ANALOG DISTRIBUTED ANTENNA SYSTEMS (DASS) SUPPORTING DISTRIBUTION OF DIGITAL COMMUNICATIONS SIGNALS INTERFACED FROM A DIGITAL SIGNAL SOURCE AND ANALOG RADIO FREQUENCY (RF) COMMUNICATIONS SIGNALS
20170237493 · 2017-08-17
Inventors
Cpc classification
H04B10/2575
ELECTRICITY
H04B10/25751
ELECTRICITY
International classification
Abstract
Embodiments disclosed in the detailed description include analog distributed antenna system (DAS) supporting distribution of digital communications signals interfaced from a digital signal source and analog radio frequency (RF) communications signals. Analog RF communications signals received from analog RF signal sources are distributed in the analog DAS without being digitized. The analog DAS is also configured to interface with digital signal sources and compatibly distribute digital communications signals. Hence, a digital signal interface in head-end equipment (HEE) is configured to convert downlink digital communications signals to downlink analog RF communications signals for distribution to a plurality of remote units. The digital signal interface is also configured to convert uplink analog RF communications signals to uplink digital communications signals for distribution to the digital signal source(s). By providing the digital signal interface in the HEE, the analog DAS can be configured to distribute digital communications signals to analog DAS components.
Claims
1. A head-end equipment (HEE) signal interface in an analog distributed antenna system (DAS), comprising: a downlink communications signal interface configured to receive at least one first downlink analog radio frequency (RF) communications signal and at least one second downlink analog RF communications signal to be distributed to at least one remote unit among a plurality of remote units in the analog DAS over a downlink communications medium; an uplink communications signal interface configured to provide at least one first uplink analog RF communications signal and at least one second uplink analog RF communications signal received from the at least one remote unit among the plurality of remote units in the analog DAS over an uplink communications medium; at least one RF signal interface configured to: receive the at least one first downlink analog RF communications signal from at least one analog RF signal source; provide the at least one first downlink analog RF communications signal to the downlink communications signal interface; receive the at least one first uplink analog RF communications signal from the uplink communications signal interface; and provide the at least one first uplink analog RF communications signal to the at least one analog RF signal source; and at least one digital signal interface configured to: receive at least one downlink digital communications signal from at least one digital signal source; convert the at least one downlink digital communications signal into the at least one second downlink analog RF communications signal; provide the at least one second downlink analog RF communications signal to the downlink communications signal interface; receive the at least one second uplink analog RF communications signal from the uplink communications signal interface; convert the at least one second uplink analog RF communications signal into at least one uplink digital communications signal; and provide the at least one uplink digital communications signal to the at least one digital signal source.
2. The HEE signal interface of claim 1, wherein the downlink communications signal interface comprises: a downlink combiner configured to: receive the at least one first downlink analog RF communications signal from the at least one RF signal interface; receive the at least one second downlink analog RF communications signal from the at least one digital signal interface; and combine the at least one first downlink analog RF communications signal and the at least one second downlink analog RF communications signal into a combined downlink analog RF communications signal; and a downlink splitter configured to: receive the combined downlink analog RF communications signal from the downlink combiner; and split the combined downlink analog RF communications signal into a plurality of medium-adapted downlink analog RF communications signals to be provided to the at least one remote unit among the plurality of remote units in the analog DAS.
3. The HEE signal interface of claim 1, wherein the uplink communications signal interface comprises: an uplink combiner configured to: receive a plurality of medium-adapted uplink analog RF communications signals from the at least one remote unit among the plurality of remote units in the analog DAS; and combine the plurality of medium-adapted uplink analog RF communications signals into a combined uplink analog RF communications signal; and an uplink splitter configured to: receive the combined uplink analog RF communications signal; split the combined uplink analog RF communications signal into the at least one first uplink analog RF communications signal and the at least one second uplink analog RF communications signal; provide the at least one first uplink analog RF communications signal to the at least one RF signal interface; and provide the at least one second uplink analog RF communications signal to the at least one digital signal interface.
4. The HEE signal interface of claim 1, wherein: the downlink communications signal interface comprises: a downlink combiner configured to: receive the at least one first downlink analog RF communications signal from the at least one RF signal interface; receive the at least one second downlink analog RF communications signal from the at least one digital signal interface; and combine the at least one first downlink analog RF communications signal and the at least one second downlink analog RF communications signal into a combined downlink analog RF communications signal; and a downlink splitter configured to: receive the combined downlink analog RF communications signal from the downlink combiner; and split the combined downlink analog RF communications signal into a plurality of medium-adapted downlink analog RF communications signals to be provided to the at least one remote unit among the plurality of remote units in the analog DAS; and the uplink communications signal interface comprises: an uplink combiner configured to: receive a plurality of medium-adapted uplink analog RF communications signals from the at least one remote unit among the plurality of remote units in the analog DAS; and combine the plurality of medium-adapted uplink analog RF communications signals into a combined uplink analog RF communications signal; and an uplink splitter configured to: receive the combined uplink analog RF communications signal; split the combined uplink analog RF communications signal into the at least one first uplink analog RF communications signal and the at least one second uplink analog RF communications signal; provide the at least one first uplink analog RF communications signal to the at least one RF signal interface; and provide the at least one second uplink analog RF communications signal to the at least one digital signal interface.
5. The HEE signal interface of claim 2, wherein the at least one downlink digital communications signal carries common public radio interface (CPRI) formatted data packets.
6. A method for distributing analog radio frequency (RF) communications signals and digital communications signals in an analog distributed antenna system (DAS), comprising: distributing downlink analog RF communications signals and downlink digital communications signals in the analog DAS, comprising: receiving at least one first downlink analog RF communications signal from at least one analog RF signal source; receiving at least one downlink digital communications signal from at least one digital signal source; converting the at least one downlink digital communications signal to at least one second downlink analog RF communications signal; modulating the at least one first downlink analog RF communications signal and the at least one second downlink analog RF communications signal to generate at least one combined downlink analog RF communications signal; and distributing the at least one combined downlink analog RF communications signal to at least one remote unit among a plurality of remote units in the analog DAS over a downlink communications medium; and distributing uplink analog RF communications signals and uplink digital communications signals in the analog DAS, comprising: receiving at least one combined uplink analog RF communications signal from the at least one remote unit among the plurality of remote units in the analog DAS over an uplink communications medium; demodulating the at least one combined uplink analog RF communications signal to generate at least one first uplink analog RF communications signal and at least one second uplink analog RF communications signal; providing the at least one first uplink analog RF communications signal to the at least one analog RF signal source; converting the at least one second uplink analog RF communications signal to at least one uplink digital communications signal; and providing the at least one uplink digital communications signal to the at least one digital signal source.
7. The method of claim 6, wherein converting the at least one downlink digital communications signal to the at least one second downlink analog RF communications signal further comprises: receiving formatted downlink data packets from the at least one downlink digital communications signal; de-capsulating the formatted downlink data packets into consecutive downlink digital words; modulating the consecutive downlink digital words to generate at least one downlink digital intermediate frequency (IF) signal; converting the at least one downlink digital IF signal to at least one downlink analog IF signal; attenuating unwanted products and harmonics in the at least one downlink analog IF signal; modulating the at least one downlink analog IF signal to generate the at least one second downlink analog RF communications signal; attenuating unwanted products and harmonics in the at least one second downlink analog RF communications signal; and adjusting the at least one second downlink analog RF communications signal to a first predetermined power level.
8. The method of claim 7, further comprising receiving common public radio interface (CPRI) formatted downlink data packets from the at least one downlink digital communications signal.
9. The method of claim 7, further comprising converting the at least one downlink digital IF signal to the at least one downlink analog IF signal using a digital-to-analog converter (DAC).
10. The method of claim 7, further comprising modulating the at least one downlink analog IF signal to generate the at least one second downlink analog RF communications signal based on a mixing frequency provided by a first local oscillator.
11. The method of claim 6, wherein converting the at least one second uplink analog RF communications signal to the at least one uplink digital communications signal further comprises: adjusting the at least one second uplink analog RF communications signal to a second predetermined power level; attenuating unwanted products and harmonics in the at least one second uplink analog RF communications signal; modulating the at least one second uplink analog RF communications signal to generate at least one uplink analog intermediate frequency (IF) signal; attenuating unwanted products and harmonics in the at least one uplink analog IF signal; converting the at least one uplink analog IF signal to at least one uplink digital IF signal; demodulating the at least one uplink digital IF signal to generate consecutive uplink digital words; encapsulating the consecutive uplink digital words in formatted uplink data packets; and providing the formatted uplink data packets in the at least one uplink digital communications signal.
12. The method of claim 11, further comprising providing common public radio interface (CPRI) formatted uplink data packets in the at least one uplink digital communications signal.
13. The method of claim 12, further comprising converting the at least one uplink analog IF signal to the at least one uplink digital IF signal using an analog-to-digital converter (ADC).
14. The method of claim 12, further comprising modulating the at least one second uplink analog RF communications signal to generate the at least one uplink analog IF signal based on a mixing frequency provided by a second local oscillator.
15. The method of claim 6, wherein converting the at least one downlink digital communications signal to the at least one second downlink analog RF communications signal further comprises: receiving formatted downlink data packets from the at least one downlink digital communications signal; de-capsulating the formatted downlink data packets into consecutive downlink digital words represented in at least one quadrature (Q) stream and at least one in-phase (I) stream; modulating the at least one Q stream and the at least one I stream to generate at least one downlink digital baseband quadrature (Q) signal and at least one downlink digital baseband in-phase (I) signal, respectively; converting the at least one downlink digital baseband Q signal and the at least one downlink digital baseband I signal to at least one downlink analog baseband Q signal and at least one downlink analog baseband I signal, respectively; attenuating unwanted products and harmonics in the at least one downlink analog baseband Q signal and the at least one downlink analog baseband I signal; combining the at least one downlink analog baseband Q signal and the at least one downlink analog baseband I signal to generate the at least one second downlink analog RF communications signal; attenuating unwanted products and harmonics in the at least one second downlink analog RF communications signal; and adjusting the at least one second downlink analog RF communications signal to a first predetermined power level.
16. The method of claim 15, further comprising receiving common public radio interface (CPRI) formatted downlink data packets from the at least one downlink digital communications signal.
17. The method of claim 16, further comprising converting the at least one downlink digital baseband Q signal and the at least one downlink digital baseband I signal to the at least one downlink analog baseband Q signal and the at least one downlink analog baseband I signal, respectively, using digital-to-analog converters (DACs).
18. The method of claim 16, further comprising modulating the at least one downlink analog baseband Q signal and the at least one downlink analog baseband I signal to generate the at least one second downlink analog RF communications signal based on a mixing frequency provided by a first local oscillator.
19. The method of claim 6, wherein converting the at least one second uplink analog RF communications signal to the at least one uplink digital communications signal further comprises: adjusting the at least one second uplink analog RF communications signal to a second predetermined power level; attenuating unwanted products and harmonics in the at least one second uplink analog RF communications signal; separating the at least one second uplink analog RF communications signal to generate at least one uplink analog baseband quadrature (Q) signal and at least one uplink analog baseband in-phase (I) signal; attenuating unwanted products and harmonics in the at least one uplink analog baseband Q signal and the at least one uplink analog baseband I signal; converting the at least one uplink analog baseband Q signal and the at least one uplink analog baseband I signal to at least one uplink digital baseband Q signal and at least one uplink digital baseband I signal, respectively; demodulating the at least one uplink digital baseband Q signal and the at least one uplink digital baseband I signal to generate consecutive uplink digital words represented in at least one Q stream and at least one I stream, respectively; encapsulating the at least one Q stream and the at least one I stream into formatted uplink data packets; and providing the formatted uplink data packets in the at least one uplink digital communications signal.
20. The method of claim 19, further comprising providing common public radio interface (CPRI) formatted uplink data packets in the at least one uplink digital communications signal.
21. The method of claim 20, further comprising converting the at least one uplink analog baseband Q signal and the at least one uplink analog baseband I signal to at least one uplink digital baseband Q signal and at least one uplink digital baseband I signal, respectively, using analog-to-digital converters (ADCs).
22. The method of claim 20, further comprising modulating the at least one second uplink analog RF communications signal to generate the at least one uplink analog baseband Q signal and the at least one uplink analog baseband I signal based on a mixing frequency provided by a second local oscillator.
23.-35. (canceled)
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0014]
[0015]
[0016]
[0017]
[0018]
[0019]
[0020]
[0021]
[0022]
DETAILED DESCRIPTION
[0023] Various embodiments will be further clarified by the following examples.
[0024] Embodiments disclosed in the detailed description include analog distributed antenna systems (DASs) supporting distribution of digital communications signals interfaced from a digital signal source and analog radio frequency (RF) communications signals. In certain analog DASs disclosed herein, head-end equipment (HEE) is provided and communicatively coupled to a plurality of remote units over a communications medium. Analog RF communications signals received from analog RF signal sources, such as base transceiver stations (BTSs), are distributed in the analog DAS to the plurality of remote units without being digitized. However, the analog DAS is also configured to interface with digital signal sources, such as baseband units (BBUs), and compatibly distribute digital communications signals to analog DAS components. Benefits of digital signal sources include smaller size, lower cost, reduced power consumption, and improved signal quality. In this regard, to support the distribution of digital communications signals received from a digital signal source(s) in the analog DAS, a digital signal interface provided in the HEE is configured to convert downlink digital communications signals received from the digital signal source(s) to downlink analog RF communications signals for distribution to the plurality of remote units in the analog DAS. Further, the digital signal interface is also configured to convert uplink analog RF communications signals received from the plurality of remote units, to uplink digital communications signals to be distributed to the digital signal source(s). By providing the digital signal interface in the HEE, the analog DAS can be configured to interface with the digital signal source(s) and compatibly distribute digital communications signals in an analog DAS to realize the benefits of the digital signals.
[0025] Before discussing examples of analog DASs supporting analog RF communications signals and digital communications signals distribution in an analog DAS starting at
[0026] In this regard,
[0027] In the analog DAS 12, the downlink RF communications signal 20D and the uplink RF communications signal 20U are both analog RF communications signals that can be directly modulated onto a carrier signal (e.g., electrical signal, radio signal, light signal, etc.) appropriate for distribution over the communications medium 22. In contrast, a digital communications signal cannot be directly distributed in the analog DAS 12 over the communications medium 22. To illustrate how the analog DAS 12 can be adapted to distribute digital communications signals received from a digital signal source (not shown),
[0028] In this regard,
[0029] With continuing reference to
[0030] The at least one RF signal interface 46 receives at least one first downlink analog RF communications signal 56 and provides the at least one first downlink analog RF communications signal 56 to the downlink communications signal interface 48. The at least one digital signal interface 36 receives and converts at least one downlink digital communications signal 58 into at least one second downlink analog RF communications signal 60 and provides the at least one second downlink analog RF communications signal 60 to the downlink communications signal interface 48. The downlink communications signal interface 48 combines the at least one first downlink analog RF communications signal 56 and the at least one second downlink analog RF communications signal 60 to create at least one combined downlink analog RF communications signal 62. The HEE front end interface 40 receives the at least one combined downlink analog RF communications signal 62. The HEE front end interface 40 in turn modulates the at least one combined downlink analog RF communications signal 62 into a plurality of medium-adapted downlink analog RF communications signals 64(1)-64(N) that are adapted according to the plurality of downlink communications mediums 42(1)-42(N) and to be transmitted over the plurality of downlink communications mediums 42(1)-42(N) to the plurality of remote units 38(1)-38(N), respectively.
[0031] The HEE front end interface 40 receives a plurality of medium-adapted uplink analog RF communications signals 66(1)-66(N) from the plurality of remote units 38(1)-38(N) over the plurality of uplink communications mediums 44(1)-44(N), respectively. The HEE front end interface 40 demodulates the plurality of medium-adapted uplink analog RF communications signals 66(1)-66(N) to generate at least one combined uplink analog RF communications signal 68. The uplink communications signal interface 50 receives the at least one combined uplink analog RF communications signal 68. The uplink communications signal interface 50 then processes the at least one combined uplink analog RF communications signal 68 to generate at least one first uplink analog RF communications signal 70 and at least one second uplink analog RF communications signal 72. The at least one RF signal interface 46 receives and provides the at least one first uplink analog RF communications signal 70 to the at least one analog RF signal source 52. The at least one digital signal interface 36 receives and converts the at least one second uplink analog RF communications signal 72 into at least one uplink digital communications signal 74. The at least one digital signal interface 36 then provides the at least one uplink digital communications signal 74 to the at least one digital signal source 54.
[0032] In a non-limiting example, the analog DAS 30 is adapted to only support the at least one digital signal source 54 and the at least one RF signal interface 46 is eliminated from the HEE signal interface 32. As a result, the at least one first downlink analog RF communications signal 56 and the at least one first uplink analog RF communications signal 70 will no longer be present. Nonetheless, the at least one second downlink analog RF communications signal (“the at least one downlink analog RF communications signal”) 60 and the at least one second uplink analog RF communications signal (“the at least one uplink analog RF communications signal”) 72 are supported in the same way as discussed above.
[0033]
[0034] With reference to
[0035] The at least one RIM 94 receives at least one first downlink analog RF communications signal 104 and provides the at least one first downlink analog RF communications signal 104 to the downlink communications signal interface 96. The BIM 86 receives and converts at least one downlink digital communications signal 106 into at least one second downlink analog RF communications signal 108 and provides the at least one second downlink analog RF communications signal 108 to the at least one downlink communications signal interface 96. The downlink communications signal interface 96 combines the at least one first downlink analog RF communications signal 104 and the at least one second downlink analog RF communications signal 108 to create a plurality of combined downlink analog RF communications signals 110(1)-110(N). The plurality of OIMs 88(1)-88(N) receives the plurality of combined downlink analog RF communications signals 110(1)-110(N), respectively. The plurality of OIMs 88(1)-88(N) in turn converts the plurality of combined downlink analog RF communications signals 110(1)-110(N) into a plurality of downlink optical communications signals 112(1)-112(N) and transmits the plurality of downlink optical communications signals 112(1)-112(N) to the plurality of remote units 38(1)-38(N), respectively.
[0036] The plurality of OIMs 88(1)-88(N) receives a plurality of uplink optical communications signals 114(1)-114(N) from the plurality of remote units 38(1)-38(N) over the plurality of uplink optical communications mediums 92(1)-92(N), respectively. The plurality of OIMs 88(1)-88(N) converts the plurality of uplink optical communications signals 114(1)-114(N) into a plurality of combined uplink analog RF communications signals 116(1)-116(N), respectively. The uplink communications signal interface 98 receives the plurality of combined uplink analog RF communications signals 116(1)-116(N). The uplink communications signal interface 98 then processes the plurality of combined uplink analog RF communications signals 116(1)-116(N) and generates at least one first uplink analog RF communications signal 118 and at least one second uplink analog RF communications signal 120. The at least one RIM 94 receives and provides the at least one first uplink analog RF communications signal 118 to the at least one BTS 100. The BIM 86 receives and converts the at least one second uplink analog RF communications signal 120 into at least one uplink digital communications signal 122. The BIM 86 then provides the at least one uplink digital communications signal 122 to the at least one BBU 102.
[0037] In the optical fiber-based analog DAS 80, it may be more efficient to combine analog RF communications signals before providing to the remote units 38(1)-38(N). Likewise, it may be more desirable to split analog RF communications signals received from the remote units 38(1)-38(N) before providing to the RIM 94 and the BIM 86. In this regard,
[0038] Although the BIM 86 is shown to be inside the HEE 84 in
[0039] On the downlink signal processing path 144, the digital data processing circuit 142 receives the at least one downlink digital communications signal 106, which carries formatted downlink data packets (not shown) from the at least one BBU 102 (not shown). In a non-limiting example, the formatted downlink data packets (not shown) conform to a common public radio interface (CPRI) format. The digital data processing circuit 142 is configured to de-capsulate the formatted downlink data packets (not shown) into consecutive downlink digital words (not shown). The consecutive downlink digital words (not shown) are then modulated to generate at least one downlink digital IF signal 148. A digital-to-analog converter (DAC) 150 receives and converts the at least one downlink digital IF signal 148 to at least one downlink analog IF signal 152. A first downlink filter 154 is provided to remove or attenuate unwanted products and harmonics from the at least one downlink analog IF signal 152. A downlink modulator 156 is provided to receive the at least one downlink analog IF signal 152 after the at least one downlink analog IF signal 152 passes through the first downlink filter 154. The downlink modulator 156 in turn modulates the at least one downlink analog IF signal 152 based on a mixing frequency 158 provided by a first local oscillator 160 to generate the at least one second downlink analog RF communications signal 108. By controlling the mixing frequency 158, a center frequency of the at least one second downlink analog RF communications signal 108 may be adjusted to match a RF frequency used by the optical fiber-based analog DAS 80 (not shown). A second downlink filter 162 is provided to remove or attenuate unwanted products and harmonics from the at least one second downlink analog RF communications signal 108. A downlink variable gain amplifier 164 adjusts the at least one second downlink analog RF communications signal 108 to a first predetermined power level before providing to the downlink communications signal interface 96 (not shown).
[0040] With continuing reference to
[0041] Digital and analog IF signals used in the BIM 140 in
[0042] On the downlink signal processing path 188, the digital data processing circuit 186 receives the at least one downlink digital communications signal 106, which carries formatted downlink data packets (not shown), from the at least one BBU 102 (not shown). In a non-limiting example, the formatted downlink data packets (not shown) conform to the CPRI format. The digital data processing circuit 186 is configured to de-capsulate the formatted downlink data packets (not shown) into consecutive downlink digital words (not shown) represented in at least one Q stream (not shown) and at least one I stream (not shown). The at least one Q stream (not shown) and at least one I stream (not shown) are then modulated at the digital data processing circuit 186 to generate at least one downlink digital baseband Q signal 192 and at least one downlink digital baseband I signal 194, respectively. A downlink Q signal DAC 196 and a downlink I signal DAC 198 are provided on the downlink signal processing path 188 to convert the at least one downlink digital baseband Q signal 192 and the at least one downlink digital baseband I signal 194 into at least one downlink analog baseband Q signal 200 and at least one downlink analog baseband I signal 202, respectively. A first downlink Q signal filter 204 and a first downlink I signal filter 206 are provided to remove or attenuate unwanted products and harmonics from the at least one downlink analog baseband Q signal 200 and the at least one downlink analog baseband I signal 202, respectively.
[0043] A downlink quadrature modulator 208 in turn combines the at least one downlink analog baseband Q signal 200 and the at least one downlink analog baseband I signal 202 to generate the at least one second downlink analog RF communications signal 108. In a non-limiting example, the downlink quadrature modulator 208 comprises a downlink Q signal modulator 210 and a downlink I signal modulator 212. A downlink phase shifter 214 is coupled to the downlink Q signal modulator 210 and the downlink I signal modulator 212 to provide orthogonally between the downlink Q signal modulator 210 and the downlink I signal modulator 212. The downlink quadrature modulator 208 also comprises a first local oscillator 216, which is coupled to the downlink phase shifter 214 and configured to provide a downlink mixing frequency 218. By controlling the downlink mixing frequency 218, a center frequency of the at least one second downlink analog RF communications signal 108 may be adjusted to match a RF frequency used by the optical fiber-based analog DAS 80. A second downlink filter 220 is provided to remove or attenuate unwanted products and harmonics from the at least one second downlink analog RF communications signal 108. A downlink variable gain amplifier 222 adjusts the at least one second downlink analog RF communications signal 108 to a first predetermined power level before providing to the downlink communications signal interface 96 (not shown).
[0044] On the uplink signal processing path 190, an uplink variable gain amplifier 224 receives the at least one second uplink analog RF communications signal 120 from the uplink communications signal interface 98 (not shown). The uplink variable gain amplifier 224 is configured to adjust the at least one second uplink analog RF communications signal 120 to a second predetermined power level. The at least one second uplink analog RF communications signal 120 is then received by a first uplink filter 226, which is configured to remove or attenuate unwanted products and harmonics in the at least one second uplink analog RF communications signal 120. An uplink quadrature demodulator 228 receives and separates the at least one second uplink analog RF communications signal 120 to generate at least one uplink analog baseband Q signal 230 and at least one uplink analog baseband I signal 232. In a non-limiting example, the uplink quadrature demodulator 228 comprises an uplink Q signal modulator 234 and an uplink I signal modulator 236. An uplink phase shifter 238 is coupled to the downlink Q signal modulator 234 and the downlink I signal modulator 236 to provide orthogonality between the uplink Q signal modulator 234 and the uplink I signal modulator 236. The uplink quadrature demodulator 228 also comprises a second local oscillator 240, which is coupled to the uplink phase shifter 238 and configured to provide an uplink mixing frequency 242. By controlling the uplink mixing frequency 242, a center frequency of the at least one uplink analog baseband Q signal 230 and the at least one uplink analog baseband I signal 232 may be adjusted to match a baseband frequency used by the at least one BBU 102 (not shown).
[0045] A second uplink Q signal filter 244 and a second uplink I signal filter 246 are provided to remove or attenuate unwanted products and harmonics from the at least one uplink analog baseband Q signal 230 and the at least one uplink analog baseband I signal 232, respectively. Subsequently, an uplink Q signal ADC 248 and an uplink I signal ADC 250 are provided on the uplink signal processing path 190 to convert the at least one uplink analog baseband Q signal 230 and the at least one uplink analog baseband I signal 232 into at least one uplink digital baseband Q signal 234 and at least one uplink digital baseband I signal 236, respectively. The at least one uplink digital baseband Q signal 234 and the at least one uplink digital baseband I signal 236 are received by the digital data processing circuit 186 and demodulated to generate consecutive uplink digital words represented in at least one Q stream (not shown) and at least one I stream (not shown), respectively. The digital data processing circuit 186 then encapsulates the at least one Q stream (not shown) and the at least one I stream (not shown) into formatted uplink data packets (not shown). In a non-limiting example, the formatted uplink data packets (not shown) also conform to the CPRI format. Subsequently, the digital data processing circuit 186 provides the at least one uplink digital communications signal 122, which carries the formatted uplink data packets (not shown), to the at least one BBU 102 (not shown).
[0046]
[0047]
[0048] The analog DAS 30 in
[0049] Unless otherwise expressly stated, it is in no way intended that any method set forth herein be construed as requiring that its steps be performed in a specific order. Accordingly, where a method claim does not actually recite an order to be followed by its steps or it is not otherwise specifically stated in the claims or descriptions that the steps are to be limited to a specific order, it is no way intended that any particular order be inferred.
[0050] It will be apparent to those skilled in the art that various modifications and variations can be made without departing from the spirit or scope of the invention. Since modifications combinations, sub-combinations and variations of the disclosed embodiments incorporating the spirit and substance of the invention may occur to persons skilled in the art, the invention should be construed to include everything within the scope of the appended claims and their equivalents.