REMOTELY RECONFIGURABLE DISTRIBUTED ANTENNA SYSTEM AND METHODS
20200389899 ยท 2020-12-10
Inventors
- Paul Lemson (Woodinville, WA, US)
- Shawn Patrick Stapleton (Vancouver, CA)
- Sasa Trajkovic (Burnaby, CA)
- Albert S. Lee (Vancouver, CA)
Cpc classification
H04L25/02
ELECTRICITY
H03F2201/3224
ELECTRICITY
H03F2201/3233
ELECTRICITY
H04Q2011/0081
ELECTRICITY
H04W40/02
ELECTRICITY
H04B10/2575
ELECTRICITY
H04Q11/0067
ELECTRICITY
H04L5/0032
ELECTRICITY
H04W72/0453
ELECTRICITY
H03F2200/204
ELECTRICITY
H04B10/25753
ELECTRICITY
H04L5/0048
ELECTRICITY
International classification
H03F1/32
ELECTRICITY
H04B10/2575
ELECTRICITY
H04L25/02
ELECTRICITY
H04W40/02
ELECTRICITY
Abstract
The present disclosure is a novel utility of a software defined radio (SDR) based Distributed Antenna System (DAS) that is field reconfigurable and support multi-modulation schemes (modulation-independent), multi-carriers, multi-frequency bands and multi-channels. The present disclosure enables a high degree of flexibility to manage, control, enhance, facilitate the usage and performance of a distributed wireless network such as flexible simulcast, automatic traffic load-balancing, network and radio resource optimization, network calibration, autonomous/assisted commissioning, carrier pooling, automatic frequency selection, frequency carrier placement, traffic monitoring, traffic tagging, pilot beacon, etc.
Claims
1. A radio access network comprising: a plurality of radio points configured to: transmit wireless communications to one or more wireless subscriber devices, and receive wireless communications from the one or more wireless subscriber devices; a network switch coupled to a first radio point and a second radio point included in the plurality of radio points; and a baseband controller coupled to the network switch via an Ethernet network connection, wherein the baseband controller: receives wireless communications from a network of a cellular operator, wherein the baseband controller appears as a single cell to the network of the cellular operator; receives, from a first wireless subscriber device, at least two communications, via: a first communication path that includes the first radio point, and a second communication path that includes the second radio point; and combines the at least two communications into a single communication using a combining algorithm.
2. The radio access network of claim 1, wherein: the network of the cellular operator transmits quadrature signals; and the baseband controller uses the combining algorithm to combine the quadrature signals.
3. The radio access network of claim 1, wherein the network of the cellular operator transmits Internet Protocol (IP) data that is associated with data received by the baseband controller from a global positioning system (GPS).
4. The radio access network of claim 3, wherein the baseband controller synchronizes, based on the data received from the GPS, the at least two communications.
5. The radio access network of claim 1, wherein: the baseband controller receives a number of radio resources to the network of the cellular operator; the first communications path includes a first subset of the number of radio resources to the first radio point; and the second communications path includes a second subset of the number of radio resources to the second radio point.
6. The radio access network of claim 5, wherein the network of the cellular operator uses a Common Public Radio Interface (CPRI) protocol.
7. The radio access network of claim 5, wherein the network switch, in response to a change in capacity needed by the one or more wireless subscriber devices, assigns additional radio resources to the first communications path or the second communications path.
8. The radio access network of claim 1, wherein the network switch comprises an Ethernet switch.
9. The radio access network of claim 1, wherein the first wireless subscriber device comprises an Internet Protocol (IP) device.
10. The radio access network of claim 1, wherein a transmission power provided by at least one radio point in the plurality of radio points is configurable via software.
11. A method comprising: receiving, by a baseband controller coupled to a network switch via an Ethernet network connection, wireless communications from a network of a cellular operator, wherein: the baseband controller appears as a single cell to the network of the cellular operator, the network switch is coupled to a first radio point and a second radio point included in a plurality of radio points; receiving, by the baseband controller from a first wireless subscriber device, at least two communications, wherein the first wireless subscriber device transmits the at least two communications via: a first communication path that includes the first radio point, and a second communication path that includes the second radio point; and combining, by the baseband controller, the at least two communications into a single communication using a combining algorithm.
12. The method of claim 11, further comprising: receiving, by the baseband controller from the network of the cellular operator, a set of quadrature signals; and combining, by the baseband controller, the quadrature signals using the combining algorithm.
13. The method of claim 11, further comprising receiving, by the baseband controller from the network of the cellular operator, Internet Protocol (IP) data, wherein the IP data is associated with data received by the baseband controller from a global positioning system (GPS).
14. The method of claim 13, further comprising synchronizing, by the baseband controller and based on the data received from the GPS, the at least two communications.
15. The method of claim 11, further comprising receiving, by the baseband controller, a number of radio resources to the network of the cellular operator, wherein: the first communications path includes a first subset of the number of radio resources to the first radio point; the second communications path includes a second subset of the number of radio resources to the second radio point; and the network switch, in response to a change in capacity needed by one or more wireless subscriber devices, assigns additional radio resources to the first communications path or the second communications path.
16. One or more non-transitory computer-readable media storing instructions that, when executed by one or more processors, cause the one or more processors to perform the steps of: receiving, by a baseband controller coupled to a network switch via an Ethernet network connection, wireless communications from a network of a cellular operator, wherein: the baseband controller appears as a single cell to the network of the cellular operator, the network switch is coupled to a first radio point and a second radio point included in a plurality of radio points; receiving, by the baseband controller from a first wireless subscriber device, at least two communications, wherein the first wireless subscriber device transmits the at least two communications via: a first communication path that includes the first radio point, and a second communication path that includes the second radio point; and combining, by the baseband controller, the at least two communications into a single communication using a combining algorithm.
17. The one or more non-transitory computer-readable media of claim 16, further comprising instructions that, when executed by the one or more processors, further cause the one or more processors to perform the steps of: receiving, by the baseband controller from the network of the cellular operator, a set of quadrature signals; and combining, by the baseband controller, the quadrature signals using the combining algorithm.
18. The one or more non-transitory computer-readable media of claim 16, further comprising instructions that, when executed by the one or more processors, further cause the one or more processors to perform the step of receiving, by the baseband controller from the network of the cellular operator, Internet Protocol (IP) data, wherein the IP data is associated with data received by the baseband controller from a global positioning system (GPS).
19. The one or more non-transitory media computer-readable media of claim 18, further comprising instructions that, when executed by the one or more processors, further cause the one or more processors to perform the step of synchronizing, by the baseband controller and based on the data received from the GPS, the at least two communications.
20. The one or more non-transitory computer-readable media of claim 16, further comprising instructions that, when executed by the one or more processors, further cause the one or more processors to perform the step of receiving, by the baseband controller, a number of radio resources to the network of the cellular operator, wherein: the first communications path includes a first subset of the number of radio resources to the first radio point; the second communications path includes a second subset of the number of radio resources to the second radio point; and the network switch, in response to a change in capacity needed by one or more wireless subscriber devices, assigns additional radio resources.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0022] Further objects and advantages of the present invention can be more fully understood from the following detailed description taken in conjunction with the accompanying drawings in which:
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
DETAILED DESCRIPTION OF THE INVENTION
[0030] The present invention is a novel Reconfigurable Distributed Antenna System that provides a high degree of flexibility to manage, control, re-configure, enhance and facilitate the radio resource efficiency, usage and overall performance of the distributed wireless network. An embodiment of the Reconfigurable Distributed Antenna System in accordance with the present invention is shown in
[0031] In a similar manner as described previously for RRU1, the software settings within RRU3 are configured either manually or automatically such that Carriers 2 and 6 are present in downlink output signal 111 at the antenna port of RRU3. Compared to the downlink signal 110 at the antenna port of RRU2, the capacity of RRU3 which is configured via the software settings of RRU3 is much less than the capacity of RRU2. RRU4 is fed by a second optical port of RRU3 via bidirectional optical cable 115 to RRU4. Optical cable 115 performs the function of daisy chaining RRU4 with RRU3. The software settings within RRU4 are configured either manually or automatically such that Carriers 1, 4, 5 and 8 are present in downlink output signal 112 at the antenna port of RRU4. The capacity of RRU4 is set to a much lower value than RRU1. The relative capacity settings of RRU1, RRU2, RRU3 and RRU4 and can be adjusted dynamically as discussed in connection with
[0032] The present invention facilitates conversion and transport of several discrete relatively narrow RF bandwidths. This approach allows conversion of only those multiple specific relatively narrow bandwidths which carry useful or specific information. This approach also allows more efficient use of the available optical fiber transport bandwidth for neutral host applications, and allows transport of more individual operators' band segments over the optical fiber. As disclosed in U.S. Provisional Application Ser. No. 61/374593, entitled Neutral Host Architecture for a Distributed Antenna System, filed Aug. 17, 2010 and also referring to
[0033] A related capability of the present invention is that not only can the Digital Up Converters located within each RRU be configured to transport any specific narrow frequency band from the DAU input to any specific RRU output, but also the Digital Up Converters within each RRU can be configured to transport any specific time slot or time slots of each carrier from the DAU input to any specific RRU output. The DAU detects which carriers and corresponding time slots are active. This information is relayed to the individual RRUs via the management control and monitoring protocol software discussed hereinafter. This information is then used, as appropriate, by the RRUs for turning off and on individual carriers and their corresponding time slots.
[0034] Referring to
[0035] As disclosed in U.S. Provisional Application Ser. No. 61/374593, entitled Neutral Host Architecture for a Distributed Antenna System, filed Aug. 17, 2010 and also referring to
[0036] As disclosed in U.S. Provisional Application Ser. No. 61/374593, entitled Neutral Host Architecture for a Distributed Antenna System, filed Aug. 17, 2010 and also referring to
[0037] Another embodiment of the Distributed Antenna System in accordance with the present invention is shown in
[0038] The Digital Down Converters present in each of RRU1, RRU2, RRU3 and RRU4 are dynamically software-configured as described previously so that uplink signals of the appropriate desired signal format(s) present at the receive antenna ports of the respective RRU1, RRU2, RRU3 and RRU4 are selected based on the desired uplink band(s) to be processed and filtered, converted and transported to the appropriate uplink output port of either DAU1 or DAU2. The DAUs and RRUs frame the individual data packets corresponding to their respective radio signature using the Common Public Interface Standard (CPRI). Other Interface standards are applicable provided they uniquely identify data packets with respective RRUs. Header information is transmitted along with the data packet which identifies the RRU and DAU that corresponds to the individual data packet.
[0039] In one example for the embodiment shown in
[0040] Referring to
[0041] An aspect of the present invention includes an integrated Pilot Beacon function within the each RRU. In an embodiment, each RRU comprises a unique software programmable Pilot Beacon as discussed hereinafter. This approach is intended for use in CDMA and/or WCDMA indoor DAS networks. A very similar approach can be effective for indoor location accuracy enhancement for other types of networks such as LTE and WiMAX. Because each RRU is already controlled and monitored via the DAUs which comprise the network, there is no need for costly deployment of additional dedicated wireless modems for remote monitoring and control of pilot beacons.
[0042] An RRU-integrated Pilot Beacon approach is employed for both CDMA and WCDMA networks. Each operational pilot beacon function within an RRU employs a unique PN code (in that area) which effectively divides the WCDMA or CDMA indoor network coverage area into multiple small zones (which each correspond to the coverage area of a low-power Pilot Beacon). Each Pilot Beacon's location, PN code and RF Power level are known by the network. Each Pilot Beacon is synchronized to the WCDMA or CDMA network, via its connection to the DAU.
[0043] Unlike the transmit signal from a base station which is dynamic, the Pilot Beacon transmit signal will be effectively static and its downlink messages will not change over time based on network conditions.
[0044] For a WCDMA network, in Idle mode each mobile subscriber terminal is able to perform Pilot Signal measurements of downlink signals transmitted by base stations and Pilot Beacons. When the WCDMA mobile subscriber terminal transitions to Active mode, it reports to the serving cell all its Pilot Signal measurements for base stations and for Pilot Beacons. For CDMA networks, the operation is very similar. For some RRU deployed in an indoor network, the RRU can be provisioned as either a Pilot Beacon or to serve mobile subscribers in a particular operator bandwidth, but not both.
[0045] For a WCDMA network, existing inherent capabilities of the globally-standardized networks are employed. The WCDMA mobile subscriber terminal is able to measure the strongest CPICH RSCP (Pilot Signal Code Power) in either Idle mode or any of several active modes. Also, measurements of CPICH Ec/No by the mobile subscriber terminal in either Idle mode or any of several active modes are possible. As a result, the mobile subscriber terminal reports all available RSCP and Ec/No measurements via the serving base station (whether indoor or outdoor) to the network. Based on that information, the most likely mobile subscriber terminal location is calculated and/or determined. For CDMA networks, the operation is very similar to the process described herein.
[0046] A previously described embodiment of the present invention referring to
[0047] A further alternative embodiment can be explained referring to
[0048] An embodiment of the present invention provides enhanced accuracy for determining location of indoor wireless subscribers.
[0049] The DAU communicates with a Network Operation Center (NOC) via a Ethernet connection or an external modem, as depicted in
[0050] A further embodiment of the present invention includes LTE to provide enhanced accuracy for determining the location of indoor wireless subscribers. GSM uses individual carriers and time slots to distinguish users whereas LTE uses multiple carriers and time slot information to distinguish users. The DAU can simultaneously detect multiple carriers and their corresponding time slots to uniquely identify the LTE user. The DAU has a running data base that identifies the carrier frequencies and time slot radio signature for the respective RRU. This information can be retrieved from the NOC once a request is made to the DAU.
[0051] Referring next to
[0052] In an embodiment, an algorithm operating within the DAU Monitoring module, that detects which carriers and corresponding time slots for each carrier are active for each RRU, provides information to the DAU Management Control module to help identify when, e.g., a particular downlink carrier is loaded by a percentage greater than a predetermined threshold whose value is communicated to the DAU Management Control module by the DAU's Remote Monitoring and Control function. If that occurs, the DAU Management Control module adaptively modifies the system configuration to slowly begin to deploy additional radio resources (such as RF carriers, CDMA codes or TDMA time slots) for use by a particular RRU which need those radio resources within its coverage area. At the same time, in at least some embodiments the DAU Management Control module adaptively modifies the system configuration to slowly begin to remove certain radio resources (such as RF carriers, CDMA codes or TDMA time slots) for use by a particular RRU which no longer needs those radio resources within its coverage area. Another such key function of the DAU embedded software control module and RRU embedded software control module is determining and/or setting and/or analyzing the appropriate transmission parameters and monitoring parameters for the integrated Pilot Beacon function contained within each RRU. These Pilot Beacon transmission and monitoring parameters include Beacon Enable/Disable, Beacon Carrier Frequencies, Beacon Transmit Power, Beacon PN Code, Beacon Downlink BCH Message Content, Beacon Alarm, Beacon Delay Setting and Beacon Delay Adjustment Resolution. The RRU Pilot Beacon Control module communicates with the pilot beacon generator function in the RRU to set and monitor the pilot beacon parameters as listed herein.
[0053] In summary, the Reconfigurable Distributed Antenna System of the present invention described herein efficiently conserves resources and reduces costs. The reconfigurable system is adaptive or manually field-programmable, since the algorithms can be adjusted like software in the digital processor at any time.
[0054] Although the present invention has been described with reference to the preferred embodiments, it will be understood that the invention is not limited to the details described thereof. Various substitutions and modifications have been suggested in the foregoing description, and others will occur to those of ordinary skill in the art. Therefore, all such substitutions and modifications are intended to be embraced within the scope of the invention as defined in the appended claims.
APPENDIX I
Glossary of Terms
[0055] ACLR Adjacent Channel Leakage Ratio [0056] ACPR Adjacent Channel Power Ratio [0057] ADC Analog to Digital Converter [0058] AQDM Analog Quadrature Demodulator [0059] AQM Analog Quadrature Modulator [0060] AQDMC Analog Quadrature Demodulator Corrector [0061] AQMC Analogy Quadrature Modulator Corrector [0062] BPF Bandpass Filter [0063] BTS Base Transceiver System or Base Station [0064] CDMA Code Division Multiple Access [0065] CFR Crest Factor Reduction [0066] DAC Digital to Analog Converter [0067] DAU Digital Access Unit [0068] DET Detector [0069] DHMPA Digital Hybrid mode Power Amplifier [0070] DDC Digital Down Converter [0071] DNC Down Converter [0072] DPA Doherty Power Amplifier [0073] DQDM Digital Quadrature Demodulator [0074] DQM Digital Quadrature Modulator [0075] DSP Digital Signal Processing [0076] DUC Digital Up Converter [0077] EER Envelope Elimination and Restoration [0078] EF Envelope Following [0079] ET Envelope Tracking [0080] EVM Error Vector Magnitude [0081] FFLPA Feedforward Linear Power Amplifier [0082] FIR Finite Impulse Response [0083] FPGA Field-Programmable Gate Array [0084] GSM Global System for Mobile Communications [0085] I-Q In-phase/Quadrature [0086] IF Intermediate Frequency [0087] LINC Linear Amplification Using Nonlinear Components [0088] LO Local Oscillator [0089] LPF Low Pass Filter [0090] MCPA Multi-Carrier Power Amplifier [0091] MDS Multi-Directional Search [0092] OFDM Orthogonal Frequency Division Multiplexing [0093] PA Power Amplifier [0094] PARR Peak-to-Average Power Ratio [0095] PD Digital Baseband Predistortion [0096] PLL Phase Locked Loop [0097] PN Pseudo-Noise [0098] QAM Quadrature Amplitude Modulation [0099] QPSK Quadrature Phase Shift Keying [0100] RF Radio Frequency [0101] RRH Remote Radio Head [0102] RRU Remote Radio head Unit [0103] SAW Surface Acoustic Wave Filter [0104] UMTS Universal Mobile Telecommunications System [0105] UPC Up Converter [0106] WCDMA Wideband Code Division Multiple Access [0107] WLAN Wireless Local Area Network