several definitions that apply throughout this disclosure will now be presented.
- The term “coupled” is defined as connected, whether directly or indirectly through intervening components, and is not necessarily limited to physical connections. The connection can be such that the objects are permanently connected or releasably connected. The term “comprising” when utilized, means “including, but not necessarily limited to”. it specifically indicates open-ended inclusion or membership in the so-described combination, group, series and the like.
-
FIG. 1 shows anapparatus 10 for measuring antenna noise power according to one embodiment of the disclosure. - In one embodiment, the
apparatus 10 comprises a network analyzer (NA) 110 and ashielding box 120. The NA 110 is electrically connected to theshielding box 120. A device under test (DUT) 121 is set in theshielding box 120, and theDUT 121 can be any kind of device comprising the MIMO antenna system, such as LET, WIFI system, and so on. TheDUT 121 is a MIMO antenna system. Each antenna of theDUT 121 is electrically connected to a port of theshielding box 120. In an embodiment, theshielding box 120 comprises three ports, they are a first port A, a second port B, and a third port C. In other embodiment, theshielding box 120 can have more or less ports. TheDUT 121 electrically connects to theNA 110 to transmit data passing through each port. The NA 110 comprises at least one each of such devices astest module 111,control module 112, and display module 113. Thecontrol module 112 comprises digital analog converter (DAC) and control chip, and the control chip can be digital signal processor (DSP). The display module 113 can be a light emitting diode (LED) display. In an embodiment, the number of thetest modules 111 and of thecontrol module 112 is same as the number ofshielding box 120 ports. -
FIG. 2 shows atest module 111 according to an embodiment of the disclosure. - As shown in
FIG. 2 , thetest module 111 comprises afirst signal source 1110, areference receiver 1111, asecond signal source 1112, and areflect receiver 1113. Thefirst signal source 1110 is electrically connected to thereference receiver 1111, and thefirst signal source 1110 sends a first signal to theDUT 121 in theshielding box 120. Thereference receiver 1111 receives the first signal from thefirst signal source 1110 and measures a first signal amplitude and phase, and sends the first signal amplitude and phase to thecontrol module 112. A reflect signal of the first signal passing through the port of theshielding box 120 is transmitted to thereflect receiver 1113 to generate a third signal by mixing the reflect signal with a second signal generated by thesecond signal source 1112, and thereflect receiver 1113 measures and sends a third signal amplitude and phase to thecontrol module 112. -
FIG. 3 shows a diagram of system errors according to an embodiment of the disclosure. - As shown in
FIG. 3 , system errors such as a directivity ED, a source match ES, and a reflection tracking ERT are generated when thefirst signal source 1110 generates the first signal. A measured S parameter S11M of theDUT 121 can be obtained by thecontrol module 112 according to signals from thereflect receiver 1113 and thereference receiver 1111. As shown inFIG. 3 , the measured reflecting S parameter S11M is different from an actual S parameter S11A, and the actual S parameter S11A can be obtained by the measured reflecting S parameter S11M which eliminates the system errors. The directivity ED, source match ES and reflection tracking ERT are generated in signal transmission path, so the system errors above comprise theNA 110 system errors, line loss between theNA 110 and theshielding box 120, and any other system errors caused by port mismatching. - The
control module 112 processes the first signal and the third signal to work out each port noise power PnRi. In an embodiment, the first port A will be taken as an example. Thecontrol module 112 calculates first port noise power PnR1 and measured S parameter S11M, and thecontrol module 112 calculates an actual S parameter S11A by eliminating the system errors according to equation (1) as follows. -
S iiM =E Di +E RTi(S iiA/(1−E Si *S iiA)) (1) - The
control module 112 will obtain an actual noise power Pn1A of an antenna of the MIMO antenna system which is electrically connected to theNA 110 via the first port A according to equation (2) as follows since noise does not have a phase. -
P niA =|S iiA |*P nRi (2) - The
control module 112 sends obtained data to the display module 113 to display to users. -
FIG. 4 shows a method for measuring noise power according to an embodiment of the disclosure. - As shown in
FIG. 4 , the method for measuring MIMO antenna system power noise comprises the following steps. - Step S100 and Step S101, when the
DUT 121 is electrically connected to theNA 110, the user sets frequency, intermediate frequency (IF) bandwidth and power of theNA 110 according to measured antenna performance. For example, the center frequency of 2.4 G WIFI antenna is 2.437 GHz, and IF bandwidth of the 2.4G WIFI antenna is 1 Khz. After parameters setting completed, thefirst signal source 1110 sends the first signal to theDUT 121, thereference receiver 1111 measures the first signal amplitude and phase, and sends them to thecontrol module 112. TheNA 110 transmits the first signal to theDUT 121, and the reflect signal of the first signal reflected by theDUT 121 is transmitted to thereflect receiver 1113. The reflectreceiver 1113 processes the reflect signal and the second signal generated by thesecond signal source 1112 to generate the third signal. Thereflect receiver 1113 measures the third signal amplitude and phase and sends the amplitude and phase to thecontrol module 112. Thecontrol module 112 obtains the directivity error ED, source match error ES and reflection tracking error ERT, and each port noise power PnRi and the measured S parameter SiiM. - Step S102, the
NA 110 determines if the directivity error ED, source match error ES and reflection tracking error ERT are stored, if the system errors are not stored then step S103 is executed, the step S103 is returning to step S100 and S101, otherwise step S104 is executed. - Step S104, the
NA 110 obtains the measured S parameter SiiM. - Step S105, the
NA 110 obtains the actual S parameter SiiA according to the equation (1). - Step S106, the
NA 110 obtains each port noise power PnRi respectively. - Step S107, the
NA 110 obtains the MIMO antenna system each antenna power noise PniA according to the equation (2). - Step S108, the
NA 110 displays the obtained parameters on the display module 113 to show the user. - Step S109, the
NA 110 determines if continues to sweep to display real time date, if there is no need to continue to sweep, then theNA 110 ends of the work, otherwise, the step S104 is executed. - The method for measuring noise power utilizes the
NA 110, the method can be converted to an software inputted into theNA 110 to act as a function of theNA 110, the function comprises the following steps. -
Step 1, connects theNA 110 to theshielding box 120 each port, and connects idle ports of theNA 110 to broadband load end. -
Step 2, calibrates theshielding box 120 each port when theshielding box 120 is on load. - Step 3, sets the
DUT 121 in theshielding box 120 and connects theDUT 121 each antenna to theNA 110 via theshielding box 120 each port respectively. - Step 4, measures the
DUT 121 each antenna noise power by the method simultaneously and synchronously. - The MIMO antenna system noise power measuring method and apparatus of the disclosure take advantages of multi ports of the NA, and set reference planes in the shielding box and import measuring methods to the NA to obtain precise MIMO antenna system noise power. The apparatus can measure MIMO antenna system each antenna noise power simultaneously and synchronously. Due to wide radio frequency bandwidth of the NA, the method and apparatus can apply to different frequency band antenna product, e.g. ISM 2.4 GHz, UNIT frequency band, even the k frequency and Ka frequency band.
- Depending on the embodiment, certain of the steps of methods described may be removed, others may be added, and the sequence of steps may be altered. It is also to be understood that the description and the claims drawn to a method may include some indication in reference to certain steps. However, the indication used is only to be viewed for identification purposes and not as a suggestion as to an order for the steps.
- The foregoing description, for purposes of explanation, is with reference to specific embodiments. However, the illustrated embodiments are not intended to be exhaustive or to limit the disclosure to the precise forms disclosed. Many modifications and variations are possible in view of the above teachings. The various modifications which are possible within the principles of the disclosure will therefore be protected within the scope of the claims.
Claims (14)
S iiM =E Di +E RTi(S iiA/(1−E Si *S iiA)),
P niA =|S iiA |*P nRi,
S iiM =E Di +E RTi(S iiA/(1−E Si *S iiA)),
P niA =|S iiA |*P nRi,
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| US15/294,768 US9967041B1 (en) | 2016-10-16 | 2016-10-16 | Multi-antenna noise power measuring method and apparatus |
| CN201611001394.8A CN107959515B (en) | 2016-10-16 | 2016-11-14 | Method and device for measuring noise power of multiple antennas |
| TW106100134A TWI658705B (en) | 2016-10-16 | 2017-01-04 | Multi-antenna noise power measuring method and apparatus |
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| US20180180662A1 (en) * | 2016-12-22 | 2018-06-28 | ProPlus Design Solutions, Inc. | Synchronized Noise Measurement System |
| WO2020050543A1 (en) * | 2018-09-04 | 2020-03-12 | 주식회사 이노와이어리스 | Device and method for cancelling interference component, for testing multi-antenna wireless device |
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| TWI672510B (en) * | 2018-10-01 | 2019-09-21 | 川升股份有限公司 | Mimo antenna measurement system |
| CN111106878B (en) * | 2018-10-10 | 2022-04-08 | 川升股份有限公司 | Multiple Input Multiple Output Antenna Measurement System |
| US11218231B2 (en) * | 2019-12-04 | 2022-01-04 | Rohde & Schwarz Gmbh & Co. Kg | Test system and method for testing a device under test |
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| US10782337B2 (en) * | 2016-12-22 | 2020-09-22 | Jinan Proplus Electronics Co., Ltd. | Synchronized noise measurement system |
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| US10725093B2 (en) * | 2018-05-25 | 2020-07-28 | Adivic Technology Co., Ltd. | RF testing apparatus, movable testing device thereof, and case module thereof |
| WO2020050543A1 (en) * | 2018-09-04 | 2020-03-12 | 주식회사 이노와이어리스 | Device and method for cancelling interference component, for testing multi-antenna wireless device |
| CN113660691A (en) * | 2021-10-19 | 2021-11-16 | 国网江西省电力有限公司经济技术研究院 | A medium voltage MIMO-PLC access terminal state monitoring device |
| CN119757890A (en) * | 2024-12-23 | 2025-04-04 | 江西创新科技有限公司 | Performance detection method for LED light-emitting antenna and LED light-emitting antenna |
Also Published As
| Publication number | Publication date |
|---|---|
| CN107959515B (en) | 2021-09-10 |
| TWI658705B (en) | 2019-05-01 |
| CN107959515A (en) | 2018-04-24 |
| TW201817186A (en) | 2018-05-01 |
| US9967041B1 (en) | 2018-05-08 |
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