WO2004047472A1 - Optical fiber coupling configurations for a main-remote radio base station and a hybrid radio base station - Google Patents

Optical fiber coupling configurations for a main-remote radio base station and a hybrid radio base station Download PDF

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Publication number
WO2004047472A1
WO2004047472A1 PCT/SE2003/001682 SE0301682W WO2004047472A1 WO 2004047472 A1 WO2004047472 A1 WO 2004047472A1 SE 0301682 W SE0301682 W SE 0301682W WO 2004047472 A1 WO2004047472 A1 WO 2004047472A1
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WIPO (PCT)
Prior art keywords
remote
unit
main
base station
units
Prior art date
Application number
PCT/SE2003/001682
Other languages
French (fr)
Inventor
Torbjörn CAGENIUS
Original Assignee
Telefonaktiebolaget Lm Ericsson (Publ)
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Publication date
Application filed by Telefonaktiebolaget Lm Ericsson (Publ) filed Critical Telefonaktiebolaget Lm Ericsson (Publ)
Priority to AU2003274879A priority Critical patent/AU2003274879A1/en
Priority to AT03759156T priority patent/ATE472864T1/en
Priority to EP03759156A priority patent/EP1563700B1/en
Priority to DE60333215T priority patent/DE60333215D1/en
Publication of WO2004047472A1 publication Critical patent/WO2004047472A1/en
Priority to HK06106706A priority patent/HK1086973A1/en

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Classifications

    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B10/00Transmission systems employing electromagnetic waves other than radio-waves, e.g. infrared, visible or ultraviolet light, or employing corpuscular radiation, e.g. quantum communication
    • H04B10/25Arrangements specific to fibre transmission
    • H04B10/2575Radio-over-fibre, e.g. radio frequency signal modulated onto an optical carrier
    • H04B10/25752Optical arrangements for wireless networks
    • H04B10/25758Optical arrangements for wireless networks between a central unit and a single remote unit by means of an optical fibre
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B10/00Transmission systems employing electromagnetic waves other than radio-waves, e.g. infrared, visible or ultraviolet light, or employing corpuscular radiation, e.g. quantum communication
    • H04B10/25Arrangements specific to fibre transmission
    • H04B10/2575Radio-over-fibre, e.g. radio frequency signal modulated onto an optical carrier
    • H04B10/25752Optical arrangements for wireless networks
    • H04B10/25753Distribution optical network, e.g. between a base station and a plurality of remote units
    • H04B10/25755Ring network topology
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B17/00Monitoring; Testing
    • H04B17/10Monitoring; Testing of transmitters
    • H04B17/15Performance testing
    • H04B17/19Self-testing arrangements

Definitions

  • the present invention is directed to radio communications where a base station includes a main baseband processing unit and plural radio remote units where RF processing occurs.
  • a conventional radio base station in a cellular communications system is generally located in a single location, and the distance between the baseband circuitry and the radio circuitry is relatively short, e.g., on the order of one meter.
  • a distributed base station design referred to as a main-remote design, splits the baseband part and the radio part of the base station.
  • the main unit MU
  • the main unit performs base band signal processing
  • one or more radio remote units (RRUs) converts between baseband and radio frequencies and transmits and receives signals over one or more antennas.
  • Each RRU serves a certain geographic area or cell.
  • Separate, dedicated optical links connect the main unit to each of the plural radio remote units.
  • Each optical link includes one optical fiber for carrying digital information downlink from the main unit to the RRU and another optical fiber for carrying digital information uplink from the RRU to the main unit.
  • Some mobile communication standards e.g., the code division multiple access (CDMA) cellular system, permit a UE to communicate with two or more RRUs of the same base station using "softer handover."
  • softer handover two or more RRUs simultaneously transmit the same information to the UE and receive the same information from the UE.
  • the simultaneously transmitted signals must be processed to generate a single signal.
  • Some radio standards require that in the downlink direction, the signals simultaneously transmitted to the UE from different antennas be aligned with a timing reference at the antennas. That alignment makes combining those different signals easier on the receiver.
  • the main unit base band functionality includes a rake receiver which combines the "same" signals received from the UE via the RRUs and generates a single signal.
  • a rake receiver can combine out-of-phase signals from different signal paths, a less complicated and less expensive rake receiver may be used if the phase/delay differences between different signal paths are kept small.
  • a significant phase or timing difference may be attributed to the different lengths of the optical fibers coupling different RRUs to the main unit as compared to a conventional base station.
  • Different optical link delays are more problematic as the distance between the remote unit 16 and the main unit increases, e.g., 10 kilometers.
  • such delays ' are not constant and may vary depending on temperature and other factors.
  • the different optical fiber lengths to the remote units result in a time/phase shift of the signals sent out from the antennas connected to the radio remote units. They also lead to larger time/phase shifts between the UE signal components received via different radio remote units. These time/phase shifts may be difficult for conventional receivers in the UE and in the base station to handle.
  • the near radio units which do not have any optical link delays, are not synchronized with the remote radio units that do have link delays.
  • One optical link delay/ synchronization solution is presented in commonly- assigned, U.S. patent application serial number, 10/252,827, filed on September 23, 2002, entitled “Synchronizing Radio Units In A Main-Remote Radio Base Station And In A Hybrid Radio Base Station," the disclosure of which is incorporated herein by reference.
  • Another challenge in main-remote configurations is how best to connect the main and remote units. Separate optical fibers with associated separate lasers and light detectors may be used to link the main unit with each remote unit.
  • Each RRU communicates with the main unit using its own dedicated optical fiber loop. But the amount of fiber required is significant— s is the cost for separate main unit-RRU fiber loops. The cost of the laser and detector equipment associated with each fiber pair in the main unit is also significant. And in some deployment scenarios may require cascading several remote units, e.g., along a highway, in a tunnel, or along an existing fiber infrastructure, e.g., a metro ring. So it would be desirable to connect the main unit with each remote unit using a single fiber.
  • Fig. 1 A shows an example of a main-remote base station system at reference numeral 10 where the main unit ahd RRU are connected in cascade using a single fiber.
  • the main unit 12 includes radio base station baseband (BB) .. ⁇ • functionality 14.
  • An optical fiber, divided. into four links L1-L4 connects the' main and remote units in a loop.
  • a first optical link LI couples the main unit 12 to a first radio remote unit 16a.
  • a second optical link L2 couples the main unit 12 to a second radio remote unit 16b.
  • a third optical link L3 couples the main unit 12 to a third radio remote unit 16c.
  • a fourth optical link L4 couples the third radio remote unit 16c to the main unit 12.
  • additional radio remote units could be coupled to the main unit 12.
  • a mobile radio user equipment (UE) 18 and one or more of the radio remote units 16a-16c communicate over a radio interface.
  • UE mobile radio user equipment
  • wavelength division multiplexing may be used to reduce the amount of fiber used and the laser/ detector equipment.
  • Each remote unit is assigned its own, corresponding laser wavelength.
  • the different wavelength communications for all of the remote units are multiplexed onto a single fiber.
  • One downlink fiber is used for traffic from the main unit to all the remote units, and one uplink fiber is used for traffic from the remote units to the main unit making up a single fiber loop.
  • An optical add/drop multiplexer (OADM) is located inside or near each remote unit. The OADM adds or drops only the unique wavelength related to that particular remote unit to the fiber.
  • a drawback with this approach is the expense of WDM technology including lasers, filters, and OADMs. Another is logistical overhead to keep track of different wavelength dependent devices.
  • a main-remote radio base station system includes plural remote radio units.
  • Optical fiber costs are significantly reduced using a single optical fiber loop (one downlink fiber path and one uplink fiber path) to communicate information between the main unit and the remote units in a cascade,
  • Information from the main unit is sent over a first fiber in the pair to the remote units so that the same information is transmitted by the remote units at substantially the same time. Assuming there are N remote units, (N being a positive non-zero integer), the main unit sends out the information over the first fiber at N times the rate at which data is to be received at each remote unit. The main unit receives the same information from each of the remote units over the second fiber at substantially the same time.
  • a data distribution approach over a single fiber loop avoids the expense of WDM technology including lasers, filters, and OADMs as well as the logistical overhead needed to keep track of different wavelength dependent devices.
  • the main unit combines N words of data, one word corresponding to each of the N remote units, into a frame and transmits the frame on the fiber. From the received frame, each remote unit removes its corresponding data word, includes > an uplink word in the removed word's place, and passes' the frame to the next remote unit. Because one fiber loop carries all of the information for each of the N remote units, the data rate is N times the data rate that would be used if each remote unit was coupled to the main unit with its own fiber loop.
  • Delay associated with each remote unit is compensated for by advancing a time when information is sent to each remote unit.
  • a timing compensator for each remote unit compensates for any associated delay.
  • the timing compensation controller selects a maximum delay. In an example embodiment, that delay corresponds to the delay associated with the remote radio unit farthest from the main unit.
  • An advanced transmit time is determined for each remote radio unit based on the maximum link delay. In a specific example embodiment, the transmission time for digital timing and data signals is advanced by twice the maximum link delay.
  • the main digital interface unit includes for each remote radio unit a transmit buffer and a receive buffer.
  • the timing compensation controller sets the transmit buffering time that the data signal is stored in the transmit buffer before the data signal is sent on the one or more digital data channels.
  • a responsive data signal from the remote digital interface unit is stored in the receive buffer for a receive buffering time.
  • the sum of the transmit buffering time or receive buffering time and the delay for the remote unit equals the maximum delay. Delay differences associated with distance differences on the order of meters up to 100 kilometers or more can be compensated.
  • the invention may also be employed in a hybrid radio base station that includes both near/conventional and remote radio units.
  • the present invention provides a cost effective optical fiber configuration to couple a base station main unit and plural base station remote units. Only a single optical fiber loop is needed to carry information between the main unit and the remote units.
  • the configuration avoids the expense and drawbacks if WDM technology were used in a single fiber loop configuration.
  • Lasers, filters, and optical add/ drop multiplexers (OADMs) for each RRU are not needed thereby eliminating costs necessary for a WDM fiber loop configuration.
  • the logistical WDM overhead required to keep track of different wavelength dependent devices is also avoided.
  • the invention compensates for time delay differences associated with different remote units coupled in series by a single fiber to ensure synchronization.
  • Figs. 1A-1D illustrate different example configurations of a main- remote radio base station system
  • Fig. 2 illustrates in function block form a main unit and a radio remote unit from the main-remote radio base station system
  • Fig. 3A illustrates in function block form one example embodiment of an optical baseband interface of the radio remote unit in the main-remote radio base station system for a configuration like that in Fig. '1 A;
  • Fig. 3B illustrates in function block form another example embodiment of an optical baseband interface of the radio remote unit in the main- remote radio base station system for a configuration like that in Fig. IB;
  • Fig. 4A illustrates in function block form one example embodiment of the optical baseband interface of the main unit in the main-remote base station system
  • Fig. 4B illustrates in function block form another example embodiment of the optical baseband interface of the main unit in the main-remote base station system
  • FIG. 5 illustrates digital optical interface link delay measurement in accordance with the example shown in Fig. 4B
  • Figs. 6A and 6B are flowcharts illustrating two example procedures for digital optical interface link delay measurement and compensation
  • Fig. 7 shows a timing diagram illustrating an example of delay equalization for a main unit-three remote unit configuration
  • Fig. 8 shows timing diagrams to illustrate certain aspects of the digital optical interface link delay compensation in accordance with one example aspect of the invention.
  • Fig. 9 illustrates in function block form a hybrid base station that employs one application of the invention.
  • the present invention may be used in any cellular system employing a main-remote radio base station architecture having any number of remote units configured in any network topology where plural RRUs can be coupled in an optical fiber loop. It may also be used in any cellular system employing a hybrid base station. Although some of the following examples employ a single fiber loop, the invention may also be used in coupling configurations that use plural fibers.
  • the present invention finds advantageous, but still example, application to a CDMA mobile communications network that supports softer handover.
  • a CDMA-based radio access network which, for example, may be a UMTS Terrestrial Radio Access Network (UTRAN).
  • the UTRAN includes one or more radio network controllers (RNC) which communicate over a suitable interface, and each RNC is coupled to plural radio base stations.
  • RNC radio network controllers
  • One or more the radio base stations may be configured as a main-remote base station system such as is shown in Fig. 1A where different remote radio units (RRUs) 16 are coupled to a main unit 12 via a single optical fiber.
  • a series configuration communicates information from the main unit to all of the RRUs over one optical fiber and any intervening RRUs, although additional or redundant fibers may be used.
  • a synchronous connection is employed between the main unit and the remote units to minimize the need for "intelligence" in the remote units such as buffering, resynchronization, etc., and thereby cost.
  • a synchronous connection seeks to keep the RF signal at each remote unit's antenna within specified limits relative to a reference signal in the main unit.
  • the optical fiber includes a series of links that couple adjacent units together in series.
  • four optical links L1-L4 couple the main and remote units together in series and form a loop or ring.
  • the main unit 12 is connected to the RRU 16a by link LI of the fiber.
  • the RRU 16a is connected to the RRU 16b by link L2 of the fiber.
  • the RRU 16b is connected to the RRU 16c by link L3 of the fiber.
  • the RRU 16c is connected to the main unit by link L4 of the fiber.
  • the links L1-L4 form a first downlink fiber path and a second uplink fiber path in a single fiber loop.
  • the downlink path and uplink path includes different links for each RRU.
  • the downlink path for RRU 16a includes link LI
  • the uplink path includes links L2, L3, and L4.
  • the downlink path for RRU 16b includes links LI and L2
  • the uplink path includes links L3 and L4.
  • the downlink path for RRU 16c includes links LI, L2, and L3, and the uplink path includes link L4.
  • Fig. ID shows an example of the fiber coupling configuration in Fig. 1A applied to a "sectored" base station. Each sector of the base station is served by a corresponding RRU. Because the links LI and L4 are much longer than links L2 and L3, link delays associated withL2 and L3 may be ignored if desired, with delay compensation. (described in detail below) provided- for to the link delays associated: with longer links LI and. L4.
  • Fig. IB shows a second example, fiber coupling configuration.
  • each RRU has an optical loop with intervening RRUs that pass on that RRU's information.
  • the first, downlink fiber path includes links L1-L3
  • the second, uplink fiber path includes links L4-L6.
  • Fig. 1C shows another example cascade configuration similar to that of Fig. 1 A with an optional redundant optical fiber for communicating information between the main unit and the remote units but in the direction opposite.
  • the first loop is the "east” loop represented by the letter “e”
  • the opposite loop is the "west” loop represented by the letter “e”.
  • This dual fiber loop with an east-west configuration adds redundancy as well as additional protection.
  • the RRUl 6a can be re-configured automatically to use link LI w to transmit to the Main Unit 12 and to use the link Lie to receive from the Main Unit.
  • the other RRU's can be configured correspondingly to use links L3 and L4 for communication with the Main Unit 12.
  • Fig. 2 illustrates in function block form the main unit 12 coupled to one RRU 16.
  • a digital optical interface sometimes referred to below as an Optical Interface Link (OIL) interface, is used in digital communications between the main unit 2 and the RRU 16.
  • the main unit includes an optical baseband interface ; • '. (OBIF) unit 28, and the RRU 16 includes an optical baseband interface (OBIF) v unit 30.
  • the OBIF 28 and 30 support the digital optical interface.
  • the electrical side of the digital optical interface includes parallel, digital channels for data signals, . . timing signals, and control signals.
  • the optical side outputs that digital information as a serial stream of optical signals.
  • a 16-bit wide digital optical interface includes 16 parallel digital channels.
  • the main unit 12 includes a timing unit 20 that generates one or more timing signals such as a frame synchronization (FS) signal which is provided to the OBIF 28 as a digital timing channel corresponding to one or more bits in the OIL interface.
  • a main unit controller 22 generates control signals provided to the OBIF 28 over a digital control channel corresponding to one or more bits in the OIL interface.
  • One or more baseband transmitters 24 provide digital data to the OBIF 28 over one or more digital channels corresponding to one or more bits in the OIL interface.
  • One or more baseband receivers 26 receive digital data sent by the RRU 16.
  • the timing reference for the baseband transceiving circuitry may be generated in any appropriate manner.
  • a timing signal e.g., a frame synchronization signal provided from the OBIF 28, may be used for the baseband transmitters 24 and for the baseband receivers 26.
  • the timing signals for the transmitters and receivers need not be identical, e.g., they could be altogether different or they may be shifted relative to each other.
  • the RRU 16 has a similar (though not identical) OBIF 30 coupled to a transceiver 32 and to an RRU controller 42.
  • the RRU controller 42 receives and sends control signals over the digital control channel.
  • the transceiver 32 receives and sends digital data from/ to the OBIF 30.
  • the received data is processed, modulated, filtered, frequency up-converted, and amplified in a power amplifier 34 before being transmitted over an antenna to a mobile radio UE 18 by way of a duplex filter 36.
  • UE radio signals received from the antenna 38 and duplex-filtered at 36 are amplified in a low noise amplifier 40 and similarly handled in transceiver 32 but in complementary fashion.
  • the OBIF 30 forwards signals received from the " « adjacent unit (here the main unit) to the next RRU in the series and includes any irresponsive UE signal as well.
  • the OBIF 30 forwards signals received from the " « adjacent unit (here the main unit) to the next RRU in the series and includes any irresponsive UE signal as well.
  • Fig. 3A illustrates further details of the OBIF 30 in each RRU 16 for the example coupling configuration in Fig. 1 A.
  • An optical signal transmitted over the optical link from the main unit 12 includes a frame of multiple digital "words" of information. Each word is intended for one of the RRUs and is converted into a serial digital electrical signal in an optical-to-electrical converter 70, such as a PIN diode. In the non-limiting example above, each word may include 16 bits of control, data, and sync information. If there are three RRUs connected in cascade, then the frame includes three 16-bit words.
  • the first RRU's word is in the first position in the frame; the second RRU's word is in the second position in the frame; and the third RRU's word is in the third position in the frame.
  • the de-serializer 72/serializer 74 can be implemented for example as a demultiplexer/multiplexer pair that may also perform link handling like setting up link synchronization, link fault handling, etc. Such a demultiplexer/multiplexer pair is available as a standard chip set, e.g., the Agilent HDMP 1032/1034 or the TI TLK 2501.
  • the RRU de-serializer 72 converts the data word (16-bits of data in this example) for this RRU 16 from a serial digital signal into a parallel digital signal and routes the parallel signal to the transceiver 32 and RRU controller 42.
  • the parallel signal sent to the transceiver 32 and the RRU controller 42 includes the digital data, timing, and control channel signals.
  • the remaining data bits destined for the other RRUs are passed through to the serializer 74.
  • the serializer 74 also receives parallel uplink data from this RRU to be sent to the main unit from the transceiver 32 and RRU controller 42. It converts the uplink data into serial format and includes that uplink serial data in the word position in the frame corresponding .to this RRU.
  • An electrical-to-optical converter 76 converts the digital frame into an optical signal for transmission over an optical fiber to the- next RRU in the cascade or to the -main unit 12 if it is next in the cascade.
  • An example of an electrical-to-optical • converter is a laser diode.
  • Fig. 3B illustrates further details of the OBIF 30 in an RRU 16 for the example coupling configuration in Fig. IB.
  • RRU 16a is used for purposes of illustration.
  • the OBIF 30 is similar to that shown in Fig. 3A except that two sets of converters 70, 76 and de-serializers/serializers 72, 74 are employed.
  • the main unit sends an optical signal over link LI to RRU 16a.
  • the received optical signal is converted into electrical signal by an optical to electrical converter 70, which delivers the digital electrical signal to the de-serializer 72.
  • the RRU de-serializer 72 converts the data word for this RRU 16a from a serial digital signal into a parallel digital signal and routes that parallel signal to the transceiver 32 and RRU controller 42 in this RRU 16a.
  • the remaining data bits destined for the other RRUs (16b and 16c) are passed through to the serializer 74 at the bottom of the figure.
  • That serializer 74 converts that passed through data into serial format and sends the serial signal to the electrical-to-optical converter 76.
  • the electrical-to-optical converter 76 converts the received electrical signal into an optical signal for transmission over the optical link L2 to the next RRU 16b.
  • the RRU 16a receives an optical signal from RRU 16b over link L5 and coverts it into electrical format in optical to electrical converter 70.
  • the de-serializer 72 converts the serial digital signal from converter 70 into a parallel digital signal that includes data words from RRU 16b and RRU 16c.
  • the parallel digital signal is provided to the serializer 74 as pass through data.
  • the serializer 74 inserts uplink data words from the transceiver 32 and controller 42 in RRU 16a into each frame with words from RRU 16b and RRU 16c.
  • the serializer 74 converts the framed data words into serial format and sends the serial signal to the electrical-to-optical converter 76.
  • the electrical-to-optical converter 76 converts the digital signal into an- optical signal for transmission over an optical link L6 to the main unit 12.
  • Fig. 4A illustrates further details of the OBIF 28 in the main unit 12 assuming a configuration like the one in Fig. 1A. Details are shown for one of the RRUs— RRU 16a— to simplify the illustration and explanation.
  • Each RRU has an associated OIL label, e.g., RRU 16a has OIL 1, RRU 16b has OIL 2, and RRU 16c has OIL 3. Because the control signaling relates only to the RRU, it does not require any OIL equalization.
  • the OIL equalizer 44 includes for each RRU a time shifter 42, a transmission buffer 46, a receive buffer 48, and a buffer depth controller 50.
  • the transmission (Tx) buffer 46 associated with each RRU is a first- in-first-out (FIFO) buffer that receives data from the baseband transmitter 24. The data is stored for a time period corresponding to the FIFO's buffer depth before being output on the data channel to the serializer 54.
  • the main unit processor 22 provides the digital control signal for each word, and the main unit OIL equalizer 44 provides the digital data and timing signals for each word.
  • the serializer 54 receives words from the TX buffers associated with each RRU and includes three digital words — one for RRU 16a, one for RRU 16b, and one for RRU 16c — into a frame. The words are positioned in the frame in sequential order— ord 1, word 2, and word 3— for easy extraction at the appropriate RRU by its deserializer 72. The serializer 54 then converts the parallel data into serial form and sends the serial data to the electrical to optical converter 56 for conversion to optical format and transmission over the next fiber link, which in this example is link LI .
  • the FIFO buffer depth is controlled by the buffer depth controller 50.
  • the timing reference comes from a frame synchronization signal.
  • the frame sync is sent to the base band receivers 26 (unshifted in time) and to the frame sync time shifter 42.
  • the frame sync time shifter 42 advances the frame sync signal by a predetermined time interval, (described below), and sends the time-advanced frame sync to the transmission FIFO buffer 46,
  • the frame sync is delayed in the FIFO buffer 46 along with the data to preserve the timing relationship between the frame sync and the data.
  • the shifted frame sync is used by the base band transmitters 24 for early transmission of the downlink data as described further below.
  • the unshifted frame sync is sent to the base band receivers 26 as a timing reference.
  • another example approach is to delay the uplink timing reference signal by the predetermined amount. This latter approach does not require shifting of the frame sync signal in the downlink path but in the uplink path. Still another example approach does not rely on or affect the frame sync, but instead the transmit timing is advanced by a software setting in the transmitter.
  • the optical to electrical converter 58 receives an optical signal from the optical link L4 and converts it into electrical format.
  • the de-serializer 60 converts that serial signal into parallel format.
  • Each OIL equalizer 44 includes a receive FIFO buffer 48 that receives the parallel digital data and a "looped back" frame sync signal from the corresponding de-serializer 60.
  • the data and frame sync are stored for a time period, corresponding to the FIFO's buffer depth and controlled by the buffer depth controller 50, before outputting the data and frame sync on the data channel and timing channels, respectively.
  • the FIFO data and frame sync are sent to the baseband receiver 26.
  • a data table 62 is provided which stores, for the example configuration of Fig. 1 A, delays associated with each RRU. Specifically, each RRU is a different distance from the main unit. In this example in Fig. 4A, those delays are measured manually, and the measured delays are stored in the data table 62.
  • the timing compensation controller 52 accesses the delay for each RRU when setting the buffer depth controlled by the buffer depth controller 50.
  • Fig. 4B illustrates further details of the OBIF 28 in the main unit 12 for one of the RRUs-RRU 16a.
  • an automatic delay measurement can be used because the one-way delay is half of the round- trip delay.
  • Fig. 4B employs a counter 63 for automatically measuring those delays. More specifically, at the same time the frame sync signal is sent to the corresponding serializer 54, it is also sent to start the counter 63.
  • the counter 63 counts, using a clock or other appropriate signal, until it is stopped by receipt of the looped back frame sync signal from the de-serializer 60.
  • the count value, corresponding to the measured delay associated with sending data to a particular RRU is provided to the timing compensation controller 52.
  • the timing compensation controller 52 receives delay count values for the other RRUs and determines a maximum delay value. As one example, the timing compensation controller 52 may select the largest count value as the maximum delay value. The timing compensation controller 52 sends twice the maximum delay value to the time shifter 42 to provide the advanced time reference when the data and frame sync should be sent to the transmission buffer 46. The timing compensation controller 52 uses the difference between the maximum delay and the measured/ counted delay value for each RRU to determine the FIFO buffer depth sent to the buffer depth controller 50.
  • the automatic optical link delay measurement is illustrated conceptually in Fig. 5 for a single main unit/ remote radio unit link. The same measurement process may be used for all of the remote radio units.
  • the frame sync pulse in the main unit OBIF 28 starts the timer 63. At the same time, the frame sync pulse is transmitted over the downlink fiber path and any intervening RRUs to the RRU OBIF 30 where the de-serializer 72 "loops it back" over the return fiber path via an intervening RRUs to the main unit. Delays over the air interface and in the UE are not measured.
  • the serializer 74 returns the looped back frame sync over the return fiber path in the optical link to the main unit OBIF 28 where it stops the counter.
  • the delay time required to loop the sync pulse back is reflected in the count value and is forwarded to the timing compensation controller 52.
  • another timing signal could be used or even generated to perform this task, using the already- available frame sync pulse generated by the main unit requires no additional overhead or expense.
  • the delay measurement does not interrupt the transmission of data over the digital channel. Moreover, the delay measurement may take place continuously, periodically/ at regular intervals, or upon request by the timing compensation controller 52. Indeed, the delay caused by each optical link may change depending on certain factors. One factor is changing temperature. The independent (i.e., from the data channel) and ongoing delay measurement capability ensures that the timing compensation controller 52 has up-to-date and accurate delay measurements. Accurate delay measurements means that the delay compensation based on those measurements is also accurate.
  • Example OIL Delay Compensation procedures (block 80) are described in conjunction with the flowcharts in Figs. 6A and 6B. The procedures in Fig. 6A relate to the cascade configuration in Fig.
  • the procedures in Fig. 6B relates to the cascade configuration in Fig. 1 C with automatic delay measurement.
  • the distance between the main unit and each RRU is measured manually, e.g., at time of installation, using known techniques such as OTDR (Optical Time Domain Reflectometer) or the like.
  • the delay values associated with each RRU are stored in the data table 62 so that the total delay to each RRU is identical with the longest MU- RRU distance.
  • the timing compensation controller 52 determines, using the data table 62 values for each RRU, an instantaneous or average time delay associated with its optical link length. That delay determination may (if desired) be performed continuously, periodically, or on request from the timing compensation controller 52.
  • the timing compensation controller 52 uses the reported delays to calculate an individual additional delay for each RRU to equalize the overall transmission times for each RRU.
  • the additional delay is introduced into the transmission chain using the transmission FIFO buffer 46 and the receive FIFO buffer 48.
  • the overall delay of transmitted signals for all of the RRUs can be equalized to the RRU delay time that is the longest.
  • the longest RRU delay time of all the OIL links may be the "maximum delay" or some larger delay time if desired.
  • the difference between the maximum delay time and the RRU's associated delay is used to determine each RRU's transmission and receiver FIFO buffer depths and frame sync advance timing. For the RRU associated with the longest delay, if the maximum delay equals that longest delay, the FIFO delay is zero. For RRUs with delays shorter than the maximum delay, the additional delay caused by each transmission FIFO buffer and receive FIFO buffer is selected so that the total FIFO buffer delay together with the RRU delay equals the maximum link delay. For all of the RRUs, the main unit sends the data "early" from the time they would otherwise be transmitted if there was no delay associated with the optical links to the RRUs (block 86 in both Figs.
  • the advance timing is twice the maximum link delay.
  • Each RRU receives that information from the main unit and forwards the information to the mobile radio UE.
  • the RRU sends the response from the UE to the main unit where it is delayed in the receive FIFO for a time corresponding to the set FIFO buffer depth (block 88 in both Figs. 6A and 6B).
  • the advanced and synchronized timing benefits both the UE and the base station baseband receivers.
  • the data from the main unit is transmitted from plural RRUs having different delays at the same time. This allows the UE baseband receiver to more easily process the plural signals without being affected by different optical link delays to the RRUs.
  • the timing of the response data from the UE forwarded by the plural RRUs over different length/ delay optical links which is provided from the receive FIFOs to the baseband receiver in the main unit, is not affected by the different lengths of the optical links.
  • the main unit baseband receiver can therefore more easily process the plural signals without being affected by different optical link delays.
  • a typical CDMA receiver is designed to handle a certain delay difference between signal components received from different antennas (for example when in softer handover) and/or via different propagation paths. This design is not made for the additional delay difference introduced by the different OIL link lengths in a main-remote base station.
  • the invention aligns the timing of the different antennas, and preferably, the overall timing in the base station so that such a typical receiver can be used.
  • the timing compensation controller 52 calculates from the optical link delays reported for each RRU the associated one-way delay for the optical link to each RRU and selects a maximum delay. In the following example shown in Fig. 7, the selected common delay is set equal to the longest calculated one-way delay.
  • Each RRU has a different length optical Unk: OIL1, OIL2, and OIL3.
  • the length of OIL1 is 2*OIL2.
  • the length of OIL3 is 3*OIL2.
  • the delay information for RRUl and RRU2 must be compensated so that the delays associated with OIL1 and OIL2 equal the delay associated with OIL3, which is the maximum delay in this example.
  • the UE is assumed to be equi-distant from each of the 3 RRUs over the air interface, which is not required, but simplifies the example.
  • the main unit baseband transmitter data intended for the UE is sent to each transmit (TX) FIFO 46 in the main unit OIL equalizer 44 ahead of schedule by twice the maximum link delay.
  • the timing schedule is determined by the frame sync (FS) generated by the timing unit 20 and advanced by the time, shifter 42.
  • the goal is to transmit that data o: each of the three FIFOs &' ahead of time, so that after traversing their three espective transmit FIFO buffers ; and OIL links, the data is received at their respective RRUs at the same time. So the data to be sent to RRUl is delayed in its TX FIFO buffer for a transmit alignment delay.
  • the data to be sent to RRU2 is delayed in its TX FIFO buffer for a transmit alignment delay that is twice as long as the delay time in the RRUl FIFO. There is no delay in the FIFO buffer for RRU3.
  • all of the transmit data arrives at each RRU and is transmitted to the UE at the same time facilitating reception in the UE receiver, i.e., "transmit alignment.”
  • the downlink air interface traveling time from RRU to UE, the response time in the UE, the uplink air interface traveling time from UE to RRU are all assumed to be the same.
  • the goal is the same in the uplink direction.
  • the UE's response data from each of the RRUs are received in their respective receive (RX) FIFOs after traversing their three respective OILs.
  • the delay introduced by each of the RX FIFO buffers is the same as the delay introduced by the corresponding TX FIFO buffers for the downlink path towards the same RRU.
  • the data from RRUl is delayed in its RX FIFO buffer for a transmit alignment delay.
  • the data to be sent to RRU2 is delayed in its RX FIFO buffer for a transmit aUgnment delay that is twice as long as the delay time in the RRUl FIFO. There is no delay in the FIFO buffer for RRU3.
  • all of the UE response data is sent to the main unit baseband receiver at the same time, i.e., "receive aUgnment.”
  • the present invention achieves standard radio base station (RBS) timing in a main-remote radio base station.
  • Fig. 8 shows on the left simpUfied, standard RBS timing diagrams.
  • a frame sync (FS) pulse marks the time when the RBS starts sending a protocol frame with the transmit (TX) data to the UE over the air interface.
  • TX transmit
  • the UE response to the TX data starts after an air interface and UE response delay.
  • the main-remote timing is iUustrated.
  • the frame sync is sent from the main unit to each RRU over the length-equaUzed OIL Unk in advance by twice the maximum delay shown as 2*T_OIL_MAX from the time when it would be normally be sent by a standard RBS.
  • the transmit data frame is also sent from the main unit to each RRU over the length-equaUzed OIL Unk in advance by twice the maximum delay shown as 2*T_OIL_MAX from the time when it would be normaUy be sent by a standard RBS.
  • the RRU receives the frame sync and transmit data in advance by the maximum delay shown as T_OIL_MAX.
  • T_OIL_MAX After the air interface and UE response time, which is the same as in the normal case shown on the left side, the RRU sends the UE response over the RRU's OIL.
  • all data frames are aUgned and reach the upUnk baseband processing circuitry at the correct timing referenced by the unshifted frame sync signal.
  • Advancing the frame sync and data sending time compensates for the optical Unk delays in a main-remote design.
  • the FIFO buffer depth control described above equaUzes the optical Unk delay differences.
  • Each RRU sends the transmit data to the UE at the same time, and the UE response data is received in the receiver at the same time.
  • a main-remote base station can function just Uke a standard base station.
  • a delayed timing reference may be provided to the baseband receivers.
  • the unshifted frame sync signal is used as a timing reference for the baseband 5 transmitters.
  • the OIL Unk equalization may be used with advanced transmitter timing or delayed receiver timing.
  • FIG. 9 incorporates a main-remote base station with a conventional base station in what is referred to as a hybrid base station 100.
  • 10 station 100 includes conventional base station circuitry incorporating elements of the main unit 12 shown in Fig. 2. Three representative remote units 16a-16c are shown coupledin ' cascade configuration to OBIF 28. Each conventional base station : radio circuitry 102 is referred to as a "near" radio unit and is coupled to a ⁇ . corresponding baseband interface unit 28'.. The near radio circuitry 102 is similar' to
  • the RRU -circuitry 16 e.g., transceiver, power ampUfier,. duplex filter, low noise ampUfier, antenna, etc.
  • the RRU -circuitry 16 e.g., transceiver, power ampUfier,. duplex filter, low noise ampUfier, antenna, etc.
  • No optical Unk couples the radio circuitry 102 with the baseband transmitters 24 or baseband receivers 26, so there is no need for an OBIF 30. But there is stiU a need for synchronization between the different radio units.
  • the hybrid base station should be synchronized in order to support softer handover between the near radio units 102 and the remote radio units 16 and possibly to fulfiU timing requirements imposed by ceUular communications standards Uke 3GPP.
  • each conventional base station radio circuitry 102 is treated Uke an RRU with a Unk length of zero 25 corresponding to no Unk delay.
  • Each near radio unit 102 is associated with a baseband interface 28' that provides the maximum buffering time using, for example, the transmit and receive FIFOs and frame sync advance approach described above.
  • the buffering and frame sync advance ensures that all of the signals received from both near and remote antennas can be readily combined in a rake receiver. No round trip delay measurement is needed for near radio units because the zero round trip delay is already known. Synchronization between near and remote radio units in a hybrid base station aUows existing base stations to be enhanced with RRUs without having to significantly alter the conventional base station or alter its timing.
  • the present invention provides a cost effective optical fiber configuration to couple a base station main unit and plural base station remote units. Only a single optical fiber loop is needed to carry information between the main unit and the remote units.
  • the configuration avoids the expense and drawbacks if WDM technology were used in a single fiber loop configuration.
  • Lasers, filters, and optical add/ drop multiplexers (OADMs) for each RRU are not needed thereby eUminating costs necessary for a WDM fiber loop configuration.
  • the logistical WDM overhead required to keep track of different wavelength dependent devices is also avoided.
  • the invention compensates- for time delay differences associated, with different remote units coupled in series by a single fiber to ensure synchronization.

Abstract

A main-remote radio base station system includes plural remote radio units. Fiber costs are significantly reduced using a single optical fiber that communicates information between the main unit and the remote units connected in a series configuration. Information from the main unit is sent over a first fiber path to the remote units so that the same information is transmitted over the radio interface by the remote units as at substantially the same time. The main unit receives the same information from each of the remote units over a second fiber path at substantially the same time. Delay associated with each remote unit is compensated for by advancing a time when information is sent to each remote unit. A data distribution approach over a single fiber avoids the expense of separate fiber couplings between the mail unit and each RRU. That approach also avoids the expense of WDM technology including lasers, filters, an OADMs as well as the logistical overhead needed to keep track of different wavelength dependent devices.

Description

OPTICAL FIBER COUPLING CONFIGURATIONS FOR A MAIN- REMOTE RADIO BASE STATION AND A HYBRID RADIO BASE
STATION
FIELD OF THE INVENTION
The present invention is directed to radio communications where a base station includes a main baseband processing unit and plural radio remote units where RF processing occurs.
BACKGROUND AND SUMMARY OF THE INVENTION
A conventional radio base station in a cellular communications system is generally located in a single location, and the distance between the baseband circuitry and the radio circuitry is relatively short, e.g., on the order of one meter. A distributed base station design, referred to as a main-remote design, splits the baseband part and the radio part of the base station. The main unit (MU) performs base band signal processing, and one or more radio remote units (RRUs) converts between baseband and radio frequencies and transmits and receives signals over one or more antennas. Each RRU serves a certain geographic area or cell. Separate, dedicated optical links connect the main unit to each of the plural radio remote units. Each optical link includes one optical fiber for carrying digital information downlink from the main unit to the RRU and another optical fiber for carrying digital information uplink from the RRU to the main unit.
Some mobile communication standards, e.g., the code division multiple access (CDMA) cellular system, permit a UE to communicate with two or more RRUs of the same base station using "softer handover." In softer handover, two or more RRUs simultaneously transmit the same information to the UE and receive the same information from the UE. The simultaneously transmitted signals must be processed to generate a single signal. Some radio standards require that in the downlink direction, the signals simultaneously transmitted to the UE from different antennas be aligned with a timing reference at the antennas. That alignment makes combining those different signals easier on the receiver. In the uplink direction, the main unit base band functionality includes a rake receiver which combines the "same" signals received from the UE via the RRUs and generates a single signal. Because of differing path lengths to each RRU, these signal components received at the main unit base band functionality from different radio remote units are not time and phase aligned to each other. Although a rake receiver can combine out-of-phase signals from different signal paths, a less complicated and less expensive rake receiver may be used if the phase/delay differences between different signal paths are kept small.
In a main-remote radio base station, a significant phase or timing difference may be attributed to the different lengths of the optical fibers coupling different RRUs to the main unit as compared to a conventional base station. Different optical link delays are more problematic as the distance between the remote unit 16 and the main unit increases, e.g., 10 kilometers. In addition, such delays' are not constant and may vary depending on temperature and other factors. Without compensation, the different optical fiber lengths to the remote units result in a time/phase shift of the signals sent out from the antennas connected to the radio remote units. They also lead to larger time/phase shifts between the UE signal components received via different radio remote units. These time/phase shifts may be difficult for conventional receivers in the UE and in the base station to handle. A similar problem exists in a hybrid base station that incorporates both conventional near radio units and remote radio units. The near radio units, which do not have any optical link delays, are not synchronized with the remote radio units that do have link delays. One optical link delay/ synchronization solution is presented in commonly- assigned, U.S. patent application serial number, 10/252,827, filed on September 23, 2002, entitled "Synchronizing Radio Units In A Main-Remote Radio Base Station And In A Hybrid Radio Base Station," the disclosure of which is incorporated herein by reference. Another challenge in main-remote configurations is how best to connect the main and remote units. Separate optical fibers with associated separate lasers and light detectors may be used to link the main unit with each remote unit. Each RRU communicates with the main unit using its own dedicated optical fiber loop. But the amount of fiber required is significant— s is the cost for separate main unit-RRU fiber loops. The cost of the laser and detector equipment associated with each fiber pair in the main unit is also significant. And in some deployment scenarios may require cascading several remote units, e.g., along a highway, in a tunnel, or along an existing fiber infrastructure, e.g., a metro ring. So it would be desirable to connect the main unit with each remote unit using a single fiber.
Fig. 1 A shows an example of a main-remote base station system at reference numeral 10 where the main unit ahd RRU are connected in cascade using a single fiber. The main unit 12 includes radio base station baseband (BB) ..< functionality 14. An optical fiber, divided. into four links L1-L4 connects the' main and remote units in a loop. A first optical link LI couples the main unit 12 to a first radio remote unit 16a. A second optical link L2 couples the main unit 12 to a second radio remote unit 16b. A third optical link L3 couples the main unit 12 to a third radio remote unit 16c. A fourth optical link L4 couples the third radio remote unit 16c to the main unit 12. Of course, additional radio remote units could be coupled to the main unit 12. A mobile radio user equipment (UE) 18 and one or more of the radio remote units 16a-16c communicate over a radio interface.
In cascade and ring topologies, where the units are connected in series, wavelength division multiplexing (WDM) may be used to reduce the amount of fiber used and the laser/ detector equipment. Each remote unit is assigned its own, corresponding laser wavelength. The different wavelength communications for all of the remote units are multiplexed onto a single fiber. One downlink fiber is used for traffic from the main unit to all the remote units, and one uplink fiber is used for traffic from the remote units to the main unit making up a single fiber loop. An optical add/drop multiplexer (OADM) is located inside or near each remote unit. The OADM adds or drops only the unique wavelength related to that particular remote unit to the fiber. A drawback with this approach is the expense of WDM technology including lasers, filters, and OADMs. Another is logistical overhead to keep track of different wavelength dependent devices.
5 It is an object of the present invention to provide a cost effective optical fiber configuration to couple a base station main unit and plural base station remote units.
It is an object of the invention to provide such a cost effective optical fiber configuration that requires a single optical downlink fiber path and a single 10 optical uplink fiber path, (together forming a single optical fiber path), to carry information between the main unit and the remote units.
It is an object of the invention to provide one or more single optical ' fiber pair configurations that avoid some or all of the expense of WDM technology. '•'
It is an object of the invention to provide such a cost effective fiber 15 configuration that avoids some or all of the logistical WDM overhead to keep track of different wavelength dependent devices
It is a further object to compensate for time delay differences associated with different remote units coupled in a cascade, loop, or ring optical fiber configuration where the units are connected in series.
20 The present invention solves the problems identified above and satisfies the stated and other objects. A main-remote radio base station system includes plural remote radio units. Optical fiber costs are significantly reduced using a single optical fiber loop (one downlink fiber path and one uplink fiber path) to communicate information between the main unit and the remote units in a cascade,
25 loop, or ring configuration. Example configurations are described below. Information from the main unit is sent over a first fiber in the pair to the remote units so that the same information is transmitted by the remote units at substantially the same time. Assuming there are N remote units, (N being a positive non-zero integer), the main unit sends out the information over the first fiber at N times the rate at which data is to be received at each remote unit. The main unit receives the same information from each of the remote units over the second fiber at substantially the same time. A data distribution approach over a single fiber loop avoids the expense of WDM technology including lasers, filters, and OADMs as well as the logistical overhead needed to keep track of different wavelength dependent devices.
The main unit combines N words of data, one word corresponding to each of the N remote units, into a frame and transmits the frame on the fiber. From the received frame, each remote unit removes its corresponding data word, includes > an uplink word in the removed word's place, and passes' the frame to the next remote unit. Because one fiber loop carries all of the information for each of the N remote units, the data rate is N times the data rate that would be used if each remote unit was coupled to the main unit with its own fiber loop.
Delay associated with each remote unit is compensated for by advancing a time when information is sent to each remote unit. A timing compensator for each remote unit compensates for any associated delay.
Information is sent in advance of the time when it would otherwise be sent without that delay, i.e., in a conventional base station. As a result, the information is received at each of the remote radio units at substantially the same time as in conventional radio base stations with only near radio units, despite the different delays associated with each remote radio unit. The advanced-in-time transmission together with equalization for the uplink direction also ensures that a response sent by each of the remote radio units is received in the main unit at substantially the same time, despite the different delays associated with each remote radio unit. Based on the delays received for each remote unit, the timing compensation controller selects a maximum delay. In an example embodiment, that delay corresponds to the delay associated with the remote radio unit farthest from the main unit. An advanced transmit time is determined for each remote radio unit based on the maximum link delay. In a specific example embodiment, the transmission time for digital timing and data signals is advanced by twice the maximum link delay.
The main digital interface unit includes for each remote radio unit a transmit buffer and a receive buffer. The timing compensation controller sets the transmit buffering time that the data signal is stored in the transmit buffer before the data signal is sent on the one or more digital data channels. A responsive data signal from the remote digital interface unit is stored in the receive buffer for a receive buffering time. The sum of the transmit buffering time or receive buffering time and the delay for the remote unit equals the maximum delay. Delay differences associated with distance differences on the order of meters up to 100 kilometers or more can be compensated.
The invention may also be employed in a hybrid radio base station that includes both near/conventional and remote radio units.
The present invention provides a cost effective optical fiber configuration to couple a base station main unit and plural base station remote units. Only a single optical fiber loop is needed to carry information between the main unit and the remote units. The configuration avoids the expense and drawbacks if WDM technology were used in a single fiber loop configuration. Lasers, filters, and optical add/ drop multiplexers (OADMs) for each RRU are not needed thereby eliminating costs necessary for a WDM fiber loop configuration. The logistical WDM overhead required to keep track of different wavelength dependent devices is also avoided. In addition to cost savings, the invention compensates for time delay differences associated with different remote units coupled in series by a single fiber to ensure synchronization.
BRIEF DESCRIPTION OF THE DRAWINGS
The foregoing and other objects, features, and advantages of the present invention may be more readily understood with reference to the following description taken in conjunction with the accompanying drawings.
Figs. 1A-1D illustrate different example configurations of a main- remote radio base station system;
Fig. 2 illustrates in function block form a main unit and a radio remote unit from the main-remote radio base station system;
Fig. 3A illustrates in function block form one example embodiment of an optical baseband interface of the radio remote unit in the main-remote radio base station system for a configuration like that in Fig. '1 A;
Fig. 3B illustrates in function block form another example embodiment of an optical baseband interface of the radio remote unit in the main- remote radio base station system for a configuration like that in Fig. IB;
Fig. 4A illustrates in function block form one example embodiment of the optical baseband interface of the main unit in the main-remote base station system;
Fig. 4B illustrates in function block form another example embodiment of the optical baseband interface of the main unit in the main-remote base station system;
Fig. 5 illustrates digital optical interface link delay measurement in accordance with the example shown in Fig. 4B; Figs. 6A and 6B are flowcharts illustrating two example procedures for digital optical interface link delay measurement and compensation;
Fig. 7 shows a timing diagram illustrating an example of delay equalization for a main unit-three remote unit configuration;
Fig. 8 shows timing diagrams to illustrate certain aspects of the digital optical interface link delay compensation in accordance with one example aspect of the invention; and
Fig. 9 illustrates in function block form a hybrid base station that employs one application of the invention.
DETAILED DESCRIPTION
In the following description, for purposes of explanation and not limitation, specific details are set-forth, such as particular' embodiments, procedures, techniques, etc. in order to provide a thorough understanding of the present invention. However, it will be apparent to one skilled in the art that the present invention may be practiced in other embodiments that depart from these specific details. For example, while the present invention is described in an example application to a CDMA-based cellular system, the present invention may be used in any cellular system employing a main-remote radio base station architecture having any number of remote units configured in any network topology where plural RRUs can be coupled in an optical fiber loop. It may also be used in any cellular system employing a hybrid base station. Although some of the following examples employ a single fiber loop, the invention may also be used in coupling configurations that use plural fibers.
In some instances, detailed descriptions of well-known methods, interfaces, devices, and signaling techniques are omitted so as not to obscure the description of the present invention with unnecessary detail. Moreover, individual function blocks are shown in some of the figures. Those skilled in the art will appreciate that the functions may be implemented using individual hardware circuits, using software functioning in conjunction with a suitably programmed digital microprocessor or general purpose computer, using an application specific integrated circuit (ASIC), and/or using one or more digital signal processors (DSPs).
The present invention finds advantageous, but still example, application to a CDMA mobile communications network that supports softer handover. In this example application, one or more external networks is coupled to a CDMA-based radio access network which, for example, may be a UMTS Terrestrial Radio Access Network (UTRAN). The UTRAN includes one or more radio network controllers (RNC) which communicate over a suitable interface, and each RNC is coupled to plural radio base stations. One or more the radio base stations may be configured as a main-remote base station system such as is shown in Fig. 1A where different remote radio units (RRUs) 16 are coupled to a main unit 12 via a single optical fiber. A series configuration communicates information from the main unit to all of the RRUs over one optical fiber and any intervening RRUs, although additional or redundant fibers may be used. Preferably, a synchronous connection is employed between the main unit and the remote units to minimize the need for "intelligence" in the remote units such as buffering, resynchronization, etc., and thereby cost. A synchronous connection seeks to keep the RF signal at each remote unit's antenna within specified limits relative to a reference signal in the main unit.
The optical fiber includes a series of links that couple adjacent units together in series. In the fiber coupling configuration of Fig. 1 A, four optical links L1-L4 couple the main and remote units together in series and form a loop or ring. The main unit 12 is connected to the RRU 16a by link LI of the fiber. The RRU 16a is connected to the RRU 16b by link L2 of the fiber. The RRU 16b is connected to the RRU 16c by link L3 of the fiber. The RRU 16c is connected to the main unit by link L4 of the fiber. In combination, the links L1-L4 form a first downlink fiber path and a second uplink fiber path in a single fiber loop. The downlink path and uplink path includes different links for each RRU. For example, the downlink path for RRU 16a includes link LI, and the uplink path includes links L2, L3, and L4. The downlink path for RRU 16b includes links LI and L2, and the uplink path includes links L3 and L4. The downlink path for RRU 16c includes links LI, L2, and L3, and the uplink path includes link L4. These two optical fiber paths can be in the same physical cable between the main and the remote units, corresponding to a "cascade" configuration, or in separate physical routes/cables, corresponding to a "ring" configuration.
Fig. ID shows an example of the fiber coupling configuration in Fig. 1A applied to a "sectored" base station. Each sector of the base station is served by a corresponding RRU. Because the links LI and L4 are much longer than links L2 and L3, link delays associated withL2 and L3 may be ignored if desired, with delay compensation. (described in detail below) provided- for to the link delays associated: with longer links LI and. L4.
Fig. IB shows a second example, fiber coupling configuration. Like
Fig. 1A, the main unit and RRU 16a are connected by link LI, RRU 16a and RRU 16b by link L2, and RRU 16b RRU16c by link L3. However, RRU 16c has a return link L4 to RRU 16b. RRU 16b has a return link L5 to RRU 16a. RRU 16a has a return link L6 to main unit 12. In effect, each RRU has an optical loop with intervening RRUs that pass on that RRU's information. For RRU 16a, the first, downlink fiber path includes links L1-L3, and the second, uplink fiber path includes links L4-L6. If the L1/L6, L2/5 and L3/L4 fiber links share the same physical cable and route, an automatic delay measurement can be used because the one-way delay is half of the round-trip delay. However, this configuration requires dual optical-to- electrical converters in each RRU.
Fig. 1C shows another example cascade configuration similar to that of Fig. 1 A with an optional redundant optical fiber for communicating information between the main unit and the remote units but in the direction opposite. The first loop is the "east" loop represented by the letter "e", and the opposite loop is the "west" loop represented by the letter "e". This dual fiber loop with an east-west configuration adds redundancy as well as additional protection. Consider a situation where two fibers are cut at one location, e.g., at the L2 link between RRU 16a and 16b. The RRUl 6a can be re-configured automatically to use link LI w to transmit to the Main Unit 12 and to use the link Lie to receive from the Main Unit. The other RRU's can be configured correspondingly to use links L3 and L4 for communication with the Main Unit 12.
Fig. 2 illustrates in function block form the main unit 12 coupled to one RRU 16. A digital optical interface, sometimes referred to below as an Optical Interface Link (OIL) interface, is used in digital communications between the main unit 2 and the RRU 16. The main unit includes an optical baseband interface ;'. (OBIF) unit 28, and the RRU 16 includes an optical baseband interface (OBIF) v unit 30. The OBIF 28 and 30 support the digital optical interface. The electrical side of the digital optical interface includes parallel, digital channels for data signals, . . timing signals, and control signals. The optical side outputs that digital information as a serial stream of optical signals. For a single RRU example, a 16-bit wide digital optical interface includes 16 parallel digital channels.
The main unit 12 includes a timing unit 20 that generates one or more timing signals such as a frame synchronization (FS) signal which is provided to the OBIF 28 as a digital timing channel corresponding to one or more bits in the OIL interface. A main unit controller 22 generates control signals provided to the OBIF 28 over a digital control channel corresponding to one or more bits in the OIL interface. One or more baseband transmitters 24 provide digital data to the OBIF 28 over one or more digital channels corresponding to one or more bits in the OIL interface. One or more baseband receivers 26 receive digital data sent by the RRU 16. The timing reference for the baseband transceiving circuitry may be generated in any appropriate manner. In one example, a timing signal, e.g., a frame synchronization signal provided from the OBIF 28, may be used for the baseband transmitters 24 and for the baseband receivers 26. However, the timing signals for the transmitters and receivers need not be identical, e.g., they could be altogether different or they may be shifted relative to each other.
The RRU 16 has a similar (though not identical) OBIF 30 coupled to a transceiver 32 and to an RRU controller 42. The RRU controller 42 receives and sends control signals over the digital control channel. The transceiver 32 receives and sends digital data from/ to the OBIF 30. The received data is processed, modulated, filtered, frequency up-converted, and amplified in a power amplifier 34 before being transmitted over an antenna to a mobile radio UE 18 by way of a duplex filter 36. UE radio signals received from the antenna 38 and duplex-filtered at 36 are amplified in a low noise amplifier 40 and similarly handled in transceiver 32 but in complementary fashion. The OBIF 30 forwards signals received from the "« adjacent unit (here the main unit) to the next RRU in the series and includes any irresponsive UE signal as well. In the configuration in Fig. 1 C, there would be another fiber input to the OBIF 30 from the adjacent, downstream RRU with signals to be '• sent on to the main unit 12.
Fig. 3A illustrates further details of the OBIF 30 in each RRU 16 for the example coupling configuration in Fig. 1 A. An optical signal transmitted over the optical link from the main unit 12 includes a frame of multiple digital "words" of information. Each word is intended for one of the RRUs and is converted into a serial digital electrical signal in an optical-to-electrical converter 70, such as a PIN diode. In the non-limiting example above, each word may include 16 bits of control, data, and sync information. If there are three RRUs connected in cascade, then the frame includes three 16-bit words. The first RRU's word is in the first position in the frame; the second RRU's word is in the second position in the frame; and the third RRU's word is in the third position in the frame. The de-serializer 72/serializer 74 can be implemented for example as a demultiplexer/multiplexer pair that may also perform link handling like setting up link synchronization, link fault handling, etc. Such a demultiplexer/multiplexer pair is available as a standard chip set, e.g., the Agilent HDMP 1032/1034 or the TI TLK 2501.
In Fig. 3A, the RRU de-serializer 72 converts the data word (16-bits of data in this example) for this RRU 16 from a serial digital signal into a parallel digital signal and routes the parallel signal to the transceiver 32 and RRU controller 42. The parallel signal sent to the transceiver 32 and the RRU controller 42 includes the digital data, timing, and control channel signals. The remaining data bits destined for the other RRUs are passed through to the serializer 74. The serializer 74 also receives parallel uplink data from this RRU to be sent to the main unit from the transceiver 32 and RRU controller 42. It converts the uplink data into serial format and includes that uplink serial data in the word position in the frame corresponding .to this RRU. An electrical-to-optical converter 76 converts the digital frame into an optical signal for transmission over an optical fiber to the- next RRU in the cascade or to the -main unit 12 if it is next in the cascade. An example of an electrical-to-optical converter is a laser diode.
Fig. 3B illustrates further details of the OBIF 30 in an RRU 16 for the example coupling configuration in Fig. IB. In this case, RRU 16a is used for purposes of illustration. The OBIF 30 is similar to that shown in Fig. 3A except that two sets of converters 70, 76 and de-serializers/serializers 72, 74 are employed. The main unit sends an optical signal over link LI to RRU 16a. The received optical signal is converted into electrical signal by an optical to electrical converter 70, which delivers the digital electrical signal to the de-serializer 72. The RRU de-serializer 72 converts the data word for this RRU 16a from a serial digital signal into a parallel digital signal and routes that parallel signal to the transceiver 32 and RRU controller 42 in this RRU 16a. The remaining data bits destined for the other RRUs (16b and 16c) are passed through to the serializer 74 at the bottom of the figure. That serializer 74 converts that passed through data into serial format and sends the serial signal to the electrical-to-optical converter 76. The electrical-to-optical converter 76 converts the received electrical signal into an optical signal for transmission over the optical link L2 to the next RRU 16b.
In the opposite, uplink direction, the RRU 16a receives an optical signal from RRU 16b over link L5 and coverts it into electrical format in optical to electrical converter 70. The de-serializer 72 converts the serial digital signal from converter 70 into a parallel digital signal that includes data words from RRU 16b and RRU 16c. The parallel digital signal is provided to the serializer 74 as pass through data. The serializer 74 inserts uplink data words from the transceiver 32 and controller 42 in RRU 16a into each frame with words from RRU 16b and RRU 16c. The serializer 74 converts the framed data words into serial format and sends the serial signal to the electrical-to-optical converter 76. The electrical-to-optical converter 76 converts the digital signal into an- optical signal for transmission over an optical link L6 to the main unit 12.
Fig. 4A illustrates further details of the OBIF 28 in the main unit 12 assuming a configuration like the one in Fig. 1A. Details are shown for one of the RRUs— RRU 16a— to simplify the illustration and explanation. Each RRU has an associated OIL label, e.g., RRU 16a has OIL 1, RRU 16b has OIL 2, and RRU 16c has OIL 3. Because the control signaling relates only to the RRU, it does not require any OIL equalization.
In this example, the OIL equalizer 44 includes for each RRU a time shifter 42, a transmission buffer 46, a receive buffer 48, and a buffer depth controller 50. The transmission (Tx) buffer 46 associated with each RRU is a first- in-first-out (FIFO) buffer that receives data from the baseband transmitter 24. The data is stored for a time period corresponding to the FIFO's buffer depth before being output on the data channel to the serializer 54. The main unit processor 22 provides the digital control signal for each word, and the main unit OIL equalizer 44 provides the digital data and timing signals for each word. The serializer 54 receives words from the TX buffers associated with each RRU and includes three digital words — one for RRU 16a, one for RRU 16b, and one for RRU 16c — into a frame. The words are positioned in the frame in sequential order— ord 1, word 2, and word 3— for easy extraction at the appropriate RRU by its deserializer 72. The serializer 54 then converts the parallel data into serial form and sends the serial data to the electrical to optical converter 56 for conversion to optical format and transmission over the next fiber link, which in this example is link LI .
The FIFO buffer depth is controlled by the buffer depth controller 50. In this example implementation, the timing reference comes from a frame synchronization signal. The frame sync is sent to the base band receivers 26 (unshifted in time) and to the frame sync time shifter 42. The frame sync time shifter 42 advances the frame sync signal by a predetermined time interval, (described below), and sends the time-advanced frame sync to the transmission FIFO buffer 46, The frame sync is delayed in the FIFO buffer 46 along with the data to preserve the timing relationship between the frame sync and the data. The shifted frame sync is used by the base band transmitters 24 for early transmission of the downlink data as described further below. The unshifted frame sync is sent to the base band receivers 26 as a timing reference.
Rather than advance the downlink timing reference signal by a predetermined amount, as above, another example approach is to delay the uplink timing reference signal by the predetermined amount. This latter approach does not require shifting of the frame sync signal in the downlink path but in the uplink path. Still another example approach does not rely on or affect the frame sync, but instead the transmit timing is advanced by a software setting in the transmitter.
In the uplink direction, the optical to electrical converter 58 receives an optical signal from the optical link L4 and converts it into electrical format. The de-serializer 60 converts that serial signal into parallel format. Each OIL equalizer 44 includes a receive FIFO buffer 48 that receives the parallel digital data and a "looped back" frame sync signal from the corresponding de-serializer 60. The data and frame sync are stored for a time period, corresponding to the FIFO's buffer depth and controlled by the buffer depth controller 50, before outputting the data and frame sync on the data channel and timing channels, respectively. The FIFO data and frame sync are sent to the baseband receiver 26.
A data table 62 is provided which stores, for the example configuration of Fig. 1 A, delays associated with each RRU. Specifically, each RRU is a different distance from the main unit. In this example in Fig. 4A, those delays are measured manually, and the measured delays are stored in the data table 62. The timing compensation controller 52 accesses the delay for each RRU when setting the buffer depth controlled by the buffer depth controller 50.
Assuming an alternative example fiber coupling configuration like the one shown in Fig. IB, Fig. 4B illustrates further details of the OBIF 28 in the main unit 12 for one of the RRUs-RRU 16a. Assuming the L1/L6, L2/5 and L3/L4 fiber links share the same physical cable and route, an automatic delay measurement can be used because the one-way delay is half of the round- trip delay. Instead of manually measuring delays associated with each of the RRUs and storing them in a data table 62, Fig. 4B employs a counter 63 for automatically measuring those delays. More specifically, at the same time the frame sync signal is sent to the corresponding serializer 54, it is also sent to start the counter 63. The counter 63 counts, using a clock or other appropriate signal, until it is stopped by receipt of the looped back frame sync signal from the de-serializer 60. The count value, corresponding to the measured delay associated with sending data to a particular RRU is provided to the timing compensation controller 52.
The timing compensation controller 52 receives delay count values for the other RRUs and determines a maximum delay value. As one example, the timing compensation controller 52 may select the largest count value as the maximum delay value. The timing compensation controller 52 sends twice the maximum delay value to the time shifter 42 to provide the advanced time reference when the data and frame sync should be sent to the transmission buffer 46. The timing compensation controller 52 uses the difference between the maximum delay and the measured/ counted delay value for each RRU to determine the FIFO buffer depth sent to the buffer depth controller 50.
The automatic optical link delay measurement is illustrated conceptually in Fig. 5 for a single main unit/ remote radio unit link. The same measurement process may be used for all of the remote radio units. The frame sync pulse in the main unit OBIF 28 starts the timer 63. At the same time, the frame sync pulse is transmitted over the downlink fiber path and any intervening RRUs to the RRU OBIF 30 where the de-serializer 72 "loops it back" over the return fiber path via an intervening RRUs to the main unit. Delays over the air interface and in the UE are not measured. The serializer 74 returns the looped back frame sync over the return fiber path in the optical link to the main unit OBIF 28 where it stops the counter. The delay time required to loop the sync pulse back is reflected in the count value and is forwarded to the timing compensation controller 52. Although another timing signal could be used or even generated to perform this task, using the already- available frame sync pulse generated by the main unit requires no additional overhead or expense.
By having the frame sync communicated on its own digital timing channel, the delay measurement does not interrupt the transmission of data over the digital channel. Moreover, the delay measurement may take place continuously, periodically/ at regular intervals, or upon request by the timing compensation controller 52. Indeed, the delay caused by each optical link may change depending on certain factors. One factor is changing temperature. The independent (i.e., from the data channel) and ongoing delay measurement capability ensures that the timing compensation controller 52 has up-to-date and accurate delay measurements. Accurate delay measurements means that the delay compensation based on those measurements is also accurate. Example OIL Delay Compensation procedures (block 80) are described in conjunction with the flowcharts in Figs. 6A and 6B. The procedures in Fig. 6A relate to the cascade configuration in Fig. 1 A with manual delay measurement, and the procedures in Fig. 6B relates to the cascade configuration in Fig. 1 C with automatic delay measurement. Starting with block 82 in Fig. 6A, the distance between the main unit and each RRU is measured manually, e.g., at time of installation, using known techniques such as OTDR (Optical Time Domain Reflectometer) or the like. The delay values associated with each RRU are stored in the data table 62 so that the total delay to each RRU is identical with the longest MU- RRU distance. Starting with block 82 in Fig. 6B, the timing compensation controller 52 determines, using the data table 62 values for each RRU, an instantaneous or average time delay associated with its optical link length. That delay determination may (if desired) be performed continuously, periodically, or on request from the timing compensation controller 52.
In general for both Figs. 6A and 6B, the timing compensation controller 52 uses the reported delays to calculate an individual additional delay for each RRU to equalize the overall transmission times for each RRU. The additional delay is introduced into the transmission chain using the transmission FIFO buffer 46 and the receive FIFO buffer 48. For example, the overall delay of transmitted signals for all of the RRUs can be equalized to the RRU delay time that is the longest. The longest RRU delay time of all the OIL links may be the "maximum delay" or some larger delay time if desired.
In block 84 in both Figs. 6A and 6B, the difference between the maximum delay time and the RRU's associated delay is used to determine each RRU's transmission and receiver FIFO buffer depths and frame sync advance timing. For the RRU associated with the longest delay, if the maximum delay equals that longest delay, the FIFO delay is zero. For RRUs with delays shorter than the maximum delay, the additional delay caused by each transmission FIFO buffer and receive FIFO buffer is selected so that the total FIFO buffer delay together with the RRU delay equals the maximum link delay. For all of the RRUs, the main unit sends the data "early" from the time they would otherwise be transmitted if there was no delay associated with the optical links to the RRUs (block 86 in both Figs. 6A and 6B). In a preferred example embodiment, the advance timing is twice the maximum link delay. Each RRU receives that information from the main unit and forwards the information to the mobile radio UE. The RRU sends the response from the UE to the main unit where it is delayed in the receive FIFO for a time corresponding to the set FIFO buffer depth (block 88 in both Figs. 6A and 6B).
The advanced and synchronized timing benefits both the UE and the base station baseband receivers. The data from the main unit is transmitted from plural RRUs having different delays at the same time. This allows the UE baseband receiver to more easily process the plural signals without being affected by different optical link delays to the RRUs. Similarly, the timing of the response data from the UE forwarded by the plural RRUs over different length/ delay optical links, which is provided from the receive FIFOs to the baseband receiver in the main unit, is not affected by the different lengths of the optical links. The main unit baseband receiver can therefore more easily process the plural signals without being affected by different optical link delays. These benefits enable softer handover in a CDMA- based cellular communications system without requiring a more complex RAKE receiver. A typical CDMA receiver is designed to handle a certain delay difference between signal components received from different antennas (for example when in softer handover) and/or via different propagation paths. This design is not made for the additional delay difference introduced by the different OIL link lengths in a main-remote base station. The invention aligns the timing of the different antennas, and preferably, the overall timing in the base station so that such a typical receiver can be used.
To determine the FIFO buffer depths for each RRU, the timing compensation controller 52 calculates from the optical link delays reported for each RRU the associated one-way delay for the optical link to each RRU and selects a maximum delay. In the following example shown in Fig. 7, the selected common delay is set equal to the longest calculated one-way delay. Each RRU has a different length optical Unk: OIL1, OIL2, and OIL3. The length of OIL1 is 2*OIL2. The length of OIL3 is 3*OIL2. The delay information for RRUl and RRU2 must be compensated so that the delays associated with OIL1 and OIL2 equal the delay associated with OIL3, which is the maximum delay in this example. The UE is assumed to be equi-distant from each of the 3 RRUs over the air interface, which is not required, but simplifies the example.
As described above, the main unit baseband transmitter data intended for the UE is sent to each transmit (TX) FIFO 46 in the main unit OIL equalizer 44 ahead of schedule by twice the maximum link delay. Here, the timing schedule is determined by the frame sync (FS) generated by the timing unit 20 and advanced by the time, shifter 42. The goal is to transmit that data o: each of the three FIFOs &' ahead of time, so that after traversing their three espective transmit FIFO buffers ; and OIL links, the data is received at their respective RRUs at the same time. So the data to be sent to RRUl is delayed in its TX FIFO buffer for a transmit alignment delay. The data to be sent to RRU2 is delayed in its TX FIFO buffer for a transmit alignment delay that is twice as long as the delay time in the RRUl FIFO. There is no delay in the FIFO buffer for RRU3. As a result, all of the transmit data arrives at each RRU and is transmitted to the UE at the same time facilitating reception in the UE receiver, i.e., "transmit alignment." For this example, the downlink air interface traveling time from RRU to UE, the response time in the UE, the uplink air interface traveling time from UE to RRU are all assumed to be the same.
The goal is the same in the uplink direction. The UE's response data from each of the RRUs are received in their respective receive (RX) FIFOs after traversing their three respective OILs. The delay introduced by each of the RX FIFO buffers is the same as the delay introduced by the corresponding TX FIFO buffers for the downlink path towards the same RRU. The data from RRUl is delayed in its RX FIFO buffer for a transmit alignment delay. The data to be sent to RRU2 is delayed in its RX FIFO buffer for a transmit aUgnment delay that is twice as long as the delay time in the RRUl FIFO. There is no delay in the FIFO buffer for RRU3. As a result, all of the UE response data is sent to the main unit baseband receiver at the same time, i.e., "receive aUgnment."
The present invention achieves standard radio base station (RBS) timing in a main-remote radio base station. Fig. 8 shows on the left simpUfied, standard RBS timing diagrams. A frame sync (FS) pulse marks the time when the RBS starts sending a protocol frame with the transmit (TX) data to the UE over the air interface. The UE response to the TX data starts after an air interface and UE response delay. On the right, the main-remote timing is iUustrated. The frame sync is sent from the main unit to each RRU over the length-equaUzed OIL Unk in advance by twice the maximum delay shown as 2*T_OIL_MAX from the time when it would be normally be sent by a standard RBS. The transmit data frame is also sent from the main unit to each RRU over the length-equaUzed OIL Unk in advance by twice the maximum delay shown as 2*T_OIL_MAX from the time when it would be normaUy be sent by a standard RBS. The RRU receives the frame sync and transmit data in advance by the maximum delay shown as T_OIL_MAX. After the air interface and UE response time, which is the same as in the normal case shown on the left side, the RRU sends the UE response over the RRU's OIL. After passing through the RX FIFO buffers, all data frames are aUgned and reach the upUnk baseband processing circuitry at the correct timing referenced by the unshifted frame sync signal.
Advancing the frame sync and data sending time compensates for the optical Unk delays in a main-remote design. The FIFO buffer depth control described above equaUzes the optical Unk delay differences. Each RRU sends the transmit data to the UE at the same time, and the UE response data is received in the receiver at the same time. In this way, a main-remote base station can function just Uke a standard base station. Instead of providing an advanced timing reference to the baseband transmitters so that the downUnk data is sent early towards the radio remote unit, a delayed timing reference may be provided to the baseband receivers. In that case, the unshifted frame sync signal is used as a timing reference for the baseband 5 transmitters. Thus, the OIL Unk equalization may be used with advanced transmitter timing or delayed receiver timing.
Another example embodiment of the invention illustrated in function block format in Fig. 9 incorporates a main-remote base station with a conventional base station in what is referred to as a hybrid base station 100. The hybrid base
10 station 100 includes conventional base station circuitry incorporating elements of the main unit 12 shown in Fig. 2. Three representative remote units 16a-16c are shown coupledin ' cascade configuration to OBIF 28. Each conventional base station : radio circuitry 102 is referred to as a "near" radio unit and is coupled to a . corresponding baseband interface unit 28'.. The near radio circuitry 102 is similar' to
15.' the RRU -circuitry 16 (e.g., transceiver, power ampUfier,. duplex filter, low noise ampUfier, antenna, etc.), with the exception of an OBIF 30. No optical Unk couples the radio circuitry 102 with the baseband transmitters 24 or baseband receivers 26, so there is no need for an OBIF 30. But there is stiU a need for synchronization between the different radio units. The conventional and main-remote portions of
20 the hybrid base station should be synchronized in order to support softer handover between the near radio units 102 and the remote radio units 16 and possibly to fulfiU timing requirements imposed by ceUular communications standards Uke 3GPP.
In accordance with this aspect of the invention, each conventional base station radio circuitry 102 is treated Uke an RRU with a Unk length of zero 25 corresponding to no Unk delay. Each near radio unit 102 is associated with a baseband interface 28' that provides the maximum buffering time using, for example, the transmit and receive FIFOs and frame sync advance approach described above. The buffering and frame sync advance ensures that all of the signals received from both near and remote antennas can be readily combined in a rake receiver. No round trip delay measurement is needed for near radio units because the zero round trip delay is already known. Synchronization between near and remote radio units in a hybrid base station aUows existing base stations to be enhanced with RRUs without having to significantly alter the conventional base station or alter its timing.
The present invention provides a cost effective optical fiber configuration to couple a base station main unit and plural base station remote units. Only a single optical fiber loop is needed to carry information between the main unit and the remote units. The configuration avoids the expense and drawbacks if WDM technology were used in a single fiber loop configuration. Lasers, filters, and optical add/ drop multiplexers (OADMs) for each RRU are not needed thereby eUminating costs necessary for a WDM fiber loop configuration. The logistical WDM overhead required to keep track of different wavelength dependent devices is also avoided. In addition to cost savings, the invention compensates- for time delay differences associated, with different remote units coupled in series by a single fiber to ensure synchronization.
While the present invention has been described with respect to particular embodiments, those skiUed in the art wiU recognize that the present invention is not Umited to these specific exemplary embodiments. Different formats, embodiments, and adaptations besides those shown and described as weU as many variations, modifications, and equivalent arrangements may also be used to implement the invention. For example, while FIFO buffers were described as delay mechanisms, other delays could be used Uke shift registers, dual port memories with offset read/write addresses, etc. Although the invention is described using preferred embodiments, they only illustrate examples of the present invention. Accordingly, it is intended that the invention be Umited only by the scope of the claims appended hereto.

Claims

WHAT IS CLAIMED IS:
1. A main-remote radio base station system for communicating with N remote radio units (16a-16c), N being an integer equal to or greater than 2, including a main unit (12) and an optical fiber for communicating information between the main unit and the remote units, characterized in that: the optical fiber includes a first fiber path for communicating information from the main unit to the remote units and a second fiber path for communicating information from the remote radio units to the main unit, each of the first and second fiber paths including one or more optical Unks, and wherein the main and remote units are configured so that information from the main unit is sent over the first fiber path to the remote units so that the same information is transmitted over a radio interface by the remote units at substantially the same time and the main unit receives the same information from each of the • *• remote units over the second fiber path at substantiaUy the same time.
2. The main-remote radio base station in claim 1, wherein the main unit transmits information to the N remote units at N times the rate at which data is to be received at each remote unit.
3. The main-remote radio base station in claim 1, wherein each remote unit is configured to remove from a received frame its corresponding data word, include an upUnk word in the removed word's place, and pass the frame to the next remote unit.
4. The main-remote radio base station in claim 1, wherein the main and remote units are coupled together in a series configuration by the optical fiber.
5. The main-remote radio base station in claim 4, wherein along the first fiber path, the main unit is connected by a first Unk to a first remote unit in the series, the first remote unit is connected by a next Unk to a next remote unit in the series, and so forth, with the N remote unit in the series being connected by an N+l Unk to the main unit, and wherein upUnk information from the first remote unit is sent to the main unit via the N+l Unk which corresponds to the second fiber path.
6. The main-remote radio base station in claim 5, wherein the series configuration includes another optical fiber with third and fourth fiber paths pair for communicating information between the main unit and the remote units but in a direction opposite that of the one loop direction, the third fiber path communicating information from the main unit to the remote units and the fourth fiber path communicating information from the remote radio units to the main unit, each of the third and fourth fiber paths including one or more Unks.
7. The main-remote radio base station in claim 4, wherein the series configuration includes the main unit connected by a first downUnk and upUnk fiber pair to a first remote unit, the first remote unit connected by a second downUnk and upUnk fiber pair to a second remote unit, and so forth to the Nth remote unit.
8. The main-remote radio base station in claim 1 , wherein the N remote units correspond to N sectors of the base station.
9. The main-remote radio base station in claim 1, wherein the main unit is configured to combine N words of data, one word corresponding to each of the N remote units, into a frame and to transmit the frame on the first fiber path.
10. The main-remote radio base station in claim 9, wherein the main unit is configured to transmit data over the first fiber path at N times the data rate desired for each main unit to remote unit data transmission.
11. The main-remote radio base station in claim 10, wherein the main unit includes a for each remote radio unit a timing compensator (46, 50) for compensating a delay associated with that remote radio unit by advancing a time when a data word is sent in a frame over the first fiber path.
12. The main-remote radio base station in claim 11, wherein the main unit includes a timing compensation controUer (52) configured to receive a delay associated with each of the N remote units, select a maximum delay, and control the timing compensator for each remote radio unit to compensate for the maximum delay.
13. The main-remote radio base station in claim 12, wherein the main unit includes a data table (62) for storing a delay determined for each of the remote units.
14. The main-remote radio base station in claim 13, wherein the delay for each RRU is measured manually.
15. The main-remote radio base station in claim 12, wherein the main unit includes a counter (63) for determining a delay for each of the remote units.
16. The main-remote radio base station in claim 11, wherein the main unit includes for each remote radio unit a transmit buffer (46) and a receive buffer (48), and wherein the timing compensation controUer (52) is configured to set a transmit time that the data word is stored in the transmit buffer (46) before the data word is transmit on the first fiber path and to set a receive time that a responsive data word from the remote radio unit is stored in the receive buffer (48).
17. The main-remote radio base station in claim 11, wherein the timing compensation controUer (52) is configured to set a transmit time and a receive time by controlUng a buffer depth of the transmit and receive buffers (46, 48).
18. The main-remote radio base station in claim 1, wherein the main unit includes: a seriaUzer (54) for combining a digital paraUel word for each remote unit into a frame, generating a serial signal of framed data words, each data word including digital data, a digital synchronization signal, and a digital control signal; an electrical-to-optical converter (56) for converting the serial signal into a corresponding optical signal transmitted over the first fiber path; an optical-to-electrical converter (58) for converting an optical signal received over the second fiber path into a serial digital stream of framed data words; a deseriaUzer (60) for demultiplexing the serial digital stream from the optical- to-electrical converter into paraUel data words, each data word corresponding to one of the remote units and having a digital data signal, a digital synchronization signal, and a digital control signal.
19. The main-remote radio base station in claim 1, wherein the distance to one or more of the remote units is on the order of meters up to 10 kilometers or more.
20. The main-remote radio base station in claim 1, wherein the main and remote units are coupled together by the fiber optic pair in a ring configuration.
21. The main-remote radio base station in claim 1, further comprising one or more near radio units (102) coupled near to the main unit (100) or incorporated as part of the main unit (100), wherein the main (100), near (102), and remote units (16) are configured so that the same information from the main unit to the near and remote units is received at the near and remote units at substantially the same time and the main unit receives the same information from each of the remote units at substantiaUy the same time.
22. A method for communicating information in a main-remote radio base station system (10) using an optical fiber coupUng plural remote radio units (16a-16c) and a main unit (12) in a series configuration, characterized by: determining for each remote radio unit a corresponding delay, and for each remote radio unit, the main unit sending a data signal over a downUnk fiber coupUng the main unit to the remote radio units in series at an advanced time relative to a time reference so that the data signal is received at each of the remote radio units at substantially the same time despite the different delays associated with each remote radio unit and so that a response to the digital data signal sent by each of the remote radio units is received in the main unit via an upUnk fiber at substantiaUy the same time despite the different delays associated with each remote radio unit.
23. The method in claim 22, wherein for N remote units, the main unit sends the data signal at N times a desired data rate for each remote unit to receive data from the main unit.
24. The method in claim 22, wherein the delay associated with each remote radio unit is determined manuaUy or automaticaUy.
25. The method in claim 22, further comprising: from the delays associated with each remote unit, selecting a maximum delay, and advancing the time when the data signal is sent over the downUnk fiber to , compensate- for the maximum delay.
26. The method in claim 25, further comprising for each remote radio unit: buffering the data signal in a transmit buffer for a transmit time before the data signal is sent on the downUnk fiber, and buffering in a receive buffer a responsive data signal from the remote digital interface unit for a receive time.
27. The method in claim 22, further comprising: for each of the remote units, generating a serial signal of framed data words, each data word including digital data, a digital synchronization signal, and a digital control signal; converting the serial signal into a corresponding optical signal transmitted over the downUnk fiber; converting an optical signal received over the upUnk fiber into a serial digital stream of frames; and demultiplexing the serial digital stream from the optical-to-electrical converter into framed data words, each data word having a digital data signal, a digital synchronization signal, and a digital control signal.
28. A hybrid radio base station (Fig. 9), characterized by: a main base station unit (100) including: baseband processing circuitry (24, 26), and plural near radio units (102); and plural remote radio units (16); a first fiber path and a second fiber path for coupUng the remote radio units and the main base station unit in a series configuration; and plural digital interface units (28', 28), one for each near (102) and remote radio unit (16), coupled to the baseband processing circuitry; wherein each remote radio unit digital interface (28) includes a timing- compensator for compensating for a delay associated with that remote radio unit so that a signal received by one of the near radio units and the same signal received by . one of the remote radio units may be synchronized for processing in the baseband processing circuitry.
29. The hybrid radio base station system in claim 28, wherein the main unit is configured to combine N words of data, one word corresponding to each of the N remote units, into a frame and to transmit the frame on the first fiber path.
30. The hybrid radio base station system in claim 29, wherein the main unit is configured to transmit data over the first fiber path at N times the data rate desired for main unit to remote unit data transmissions.
31. The hybrid radio base station system in claim 30, wherein the main digital interface unit includes for each remote radio unit a timing compensator (46,
50) for compensating a delay associated with that remote radio unit by advancing a time when a data word is sent in a frame over the first fiber path.
32. The hybrid radio base station system in claim 31, wherein the main unit includes a data table (62) for storing a delay determined for each of the remote units.
33. The hybrid radio base station system in claim 31, wherein the main unit includes a counter (63) for determining a delay determined for each of the remote units.
PCT/SE2003/001682 2002-11-15 2003-10-28 Optical fiber coupling configurations for a main-remote radio base station and a hybrid radio base station WO2004047472A1 (en)

Priority Applications (5)

Application Number Priority Date Filing Date Title
AU2003274879A AU2003274879A1 (en) 2002-11-15 2003-10-28 Optical fiber coupling configurations for a main-remote radio base station and a hybrid radio base station
AT03759156T ATE472864T1 (en) 2002-11-15 2003-10-28 OPTICAL FIBER COUPLING DEVICES FOR A REMOTE MAIN RADIO BASE STATION AND A HYBRID BASE STATION
EP03759156A EP1563700B1 (en) 2002-11-15 2003-10-28 Optical fiber coupling configurations for a main-remote radio base station and a hybrid radio base station
DE60333215T DE60333215D1 (en) 2002-11-15 2003-10-28 COUPLING DEVICES FOR OPTICAL FIBERS FOR A REMOTE HOME RADIO BASIS STATION AND A HYBRID BASIS STATION
HK06106706A HK1086973A1 (en) 2002-11-15 2006-06-12 Optical fiber coupling configurations for a main-remote radio base station and a hybrid radio base station

Applications Claiming Priority (2)

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Cited By (65)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2006026891A1 (en) * 2004-09-08 2006-03-16 Utstarcom Telecom Co., Ltd. Centrailzed base-station system based on atca architeture platform
EP1954075A1 (en) * 2006-09-22 2008-08-06 Huawei Technologies Co., Ltd. Method for combining uplink signals in the sector splitting mode and a base station system thereof
CN100426897C (en) * 2005-01-12 2008-10-15 华为技术有限公司 Separated base station system and its networking method and baseband unit
CN100450249C (en) * 2005-06-30 2009-01-07 华为技术有限公司 Near-end maintenance radio frequency remote module method
CN1885750B (en) * 2005-06-23 2010-05-05 上海华为技术有限公司 Far-end RF module and its method for transmitting signal
US7787823B2 (en) 2006-09-15 2010-08-31 Corning Cable Systems Llc Radio-over-fiber (RoF) optical fiber cable system with transponder diversity and RoF wireless picocellular system using same
CN101159933B (en) * 2005-05-19 2010-09-08 华为技术有限公司 Split type base station system and networking method and base band unit thereof
US7848654B2 (en) 2006-09-28 2010-12-07 Corning Cable Systems Llc Radio-over-fiber (RoF) wireless picocellular system with combined picocells
CN101938285A (en) * 2010-08-30 2011-01-05 武汉邮电科学研究院 Method and device for realizing RRU data interface by using ping-pong operation
CN101232662B (en) * 2008-02-28 2011-05-25 中兴通讯股份有限公司 IQ signal switching method, base station and switching unit
CN102136868A (en) * 2011-05-09 2011-07-27 广州茂腾信息科技有限公司 Baseband unit (BBU)-radio remote unit (RRU) failure judgment method for telecom base station
CN102238599A (en) * 2010-05-06 2011-11-09 中兴通讯股份有限公司 Radio remote unit management device, system and method
US8111998B2 (en) 2007-02-06 2012-02-07 Corning Cable Systems Llc Transponder systems and methods for radio-over-fiber (RoF) wireless picocellular systems
US8175459B2 (en) 2007-10-12 2012-05-08 Corning Cable Systems Llc Hybrid wireless/wired RoF transponder and hybrid RoF communication system using same
US8270987B2 (en) 2005-03-31 2012-09-18 Telecom Italia S.P.A. Radio-access method, related radio base station, mobile-radio network and computer-program product using an assignment scheme for antennas' sectors
US8275265B2 (en) 2010-02-15 2012-09-25 Corning Cable Systems Llc Dynamic cell bonding (DCB) for radio-over-fiber (RoF)-based networks and communication systems and related methods
US8548330B2 (en) 2009-07-31 2013-10-01 Corning Cable Systems Llc Sectorization in distributed antenna systems, and related components and methods
US8644844B2 (en) 2007-12-20 2014-02-04 Corning Mobileaccess Ltd. Extending outdoor location based services and applications into enclosed areas
CN103905115A (en) * 2012-12-29 2014-07-02 中国移动通信集团安徽有限公司 Method and system for transmitting services between RRU and BBUs, and BBUs
US8855489B2 (en) 2004-10-25 2014-10-07 Telecom Italia S.P.A. Communications method, particularly for a mobile radio network
US8867919B2 (en) 2007-07-24 2014-10-21 Corning Cable Systems Llc Multi-port accumulator for radio-over-fiber (RoF) wireless picocellular systems
US8873585B2 (en) 2006-12-19 2014-10-28 Corning Optical Communications Wireless Ltd Distributed antenna system for MIMO technologies
US9037143B2 (en) 2010-08-16 2015-05-19 Corning Optical Communications LLC Remote antenna clusters and related systems, components, and methods supporting digital data signal propagation between remote antenna units
US9042732B2 (en) 2010-05-02 2015-05-26 Corning Optical Communications LLC Providing digital data services in optical fiber-based distributed radio frequency (RF) communication systems, and related components and methods
US9112611B2 (en) 2009-02-03 2015-08-18 Corning Optical Communications LLC Optical fiber-based distributed antenna systems, components, and related methods for calibration thereof
US9178635B2 (en) 2014-01-03 2015-11-03 Corning Optical Communications Wireless Ltd Separation of communication signal sub-bands in distributed antenna systems (DASs) to reduce interference
US9184843B2 (en) 2011-04-29 2015-11-10 Corning Optical Communications LLC Determining propagation delay of communications in distributed antenna systems, and related components, systems, and methods
US9219879B2 (en) 2009-11-13 2015-12-22 Corning Optical Communications LLC Radio-over-fiber (ROF) system for protocol-independent wired and/or wireless communication
US9240835B2 (en) 2011-04-29 2016-01-19 Corning Optical Communications LLC Systems, methods, and devices for increasing radio frequency (RF) power in distributed antenna systems
US9247543B2 (en) 2013-07-23 2016-01-26 Corning Optical Communications Wireless Ltd Monitoring non-supported wireless spectrum within coverage areas of distributed antenna systems (DASs)
US9258052B2 (en) 2012-03-30 2016-02-09 Corning Optical Communications LLC Reducing location-dependent interference in distributed antenna systems operating in multiple-input, multiple-output (MIMO) configuration, and related components, systems, and methods
US9325429B2 (en) 2011-02-21 2016-04-26 Corning Optical Communications LLC Providing digital data services as electrical signals and radio-frequency (RF) communications over optical fiber in distributed communications systems, and related components and methods
US9357551B2 (en) 2014-05-30 2016-05-31 Corning Optical Communications Wireless Ltd Systems and methods for simultaneous sampling of serial digital data streams from multiple analog-to-digital converters (ADCS), including in distributed antenna systems
US9385810B2 (en) 2013-09-30 2016-07-05 Corning Optical Communications Wireless Ltd Connection mapping in distributed communication systems
WO2016108312A1 (en) * 2014-12-30 2016-07-07 주식회사 쏠리드 Node unit capable of measuring delay and distributed antenna system comprising same
US9420542B2 (en) 2014-09-25 2016-08-16 Corning Optical Communications Wireless Ltd System-wide uplink band gain control in a distributed antenna system (DAS), based on per band gain control of remote uplink paths in remote units
US9455784B2 (en) 2012-10-31 2016-09-27 Corning Optical Communications Wireless Ltd Deployable wireless infrastructures and methods of deploying wireless infrastructures
US9525472B2 (en) 2014-07-30 2016-12-20 Corning Incorporated Reducing location-dependent destructive interference in distributed antenna systems (DASS) operating in multiple-input, multiple-output (MIMO) configuration, and related components, systems, and methods
US9525488B2 (en) 2010-05-02 2016-12-20 Corning Optical Communications LLC Digital data services and/or power distribution in optical fiber-based distributed communications systems providing digital data and radio frequency (RF) communications services, and related components and methods
US9531452B2 (en) 2012-11-29 2016-12-27 Corning Optical Communications LLC Hybrid intra-cell / inter-cell remote unit antenna bonding in multiple-input, multiple-output (MIMO) distributed antenna systems (DASs)
US9602210B2 (en) 2014-09-24 2017-03-21 Corning Optical Communications Wireless Ltd Flexible head-end chassis supporting automatic identification and interconnection of radio interface modules and optical interface modules in an optical fiber-based distributed antenna system (DAS)
US9621293B2 (en) 2012-08-07 2017-04-11 Corning Optical Communications Wireless Ltd Distribution of time-division multiplexed (TDM) management services in a distributed antenna system, and related components, systems, and methods
US9647758B2 (en) 2012-11-30 2017-05-09 Corning Optical Communications Wireless Ltd Cabling connectivity monitoring and verification
US9661781B2 (en) 2013-07-31 2017-05-23 Corning Optical Communications Wireless Ltd Remote units for distributed communication systems and related installation methods and apparatuses
US9673904B2 (en) 2009-02-03 2017-06-06 Corning Optical Communications LLC Optical fiber-based distributed antenna systems, components, and related methods for calibration thereof
US9681313B2 (en) 2015-04-15 2017-06-13 Corning Optical Communications Wireless Ltd Optimizing remote antenna unit performance using an alternative data channel
US9715157B2 (en) 2013-06-12 2017-07-25 Corning Optical Communications Wireless Ltd Voltage controlled optical directional coupler
US9729267B2 (en) 2014-12-11 2017-08-08 Corning Optical Communications Wireless Ltd Multiplexing two separate optical links with the same wavelength using asymmetric combining and splitting
US9730228B2 (en) 2014-08-29 2017-08-08 Corning Optical Communications Wireless Ltd Individualized gain control of remote uplink band paths in a remote unit in a distributed antenna system (DAS), based on combined uplink power level in the remote unit
US9775123B2 (en) 2014-03-28 2017-09-26 Corning Optical Communications Wireless Ltd. Individualized gain control of uplink paths in remote units in a distributed antenna system (DAS) based on individual remote unit contribution to combined uplink power
US9807700B2 (en) 2015-02-19 2017-10-31 Corning Optical Communications Wireless Ltd Offsetting unwanted downlink interference signals in an uplink path in a distributed antenna system (DAS)
US9948349B2 (en) 2015-07-17 2018-04-17 Corning Optical Communications Wireless Ltd IOT automation and data collection system
US9960821B2 (en) 2008-12-30 2018-05-01 Telecom Italia S.P.A. Method for adaptive distributed mobile communications, corresponding system and computer program product
US9974074B2 (en) 2013-06-12 2018-05-15 Corning Optical Communications Wireless Ltd Time-division duplexing (TDD) in distributed communications systems, including distributed antenna systems (DASs)
US10014910B2 (en) 2008-12-30 2018-07-03 Telecom Italia S.P.A. Method for distributed mobile communications, corresponding system and computer program product
US10096909B2 (en) 2014-11-03 2018-10-09 Corning Optical Communications Wireless Ltd. Multi-band monopole planar antennas configured to facilitate improved radio frequency (RF) isolation in multiple-input multiple-output (MIMO) antenna arrangement
US10110308B2 (en) 2014-12-18 2018-10-23 Corning Optical Communications Wireless Ltd Digital interface modules (DIMs) for flexibly distributing digital and/or analog communications signals in wide-area analog distributed antenna systems (DASs)
US10128951B2 (en) 2009-02-03 2018-11-13 Corning Optical Communications LLC Optical fiber-based distributed antenna systems, components, and related methods for monitoring and configuring thereof
US10136200B2 (en) 2012-04-25 2018-11-20 Corning Optical Communications LLC Distributed antenna system architectures
US10135533B2 (en) 2014-11-13 2018-11-20 Corning Optical Communications Wireless Ltd Analog distributed antenna systems (DASS) supporting distribution of digital communications signals interfaced from a digital signal source and analog radio frequency (RF) communications signals
US10187151B2 (en) 2014-12-18 2019-01-22 Corning Optical Communications Wireless Ltd Digital-analog interface modules (DAIMs) for flexibly distributing digital and/or analog communications signals in wide-area analog distributed antenna systems (DASs)
US10236924B2 (en) 2016-03-31 2019-03-19 Corning Optical Communications Wireless Ltd Reducing out-of-channel noise in a wireless distribution system (WDS)
US10560214B2 (en) 2015-09-28 2020-02-11 Corning Optical Communications LLC Downlink and uplink communication path switching in a time-division duplex (TDD) distributed antenna system (DAS)
US10659163B2 (en) 2014-09-25 2020-05-19 Corning Optical Communications LLC Supporting analog remote antenna units (RAUs) in digital distributed antenna systems (DASs) using analog RAU digital adaptors
US11178609B2 (en) 2010-10-13 2021-11-16 Corning Optical Communications LLC Power management for remote antenna units in distributed antenna systems

Families Citing this family (81)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP1445704A1 (en) * 2003-02-06 2004-08-11 STMicroelectronics S.r.l. Synchronization method of data interchange of a communication network and corresponding circuit and architecture
DE10305986B4 (en) * 2003-02-12 2022-07-21 IAD Gesellschaft für Informatik, Automatisierung und Datenverarbeitung mbH Measuring system with intelligent sensor head for medium or high voltage systems or in mining
KR100539860B1 (en) * 2003-06-09 2005-12-28 삼성전자주식회사 Apparatus for transmitting signal between ultra wide band networks
JP4547221B2 (en) * 2004-09-27 2010-09-22 株式会社日立国際電気 Wireless base station equipment
US7548695B2 (en) * 2004-10-19 2009-06-16 Nextg Networks, Inc. Wireless signal distribution system and method
KR100617839B1 (en) * 2004-11-16 2006-08-28 삼성전자주식회사 Optical network for bidirectional- wireless communication
CN100379305C (en) * 2005-10-21 2008-04-02 芯通科技(成都)有限公司 Wireless communication base station/trans receiver loop connection method and medium frequency interface structure
TW200805946A (en) * 2006-05-08 2008-01-16 Sunrise Telecom Inc Network profiling system having physical layer test system
WO2007134074A2 (en) * 2006-05-08 2007-11-22 Sunrise Telecom Incorporated Network profiling system having nonphysical layer test system
JP4772596B2 (en) * 2006-06-07 2011-09-14 株式会社東芝 ROF system, optical receiver and automatic adjustment method thereof
CN201001113Y (en) * 2006-12-21 2008-01-02 华为技术有限公司 Connection component and RF device integrated using the same
CN104202279A (en) 2006-12-26 2014-12-10 大力系统有限公司 Method and system for baseband predistortion linearization in multi-channel wideband communication systems
US20080194226A1 (en) * 2007-02-13 2008-08-14 Antonio Rivas Method and Apparatus for Providing Location Services for a Distributed Network
US8081923B1 (en) 2007-02-13 2011-12-20 Extenet Systems Inc. Method and apparatus for providing location services for a distributed network
CN100589623C (en) * 2007-04-11 2010-02-10 中兴通讯股份有限公司 Method for configuring initial information of multi-stage far-end radio frequency unit via control word
CN101425838B (en) * 2007-10-30 2013-02-13 电信科学技术研究院 Data channel configuration method and device
CN101436896B (en) * 2007-11-13 2013-03-27 中兴通讯股份有限公司 IQ data transmission method of radio frequency zooming unit
US8165100B2 (en) * 2007-12-21 2012-04-24 Powerwave Technologies, Inc. Time division duplexed digital distributed antenna system
US8855036B2 (en) * 2007-12-21 2014-10-07 Powerwave Technologies S.A.R.L. Digital distributed antenna system
KR100920894B1 (en) * 2007-12-31 2009-10-09 포스데이타 주식회사 Method for Synchronizing Data in Wireless Communication System, Radio Access Station, Main Unit, and Remote Unit Supporting the Same
US8503886B1 (en) * 2008-01-03 2013-08-06 Nextel Communications Inc. Systems and methods for visual light communication
CN101465705B (en) * 2008-06-30 2010-10-20 华为技术有限公司 Method and device for processing signal in microwave transmission equipment and microwave transmission equipment
CN102548051A (en) 2008-10-27 2012-07-04 华为技术有限公司 Communication system, equipment and method
US8116772B2 (en) * 2008-12-04 2012-02-14 Qualcomm Incorporated System and method to facilitate acquisition of access point base stations
CN101465693B (en) * 2008-12-17 2011-11-30 华为技术有限公司 Method and device for transmitting and receiving signal in microwave system
CN101771900B (en) * 2008-12-26 2012-12-19 中兴通讯股份有限公司 eNB optical switching device and method
US8125985B1 (en) 2008-12-29 2012-02-28 Juniper Networks, Inc. Methods and apparatus for chaining access switches coupled to a switch fabric
FR2941123B1 (en) * 2009-01-14 2012-08-03 Selecom Sud Electronique Comm CELL OF A CELLULAR COMMUNICATION NETWORK OF A CIRCULATION PATH AND COMMUNICATION NETWORK COMPRISING SUCH A CELL AND REPEATER ADAPTED TO OPERATE IN SUCH A CELL
JP2012517768A (en) * 2009-02-12 2012-08-02 エーデーシー・テレコミュニケーションズ・インコーポレーテッド Backfire distributed antenna system (DAS) with delayed transmission
EP2409429A4 (en) * 2009-03-10 2014-07-23 Ericsson Telefon Ab L M A transmission scheme
CN101841748B (en) * 2009-03-17 2013-06-12 中国移动通信集团公司 Signal transmission system and relevant device
US8346091B2 (en) 2009-04-29 2013-01-01 Andrew Llc Distributed antenna system for wireless network systems
US9590733B2 (en) * 2009-07-24 2017-03-07 Corning Optical Communications LLC Location tracking using fiber optic array cables and related systems and methods
ES2558482T3 (en) 2009-07-27 2016-02-04 Huawei Technologies Co. Ltd. Method and device of signal transmission and distributed base station processing
US8422884B2 (en) * 2010-03-24 2013-04-16 Fujitsu Limited Method and apparatus for picocell distributed radio heads providing macrocell capabilities
US8467823B2 (en) * 2010-03-24 2013-06-18 Fujitsu Limited Method and system for CPRI cascading in distributed radio head architectures
CN102845001B (en) 2010-03-31 2016-07-06 康宁光缆系统有限责任公司 Based on positioning service in the distributed communication assembly of optical fiber and system and associated method
US8681015B1 (en) * 2010-06-25 2014-03-25 Tellabs Operations, Inc. Method and apparatus for collecting data from automatic meter reading for smart power grid
US8570914B2 (en) 2010-08-09 2013-10-29 Corning Cable Systems Llc Apparatuses, systems, and methods for determining location of a mobile device(s) in a distributed antenna system(s)
KR101835254B1 (en) * 2010-08-17 2018-03-06 달리 시스템즈 씨오. 엘티디. Neutral host architecture for a distributed antenna system
CN102377477B (en) * 2010-08-27 2015-01-21 华为技术有限公司 Baseband signal transmission method and device
KR102136940B1 (en) 2010-09-14 2020-07-23 달리 시스템즈 씨오. 엘티디. Remotely Reconfigurable Distributed Antenna System and Methods
US20120147864A1 (en) * 2010-12-09 2012-06-14 Jianlin Guo Synchronous Data Transmission in Hybrid Communication Networks for Transportation Safety Systems
CN102158264A (en) * 2011-03-09 2011-08-17 华为技术有限公司 Communication signal transmission method, device and system
EP2521289B1 (en) * 2011-05-04 2014-03-05 Alcatel Lucent Optical receiver for multimode communications
US9715001B2 (en) * 2011-06-13 2017-07-25 Commscope Technologies Llc Mobile location in a remote radio head environment
US9312941B2 (en) 2011-10-14 2016-04-12 Qualcomm Incorporated Base stations and methods for facilitating dynamic simulcasting and de-simulcasting in a distributed antenna system
US9276685B2 (en) * 2011-10-14 2016-03-01 Qualcomm Incorporated Distributed antenna systems and methods of wireless communications for facilitating simulcasting and de-simulcasting of downlink transmissions
US8837373B2 (en) * 2011-11-01 2014-09-16 Telefonaktiebolaget L M Ericsson (Publ) Relay node, main unit for a relay node and method therein
EP2813128B1 (en) * 2012-02-09 2019-04-10 Telefonaktiebolaget LM Ericsson (publ) Network node and method for enabling an ad-hoc connection between a main unit and a remote radio unit over an optical network
US9007901B2 (en) * 2012-02-09 2015-04-14 Alcatel Lucent Method and apparatus providing flow control using on-off signals in high delay networks
WO2013139367A1 (en) * 2012-03-19 2013-09-26 Telefonaktiebolaget L M Ericsson (Publ) Wdm link for radio base station
US9781553B2 (en) 2012-04-24 2017-10-03 Corning Optical Communications LLC Location based services in a distributed communication system, and related components and methods
WO2013181247A1 (en) 2012-05-29 2013-12-05 Corning Cable Systems Llc Ultrasound-based localization of client devices with inertial navigation supplement in distributed communication systems and related devices and methods
KR101961717B1 (en) * 2012-10-25 2019-03-25 에스케이텔레콤 주식회사 Base station and control method thereof
US9158864B2 (en) 2012-12-21 2015-10-13 Corning Optical Communications Wireless Ltd Systems, methods, and devices for documenting a location of installed equipment
NO3031148T3 (en) * 2013-08-09 2018-03-03
EP2846605A1 (en) * 2013-09-05 2015-03-11 Kapsch Carriercom AG Radio subsystem and method of calibrating the same
KR102116539B1 (en) 2013-09-06 2020-05-29 주식회사 케이엠더블유 Remote radio head
WO2015034313A1 (en) * 2013-09-06 2015-03-12 주식회사 케이엠더블유 Remote radio head
US9794903B2 (en) * 2013-09-23 2017-10-17 Ziva Corp. Synchronization of distributed nodes
US10177822B2 (en) * 2013-09-23 2019-01-08 Ziva Corp. Node synchronization using time reversal
US9450689B2 (en) * 2013-10-07 2016-09-20 Commscope Technologies Llc Systems and methods for delay management in distributed antenna system with direct digital interface to base station
KR102189745B1 (en) * 2013-12-06 2020-12-14 주식회사 쏠리드 A remote device of optical repeater system
US10045306B2 (en) 2014-02-21 2018-08-07 Commscope Technologies Llc Self-optimizing network entity for a telecommunications system
CN104185193B (en) * 2014-08-18 2018-03-13 京信通信系统(中国)有限公司 Multichannel RRU delay control methods and its device
US10064149B1 (en) * 2015-05-17 2018-08-28 Kiomars Anvari Cloud based wireless network
EP3320369B1 (en) 2015-07-06 2021-12-01 Dali Systems Co. Ltd. Distributed antenna system network analytics
WO2017020966A1 (en) * 2015-08-06 2017-02-09 Telefonaktiebolaget Lm Ericsson (Publ) Communications network control
US11228458B2 (en) * 2015-09-10 2022-01-18 Lightfleet Corporation Group-coherent memory
US20170078367A1 (en) * 2015-09-10 2017-03-16 Lightfleet Corporation Packet-flow message-distribution system
CN108886374B (en) * 2016-01-18 2021-08-03 唯亚威通讯技术有限公司 Method and apparatus for detecting distortion or deformation of cellular communication signals
KR102415308B1 (en) * 2016-02-25 2022-07-01 한국전자통신연구원 Analog optical transmission system
US9648580B1 (en) 2016-03-23 2017-05-09 Corning Optical Communications Wireless Ltd Identifying remote units in a wireless distribution system (WDS) based on assigned unique temporal delay patterns
EP3494675B1 (en) 2017-02-15 2020-02-19 Maven Wireless Sweden AB Distributed antenna system providing redundancy
EP3698583A1 (en) 2017-10-17 2020-08-26 Telefonaktiebolaget LM Ericsson (PUBL) Distributed mimo synchronization
US11616540B2 (en) 2017-11-21 2023-03-28 Telefonaktiebolaget Lm Ericsson (Publ) Antenna arrangement for distributed massive MIMO
JP7223229B2 (en) * 2019-02-15 2023-02-16 日本電信電話株式会社 Derivation method, communication system and accommodation station device
CN110290434B (en) * 2019-07-05 2022-03-04 北京电子工程总体研究所 Non-periodic signal synchronization method and system based on optical fiber transmission delay real-time compensation
US20230155632A1 (en) * 2020-04-24 2023-05-18 Telefonaktiebolaget Lm Ericsson (Publ) Failsafe Series-Connected Radio System
US11943705B2 (en) * 2021-06-11 2024-03-26 Skylo Technologies, Inc. RF (radio frequency) virtualization architecture

Citations (8)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP0497035A2 (en) * 1991-02-01 1992-08-05 Ericsson GE Mobile Communications Inc. Simulcast automatic alignment system
EP0635988A1 (en) * 1993-07-23 1995-01-25 Ericsson GE Mobile Communications Inc. Narrow band simulcast system having low speed data distribution
US5542119A (en) * 1993-02-26 1996-07-30 Motorola, Inc. Method for selecting a highest quality signal for retransmission by base sites in a simulcast communication system
WO1998004052A1 (en) * 1996-07-18 1998-01-29 Ericsson Inc. System and method for equalizing the delay time for transmission paths in a distributed antenna network
WO1998036601A2 (en) * 1997-02-18 1998-08-20 Ericsson Inc. System and method for reducing multicast interference in a distributed antenna network
EP1047276A2 (en) * 1999-04-21 2000-10-25 Transcept, Inc. Distributed fiber system supporting soft handover in CDMA cellular system
US6336042B1 (en) * 1998-06-05 2002-01-01 Transcept, Inc. Reverse link antenna diversity in a wireless telephony system
US6366571B1 (en) * 1998-06-01 2002-04-02 Ameritech Corporation Integration of remote microcell with CDMA infrastructure

Family Cites Families (19)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPH0648872B2 (en) 1987-07-29 1994-06-22 日立金属株式会社 Vibration plate for electro-acoustic transducer
JPH0624366B2 (en) * 1988-11-24 1994-03-30 日本電気株式会社 Network failure recovery method
US5067173A (en) 1990-12-20 1991-11-19 At&T Bell Laboratories Microcellular communications system using space diversity reception
US5627879A (en) 1992-09-17 1997-05-06 Adc Telecommunications, Inc. Cellular communications system with centralized base stations and distributed antenna units
JPH06188791A (en) 1992-12-22 1994-07-08 Nippon Telegr & Teleph Corp <Ntt> Diversity signal transmission system
US5377035A (en) 1993-09-28 1994-12-27 Hughes Aircraft Company Wavelength division multiplexed fiber optic link for RF polarization diversity receiver
US5752198A (en) * 1994-11-14 1998-05-12 Ericsson Inc. Single site, split location trunked radio communications system
JPH08167876A (en) 1994-12-15 1996-06-25 Kokusai Electric Co Ltd Optical transmission radio base station and receiving diversity method
US5761619A (en) 1995-03-23 1998-06-02 Telefoanktiebolaget Lm Ericsson Distributed telecommunications system
US5771462A (en) * 1995-07-07 1998-06-23 International Business Machines Corporation Bus arbitration infrastructure for deployment of wireless networks
US5646946A (en) * 1995-10-30 1997-07-08 Motorola, Inc. Apparatus and method for selectively companding data on a slot-by-slot basis
US6012152A (en) * 1996-11-27 2000-01-04 Telefonaktiebolaget Lm Ericsson (Publ) Software fault management system
US6091705A (en) * 1996-12-20 2000-07-18 Sebring Systems, Inc. Method and apparatus for a fault tolerant, software transparent and high data integrity extension to a backplane bus or interconnect
KR100211581B1 (en) * 1997-05-10 1999-08-02 윤종용 Method for sending page data in paging systems simultaneously using a delay ciriuit of the reference clock signal from gps
US6011780A (en) * 1997-05-23 2000-01-04 Stevens Institute Of Technology Transparant non-disruptable ATM network
US6711140B1 (en) * 1997-07-15 2004-03-23 Comsat Corporation Method and apparatus for fast acquisition and synchronization of transmission frames
EP1009762A2 (en) * 1997-08-06 2000-06-21 ZymoGenetics, Inc. Lipocalin homologs
KR100291039B1 (en) * 1999-03-12 2001-05-15 윤종용 Method for synchronizing radio port and radio interface unit in wireless local loop
US6721571B2 (en) * 2000-12-15 2004-04-13 Nortel Networks Ltd. Wireless network infrastructure in that digital processing resources are shared

Patent Citations (8)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP0497035A2 (en) * 1991-02-01 1992-08-05 Ericsson GE Mobile Communications Inc. Simulcast automatic alignment system
US5542119A (en) * 1993-02-26 1996-07-30 Motorola, Inc. Method for selecting a highest quality signal for retransmission by base sites in a simulcast communication system
EP0635988A1 (en) * 1993-07-23 1995-01-25 Ericsson GE Mobile Communications Inc. Narrow band simulcast system having low speed data distribution
WO1998004052A1 (en) * 1996-07-18 1998-01-29 Ericsson Inc. System and method for equalizing the delay time for transmission paths in a distributed antenna network
WO1998036601A2 (en) * 1997-02-18 1998-08-20 Ericsson Inc. System and method for reducing multicast interference in a distributed antenna network
US6366571B1 (en) * 1998-06-01 2002-04-02 Ameritech Corporation Integration of remote microcell with CDMA infrastructure
US6336042B1 (en) * 1998-06-05 2002-01-01 Transcept, Inc. Reverse link antenna diversity in a wireless telephony system
EP1047276A2 (en) * 1999-04-21 2000-10-25 Transcept, Inc. Distributed fiber system supporting soft handover in CDMA cellular system

Cited By (114)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2006026891A1 (en) * 2004-09-08 2006-03-16 Utstarcom Telecom Co., Ltd. Centrailzed base-station system based on atca architeture platform
CN100442880C (en) * 2004-09-08 2008-12-10 Ut斯达康通讯有限公司 Central base station system based on advanced telecommunication computer system structure
US8855489B2 (en) 2004-10-25 2014-10-07 Telecom Italia S.P.A. Communications method, particularly for a mobile radio network
US7937110B2 (en) 2005-01-12 2011-05-03 Huawei Technologies Co., Ltd. Distributed base station system and method for networking thereof and base band unit
CN100426897C (en) * 2005-01-12 2008-10-15 华为技术有限公司 Separated base station system and its networking method and baseband unit
US8270987B2 (en) 2005-03-31 2012-09-18 Telecom Italia S.P.A. Radio-access method, related radio base station, mobile-radio network and computer-program product using an assignment scheme for antennas' sectors
CN101159933B (en) * 2005-05-19 2010-09-08 华为技术有限公司 Split type base station system and networking method and base band unit thereof
CN1885750B (en) * 2005-06-23 2010-05-05 上海华为技术有限公司 Far-end RF module and its method for transmitting signal
CN100450249C (en) * 2005-06-30 2009-01-07 华为技术有限公司 Near-end maintenance radio frequency remote module method
US7787823B2 (en) 2006-09-15 2010-08-31 Corning Cable Systems Llc Radio-over-fiber (RoF) optical fiber cable system with transponder diversity and RoF wireless picocellular system using same
EP1954075A4 (en) * 2006-09-22 2008-11-26 Huawei Tech Co Ltd Method for combining uplink signals in the sector splitting mode and a base station system thereof
EP1954075A1 (en) * 2006-09-22 2008-08-06 Huawei Technologies Co., Ltd. Method for combining uplink signals in the sector splitting mode and a base station system thereof
US7848654B2 (en) 2006-09-28 2010-12-07 Corning Cable Systems Llc Radio-over-fiber (RoF) wireless picocellular system with combined picocells
US9130613B2 (en) 2006-12-19 2015-09-08 Corning Optical Communications Wireless Ltd Distributed antenna system for MIMO technologies
US8873585B2 (en) 2006-12-19 2014-10-28 Corning Optical Communications Wireless Ltd Distributed antenna system for MIMO technologies
US8111998B2 (en) 2007-02-06 2012-02-07 Corning Cable Systems Llc Transponder systems and methods for radio-over-fiber (RoF) wireless picocellular systems
US8867919B2 (en) 2007-07-24 2014-10-21 Corning Cable Systems Llc Multi-port accumulator for radio-over-fiber (RoF) wireless picocellular systems
US8175459B2 (en) 2007-10-12 2012-05-08 Corning Cable Systems Llc Hybrid wireless/wired RoF transponder and hybrid RoF communication system using same
US8718478B2 (en) 2007-10-12 2014-05-06 Corning Cable Systems Llc Hybrid wireless/wired RoF transponder and hybrid RoF communication system using same
US8644844B2 (en) 2007-12-20 2014-02-04 Corning Mobileaccess Ltd. Extending outdoor location based services and applications into enclosed areas
CN101232662B (en) * 2008-02-28 2011-05-25 中兴通讯股份有限公司 IQ signal switching method, base station and switching unit
US9960821B2 (en) 2008-12-30 2018-05-01 Telecom Italia S.P.A. Method for adaptive distributed mobile communications, corresponding system and computer program product
US10014910B2 (en) 2008-12-30 2018-07-03 Telecom Italia S.P.A. Method for distributed mobile communications, corresponding system and computer program product
US9673904B2 (en) 2009-02-03 2017-06-06 Corning Optical Communications LLC Optical fiber-based distributed antenna systems, components, and related methods for calibration thereof
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US9485022B2 (en) 2009-11-13 2016-11-01 Corning Optical Communications LLC Radio-over-fiber (ROF) system for protocol-independent wired and/or wireless communication
US9219879B2 (en) 2009-11-13 2015-12-22 Corning Optical Communications LLC Radio-over-fiber (ROF) system for protocol-independent wired and/or wireless communication
US9729238B2 (en) 2009-11-13 2017-08-08 Corning Optical Communications LLC Radio-over-fiber (ROF) system for protocol-independent wired and/or wireless communication
US8831428B2 (en) 2010-02-15 2014-09-09 Corning Optical Communications LLC Dynamic cell bonding (DCB) for radio-over-fiber (RoF)-based networks and communication systems and related methods
US8275265B2 (en) 2010-02-15 2012-09-25 Corning Cable Systems Llc Dynamic cell bonding (DCB) for radio-over-fiber (RoF)-based networks and communication systems and related methods
US9319138B2 (en) 2010-02-15 2016-04-19 Corning Optical Communications LLC Dynamic cell bonding (DCB) for radio-over-fiber (RoF)-based networks and communication systems and related methods
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US9037143B2 (en) 2010-08-16 2015-05-19 Corning Optical Communications LLC Remote antenna clusters and related systems, components, and methods supporting digital data signal propagation between remote antenna units
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US11224014B2 (en) 2010-10-13 2022-01-11 Corning Optical Communications LLC Power management for remote antenna units in distributed antenna systems
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US9813127B2 (en) 2012-03-30 2017-11-07 Corning Optical Communications LLC Reducing location-dependent interference in distributed antenna systems operating in multiple-input, multiple-output (MIMO) configuration, and related components, systems, and methods
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US9807772B2 (en) 2014-05-30 2017-10-31 Corning Optical Communications Wireless Ltd. Systems and methods for simultaneous sampling of serial digital data streams from multiple analog-to-digital converters (ADCs), including in distributed antenna systems
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US10256879B2 (en) 2014-07-30 2019-04-09 Corning Incorporated Reducing location-dependent destructive interference in distributed antenna systems (DASS) operating in multiple-input, multiple-output (MIMO) configuration, and related components, systems, and methods
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US9929786B2 (en) 2014-07-30 2018-03-27 Corning Incorporated Reducing location-dependent destructive interference in distributed antenna systems (DASS) operating in multiple-input, multiple-output (MIMO) configuration, and related components, systems, and methods
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US9929810B2 (en) 2014-09-24 2018-03-27 Corning Optical Communications Wireless Ltd Flexible head-end chassis supporting automatic identification and interconnection of radio interface modules and optical interface modules in an optical fiber-based distributed antenna system (DAS)
US9420542B2 (en) 2014-09-25 2016-08-16 Corning Optical Communications Wireless Ltd System-wide uplink band gain control in a distributed antenna system (DAS), based on per band gain control of remote uplink paths in remote units
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US9788279B2 (en) 2014-09-25 2017-10-10 Corning Optical Communications Wireless Ltd System-wide uplink band gain control in a distributed antenna system (DAS), based on per-band gain control of remote uplink paths in remote units
US10096909B2 (en) 2014-11-03 2018-10-09 Corning Optical Communications Wireless Ltd. Multi-band monopole planar antennas configured to facilitate improved radio frequency (RF) isolation in multiple-input multiple-output (MIMO) antenna arrangement
US10135533B2 (en) 2014-11-13 2018-11-20 Corning Optical Communications Wireless Ltd Analog distributed antenna systems (DASS) supporting distribution of digital communications signals interfaced from a digital signal source and analog radio frequency (RF) communications signals
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US9729267B2 (en) 2014-12-11 2017-08-08 Corning Optical Communications Wireless Ltd Multiplexing two separate optical links with the same wavelength using asymmetric combining and splitting
US10135561B2 (en) 2014-12-11 2018-11-20 Corning Optical Communications Wireless Ltd Multiplexing two separate optical links with the same wavelength using asymmetric combining and splitting
US10110308B2 (en) 2014-12-18 2018-10-23 Corning Optical Communications Wireless Ltd Digital interface modules (DIMs) for flexibly distributing digital and/or analog communications signals in wide-area analog distributed antenna systems (DASs)
US10361783B2 (en) 2014-12-18 2019-07-23 Corning Optical Communications LLC Digital interface modules (DIMs) for flexibly distributing digital and/or analog communications signals in wide-area analog distributed antenna systems (DASs)
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US10187151B2 (en) 2014-12-18 2019-01-22 Corning Optical Communications Wireless Ltd Digital-analog interface modules (DAIMs) for flexibly distributing digital and/or analog communications signals in wide-area analog distributed antenna systems (DASs)
WO2016108312A1 (en) * 2014-12-30 2016-07-07 주식회사 쏠리드 Node unit capable of measuring delay and distributed antenna system comprising same
US10396918B2 (en) 2014-12-30 2019-08-27 Solid, Inc. Node unit capable of measuring delay and distributed antenna system including the same
US9584386B2 (en) 2014-12-30 2017-02-28 Solid, Inc. Node unit capable of measuring delay and distributed antenna system including the same
US9807700B2 (en) 2015-02-19 2017-10-31 Corning Optical Communications Wireless Ltd Offsetting unwanted downlink interference signals in an uplink path in a distributed antenna system (DAS)
US10292114B2 (en) 2015-02-19 2019-05-14 Corning Optical Communications LLC Offsetting unwanted downlink interference signals in an uplink path in a distributed antenna system (DAS)
US9681313B2 (en) 2015-04-15 2017-06-13 Corning Optical Communications Wireless Ltd Optimizing remote antenna unit performance using an alternative data channel
US10009094B2 (en) 2015-04-15 2018-06-26 Corning Optical Communications Wireless Ltd Optimizing remote antenna unit performance using an alternative data channel
US9948349B2 (en) 2015-07-17 2018-04-17 Corning Optical Communications Wireless Ltd IOT automation and data collection system
US10560214B2 (en) 2015-09-28 2020-02-11 Corning Optical Communications LLC Downlink and uplink communication path switching in a time-division duplex (TDD) distributed antenna system (DAS)
US10236924B2 (en) 2016-03-31 2019-03-19 Corning Optical Communications Wireless Ltd Reducing out-of-channel noise in a wireless distribution system (WDS)

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