Monitoring system for a distributed antenna system
A monitoring system 22 for a distributed antenna system (DAS) 10 is provided. The DAS comprises central transmitter 12 which is connected by a signal transmission network 14 to a plurality of distributed antenna devices (DAD) 16.1 to 16.n. The network comprises physical branches. Each of the DAD's is connected to a respective sub-branch 14.11 and comprises at least one antenna 18. The antenna is associated with a frequency band having a center frequency fc and an associated wavelength Ac λc. The monitoring system comprises a central monitoring unit (CMU) 24 which is coupled to the network 14. A monitoring device 28.1 is associated with at least one of the DAD's and permanently mounted a distance d<2λc away from the antenna of the DAD. The monitoring device comprises a controller 30, a transceiver 32 and an antenna 34. The controller being configured, upon being polled by the CMU 24 with a monitoring signal via the network and the distributed antenna device, to cause the transceiver 32 to respond by transmitting a response signal to the CMU 24 via the distributed antenna device 16.1 and the network 14.
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This application is an application for reissue of U.S. Pat. No. 9,900,114, issued Feb. 20, 2018, which issued from U.S. patent application Ser. No. 15/504,977, filed Feb. 17, 2017, which is the U.S. National Phase of International Application PCT/IB2015/056343, filed Aug. 21, 2015, and claims priority to ZA Application No. 2014/06162, filed Aug. 21, 2014. This application is a continuation of U.S. patent application Ser. No. 16/796,178, filed Feb. 20, 2020, which is an application for reissue of U.S. Pat. No. 9,900,114, now RE 49,217. Each of the priority applications is hereby incorporated by reference in its entirety.
INTRODUCTION AND BACKGROUNDThis invention relates to distributed antenna systems, more particularly to a monitoring system and method for a distributed antenna system.
Distributed antenna systems (DAS) are known in the art and are typically employed to provide in-building coverage, but more recently are also used to provide area coverage outside of buildings. DAS may be passive or active. A passive DAS comprises a central or base transceiver station linked by a radio frequency (RF) signal transmission network comprising RF transmission lines (coaxial or other) to a plurality of distributed antenna devices (DAD) distributed through the area to be covered with power diverted according to some propagation plan to each DAD, such that adequate coverage is ensured throughout the building or area for which the DAS is installed.
An active DAS is similar, but in these systems the RF signals are modulated up to convert them to optical fibre frequencies. Optical fibers are then used to distribute the resulting signals to a point close to the DAD. An optic-to-radio converter unit is used to convert the signals back to their original RF band. The optic-to-radio convertor is coupled using RF transmission lines which provide the last mile to one or more DAD's, which provide coverage to sub-areas of the area covered by the DAS. Other active DAS systems may involve bi-directional amplifiers and/or frequency convertors in between the central transceiver and the DADs.
A DAS may employ between a few to many hundreds of DAD's to provide coverage throughout the area. These DAD's or the signal transmission network and intermediate devices used to link these DAD's to the base transceiver station may fail or degrade over time. Currently such faults are difficult to detect or monitor. One known solution is to use regular “walk tests” to measure network coverage throughout the coverage area, but these are time consuming, costly and faults are detected well after they had occurred.
In U.S. Pat. No. 8,254,848 there is disclosed another solution which comprises a plurality of statically deployed monitoring devices. The monitoring devices are remote from the DAD's being monitored and test results are reported to a central and remote collection component directly or indirectly through other monitoring devices having an Ethernet connection. This solution may be unnecessarily costly. Furthermore, due to the separation between DAD's and the monitoring devices, individual DAD's and branches in the network may be difficult to pinpoint. Hence, the solution may not be suitable for at least some applications.
OBJECT OF THE INVENTIONAccordingly it is an object of the present invention to provide a monitoring system and method with which the applicant believes the aforementioned disadvantages may at least be alleviated or which may provide a useful alternative for the known systems and methods.
SUMMARY OF THE INVENTIONAccording to the invention there is provided a monitoring system for a distributed antenna system comprising at least a central transmitter and a plurality of distributed antenna devices connected to the transmitter via a respective physical branch of a signal transmission network comprising a plurality of branches, each of the distributed antenna devices comprising at least one antenna which is associated with a frequency band having a centre frequency fc and a corresponding wavelength λc, the monitoring system comprising:
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- a central monitoring unit which is coupled to the network;
- at least one monitoring device associated with at least one of said distributed antenna devices and permanently mounted a distance d away from the at least one antenna of the distributed antenna device, the distance d being less than 2 times λc (2λc);
- the at least one monitoring device comprising a local controller, a transceiver and an antenna;
- the local controller being configured, upon being polled by the central monitoring unit via the network and the distributed antenna device, to cause the transceiver to respond to the poll by transmitting a response signal to the central monitoring unit via the distributed antenna device and the network.
The distance d may be less than λc, preferably less than λc/2 and even less than λc/4.
The monitoring device may comprise a local power supply, for example in the form of a battery. Alternatively or in addition, the monitoring device may comprise an energy harvesting circuit for collecting energy from the DAD through the antenna of the monitoring device. The energy may be used to recharge the battery.
Each monitoring device may be associated with a unique address which may be stored in a memory arrangement of the monitoring device.
Each monitoring device may also comprise indicator means for providing a human perceivable indication relating to a monitored status of the associated DAD and/or the branch of the network connected thereto.
The monitoring device may be mounted in or on the DAD. It may for example be retrofitted on a radome of the DAD. In such a case, the monitoring device may be housed in a housing or encapsulated in a flexible sleeve or envelope, which may be adhered to the radome.
The central monitoring unit may comprise means for measuring the strength of the response signal received from the at least one monitoring device and a database for storing data relating to the unique addresses of each monitoring device, data relating to a monitored status of each DAD and optionally data relating to the position of the DAD associated with the monitoring device.
The central monitoring unit may be coupled to the network by a suitable coupler to inject a weak monitoring message or signal or tone into the network. The message or signal or tone may be in-band or out of specific DAS communication bands, but within the overall band which the DAS system is designed to operate over.
The monitoring message may be addressed to a targeted monitoring device by using the unique address of the monitoring device.
The invention also includes within its scope a DAS comprising a monitoring system as herein defined and/or described.
Still further included within the scope of the present invention are a central monitoring unit as herein defined and/or described and a monitoring device as herein defined and/or described.
The invention also includes within its scope a method of monitoring performance of a distributed antenna system comprising at least a central transmitter and a plurality of distributed antenna devices connected to the transmitter via a respective physical branch of a signal transmission network comprising a plurality of branches, each of the distributed antenna devices comprising at least one antenna which is associated with a frequency band having a centre frequency fc and a corresponding wavelength λc, the method comprising:
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- for at least some of the distributed antenna devices, providing a respective monitoring device at a distance d<2λc from the at least one antenna;
- transmitting from a central monitoring unit, along the network and via the distributed antenna device to at least one targeted monitoring device a monitoring signal;
- at the at least one targeted monitoring device generating a response signal and transmitting the response signal to the central monitoring unit via the distributed antenna device and the network; and
- utilizing at least one of the monitoring signal and the response signal to monitor performance of at least part of the distributed antenna system.
The monitoring signal may addressed to the at least one targeted monitoring device by utilizing a respective unique address of the at least one targeted monitoring device.
The strength of the monitoring signal may be measured at the at least one targeted monitoring device.
Data relating to the measured strength may then be sent from the at least one targeted monitoring device via the associated distributed antenna device and the network to the central monitoring unit and the data may be identified at the central monitoring station by the respective unique address.
The strength of the response signal may be measured at the central monitoring unit.
In some embodiments, the strength of the monitoring signal may be measured at the at least one targeted monitoring device and the strength of the response signal may be measured at the central monitoring unit and the results of the measurements may be utilized to monitor the status of asymmetrical up and down paths between the central monitoring unit and the at least one targeted monitoring unit.
The method may include the step of utilizing switches which are distributed in the network selectively to attenuate or divert power propagating to at least some of the distributed antenna devices, thereby selectively to switch the at least some of the distributed devices out of the distributed antenna system.
The switches may be controlled by command signals from at least the central monitoring unit.
The monitoring signal, the response signal and the command signals may be at a suitable signal level to ensure communication and sensing between central monitoring unit, but below the level of a main signal transmitted by the central transmitter and below regulatory or operator requirements in terms of signal radiated from DADs as to meet regulatory requirements or DAS user requirements.
The monitoring signal, response signal and command signals may be transmitted according to a standard protocol and at a level of −30 dB relative to the main signal.
The monitoring signal, response signal and command signals may be transmitted out of band relative to the main signal.
The method as claimed in the may include the step of indicating the monitored status at the monitoring device and or and/or transmitting status information to other locations or a database to be accessed by various interested parties.
The monitored status may be determined by the monitoring device and the monitoring device may then indicate the status. In other embodiments the monitored status may be determined at the central monitoring unit and then the status may be indicated in response to a command sent from the central monitoring unit to the monitoring device.
The invention will now further be described, by way of example only, with reference to the accompanying diagrams wherein:
An example embodiment of a distributed antenna system (DAS) is generally designated by the reference numeral 10 in
An example embodiment of a DAD 16.1 is shown in
An example embodiment of a monitoring system is generally designated by the reference numeral 22 in
The CMU 24 may comprise a transceiver which may be connected to the network 14 by coupler 26 in a region of the network 14 towards the central transmitter 12 and before or upstream of a first branch 14.1, 14.2.
Referring to
The CMU 24 may use any suitable communication standard to communicate with or poll via the network 14 any one or more of the monitoring devices 28.1 to 28.n. As an example, the ZigBee communication protocol and devices operating in the 2.4 GHz licensed frequency bands may be used to effect communication and addressing between the CMU 24 and other devices of the monitoring system and the same signals may additionally be used to monitor RF path and DAD operation. The ZigBee units may additionally be equipped with the ability to generate test signals at other frequencies used in the DAS system, if required. Other protocols operating at other frequencies may serve a similar purpose, such as Bluetooth, Wifi and/or similar communication protocols.
As shown in the example embodiment in
The CMU 24 may comprise or be connected to a database (not shown) for storing said unique addresses, monitored status of each DAD as well as data relating to the position of the associated DAD. Hence, the monitoring devices may comprise complementary circuitry to respond via the network 14 to the CMU 24. The CMU 24 may also comprise means for measuring the strength of a response signal received from any of the monitoring devices and processing means for processing such measurements.
In order not to interfere with the DAS, the CMU 24 is coupled to the main branch of the network 14 via coupler 26 to transmit via the network weak monitoring signals (at say −10 dB of the main signal, preferably −30 dB) and/or out of band monitoring signals which are received and processed by the monitoring devices 28.1 to 28.2 as will be described below.
In
The CMU 24 may be pre-programmed to poll each monitoring device 28.1 to 28.n on an intermittent, alternatively periodic basis. This is done by sending the monitoring signal with each monitoring device's address successively and waiting for the response signal from the monitoring devices. Upon receiving the response signal from a monitoring device, the strength of that response signal is measured, compared to a reference and/or previous values and stored and/or communicated to an external control centre. If no response is received from a monitoring device, after a predetermined number of polls, the monitoring device and/or DAD is tagged as defective. If a signal strength measurement on a response signal indicates degradation in or to the transmission path below a predetermined limit, then that monitoring device is instructed from the CMU 24 to update locally its status to “low level” and the indicator means 36 is caused to indicate that status. Further for example, failure of both devices 28.1 and 28.2 could be interpreted by the CMU 24 as likely failure of branch 14.1, rather than failure of DAD 16.1 and 16.2.
The monitoring device may be programmed to activate the local indicator 36 or may be configured in response to a command signal from the CMU 24 to display status, depending on where the measurement is done, at the monitoring device or at the CMU 24. Status indications may include: failure, power reduction below predetermined limit, working status, low battery etc.
Hence, the monitoring devices may use the polling or monitoring signal received via its associated DAD to measure the signal quality and report back by means of the response signal such signal quality to the CMU 24. Alternatively, the strength of the response signal as measured at the CMU 24 may be used to determine the path quality between the DAD and the CMU 24. Whether sensing is done at the CMU 24 or at the respective monitoring devices, the monitoring system 22 may be configured to sense both a) failure vs operational and b) relative signal level.
As explained in more detail below, additional components which operate on the same protocol as the CMU 24 and the monitoring devices 28.1 to 28.n may be inserted into the network 14, to adjust network configurations or parameters. Such components could be inserted in-line to switch off certain DAD's or branch lines leading to DAD's or to attenuate/increase signal levels to DAD's or sections of DAD's.
Tones may be inserted at different frequencies used by the DAS 10 by either monitoring devices 28.1 to 28.n or CMU 24, to enable in-band or band related and/or more accurate measurements on the system 10.
Monitoring devices 28.1 to 28.n could use wireless mesh or other communication to adjacent or closely located other monitoring devices to establish an alternative response or up path back to the CMU 24, in the event of failure of a line or branch to which they are connected.
Hence, the system may comprise path diagnostic devices or switches 50.1 to 50.n comprising respective controllers 56 operating on the same frequency and protocol as the monitoring devices and CMU 24. The controller 56 is operative (under program control or on command from the CMU 24) to cause the switch to switch between a first state wherein the switch allows the RF signal to continue unhindered and a second state wherein the switch causes part of the RF signal to be diverted to the dummy load 58, so that most power goes to the dummy load with less than −10 dB, but preferably −30 dB continuing along the branch to which it is connected. This switch can be addressed by either the CMU 24 or any monitoring device or any other transmission diagnostic device, since all operate on the same frequency and uses the same communication protocol. Hence, such switches may be used to selectively isolate parts of the DAS system or specific DADs for diagnostic purposes or to test the monitoring device operation.
Furthermore, the system may be configured to measure signal in both directions of the DAS path to a specific DAD. The signals along the “down path” (that is towards the DAD's) and the “up path” (that is towards the CMU) may not be symmetrical due to active components. Utilizing the signal sensing and transmitting capabilities of the monitoring devices and the CMU 24, the measurements could be done for “up” and “down” paths. Such measurements allow faults with specific units (up or down amplifiers for example) to be pinpointed by comparison of the signal measurements along both paths and associated with specific DAD's or group of DAD's.
Still furthermore, the monitoring system 22 may in addition to the monitoring devices 28.1 to 28.n and the path diagnostic devices 50.1 to 50.n comprise further distributed signal monitoring devices 60.1 to 60.n (shown in
Communication may happen between the CMU 24 via DAD's to signal monitoring devices 60.1 to 60.n directly or may also be relayed via monitoring devices 28.1 to 28.n. Monitoring may be performed using information from signal monitoring device 60.1 to 60.n operation in conjunction with information from monitoring device 28.1 to 28.n operation and optionally selective isolation using path diagnostic devices or switches 50.1 to 50.n, to get detailed information of coverage.
Claims
1. A monitoring system for a distributed antenna system comprising at least a central transmitter and a plurality of distributed antenna devices connected to the transmitter via a respective physical branch of a signal transmission network comprising a plurality of branches, each of the distributed antenna devices comprising at least one antenna which is associated with a frequency band having a centre frequency fc and a corresponding wavelength λc, the monitoring system comprising:
- a central monitoring unit which is coupled to the network;
- at least one monitoring device associated with at least one of said distributed antenna devices and permanently mounted a distance d away from the at least one antenna of the distributed antenna device, the distance d being less than 2 times λc (2λc);
- the at least one monitoring device comprising a local controller, a transceiver and an antenna;
- the local controller being configured, upon being polled by the central monitoring unit with a monitoring signal via the associated distributed antenna device and the respective branch of the network, to process the monitoring signal to measure the quality of the monitoring signal and to cause the transceiver to respond to the monitoring signal by transmitting a response signal comprising an indication of the measured quality to the central monitoring unit via the associated distributed antenna device and the network.
2. The monitoring system as claimed in claim 1 wherein d is less than λc/2.
3. The monitoring system as claimed in claim 1 wherein the at least one monitoring device comprises a local power supply comprising at least one of a battery and an energy harvesting circuit for collecting energy from the distributed antenna device through the antenna of the monitoring device.
4. The monitoring system as claimed in claim 1 wherein the at least one monitoring device is associated with a respective unique address which is stored in a memory arrangement of the monitoring device.
5. The monitoring system as claimed in claim 4 wherein the central monitoring unit comprises means for measuring the strength of the response signal received from the at least one monitoring device and a database for storing data relating to the unique addresses of the at least one monitoring device and at least one of data relating to the monitored status and data relating to a position of the associated distributed antenna device.
6. The monitoring system as claimed in claim 1 wherein the at least one monitoring device comprises an indicator arrangement for providing a human perceivable indication relating to a monitored status of at least one of the associated distributed antenna device and the branch connected thereto, based on the measured quality of the monitoring signal.
7. The monitoring system as claimed in claim 1 wherein the at least one monitoring device is mounted in or on the associated distributed antenna device.
8. The monitoring system as claimed in claim 7 wherein the at least one monitoring device is encapsulated in a housing which is mountable on an optional radome of the associated distributed antenna device.
9. The monitoring system as claimed in claim 1 wherein the central monitoring unit is coupled to the network by a coupler to inject the monitoring signal into the network.
10. The monitoring system as claimed in claim 1 wherein the monitoring signal and the response signal are at least one of a) at least 10 dB weaker than a main signal transmitted by the central transmitter and b) out of band relative to the main signal.
11. The monitoring system as claimed in claim 1 comprising at least one path diagnostic switching device which is connected in a branch of the network and configured to be switched between a first state wherein it passes along the branch input power received by the switch device and a second state wherein it attenuates or diverts away from the branch at least some of the input power received by the switch device.
12. A distributed antenna system comprising a monitoring system as claimed in claim 1.
13. A system as claimed in claim 1 wherein the quality of the monitoring signal is measured by measuring the strength of the monitoring signal and wherein the indication of the measured quality comprises data relating to the measured strength.
14. A method of monitoring performance of a distributed antenna system comprising at least a central transmitter and a plurality of distributed antenna devices connected to the transmitter via a respective physical branch of a signal transmission network comprising a plurality of branches, each of the distributed antenna devices comprising at least one antenna which is associated with a frequency band having a centre frequency fc and a corresponding wavelength λc, the method comprising:
- for at least some of the distributed antenna devices, providing a respective associated monitoring device at a distance d<2λc from the at least one antenna;
- transmitting from a central monitoring unit to at least one targeted monitoring device a monitoring signal via the associated distributed antenna device and the respective branch of the network;
- at the at least one targeted monitoring device processing the monitoring signal to measure the quality of the monitoring signal and generating a response signal comprising an indication of the measured quality and transmitting the response signal to the central monitoring unit via the associated distributed antenna device and the network.
15. The method as claimed in claim 14 wherein the monitoring signal is addressed to the at least one targeted monitoring device by utilizing a respective unique address of the at least one targeted monitoring device.
16. The method as claimed in claim 14 wherein the monitoring signal is processed by measuring the strength of the monitoring signal at the at least one targeted monitoring device.
17. The method as claimed in claim 16 wherein data relating to the measured strength is sent from the at least one targeted monitoring device via the associated distributed antenna device and the network to the central monitoring unit and wherein the data is identified by the respective unique address.
18. The method as claimed in claim 17 wherein the strength of the response signal is measured at the central monitoring unit and wherein results of the measurements are utilized to monitor the status of asymmetrical up and down paths between the central monitoring unit and the at least one targeted monitoring unit.
19. The method as claimed in claim 14 wherein distributed switches in the network are utilized selectively to attenuate or divert power propagating to at least some of the distributed antenna devices, thereby to switch the at least some of the distributed devices out of the distributed antenna system and wherein the switches are controlled by command signals from at least the central monitoring unit.
20. The method as claimed in claim 19 wherein the monitoring signal, the response signal and the command signals are at a signal level to ensure communication and sensing between central monitoring unit, the monitoring devices and the switches devices, but below the level of a main signal transmitted by the central transmitter.
21. An antenna monitoring system comprising:
- a first monitor device configured to be adhered to a radome of a first antenna connected to a wired signal transmission network, the first monitor device configured to transmit a first antenna monitor signal, the first antenna monitor signal including first monitor data associated with the first monitor device;
- a second monitor device configured to be adhered to a radome of a second antenna connected to the wired signal transmission network, the second monitor device configured to transmit a second antenna monitor signal, the second antenna monitor signal including second monitor data associated with the second monitor device, the second monitor data being different from the first monitor data;
- a coupler configured to be connected to the wired signal transmission network; and
- a monitoring unit configured to be connected to the wired signal transmission network through the coupler, the monitoring unit further configured to receive the first antenna monitor signal, receive the second antenna monitor signal, generate a first antenna status indicating a status of the first antenna, and generate a second antenna status indicating a status of the second antenna;
- wherein, within a predetermined time period, the first monitor device transmits the first antenna monitor signal, and within a same predetermined time period, the second monitor device transmits the second antenna monitor signal;
- wherein, responsive to receiving the first antenna monitor signal, the monitoring unit generates the first antenna status indicating an operational status of the first antenna;
- wherein, responsive to failing to receive the second antenna monitor signal, the monitoring unit generates the second antenna status indicating a defective status of the second antenna;
- wherein the monitoring unit is configured to transmit a first signal to the first monitor device and transmit a second signal to the second monitor device;
- wherein the coupler is configured to inject the first signal and the second signal into the wired signal transmission network;
- wherein the first monitor device is configured to transmit the first antenna monitor signal responsive to receiving the first signal via the wired signal transmission network; and
- wherein the second monitor device is configured to transmit the second antenna monitor signal responsive to receiving the second signal via the wired signal transmission network.
22. The antenna monitoring system of claim 21, wherein the first monitor data includes a first monitor device identifier identifying the first monitor device, and wherein the second monitor data includes a second monitor device identifier identifying the second monitor device.
23. The antenna monitoring system of claim 22, further comprising an antenna status database, wherein the monitoring unit stores a database entry representing the first antenna status in the antenna status database and stores a database entry representing the second antenna status in the antenna status database.
24. The antenna monitoring system of claim 23, wherein:
- the first monitor device periodically and once within each of successive predetermined periods of time transmits the first antenna monitor signal;
- the second monitor device periodically and once within each of successive predetermined periods of time transmits the second antenna monitor signal;
- responsive to receiving the first antenna monitor signal, the monitoring unit generates the first antenna status indicating the operational status of the first antenna and stores the database entry representing the operational status of the first antenna;
- responsive to receiving the second antenna monitor signal, the monitoring unit generates the second antenna status indicating an operational status of the second antenna and stores the database entry representing the operational status of the second antenna;
- responsive to failing to receive the first antenna monitor signal, the monitoring unit generates the first antenna status indicating a defective status of the first antenna and stores a database entry representing the defective status of the first antenna;
- responsive to failing to receive the second antenna monitor signal, the monitoring unit generates the second antenna status indicating the defective status of the second antenna and stores a database entry representing the defective status of the second antenna.
25. The antenna monitoring system of claim 24, wherein:
- the first monitor device is configured to transmit the first antenna monitor signal via the first antenna;
- the second monitor device is configured to transmit the second antenna monitor signal via the second antenna; and
- the monitoring unit receives the first antenna monitor signal from a communication path that includes the first antenna and receives the second antenna monitor signal from a communication path that includes the second antenna.
26. The antenna monitoring system of claim 25, wherein the first monitor device is powered by a first battery and the second monitor device is powered by a second battery.
27. The antenna monitoring system of claim 26, wherein the first monitor data includes data representative of a current status of power of the first battery, and wherein the second monitor data includes data representative of a current status of power of the second battery.
28. The antenna monitoring system of claim 25, wherein the monitoring unit is configured to measure a signal strength associated with the first antenna monitor signal and to generate an additional first antenna status indicative of the signal strength.
29. An antenna monitoring system comprising:
- a first monitor device configured to be mounted on or within a housing of a first antenna, the first monitor device comprising a first local antenna, a first transceiver configured to receive and transmit signals, and a first local storage storing first monitor identification data identifying the first monitor device, the first monitor device configured to transmit, responsive to being polled by a monitoring unit, a first antenna monitor signal using the first local antenna and via the first antenna, the first antenna monitor signal including the first monitor identification data;
- an antenna status database storing one or more antenna status entries indicating a status of the first antenna; and
- the monitoring unit configured to receive the first antenna monitor signal transmitted by the first monitor device, determine a first antenna status based on receipt or non-receipt of the first antenna monitor signal, and store in the antenna status database a first antenna status entry comprising data indicative of the first antenna status;
- wherein the first monitor device transmits the first antenna monitor signal;
- wherein responsive to the monitoring unit failing to receive, after a predetermined number of polls, the first antenna monitor signal, the monitoring unit determines that the first antenna status is defective and stores in the antenna status database the first antenna status entry comprising data indicating that the first antenna is defective; and
- wherein responsive to the monitoring unit receiving, within the predetermined number of polls, the first antenna monitor signal, the monitoring unit determines that the first antenna status is normal and stores in the antenna status database the first antenna status entry comprising data indicating that the first antenna is operating normally.
30. The antenna monitoring system of claim 29, wherein the monitoring unit is further configured to:
- upon receiving the first antenna monitor signal, determine a first antenna level status based on a signal strength indicated by the first antenna monitor signal; and
- responsive to a comparison involving the signal strength indicating degradation, determine that the first antenna level status corresponds to a low level.
31. The antenna monitoring system of claim 30, wherein degradation is indicated when the signal strength indicated by the first antenna monitor signal is lower than a threshold strength.
32. The antenna monitoring system of claim 30, wherein degradation is indicated when a difference between the signal strength and a prior signal strength is greater than a threshold difference.
33. The antenna monitoring system of claim 30, wherein the monitoring unit is further configured to measure the signal strength of the first antenna monitor signal.
34. The antenna monitoring system of claim 30, wherein the first monitor device is further configured to measure signal strength of signals transmitted by the first antenna, and wherein data indicating the measured signal strength is included in the first antenna monitor signal transmitted by the first monitor device.
35. The antenna monitoring system of claim 30, wherein the first antenna status entry further comprises data indicative of the first antenna level status.
36. The antenna monitoring system of claim 29, wherein the first monitor device is powered by a battery.
37. The antenna monitoring system of claim 29, wherein the monitoring unit receives the first antenna monitor signal via the first antenna.
38. The antenna monitoring system of claim 29, wherein the antenna status database is a component of the monitoring unit.
39. The antenna monitoring system of claim 29, wherein the antenna status database is remote to the monitoring unit.
40. The antenna monitoring system of claim 39, wherein the monitoring unit stores data in the antenna status database using wireless communication.
41. The antenna monitoring system of claim 29, wherein the antenna status database stores information indicative of a location of the first antenna.
42. The antenna monitoring system of claim 29, further comprising a second monitor device configured to be mounted on or within a housing of a second antenna, the second monitor device comprising a second local antenna, a second transceiver configured to receive and transmit signals, and a second local storage storing second monitor identification data identifying the second monitor device, the second monitor device configured to transmit, responsive to being polled by a monitoring unit, a second antenna monitor signal using the second local antenna and via the second antenna, the second antenna monitor signal including the second monitor identification data,
- wherein the one or more antenna status entries indicate a status of at least one of the first antenna or the second antenna;
- wherein the monitoring unit is further configured to receive the second antenna monitor signal transmitted by the second monitor device, determine a second antenna status based on receipt or non-receipt of the second antenna monitor signal, and store in the antenna status database a second antenna status entry comprising data indicative of the second antenna status;
- wherein the second monitor device transmits the second antenna monitor signal;
- wherein responsive to the monitoring unit failing to receive, after the predetermined number of polls, the second antenna monitor signal, the monitoring unit determines that the second antenna status is defective and stores in the antenna status database the second antenna status entry comprising data indicating that the second antenna is defective; and
- wherein responsive to the monitoring unit receiving, within the predetermined number of polls, the second antenna monitor signal, the monitoring unit determines that the second antenna status is normal and stores in the antenna status database the second antenna status entry comprising data indicating that the second antenna is operating normally.
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Type: Grant
Filed: Sep 16, 2022
Date of Patent: Mar 4, 2025
Assignee: Gugli Corporation (Sheridan, WY)
Inventors: Andries Petrus Cronje Fourie (Parkview), Derek Colin Nitch (Witkoppen)
Primary Examiner: Ovidio Escalante
Application Number: 17/946,949
International Classification: H04B 17/00 (20150101); G01R 29/08 (20060101); G01R 29/10 (20060101); H04B 17/16 (20150101); H04B 17/17 (20150101); H04B 17/40 (20150101); H04W 24/08 (20090101); H04W 24/10 (20090101); H04W 88/08 (20090101);