Digital interface modules (DIMs) for flexibly distributing digital and/or analog communications signals in wide-area analog distributed antenna systems (DASs)

Information

  • Patent Grant
  • 10110308
  • Patent Number
    10,110,308
  • Date Filed
    Friday, March 31, 2017
    7 years ago
  • Date Issued
    Tuesday, October 23, 2018
    6 years ago
Abstract
Embodiments of the disclosure relate to digital interface modules (DIMs) for flexibly distributing digital and/or analog communications signals in wide-area analog distributed antenna systems (DASs). In this regard, in one aspect, a DIM is a multi-functional device capable of distributing the digital and/or analog communications signals to a local-area DASs in the wide-area DAS. The DIM comprises a digital communications interface for coupling with a digital signal source, an analog local distribution interface for coupling with an analog signal source, and at least one digital remote distribution interface for coupling with a head-end unit (HEU) of the local-area DAS. By employing the DIM in the wide-area DAS, it is possible to flexibly reconfigure the wide-area DAS for distributing digital and/or analog communications signals over the digital communications mediums.
Description
BACKGROUND

The disclosure relates generally to distribution of communications signals in a distributed antenna system (DAS), and more particularly to flexibly distributing digital and/or analog communications signals between analog DASs over digital communications mediums.


Wireless customers are increasingly demanding digital data services, such as streaming video signals. Concurrently, some wireless customers use their wireless devices in areas that are poorly served by conventional cellular networks, such as inside certain buildings or areas where there is little cellular coverage. One response to the intersection of these two concerns has been the use of DASs. DASs can be particularly useful when deployed inside buildings or other indoor environments where client devices may not otherwise be able to effectively receive radio frequency (RF) signals from a source. DASs include remote antenna units (RAUs) configured to receive and transmit communications signals to client devices within the antenna range of the RAUs.


A typical DAS comprises a head-end unit communicatively coupled to one or more remote unit groups, each comprising at least one remote unit. The remote unit may be an RAU that is configured to wirelessly distribute communications signals to and from the head-end unit. The head-end unit is configured to receive and distribute the communications signals to a variety of wireless services, such as wideband code division multiple access (WCDMA), long-term evolution (LTE), and wireless local area network (WLAN) communications services. To distribute such wireless communications services in a DAS, the wireless communications services can be provided in the form of digital communications signals and/or analog communications signals to the head-end unit of the DAS. Thus, the DAS may be configured to receive and distribute the digital communications signals and/or analog communications signals in either analog or digital form. Analog communications signals may be directly modulated onto a carrier signal for transmission over an analog communications medium. Digital communications signals, in contrast, are signals generated by sampling and digitizing an analog communications signal before modulating onto the carrier signal. DASs configured to directly distribute analog communications signals may be referred to as analog DASs. DASs configured to directly distribute digital communications signals may be referred to as digital DASs.


No admission is made that any reference cited herein constitutes prior art. Applicant expressly reserves the right to challenge the accuracy and pertinency of any cited documents.


SUMMARY

Embodiments of the disclosure relate to digital-analog interface modules (DAIMs) and digital interface modules (DIMs) for flexibly distributing digital and/or analog communications signals in wide-area analog distributed antenna systems (DASs). A wide-area DAS typically comprises a plurality of local-area DASs interconnected via digital communications mediums. Any of the plurality of local-area DASs may be configured as a main DAS to efficiently receive and redistribute digital and/or analog communications signals to rest of the local-area DASs in the wide-area DAS. In a non-limiting example, the main DAS in the wide-area DAS may be collocated with installed telecommunications equipment (e.g., base transceiver stations and digital baseband units) to avoid additional installation costs, reduce power consumption, and improve operation efficiency.


In this regard, in one embodiment, a DAIM is provided as multi-functional equipment in the main DAS for receiving and redistributing digital and/or analog communications signals to rest of the local-area DASs in the wide-area DAS. The DAIM comprises an analog radio frequency (RF) communications signal interface for coupling with an analog signal source, a digital communications interface for coupling with a digital signal source, an analog local distribution interface for coupling with a remote antenna unit (RAU), and at least one digital remote distribution interface for coupling with a head-end unit (HEU) of a local-area DAS. Furthermore, a plurality of DAIMs may be interconnected via respective digital bus interfaces to concurrently support the plurality of local-area DASs in the wide-area DAS. In another embodiment, a DIM is provided in the main DAS as an alternative to the DAIM. The DIM is a modified DAIM and comprises a digital communications interface for coupling with a digital signal source, an analog local distribution interface for coupling with an analog signal source, and at least one digital remote distribution interface for coupling with the HEU of the remote local-area DAS. Furthermore, a plurality of DIMs may be interconnected via the respective digital bus interfaces to concurrently support the plurality of local-area DASs in the wide-area DAS. By employing the DAIM or the DIM in the wide-area DAS, it is possible to flexibly reconfigure the wide-area DAS for distributing digital and/or analog communications signals over the digital communications mediums.


An additional embodiment of the disclosure relates to a DIM in a main DAS to support a wide-area DAS. The DIM comprises at least one digital remote distribution interface to be coupled with a remote DAS component in a remote DAS in the wide-area DAS. The DIM also comprises an analog local distribution interface configured to receive a downlink analog radio frequency (RF) signal from a radio interface module (RIM) in the main DAS. The DIM also comprises an analog-to-digital (A/D) converter coupled to the analog local distribution interface. The A/D converter is configured to receive the downlink analog RF signal from the analog local distribution interface. The A/D converter is also configured to convert the downlink analog RF signal to generate a downlink digital RF signal.


The DIM also comprises a digital signal processing circuit coupled to the A/D converter and the at least one digital remote distribution interface. The digital signal processing circuit is configured to receive the downlink digital RF signal from the A/D converter. The digital signal processing circuit is also configured to convert the downlink digital RF signal to generate one or more first downlink digital RF signals. The digital signal processing circuit is also configured to combine one or more respective first downlink digital RF signals to generate a combined downlink digital RF signal. The digital signal processing circuit is also configured to provide the combined downlink digital RF signal to the at least one digital remote distribution interface to be distributed to the remote DAS component.


An additional embodiment of the disclosure relates to an optical fiber-based wide-area DAS. The optical fiber-based wide-area DAS comprises a main DAS comprising a main HEU. The main HEU comprises one or more RIMs communicatively coupled to one or more base transceiver stations (BTSs). The main HEU also comprises an RF combiner/splitter coupled to the one or more RIMs. The main HEU also comprises an optical splitter/combiner coupled to the RF combiner/splitter. The main HEU also comprises one or more main-HEU DIMs coupled to the optical splitter/combiner, wherein each of the one or more main-HEU DIMs is coupled to a respective optical fiber-based downlink digital communications medium via a respective electrical-to-optical (E/O) converter and a respective optical fiber-based uplink digital communications medium via a respective optical-to-electrical (O/E) converter. The optical fiber-based wide-area DAS also comprises one or more remote DASs comprising one or more remote HEUs, respectively. A remote HEU among the one or more remote HEUs comprises one or more remote-HEU DIMs corresponding to one or more RF bands, respectively, wherein at least one remote-HEU DIM among the one or more remote-HEU DIMs comprised in the remote HEU is configured to interface with a respective main-HEU DIM in the main HEU. The at least one remote-HEU DIM configured to interface with the respective main-HEU DIM in the main HEU is coupled to the respective optical fiber-based downlink digital communications medium via a respective remote-HEU O/E converter and is coupled to the respective optical fiber-based uplink digital communications medium via a respective remote-HEU E/O converter. The remote HEU among the one or more remote HEUs also comprises a remote-HEU RF combiner/splitter coupled to the one or more remote-HEU DIMs. The remote HEU among the one or more remote HEUs also comprises a remote-HEU optical splitter/combiner coupled to the remote-HEU RF combiner/splitter. The remote HEU among the one or more remote HEUs also comprises one or more remote-HEU optical interface modules (OIMs) coupled to the remote-HEU optical splitter/combiner, wherein the one or more OIMs are coupled with one or more remote-DAS RAUs.


An additional embodiment of the disclosure relates to a method for reconfiguring an existing HEU in a DAS with DIMs. The method comprises replacing one or more OIMs in the existing HEU with one or more DIMs. For each of the one or more DIMs, the method also comprises coupling a digital communications interface comprised in the DIM to a respective digital signal source. For each of the one or more DIMs, the method also comprises coupling at least one digital remote distribution interface comprised in the DIM to a respective downlink digital communications medium and a respective uplink digital communications medium. For each of the one or more DIMs, the method also comprises coupling an analog local distribution interface comprised in the DIM to a respective RIM.


Additional features and advantages will be set forth in the detailed description which follows, and in part will be readily apparent to those skilled in the art from the description or recognized by practicing the embodiments as described in the written description and claims hereof, as well as the appended drawings.


It is to be understood that both the foregoing general description and the following detailed description are merely exemplary, and are intended to provide an overview or framework to understand the nature and character of the claims. The accompanying drawings are included to provide a further understanding, and are incorporated in and constitute a part of this specification. The drawings illustrate one or more embodiment(s), and together with the description serve to explain principles and operation of the various embodiments.





BRIEF DESCRIPTION OF THE DRAWINGS


FIG. 1 is a schematic diagram of an exemplary analog distributed antenna system (DAS);



FIG. 2 is a schematic diagram of an exemplary wide-area analog DAS consisting of a plurality of local-area analog DASs wherein a local-area analog DAS among the plurality of local-area analog DASs is configured as a main analog DAS of the wide-area analog DAS;



FIG. 3 is a schematic diagram of an exemplary digital-analog interface module (DAIM) configured to be retrofitted into the chassis of a main head-end unit (HEU) in the wide-area analog DAS of FIG. 2 for distributing digital and/or analog communications signals in the wide-area analog DAS over digital communications mediums;



FIG. 4 is a schematic diagram of an exemplary digital interface module (DIM) that configured to be retrofitted into the chassis of a plurality of remote HEUs as well as a main HEU in the wide-area analog DAS of FIG. 2 for distributing digital and/or analog communications signals in the wide-area analog DAS over digital communications mediums;



FIG. 5A is a schematic diagram of an exemplary main HEU comprising a plurality of DAIMs that are interconnected to an interconnection digital bus via a plurality of digital bus interfaces and configured to share a plurality of downlink communications signals;



FIG. 5B is a schematic diagram of an exemplary main HEU comprising the plurality of DAIMs in FIG. 5A that are interconnected to the interconnection digital bus in FIG. 5A via the plurality of digital bus interfaces in FIG. 5A and configured to share a plurality of uplink communications signals;



FIG. 6 is a schematic diagram of an exemplary optical fiber-based wide-area DAS configured to distribute digital and analog communications signals from a main HEU to one or more remote HEUs over optical fiber-based digital communications mediums, wherein the main HEU is reconfigured by retrofitting one or more of the DAIMs illustrated in FIG. 3 into the existing chassis of a main HEU in FIG. 2;



FIG. 7 is a flowchart of an exemplary HEU configuration process reconfiguring the main HEU in FIG. 2 with one or more of the DAIMs in FIG. 6;



FIG. 8 is a schematic diagram of an exemplary optical fiber-based wide-area DAS configured to distribute digital and analog communications signals from a main HEU to the one or more remote HEUs in FIG. 6 over the optical fiber-based digital communications mediums in FIG. 6, wherein the main HEU is reconfigured by retrofitting one or more of the DIMs illustrated in FIG. 4 into the existing chassis of a main HEU in FIG. 2;



FIG. 9 is a flowchart of an exemplary HEU configuration process reconfiguring the main HEU in FIG. 2 with one or more main-HEU DIMs in FIG. 8;



FIG. 10 is a schematic diagram of an exemplary DAS comprising a main HEU coupled to a remote HEU over a plurality of optical fiber-based communications mediums;



FIG. 11 is a schematic diagram of an exemplary DAS comprising a main HEU coupled to a remote HEU using wavelength-division multiplexing (WDM);



FIG. 12 is a schematic diagram of an exemplary DAS wherein a main HEU and a remote HEU are configured to concurrently distribute digital and/or analog communications signals using a plurality of DAIMs and a plurality of DIMs;



FIG. 13 is a schematic diagram of an exemplary DAS wherein a main HEU and a remote HEU are configured to concurrently distribute digital and/or analog communications signals using WDM; and



FIG. 14 is a partially schematic cut-away diagram of an exemplary building infrastructure in which an analog DAS, which can include the DAIM in FIG. 3 or the DIM in FIG. 4 to support the distribution of digital and/or communications signals, can be employed.





DETAILED DESCRIPTION

Various embodiments will be further clarified by the following examples.


Embodiments of the disclosure relate to digital-analog interface modules (DAIMs) and digital interface modules (DIMs) for flexibly distributing digital and/or analog communications signals in wide-area analog distributed antenna systems (DASs). A wide-area DAS typically comprises a plurality of local-area DASs interconnected via digital communications mediums. Any of the plurality of local-area DASs may be configured as a main DAS to efficiently receive and redistribute digital and/or analog communications signals to rest of the local-area DASs in the wide-area DAS. In a non-limiting example, the main DAS in the wide-area DAS may be collocated with installed telecommunications equipment (e.g., base transceiver stations and digital baseband units) to avoid additional installation costs, reduce power consumption, and improve operation efficiency.


In this regard, in one aspect, a DAIM is provided as multi-functional equipment in the main DAS for receiving and redistributing digital and/or analog communications signals to rest of the local-area DASs in the wide-area DAS. The DAIM comprises an analog radio frequency (RF) communications signal interface for coupling with an analog signal source, a digital communications interface for coupling with a digital signal source, an analog local distribution interface for coupling with a remote antenna unit (RAU), and at least one digital remote distribution interface for coupling with a head-end unit (HEU) of a local-area DAS. Furthermore, a plurality of DAIMs may be interconnected via respective digital bus interfaces to concurrently support the plurality of local-area DASs in the wide-area DAS.


In another aspect, a DIM is provided in the main DAS as an alternative to the DAIM. The DIM is a modified DAIM and comprises a digital communications interface for coupling with a digital signal source, an analog local distribution interface for coupling with an analog signal source, and at least one digital remote distribution interface for coupling with the HEU of the remote local-area DAS. Furthermore, a plurality of DIMs may be interconnected via the respective digital bus interfaces to concurrently support the plurality of local-area DASs in the wide-area DAS.


By employing the DAIM or the DIM in the wide-area DAS, it is possible to flexibly reconfigure the wide-area DAS for distributing digital and/or analog communications signals over the digital communications mediums.


Before discussing examples of a DAIM supporting flexible distribution of digital and/or analog communications signals between analog DASs starting at FIG. 3, discussions of an exemplary local-area analog DAS and an exemplary wide-area analog DAS that support only analog wireless communications services are first provided with references to FIGS. 1 and 2. The discussion of specific exemplary aspects of flexibly distributing digital and/or analog communications signals between analog DASs using the DAIM is provided starting at FIG. 3.


In this regard, FIG. 1 illustrates distribution of wireless communications services to coverage areas 10(1)-10(N) of an analog DAS 12, wherein ‘N’ is the number of coverage areas. These wireless communications services can include cellular services, wireless services such as radio frequency (RF) identification (RFID) tracking, Wireless Fidelity (Wi-Fi), local area network (LAN), and combinations thereof, as examples. The coverage areas 10(1)-10(N) may be remotely located. In this regard, the remote coverage areas 10(1)-10(N) are created by and centered on remote antenna units (RAUs) 14(1)-14(N) connected to a head-end unit (HEU) 16 (e.g., a head-end controller or head-end equipment or central unit). The HEU 16 may be communicatively coupled to a base transceiver station (BTS) 18. In this regard, the HEU 16 receives downlink analog RF communications signals 20D from the BTS 18 to be distributed to the remote antenna units 14(1)-14(N). The remote antenna units 14(1)-14(N) are configured to receive the downlink analog RF communications signals 20D from the HEU 16 over an analog communications medium 22 to be distributed to the respective remote coverage areas 10(1)-10(N) of the remote antenna units 14(1)-14(N). In a non-limiting example, the analog communications medium 22 may be a wired communications medium, a wireless communications medium, or an optical fiber-based communications medium. Each remote antenna unit 14(1)-14(N) may include an RF transmitter/receiver (not shown) and a respective antenna 24(1)-24(N) operably connected to the RF transmitter/receiver to wirelessly distribute the wireless communications services to client devices 26 within their respective remote coverage areas 10(1)-10(N). The remote antenna units 14(1)-14(N) are also configured to receive analog uplink RF communications signals 20U from the client devices 26 in their respective remote coverage areas 10(1)-10(N) to be distributed to the BTS 18. The size of a given remote coverage area 10(1)-10(N) is determined by the amount of RF power transmitted by the respective remote antenna unit 14(1)-14(N), the receiver sensitivity, antenna gain and the RF environment, as well as by the RF transmitter/receiver sensitivity of the client device 26. The client devices 26 usually have a fixed maximum RF receiver sensitivity, so that the above-mentioned properties of the remote antenna units 14(1)-14(N) mainly determine the size of their respective remote coverage areas 10(1)-10(N).


The analog DAS 12 is typically deployed to extend indoor coverage of the wireless communications services inside a building. In this regard, the analog DAS 12 may be considered as a local-area DAS for the building. In some cases, a wide-area analog DAS is deployed to provide the wireless communications service to multiple buildings each covered by a local-area DAS like the analog DAS 12. In this regard, FIG. 2 is a schematic diagram of an exemplary wide-area analog DAS 30 consisting of a plurality of local-area analog DASs 32(1)-32(N) wherein a local-area analog DAS 32(X) (1≤X≤N) among the plurality of local-area analog DASs 32(1)-32(N) is configured as a main analog DAS 34 of the wide-area analog DAS 30. In this regard, the wide-area analog DAS 30 is configured according to a star-topology, wherein the main analog DAS 34 serves as a gateway for rest of the plurality of local-area analog DASs 32(1)-32(N) in the wide-area analog DAS 30. The star-topology allows adding a new local-area analog DAS or removing an existing local-area analog DAS without impacting operations of the wide-area analog DAS 30.


In this regard, with continuing reference to FIG. 2, in a non-limiting example, the main analog DAS 34 comprised in the local-area analog DAS 32(X) may be collocated with one or more BTSs 36(1)-36(M). The main analog DAS 34 comprises a main HEU 38, which is a main DAS component and comprises a main-HEU DAS radio interface unit (RIU) (DAS-RIU) 40 and a main-HEU DAS optical interface unit (OIU) (DAS-OIU) 42. In a non-limiting example, the main HEU 38 may be a central unit. The main-HEU DAS-RIU 40 comprises one or more main-HEU RIMs 44(1)-44(M) coupled to the one or more BTSs 36(1)-36(M) for communicating one or more downlink analog RF communications signals 46(1)-46(M) and one or more uplink analog RF communications signals 48(1)-48(M), respectively. On a downlink direction 50, the one or more main-HEU RIMs 44(1)-44(M) adapt the one or more downlink analog RF communications signals 46(1)-46(M) into one or more downlink analog RF signals 52(1)-52(M) that are suited for distribution in the wide-area analog DAS 30. The one or more downlink analog RF signals 52(1)-52(M) are provided to an RF combiner/splitter 54 wherein the one or more downlink analog RF signals 52(1)-52(M) are combined to generate a combined downlink analog RF signal 56. The combined downlink analog RF signal 56 is subsequently received by an optical splitter/combiner 58 in the main-HEU DAS-OIU 42, wherein the combined downlink analog RF signal 56 is first split and then recombined to generate a plurality of second downlink analog RF signals 60(1)-60(N). The main-HEU DAS-OIU 42 comprises a plurality of OIMs 62(1)-62(N) that correspond to the plurality of local-area analog DASs 32(1)-32(N), respectively. Among the plurality of OIMs 62(1)-62(N), the OIM 62(X) (1≤X≤N) is configured to be coupled to an RAU 64 that is associated with the main analog DAS 34. In this regard, the RAU 64 is also a main DAS component. The plurality of OIMs 62(1)-62(N) receives and converts the plurality of second downlink analog RF signals 60(1)-60(N) into a plurality of combined downlink optical RF signals 66(1)-66(N), respectively. Among the plurality of combined downlink optical RF signals 66(1)-66(N), the combined downlink optical RF signal 66(X) (1≤X≤N) is provided to the RAU 64 while the rest of the plurality of combined downlink optical RF signals 66(1)-66(N) are provided to the plurality of local-area analog DASs 32(1)-32(N), respectively.


With continuing reference to FIG. 2, in an uplink direction 68, the plurality of OIMs 62(1)-62(N) receive a plurality of combined uplink optical RF signals 70(1)-70(N) from the plurality of local-area analog DASs 32(1)-32(N), respectively. Among the plurality of combined uplink optical RF signals 70(1)-70(N), the combined uplink optical RF signal 70(X) (1≤X≤N) may be received from the RAU 64. The plurality of OIMs 62(1)-62(N) convert the plurality of combined uplink optical RF signals 70(1)-70(N) into a plurality of second uplink analog RF signals 72(1)-72(N). The plurality of second uplink analog RF signals 72(1)-72(N) are received by the optical splitter/combiner 58 wherein the plurality of second uplink analog RF signals 72(1)-72(N) are split and recombined to generate a combined uplink analog RF signal 74. The combined uplink analog RF signal 74 is subsequently received by the RF combiner/splitter 54 wherein the combined uplink analog RF signal 74 is split into one or more uplink analog RF signals 76(1)-76(M). The one or more main-HEU RIMS 44(1)-44(M) adapt the one or more uplink analog RF signals 76(1)-76(M) to generate the one or more uplink analog RF communications signals 48(1)-48(M) that are suited for distribution to the one or more BTSs 36(1)-36(M).


With continuing reference to FIG. 2, in contrast to the local-area analog DAS 32(X) that is configured as the main analog DAS 34, the rest of the plurality of local-area analog DASs 32(1)-32(N) may be treated as remote local-area analog DASs in the wide-area analog DAS 30. On the downlink direction 50, each of the plurality of local-area analog DASs 32(1)-32(N) receives a respective downlink optical RF signal among the plurality of combined downlink optical RF signals 66(1)-66(N) from the main analog DAS 34 and distributes to one or more respective RAUs 78(1)-78(R), wherein ‘R’ may represent a different positive integer number among the plurality of local-area analog DASs 32(1)-32(N). In this regard, the one or more respective RAUs 78(1)-78(R) are one or more remote DAS components. In the uplink direction 68, each of the plurality of local-area analog DASs 32(1)-32(N) provides a respective uplink optical RF signal among the plurality of combined uplink optical RF signals 70(1)-70(N) to the main analog DAS 34. In this regard, the local-area analog DAS 32(1) is discussed next as a non-limiting example of the functional aspects involved in the plurality of local-area analog DASs 32(1)-32(N) (N≠X).


With continuing reference to FIG. 2, the local-area analog DAS 32(1) comprises an optical-to-electrical (O/E) converter 80(1) and an electrical-to-optical (E/O) converter 82(1). The local-area analog DAS 32(1) also comprises a remote HEU 84(1) that is coupled to the O/E converter 80(1) and the E/O converter 82(1). In this regard, the plurality of local-area analog DASs 32(1)-32(N) comprises a plurality of remote HEUs 84(1)-84(N), respectively. In a non-limiting example, the plurality of remote HEUs 84(1)-84(N) is also a plurality of remote DAS components. The remote HEU 84(1) further comprises a remote-HEU DAS-RIU 86(1) and a remote-HEU DAS-OIU 88(1). The remote-HEU DAS-RIU 86(1) comprises one or more remote-HEU RIMs 90(1)-90(S), wherein ‘S’ may represent a different positive integer number among the plurality of local-area analog DASs 32(1)-32(N). The O/E converter 80(1) converts the combined downlink optical RF signal 66(1) into a remote-HEU combined downlink analog RF signal 92(1), which is subsequently received by the one or more remote-HEU RIMs 90(1)-90(S). The one or more remote-HEU RIMs 90(1)-90(S) then generates one or more remote-HEU downlink analog RF signals 94(1)-94(S), wherein each of the one or more remote-HEU downlink analog RF signals 94(1)-94(S) corresponds to a respective RF band (not shown). The one or more remote-HEU downlink analog RF signals 94(1)-94(S) are received by a remote-HEU RF combiner/splitter 96(1) and combined into a second remote-HEU combined downlink analog RF signal 98(1). The second remote-HEU combined downlink analog RF signal 98(1) is received by a remote-HEU optical splitter/combiner 100(1), wherein second remote-HEU combined downlink analog RF signal 98(1) is first split and then recombined to generate one or more third remote-HEU combined downlink analog RF signals 102(1)-102(R). Each of the one or more third remote-HEU combined downlink analog RF signals 102(1)-102(R) corresponds to a RAU among the one or more RAUs 78(1)-78(R) and may comprise one or more RF bands. The remote-HEU DAS-OIU 88(1) comprises one or more remote-HEU OIMs 104(1)-104(R) that correspond to the one or more respective RAUs 78(1)-78(R), respectively. The one or more remote-HEU OIMs 104(1)-104(R) receive and convert the one or more third remote-HEU combined downlink analog RF signals 102(1)-102(R) into one or more remote-HEU combined downlink optical RF signals 106(1)-106(R), respectively. The one or more remote-HEU combined downlink optical RF signals 106(1)-106(R) are then distributed to the one or more respective RAUs 78(1)-78(R).


With continuing reference to FIG. 2, on the uplink direction 68, the one or more remote-HEU OIMs 104(1)-104(R) receive one or more remote-HEU combined uplink optical RF signals 108(1)-108(R) from the one or more respective RAUs 78(1)-78(R), respectively. The one or more remote-HEU OIMs 104(1)-104(R) then convert the one or more remote-HEU combined uplink optical RF signals 108(1)-108(R) into one or more third remote-HEU combined uplink analog RF signals 110(1)-110(R). Each of the one or more third remote-HEU combined uplink analog RF signals 110(1)-110(R) corresponds to one or more RF bands. The one or more third remote-HEU combined uplink analog RF signals 110(1)-110(R) are received by the remote-HEU optical splitter/combiner 100(1), wherein the one or more third remote-HEU combined uplink analog RF signals 110(1)-110(R) are combined into a second remote-HEU combined uplink analog RF signal 112(1). The second remote-HEU combined uplink analog RF signal 112(1) is subsequently received by the remote-HEU RF combiner/splitter 96(1) wherein the second remote-HEU combined uplink analog RF signal 112(1) is split into one or more remote-HEU uplink analog RF signals 114(1)-114(S). Each of the one or more remote-HEU uplink analog RF signals 114(1)-114(S) corresponds to the respective RF band. The one or more remote-HEU uplink analog RF signals 114(1)-114(S) are then combined into a remote-HEU combined uplink analog RF signal 116(1), which is subsequently converted to the combined uplink optical RF signal 70(1) and provided to the OIM 62(1) in the main analog DAS 34.


As digital communication technologies become increasingly reliable and cost-effective, the wide-area analog DAS 30 may need to be upgraded to distribute digital and/or analog communications signals between the plurality of local-area analog DASs 32(1)-32(N) over digital communications mediums. As a result, the main analog DAS 34 and the plurality of local-area analog DASs 32(1)-32(N) may need to be upgraded for distributing the digital and/or analog communications signals over the digital communications mediums. It may be desirable to retrofit new multi-functional equipment into the chassis of the installed equipment to reduce upgrade costs and minimize service disruptions to the wide-area analog DAS 30. In a non-limiting example, it is desirable to be able to retrofit the new multi-functional equipment into the chassis of the main HEU 38 and/or the plurality of remote HEUs 84(1)-84(N).


In this regard, FIG. 3 is a schematic diagram of an exemplary digital-analog interface module (DAIM) 120 that is retrofitted into the chassis of the main HEU 38 in the wide-area analog DAS 30 of FIG. 2 for distributing digital and/or analog communications signals in the wide-area analog DAS 30 over digital communications mediums. In essence, the DAIM 120 is multi-functional device capable of distributing digital and/or analog communications signals to the plurality of local-area analog DASs 32(1)-32(N) in the wide-area analog DAS 30. Elements in FIG. 2 are referenced in connection with FIG. 3 and will not be re-described herein.


With reference to FIG. 3, the DAIM 120 comprises an analog communications interface (P1) 122 configured to be coupled with an analog signal source 124 for distributing analog communications signals. In a non-limiting example, the analog signal source 124 may be a BTS. The DAIM 120 also comprises a digital bus interface (P2) 126, which further comprises an upstream digital bus interface (P2U) 128 and a downstream digital bus interface (P2D) 130. As will be further discussed in detail below in FIGS. 5A and 5B, the upstream digital bus interface 128 and the downstream digital bus interface 130 enables the DAIM 120 to be interconnected with other DAIMs to enable flexible digital signal sharing with the other DAIMs. The DAIM 120 also comprises at least one digital remote distribution interface (P3) 132 configured to be coupled with any remote HEU among the plurality of remote HEUs 84(1)-84(N) (not shown). The DAIM 120 also comprises an analog local distribution interface (P4) 134 for distributing analog RF signals to the RAU 64 (not shown). The DAIM 120 also comprises a digital communications interface (P5) 136 to be coupled to a digital signal source 138 for distributing digital communications signals. In a non-limiting example, the digital signal source 138 may be a digital baseband unit (BBU).


With continuing reference to FIG. 3, the DAIM 120 further comprises an RF conditioning circuit 140 that is coupled to the analog communications interface 122 and the analog local distribution interface 134. In a downlink direction 142, the RF conditioning circuit 140 receives a downlink analog communications signal 144 from the analog signal source 124 via the analog communications interface 122. The RF conditioning circuit 140 converts the downlink analog communications signal 144 into a downlink analog RF signal 146, which is adapted for redistribution in the wide-area analog DAS 30. The RF conditioning circuit 140 then provides the downlink analog RF signal 146 to the analog local distribution interface 134 for distribution to the RAU 64. In addition, to provide a digitized version of the downlink analog RF signal 146 to be available for distribution, an analog-to-digital (A/D) converter 148 is provided. The A/D converter 148 converts the downlink analog RF signal 146 to generate a downlink digital RF signal 150 and provides the downlink digital RF signal 150 to a digital signal processing circuit 152. Upon receiving the downlink digital RF signal 150, the digital signal processing circuit 152 converts the downlink digital RF signal 150 into one or more first downlink digital RF signals 154 and provides the one or more first downlink digital RF signals 154 to the upstream digital bus interface 128 and the downstream digital bus interface 130.


As will be further discussed in FIGS. 5A and 5B, providing the one or more first downlink digital RF signals 154 to the upstream digital bus interface 128 and the downstream digital bus interface 130 allows interconnected DAIMs to receive indirectly the one or more first downlink digital RF signals 154. Since not all of the one or more first downlink digital RF signals 154 are related to the DAIM 120, a digital signal processing controller 156 is configured to determine one or more respective first downlink digital RF signals (not shown), among the one or more first downlink digital RF signals 154, that are related to the DAIM 120. In a non-limiting example, the digital signal processing controller 156 may be provided inside or outside the DAIM 120. In a non-limiting example, the digital signal processing controller 156 is preconfigured to detect the one or more respective first downlink digital RF signals based on frequency-related information, such as channel number in a frequency-division duplex (FDD) signal or time slot number in a time-division duplex (TDD) signal, carried in the one or more first downlink digital RF signals 154. The digital signal processing controller 156 is communicatively coupled to the digital signal processing circuit 152 or embedded in the digital signal processing circuit 152. In this regard, the digital signal processing circuit 152 can combine the one or more respective first downlink digital RF signals to generate a combined downlink digital RF signal 158. Subsequently, the digital signal processing circuit 152 provides the combined downlink digital RF signal 158 to the digital remote distribution interface 132 for distribution to any remote HEU among the plurality of remote HEUs 84(1)-84(N).


With continuing reference to FIG. 3, the digital signal processing circuit 152 may receive one or more second downlink digital RF signals 160 from the upstream digital bus interface 128 and one or more third downlink digital RF signals 162 from the downstream digital bus interface 130. As will be further illustrated in FIGS. 5A and 5B, the one or more second downlink digital RF signals 160 and the one or more third downlink digital RF signals 162 are provided to the digital signal processing circuit 152 by other interconnected DAIMs. The digital signal processing circuit 152 in turn forwards the one or more second downlink digital RF signals 160 to the downstream digital bus interface 130 and forward the one or more third downlink digital RF signals 162 to the upstream digital bus interface 128. As previously discussed with regard to the one or more first downlink digital RF signals 154, the one or more second downlink digital RF signals 160 and the one or more third downlink digital RF signals 162 received from the digital bus interface 126 may not be related to the DAIM 120 as well. As such, the digital signal processing controller 156 is also configured to determine one or more respective second downlink digital RF signals (not shown) among the one or more second downlink digital RF signals 160 and one or more respective third downlink digital RF signals (not shown) among the one or more third downlink digital RF signals 162. In this regard, the digital signal processing circuit 152 can combine the one or more respective second downlink digital RF signals and the one or more respective third downlink digital RF signals into the combined downlink digital RF signal 158.


With continuing reference to FIG. 3, the digital signal processing circuit 152 may also receive a downlink digital baseband signal 164 from the digital signal source 138 that is coupled to the digital communications interface 136. In a non-limiting example, the downlink digital baseband signal 164 may be received from a BBU and is in compliance with a common public radio interface (CPRI) format. The digital signal processing circuit 152 is configured to convert the downlink digital baseband signal 164 to generate one or more fourth downlink digital RF signals 166. Accordingly, the digital signal processing circuit 152 provides the one or more fourth downlink digital RF signals 166 to the upstream digital bus interface 128 and the downstream digital bus interface 130. The digital signal processing controller 156, in turn, determines one or more respective fourth downlink digital RF signals (not shown) among the one or more fourth downlink digital RF signals 166 for combining with the combined downlink digital RF signal 158 by the digital signal processing circuit 152.


With continuing reference to FIG. 3, in an uplink direction 168, the digital signal processing circuit 152 receives a combined uplink digital RF signal 170 from any remote HEU among the plurality of remote HEUs 84(1)-84(N) (not shown) via the digital remote distribution interface 132. The digital signal processing circuit 152 splits the combined uplink digital RF signal 170 to generate one or more first uplink digital RF signals 172. The digital signal processing circuit 152 in turn provides the one or more first uplink digital RF signals 172 to the upstream digital bus interface 128 and the downstream digital bus interface 130. As previously discussed, the one or more first uplink digital RF signals 170 may or may not be related to the DAIM 120. As such, the digital signal processing controller 156 is also configured determine one or more respective first uplink digital RF signals (not shown) among the one or more first uplink digital RF signals 170. As a result, the digital signal processing circuit 152 can combine the one or more respective first uplink digital RF signals to generate an uplink digital RF signal 174.


With continuing reference to FIG. 3, the digital signal processing circuit 152 may receive one or more second uplink digital RF signals 176 from the upstream digital bus 128. The digital signal processing circuit 152 may also receive one or more third uplink digital RF signals 178 from the downstream digital bus 130. The digital signal processing circuit 152 in turn forwards the one or more second uplink digital RF signals 176 to the downstream digital bus interface 130 and forwards the one or more third uplink digital RF signals 178 to the upstream digital bus interface 128. The digital signal processing controller 156 is configured to determine one or more respective second uplink digital RF signals (not shown) among the one or more second uplink digital RF signals 176 and one or more respective third uplink digital RF signals (not shown) among the one or more third uplink digital RF signals 178. In this regard, the digital signal processing circuit 152 can combine the one or more respective second uplink digital RF signals and the one or more respective third uplink digital RF signals into the uplink digital RF signal 174.


With continuing reference to FIG. 3, the digital signal processing circuit 152 may also receive an uplink digital baseband signal 180 from the digital signal source 138 that is coupled to the digital communications interface 136. In a non-limiting example, the uplink digital baseband signal 180 may be received from a BBU and is in compliance with the CPRI format. The digital signal processing circuit 152 is configured to convert the uplink digital baseband signal 180 to generate one or more fourth uplink digital RF signals 182. Accordingly, the digital signal processing circuit 152 provides the one or more fourth uplink digital RF signals 182 to the upstream digital bus interface 128 and the downstream digital bus interface 130. The digital signal processing controller 156, in turn, determines one or more respective fourth downlink digital RF signals (not shown) among the one or more fourth downlink digital RF signals 182 for combining with the uplink digital RF signal 174 by the digital signal processing circuit 152.


With continuing reference to FIG. 3, the DAIM 120 further comprises a digital-to-analog (D/A) converter 184 that is coupled to the digital signal processing circuit 152 and the RF conditioning circuit 140. The D/A converter 184 receives and converts the uplink digital RF signal 174 to generate an uplink analog RF signal 186 and provides the uplink analog RF signal 186 to the RF conditioning circuit 140. Upon receiving the uplink analog RF signal 186, the RF conditioning circuit 140 provides the uplink analog RF signal 186 to the analog local distribution interface 134 for distribution to the RAU 64 (not shown). In another aspect, the RF conditioning circuit 140 converts the uplink analog RF signal 186 into an uplink analog communications signal 188, which is adapted for communications to the analog signal source 124. Subsequently, the RF conditioning circuit 140 provides the uplink analog communications signal 188 to the analog communications interface 122 for distribution to the analog signal source 124.


The DAIM 120 in FIG. 3 is designed and configured to be retrofitted into the chassis of the main HEU 38 of the main analog DAS 34 in the wide-area analog DAS 30 for distributing the analog and/or digital communications signals in the wide-area analog DAS 30. Although it is also possible to retrofit the DAIM 120 into the chassis of the plurality of remote HEUs 84(1)-84(N) for supporting the local-area analog DASs 32(1)-32(N), the RF conditioning circuit 140 and the analog communications interface 122 in the DAIM 120 would not be utilized if the plurality of remote HEUs 84(1)-84(N) are not directly interacting with the one or more BTSs 36(1)-36(M). In this regard, FIG. 4 is a schematic diagram of an exemplary digital interface module (DIM) 189 that provides similar functionality to the DAIM 120 in FIG. 3. However, in the DIM 189 in FIG. 4, the analog communications interface 122 and the RF conditioning circuit 140 of the DIM 120 are not included. As a result, the A/D converter 148 and the D/A converter 184 of the DIM 120 are directly coupled to the analog local distribution interface 134 in the DIM 189 for receiving the downlink analog RF signal 146 and providing the uplink analog RF signal 186, respectively. Like the DAIM 120 in FIG. 3, the DIM 189 in FIG. 4 can be configured to be retrofitted into the chassis of the plurality of remote HEUs 84(1)-84(N) as well as the main HEU 38 in the wide-area analog DAS 30 of FIG. 2 for distributing digital and/or analog communications signals in the wide-area analog DAS 30 over digital communications mediums. Common elements between FIGS. 3 and 4 are shown therein with common element numbers, thus will not be re-described herein.


In this regard, with reference to FIG. 4, the A/D converter 148 in the DIM 189 receives the downlink analog RF signal 146 from the analog local distribution interface 134 and converts the downlink analog RF signal 146 into the downlink digital RF signal 150. The D/A converter 184 converts the uplink digital RF signal 174 into the uplink analog RF signal 186 and provides the uplink analog RF signal 186 to the analog local distribution interface 134. In a non-limiting example, the digital signal processing controller 156 may be provided inside or outside the DIM 189.


As previously discussed in reference to FIG. 3, the upstream digital bus interface 128 and the downstream digital bus interface 130 enables the DAIM 120 to be interconnected with other DAIMs to support a flexible topology of the wide-area analog DAS 30. In this regard, FIG. 5A is a schematic diagram of an exemplary main HEU 190 comprising a plurality of DAIMs 192(1)-192(3) that are interconnected to an interconnection digital bus 193 via a plurality of digital bus interfaces 194(1)-194(3) and configured to share a plurality of downlink communications signals 196(1)-196(3). The main HEU 190 may comprise any positive integer number of DAIMs 192. The plurality of DAIMs 192(1)-192(3) are provided as a non-limiting example and for the convenience of discussion.


With reference to FIG. 5A, the DAIM 192(1) has a logically configured downstream DAIM 192(2), but has no logically configured upstream DAIM since the DAIM 192(1) is the first DAIM among the plurality of DAIMs 192(1)-192(3). The DAIM 192(2) has a logically configured upstream DAIM 192(1) and a logically configured downstream DAIM 192(3). The DAIM 192(3) has a logically configured upstream DAIM 192(2), but has no logically configured downstream DAIM since the DAIM 192(3) is the last DAIM among the plurality of DAIMs 192(1)-192(3). The plurality of DAIMs 192(1)-192(3) have a plurality of upstream digital bus interfaces 198(1)-198(3) and a plurality of downstream digital bus interfaces 200(1)-200(3), respectively. To provide the interconnections between the plurality of DAIMs 192(1)-192(3), a downstream digital bus interface of a logically configured upstream DAIM is coupled to an upstream digital bus interface of a logically configured downstream DAIM. Hence, in the non-limiting example provided herein, the DAIM 192(1) is logically configured as an upstream DAIM to the DAIM 192(2). As such, a downstream digital bus interface 200(1) in the DAIM 192(1) is coupled to an upstream digital bus interface 198(2) in the DAIM 192(2). The DAIM 192(3) is logically configured as a downstream DAIM to the DAIM 192(3). As such, a downstream digital bus interface 200(2) in the DAIM 192(2) is coupled to an upstream digital bus interface 198(3) in the DAIM 192(3).


With continuing reference to FIG. 5A, the DAIM 192(1) receives a downlink communications signal 196(1) via an analog communications interface 202(1). The DAIM 192(1) converts the downlink communications signal 196(1) into downlink digital RF signals 196(1)(1), 196(1)(2) and provides the downlink digital RF signals 196(1)(1), 196(1)(2) to the interconnection digital bus 193 via the downstream digital bus interface 200(1). The DAIM 192(2) receives the downlink communications signal 196(2) via a digital communications interface 204(2). The DAIM 192(2) converts the downlink communications signal 196(2) into downlink digital RF signal 196(2)(1) and provides the downlink digital RF signal 196(2)(1) to the interconnection digital bus 193 via the upstream digital bus interface 198(2) and the downstream digital bus interface 200(2). The DAIM 192(3) receives the downlink communications signal 196(3) via an analog communications interface 202(3). The DAIM 192(3) converts the downlink communications signal 196(3) into downlink digital RF signals 196(3)(1), 196(3)(2) and provides the downlink digital RF signals 196(3)(1), 196(3)(2) to the interconnection digital bus 193 via the upstream digital bus interface 198(3). As a result, the downlink digital RF signals 196(1)(1), 196(1)(2), 196(2)(1), 196(3)(1), 196(3)(2) are made available to the DAIMs 192(1)-192(3) through the interconnection digital bus 193 in the main HEU 190. As previously discussed in FIG. 3, a respective digital signal processing controller (not shown) in each of the DAIMs 192(1)-192(3) can programmably determine which downlink digital RF signal(s) among the downlink digital RF signals 196(1)(1), 196(1)(2), 196(2)(1), 196(3)(1), 196(3)(2) is related to the respective DAIM and included in a plurality of combined downlink digital RF signals 206(1)-206(3), respectively.



FIG. 5B is a schematic diagram of an exemplary main HEU 190(1) comprising the plurality of DAIMs 192(1)-192(3) in FIG. 5A that are interconnected to the interconnection digital bus 193 via the plurality of digital bus interfaces 194(1)-194(3) in FIG. 5A and configured to share a plurality of combined uplink communications signals 208(1)-208(3). Common elements between FIGS. 5A and 5B are shown therein with common element numbers, thus will not be re-described herein.


With reference to FIG. 5B, the DAIM 192(1) receives the combined uplink communications signal 208(1) via at least one digital remote distribution interface 210(1). The DAIM 192(1) converts the combined uplink communications signal 208(1) into uplink digital RF signals 208(1)(1), 208(1)(2) and provides the uplink digital RF signals 208(1)(1), 208(1)(2) to the interconnection digital bus 193 via the downstream digital bus interface 200(1). The DAIM 192(2) receives the combined uplink communications signal 208(2) via at least one digital remote distribution interface 210(2). The DAIM 192(2) converts the combined uplink communications signal 208(2) into uplink digital RF signal 208(2)(1) and provides the uplink digital RF signal 208(2)(1) to the interconnection digital bus 193 via the upstream digital bus interface 198(2) and the downstream digital bus interface 200(2). The DAIM 192(3) receives the combined uplink communications signal 208(3) via at least one digital remote distribution interface 210(3). The DAIM 192(3) converts the combined uplink communications signal 208(3) into uplink digital RF signals 208(3)(1), 208(3)(2) and provides the uplink digital RF signals 208(3)(1), 208(3)(2) to the interconnection digital bus 193 via the upstream digital bus interface 198(3). As a result, the uplink digital RF signals 208(1)(1), 208(1)(2), 208(2)(1), 208(3)(1), 208(3)(2) are made available to the plurality of DAIMs 192(1)-192(3) through the interconnection digital bus 193 in the main HEU 190(1). As previously discussed in FIG. 5A, the respective digital signal processing controller (not shown) in each of the DAIMs 192(1)-192(3) can programmably determine which uplink digital RF signal(s) among the uplink digital RF signals 208(1)(1), 208(1)(2), 208(2)(1), 208(3)(1), 208(3)(2) is related to the respective DAIM and included in a plurality of combined uplink communications signals 212(1)-212(3), respectively.


As previously discussed in FIGS. 3 and 4 above, the DAIM 120 and the DIM 189 are designed to retrofit into the chassis of the main HEU 38 and the plurality of remote HEUs 84(1)-84(N) in the wide-area analog DAS 30 of FIG. 2 for distributing the analog and/or digital communications signals in the wide-area in the wide-area analog DAS 30. By reconfiguring the main HEU 38 and the plurality of remote HEUs 84(1)-84(N) with the DAIM 120 and/or the DIM 189, it is possible to flexibly reconfigure the wide-area analog DAS 30 to distribute digital and/or analog communications signals over digital communications mediums.


In this regard, FIG. 6 is a schematic diagram of an exemplary optical fiber-based wide-area DAS 220 configured to distribute digital and analog communications signals from a main HEU 222 to one or more remote HEUs 224(1)-224(N) over optical fiber-based digital communications mediums 226(1)-226(N). The main HEU 222 is reconfigured by retrofitting one or more of the DAIMs 120 illustrated FIG. 3 into the existing chassis of the main HEU 38 in FIG. 2. Elements in FIG. 2 are referenced in connection with FIG. 6 and will not be re-described herein. Common elements between FIGS. 3, 4, and 6 are shown therein with common element numbers, thus will not be re-described herein.


With reference to FIG. 6, the optical fiber-based wide-area DAS 220 comprises a main DAS 228 that comprises the main HEU 222. The optical fiber-based wide-area DAS 220 further comprises one or more remote DASs 230(1)-230(N) that comprise the one or more remote HEUs 224(1)-224(N), respectively. The main HEU 222 comprises one or more DAIMs 232(1)-232(N), wherein each of the one or more DAIMs 232(1)-232(N) is same as the DAIM 120. The one or more DAIMs 232(1)-232(N) are configured to distribute digital and analog communications signals to the one or more remote HEUs 224(1)-224(N) over the optical fiber-based digital communications mediums 226(1)-226(N), respectively. The optical fiber-based digital communications mediums 226(1)-226(N) comprise optical fiber-based downlink digital communications mediums 234(1)-234(N) and optical fiber-based uplink digital communications mediums 236(1)-236(N), respectively. Hence, the one or more DAIMs 232(1)-232(N) are configured to distribute digital and analog communications signals to the one or more remote HEUs 224(1)-224(N) over the optical fiber-based downlink digital communications mediums 234(1)-234(N) and the optical fiber-based uplink digital communications mediums 236(1)-236(N), respectively. Further, the one or more DAIMs 232(1)-232(N) are coupled to one or more BTSs 238(1)-238(N) and to one or more BBUs 240(1)-240(N), respectively. In addition, he one or more DAIMs 232(1)-232(N) may also be coupled to one or more RAUs 242(1)-242(N), respectively. For the convenience of discussion, the DAIM 232(1) in the main HEU 222 and the remote HEU 224(1) are described hereinafter as a non-limiting example. Nonetheless, the configuration and operating principles for distributing digital and analog communications signals in the optical fiber-based wide-area DAS 220 are applicable to any of the one or more DAIMs 232(1)-232(N) and any of the one or more remote HEUs 224(1)-224(N).


With continuing reference to FIG. 6, like the DAIM 120, the DAIM 232(1) comprises the analog communications interface 122, the upstream digital bus interface 128, the downstream digital bus interface 130, the at least one digital remote distribution interface 132, the analog local distribution interface 134, and the digital communications interface 136. In a non-limiting example, the analog communications interface 122 and the digital communications interface 136 are coupled to the BTS 238(1) and the BBU 240(1), respectively. The analog local distribution interface 134 may be coupled with the RAU 242(1). The digital remote distribution interface 132 is coupled to the respective optical fiber-based downlink digital communications medium 234(1) via a respective E/O converter 244(1) and is coupled to the respective optical fiber-based uplink digital communications medium 236(1) via a respective O/E converter 246(1). The upstream digital bus interface 128 is coupled to a downstream digital bus interface (a second downstream digital bus interface) (not shown) in a second DAIM (not shown) among the one or more DAIMs 232(1)-232(N) that is logically configured as an upstream DAIM to the DAIM 232(1). The downstream digital bus interface 130 is coupled to an upstream digital bus interface (a third upstream digital bus interface) (not shown) in a third DAIM among the one or more DAIMs 232(1)-232(N) that is logically configured as a downstream DAIM to the DAIM 232(1). The DAIM 232(1) generates a combined downlink digital RF signal 248(1), which is subsequently converted into a combined downlink optical RF signal 250(1) and distributed to the remote HEU 224(1) over the optical fiber-based downlink digital communications medium 234(1).


With continuing reference to FIG. 6, the remote HEU 224(1) comprises one or more remote-HEU DIMS 252(1)(1)-252(1)(M) corresponding to one or more RF bands (not shown), respectively. Each of the one or more remote-HEU DIMs 252(1)(1)-252(1)(M) is same as the DIM 189. In this regard, each of the one or more remote-HEU DIMs 252(1)(1)-252(1)(M) comprises the upstream digital bus interface (remote-DIM upstream digital bus interface) 128, the downstream digital bus interface (remote-DIM downstream digital bus interface) 130, the at least one digital remote distribution interface (at least one remote-DIM digital remote distribution interface) 132, the analog local distribution interface (remote-DIM analog local distribution interface) 134, and the digital communications interface (remote-DIM digital communications interface) 136. At least one remote-HEU DIM among the one or more remote-HEU DIMs 252(1)(1)-252(1)(M) in the remote HEU 224(1) is configured to interface with the DAIM 232(1) in the main HEU 222. For the convenience of discussion, the remote-HEU DIM 252(1)(M) is referenced herein as the at least one remote-HEU DIM configured to interface with the DAIM 232(1) in the main HEU 222 in a non-limiting example.


With continuing reference to FIG. 6, the remote-DIM digital remote distribution interface 132 in the remote-HEU DIM 252(1)(M) is coupled to the optical fiber-based downlink digital communications medium 234(1) via a remote-HEU O/E converter 254(1) and to the optical fiber-based uplink digital communications medium 236(1) via a remote-HEU E/O converter 256(1). The remote-HEU O/E converter 254(1) receives and converts the combined downlink optical RF signal 250(1) back to the combined downlink digital RF signal 248(1). The remote-HEU DIM 252(1)(M) receives the combined downlink digital RF signal 248(1) from the remote-DIM digital remote distribution interface 132 in the remote-HEU DIM 252(1)(M). Subsequently, remote-HEU DIM 252(1)(M) converts the combined downlink digital RF signal 248(1) into one or more first remote-DIM downlink digital RF signals 258 that correspond to the one or more RF bands. The remote-HEU DIM 252(1)(M) then provides the one or more first remote-DIM downlink digital RF signals 258 to the remote-DIM upstream digital bus interface 128 and the remote-DIM downstream digital bus interface 130. The remote-HEU DIM 252(1)(M) may receive one or more second remote-DIM downlink digital RF signals 260 corresponding to the one or more RF bands from the remote-DIM upstream digital bus interface 128. The remote-HEU DIM 252(1)(M) may also receive one or more third remote-DIM downlink digital RF signals 262 corresponding to the one or more RF bands from the remote-DIM downstream digital bus interface 130. The remote-HEU DIM 252(1)(M) is configured to provide the one or more second remote-DIM downlink digital RF signals 260 to the remote-DIM downstream digital bus interface 130. The remote-HEU DIM 252(1)(M) is also configured to provide the one or more third remote-DIM downlink digital RF signals 262 to the remote-DIM upstream digital bus interface 128. The remote-HEU DIM 252(1)(M) may also receive a remote-DAS downlink digital baseband signal 264(M) from a remote-DAS digital signal source 266(1)(M). In a non-limiting example, the remote-DAS digital signal source 266(1)(M) is a BBU. The remote-HEU DIM 252(1)(M) converts the remote-DAS downlink digital baseband signal 264(M) to generate one or more fourth remote-DIM downlink digital RF signals 268 corresponding to the one or more RF bands. The remote-HEU DIM 252(1)(M) provides the one or more fourth remote-DIM downlink digital RF signals 268 to the remote-DIM upstream digital bus interface 128 and the remote-DIM downstream digital bus interface 130.


With continuing reference to FIG. 6, the remote-HEU DIM 252(1)(M) is further configured to combine one or more remote-DIM downlink digital signals (not shown) to generate a remote-DIM combined downlink digital RF signal (not shown), which is then converted into a remote-DIM combined downlink analog RF signal 270(M) by a remote-DIM D/A converter (not shown) in the remote-HEU DIM 252(1)(M). The remote-DIM combined downlink digital RF signal and the remote-DIM combined downlink analog RF signal 270(M) correspond to an RF band associated with the remote-HEU DIM 252(1)(M) among the one or more RF bands supported by the remote HEU 224(1). The remote-DIM combined downlink analog RF signal 270(M) is provided to the remote-DIM analog local distribution interface 134. The one or more remote-DIM downlink digital signals are programmably determined by a remote-DIM digital signal processing controller (not shown) in the remote-HEU DIM 252(1)(M).


With continuing reference to FIG. 6, a remote-HEU RF combiner/splitter 272(1) in the remote HEU 224(1) converts and combines one or more remote-DIM combined downlink analog RF signals 270(1)-270(M) to generate a remote-HEU combined downlink analog RF signal 274(1). An remote-HEU optical splitter/combiner 276(1) then splits the remote-HEU combined downlink analog RF signal 274(1) to generate one or more remote-OIM downlink analog RF signals 278(1)-278(P), which are subsequently received by one or more remote-HEU OIMs 280(1)(1)-280(1)(P). The one or more remote-HEU OIMs 280(1)(1)-280(1)(P) then convert the one or more remote-OIM downlink analog RF signals 278(1)-278(P) into one or more remote-OIM downlink optical RF signals 282(1)-282(P) and provide to the one or more remote-DAS RAUs 284(1)(1)-284(1)(P), respectively.


With continuing reference to FIG. 6, the one or more remote-HEU OIMs 280(1)(1)-280(1)(P) receive one or more remote-OIM uplink optical RF signals 286(1)-286(P). The one or more remote-HEU OIMs 280(1)(1)-280(1)(P) then convert the one or more remote-OIM uplink optical RF signals 286(1)-286(P) into one or more remote-OIM uplink analog RF signals 288(1)-288(P). The remote-HEU optical splitter/combiner 276(1) combines the one or more remote-OIM uplink analog RF signals 288(1)-288(P) to generate a remote-HEU combined uplink analog RF signal 290(1). The remote-HEU RF combiner/splitter 272(1) then splits the remote-HEU combined uplink analog RF signal 290(1) into one or more remote-DIM combined uplink analog RF signals 292(1)-292(M) corresponding to the one or more RF bands, respectively. The one or more remote-DIM combined uplink analog RF signals 292(1)-292(M) are received by the one or more remote-HEU DIMS 252(1)(1)-252(1)(M), respectively. The remote-HEU DIM 252(1)(M) receives the remote-DIM combined uplink analog RF signal 292(M) among the one or more remote-DIM combined uplink analog RF signals 292(1)-292(M). A remote-DIM A/D converter (not shown) inside the remote-HEU DIM 252(1)(M) receives the remote-DIM combined uplink analog RF signal 292(M) from the remote-DIM analog local distribution interface 134 and converts the remote-DIM combined uplink analog RF signal 292(M) into a remote-DIM combined uplink digital RF signal (not shown). The digital signal processing circuit 152 (not shown) in the remote-HEU DIM 252(1)(M) (the remote-DIM digital signal processing circuit) splits the remote-DIM combined uplink digital RF signal into one or more first remote-DIM uplink digital RF signals 294 and provides the one or more first remote-DIM uplink digital RF signals 294 to the remote-DIM upstream digital bus interface 128 and the remote-DIM downstream digital bus interface 130.


With continuing reference to FIG. 6, the remote-HEU DIM 252(1)(M) may receive one or more second remote-DIM uplink digital RF signals 296 and one or more third remote-DIM uplink digital RF signals 298 from the remote-DIM upstream digital bus interface 128 and the remote-DIM downstream digital bus interface 130, respectively. The remote-HEU DIM 252(1)(M) is configured to provide the one or more second remote-DIM uplink digital RF signals 296 to the remote-DIM downstream digital bus interface 130. The remote-HEU DIM 252(1)(M) is also configured to provide the one or more third remote-DIM uplink digital RF signals 298 to the remote-DIM upstream digital bus interface 128. The remote-HEU DIM 252(1)(M) may also receive a remote-DAS uplink digital baseband signal 300(M) from the remote-DIM digital communications interface 136 that is coupled to the remote-DAS digital signal source 266(1)(M). The remote-HEU DIM 252(1)(M) converts the remote-DAS uplink digital baseband signal 300(M) to generate one or more fourth remote-DIM uplink digital RF signals 302. The remote-HEU DIM 252(1)(M) provides the one or more fourth remote-DIM uplink digital RF signals 302 to the remote-DIM upstream digital bus interface 128 and the remote-DIM downstream digital bus interface 130.


With continuing reference to FIG. 6, the remote-HEU DIM 252(1)(M) combines one or more remote-DIM uplink digital RF signals (not shown) to generate a combined uplink digital RF signal 304(1). The one or more remote-DIM uplink digital RF signals are programmably determined by the remote-DIM digital signal processing controller 156 (not shown) from the one or more first remote-DIM uplink digital RF signals, the one or more second remote-DIM uplink digital signals, the one or more third remote-DIM uplink digital signals, and the one or more fourth remote-DIM uplink digital signals. The combined uplink digital RF signal 304(1) is subsequently converted into a combined uplink optical RF signal 306(1) by the remote-HEU E/O converter 256(1) and distributed to the respective O/E converter 246(1) via the respective optical fiber-based uplink digital communications medium 236(1). The respective O/E converter 246(1) converts the combined uplink optical RF signal 306(1) back to the combined uplink digital RF signal 304(1) and provides to the at least one digital remote distribution interface 132 in the DAIM 232(1).



FIG. 7 is a flowchart of an exemplary HEU configuration process 310 for reconfiguring the main HEU 38 in FIG. 2 with the one or more DAIMs 231(1)-232(N) in FIG. 6. Elements in FIGS. 2, 3, and 6 are referenced in connection to FIG. 7 and will not be re-described herein.


According to the HEU configuration process 310, the one or more main-HEU RIMs 44(1)-44(M) in the main HEU 38 are replaced with the one or more DAIMs 232(1)-232(N) (block 312). Next, the HEU configuration process 310 configures each of the one or more DAIMs 232(1)-232(N) (block 314). For a DAIM among the one or more DAIMs 232(1)-232(N), an analog communications interface (122) is coupled to a respective BTS among the one or more BTSs 238(1)-238(N) (block 316). Next, a digital communications interface 136 in the DAIM is coupled to a respective BBU among the one or more BBUs 240(1)-240(N) (block 318). Subsequently, at least one digital remote distribution interface 132 in the DAIM is coupled to a respective optical fiber-based downlink digital communications medium 234 and a respective optical fiber-based uplink digital communications medium 236 (block 320). Then, an analog local distribution interface 134 in the DAIM is coupled to a respective RAU among the one or more RAUs 242(1)-242(N) (block 322). To enable interconnections between the one or more DAIMs 232(1)-232(N), a logical upstream DAIM and a logical downstream DAIM are identified for each of the one or more DAIMs 232(1)-232(N). Subsequently for each of the DAIM among the one or more DAIMs 232(1)-232(N), the upstream digital bus interface 128 of the DAIM is coupled to a downstream digital bus 130 of the logical upstream DAIM. Also, the downstream digital bus interface 130 of the DAIM is coupled to an upstream digital bus interface 128 of the logical downstream DAIM.


Alternative to retrofitting the one or more DAIMs 120 of FIG. 3 into the existing chassis of the main HEU 38 in FIG. 2, it is also possible to retrofit one or more DIMs 189 of FIG. 4 into the existing chassis of the main-HEU DAS-OIU 42 in FIG. 2 for distributing digital and analog communications signals over optical fiber-based digital communications mediums. In this regard, FIG. 8 is a schematic diagram of an exemplary optical fiber-based wide-area DAS 220(1) configured to distribute digital and analog communications signals from a main HEU 222(1) to the one or more remote HEUs 224(1)-224(N) in FIG. 6 over the optical fiber-based digital communications mediums 226(1)-226(N) in FIG. 6, wherein the main HEU 222(1) is reconfigured by retrofitting one or more of the DIMs 189 illustrated in FIG. 4 into the existing chassis of the main HEU 38 in FIG. 2. Common elements between FIGS. 2, 4, 6, and 8 are shown therein with common element numbers, thus will not be re-described herein.


With reference to FIG. 8, the optical fiber-based wide-area DAS 220(1) comprises a main DAS 228(1) that comprises the main HEU 222(1). The optical fiber-based wide-area DAS 220(1) further comprises the one or more remote DASs 230(1)-230(N) that comprise the one or more remote HEUs 224(1)-224(N), respectively. In the main HEU 222(1), one or more DIMs (main-HEU DIMs) 330(1)-330(N) are retrofit into the chassis of a main-HEU DAS-OIU 42(1). The one or more DIMs 330(1)-330(N) are configured to distribute digital and analog communications signals to the one or more remote HEUs 224(1)-224(N) over the optical fiber-based digital communications mediums 226(1)-226(N), respectively. The optical fiber-based digital communications mediums 226(1)-226(N) comprise the optical fiber-based downlink digital communications mediums 234(1)-234(N) and the optical fiber-based uplink digital communications mediums 236(1)-236(N), respectively. Hence, the one or more main-HEU DIMs 330(1)-330(N) are configured to distribute digital and analog communications signals to the one or more remote HEUs 224(1)-224(N) over the optical fiber-based downlink digital communications mediums 234(1)-234(N) and the optical fiber-based uplink digital communications mediums 236(1)-236(N), respectively. For the convenience of discussion, the main-HEU DIM 330(1) in the main HEU 222(1) and the remote HEU 224(1) are described hereinafter as a non-limiting example. Nonetheless, the configuration and operating principles for distributing digital and analog communications signals in the optical fiber-based wide-area DAS 220(1) are applicable to any of the one or more main-HEU DIMs 330(1)-330(N) and any of the one or more remote HEUs 224(1)-224(N).


With continuing reference to FIG. 8, the main-HEU DIM 330(1) among the one or more main-HEU DIMs 330(1)-330(N) receives the second downlink analog RF signal 60(1) among the plurality of second downlink analog RF signals 60(1)-60(N) from the optical splitter/combiner 58. The second downlink analog RF signal (downlink analog RF signal) 60(1) is received by the main-HEU DIM 330(1) via the analog local distribution interface 134. The A/D converter 148 (not shown) in the main-HEU DIM 330(1) converts the second downlink analog RF signal 60(1) to generate a downlink digital RF signal 150 (not shown). The digital signal processing circuit 152 (not shown) in the main-HEU DIM 330(1) receives and converts the downlink digital RF signal 150 to generate one or more first downlink digital RF signals 332. The main-HEU DIM 330(1) then provides the one or more first downlink digital RF signals 332 to the upstream digital bus interface 128 and the downstream digital bus interface 130 for sharing the one or more first downlink digital RF signals 332 with the rest of main-HEU DIMs 330(1)-330(N) in the main HEU 222(1). The digital signal processing circuit 152 in the main-HEU DIM 330(1) may also receive one or more second downlink digital RF signals 334 from the upstream digital bus interface 128 and one or more third downlink digital RF signals 336 from the downstream digital bus interface 130. In turn, the digital signal processing circuit 152 in the main-HEU DIM 330(1) provides the one or more second downlink digital RF signals 334 to the downstream digital bus interface 130 and provides the one or more third downlink digital RF signals 336 to the upstream digital bus interface 128. The one or more main-HEU DIMs 330(1)-330(N) may be coupled to one or more BBUs 340(1)-340(N), respectively. In this regard, the digital signal processing circuit 152 in the main-HEU DIM 330(1) may also receive a downlink digital baseband signal 338 from the digital communications interface 136, which is coupled to the BBU 340(1). In a non-limiting example, the downlink digital baseband signal 338 is in conformance with the CPRI format. The digital signal processing circuit 152 in the main-HEU DIM 330(1) converts the downlink digital baseband signal 338 to generate one or more fourth downlink digital RF signals 342. Again, the digital signal processing circuit 152 in the main-HEU DIM 330(1) provides the one or more fourth downlink digital RF signals 342 to the upstream digital bus interface 128 and the downstream digital bus interface 130.


With continuing reference to FIG. 8, the digital signal processing circuit 152 in the main-HEU DIM 330(1) combines one or more respective first downlink digital RF signals (not shown), one or more respective second downlink digital RF signals (not shown), one or more respective third downlink digital RF signals (not shown), and one or more respective fourth downlink digital RF signals (not shown) into the combined downlink digital RF signal 248(1). The one or more respective first downlink digital RF signals are programmably determined by the digital signal processing controller 156 (not shown) among the one or more first downlink digital RF signals 332. The one or more respective second downlink digital RF signals are programmably determined by the digital signal processing controller 156 among the one or more second downlink digital RF signals 334. The one or more respective third downlink digital RF signals are programmably determined by the digital signal processing controller 156 among the one or more third downlink digital RF signals 336. The one or more respective fourth downlink digital RF signals are programmably determined by the digital signal processing controller 156 among the one or more fourth downlink digital RF signals 342. The combined downlink digital RF signal 248(1) is then provided to the respective E/O converter 244(1) for distribution to the remote HEU 224(1). The signal processing performed by the remote HEU 224(1) has been described previously in reference to FIG. 6 and will not be re-described herein.


With continuing reference to FIG. 8, the digital signal processing circuit 152 in the main-HEU DIM 330(1) receives the combined uplink digital RF signal 304(1) from the remote HEU 224(1) via the respective O/E converter 246(1) that is coupled to the at least one digital remote distribution interface 136. The digital signal processing circuit 152 in the main-HEU DIM 330(1) splits the combined uplink digital RF signal 304(1) to generate one or more first uplink digital RF signals 344. The main-HEU DIM 330(1) then provides the one or more first uplink digital RF signals 344 to the upstream digital bus interface 128 and the downstream digital bus interface 130 for sharing the one or more first uplink digital RF signals 344 with the rest of main-HEU DIMS 330(1)-330(N) in the main HEU 222(1). The digital signal processing circuit 152 in the main-HEU DIM 330(1) may also receive one or more second uplink digital RF signals 346 from the upstream digital bus interface 128 and one or more third uplink digital RF signals 348 from the downstream digital bus interface 130. In turn, the digital signal processing circuit 152 in the main-HEU DIM 330(1) provides the one or more second uplink digital RF signals 346 to the downstream digital bus interface 130 and provides the one or more third uplink digital RF signals 348 to the upstream digital bus interface 128. The digital signal processing circuit 152 in the main-HEU DIM 330(1) may also receive an uplink digital baseband signal 350 from the digital communications interface 136, which is coupled to the BBU 340(1). In a non-limiting example, the uplink digital baseband signal 350 is in conformance with the CPRI format. The digital signal processing circuit 152 in the main-HEU DIM 330(1) converts the uplink digital baseband signal 350 to generate one or more fourth uplink digital RF signals 352. Again, the digital signal processing circuit 152 in the main-HEU DIM 330(1) provides the one or more fourth uplink digital RF signals 352 to the upstream digital bus interface 128 and the downstream digital bus interface 130.


With continuing reference to FIG. 8, the digital signal processing circuit 152 in the main-HEU DIM 330(1) combines one or more respective first uplink digital RF signals (not shown), one or more respective second uplink digital RF signals (not shown), one or more respective third uplink digital RF signals (not shown), and one or more respective fourth uplink digital RF signals (not shown) into the second uplink digital RF signal (the uplink digital RF signal) 72(1). The one or more respective first uplink digital RF signals are programmably determined by the digital signal processing controller 156 among the one or more first uplink digital RF signals 344. The one or more respective second uplink digital RF signals are programmably determined by the digital signal processing controller 156 among the one or more second uplink digital RF signals 346. The one or more respective third uplink digital RF signals are programmably determined by the digital signal processing controller 156 among the one or more third uplink digital RF signals 348. The one or more respective fourth uplink digital RF signals are programmably determined by the digital signal processing controller 156 among the one or more fourth uplink digital RF signals 352. The second uplink digital RF signal 74 is then provided to the optical splitter/combiner 58.



FIG. 9 is a flowchart of an exemplary HEU configuration process 360 for reconfiguring the main HEU 38 in FIG. 2 with the one or more main-HEU DIMs 330(1)-330(N) in FIG. 8. Elements in FIGS. 2, 3, 6, and 8 are referenced in connection to FIG. 9 and will not be re-described herein.


According to the HEU configuration process 360, the plurality of OIMs 62(1)-62(N) in the main HEU 38 are replaced with the one or more main-HEU DIMs 330(1)-330(N) (block 362). Next, the HEU configuration process 310 configures each of the one or more main-HEU DIMs 330(1)-330(N) (block 364). For a main-HEU DIM among the one or more main-HEU DIMs 330(1)-330(N), a digital communications interface 136 in the main-HEU DIM is coupled to a respective BBU among the one or more BBUs 340(1)-340(N) (block 366). Subsequently, at least one digital remote distribution interface 132 in the main-HEU DIM is coupled to a respective optical fiber-based downlink digital communications medium 234 and a respective optical fiber-based uplink digital communications medium 236 (block 368). Then, an analog local distribution interface 134 in the main-HEU DIM is coupled to a respective RIM among the one or more main-HEU RIMs 44(1)-44(N) (block 370). To enable interconnections between the one or more main-HEU DIMs 330(1)-330(N), a logical upstream main-HEU DIM and a logical downstream main-HEU DIM are identified for each of the one or more main-HEU DIMs 330(1)-330(N). Subsequently for each of the main-HEU DIM among the one or more main-HEU DIMs 330(1)-330(N), the upstream digital bus interface 128 of the main-HEU DIM is coupled to a downstream digital bus 130 of the logical upstream main-HEU DIM. Also, the downstream digital bus interface 130 of the main-HEU DIM is coupled to an upstream digital bus interface 128 of the logical downstream main-HEU DIM.


As previously discussed in references to FIGS. 6 and 8, the combined downlink digital RF signal 248(1) comprises the one or more respective first downlink digital RF signals, the one or more respective second downlink digital RF signals, the one or more respective third downlink digital RF signals, and the one or more respective fourth downlink digital RF signals. Likewise, the combined uplink digital RF signal 304(1) comprises the one or more respective first uplink digital RF signals, the one or more respective second uplink digital RF signals, the one or more respective third uplink digital RF signals, and the one or more respective fourth uplink digital RF signals. As such, the optical fiber-based downlink digital communications mediums 234(1) and the optical fiber-based uplink digital communications mediums 236(1) are required to provide larger bandwidth, thus increasing complexities and costs of the respective E/O converters 244(1), the respective O/E converters 246(1), the remote-HEU O/E converter 254(1), and the remote-HEU E/O converter 256(1). In this regard, FIG. 10 is a schematic diagram of an exemplary DAS 380 comprising a main HEU 382 coupled to a remote HEU 384 over a plurality of respective optical fiber-based downlink communications mediums 386(1)-386(Q) and a plurality of respective optical fiber-based uplink communications mediums 387(1)-387(Q).


With reference to FIG. 10, the main HEU 382 comprises a DAIM 388 or a DIM 390. The DAIM 388 or the DIM 390 comprises a plurality of digital remote distribution interfaces 392(1)-392(Q) that are coupled to a plurality of main-HEU E/O converters 394(1)-394(Q) and a plurality of main-HEU O/E converters 396(1)-396(Q), respectively. The remote HEU 384 comprises a remote-HEU DIM 398. The remote-HEU DIM 398 comprises a plurality of remote-DIM digital remote distribution interfaces 400(1)-400(Q). The plurality of remote-DIM digital remote distribution interfaces 400(1)-400(Q) are coupled to a plurality of remote-HEU O/E converters 402(1)-402(Q) and a plurality of remote-HEU E/O converters 404(1)-404(Q), respectively. The plurality of main-HEU E/O converters 394(1)-394(Q) is coupled to the plurality of remote-HEU O/E converters 402(1)-402(Q) over the plurality of respective optical fiber-based downlink communications mediums 386(1)-386(Q), respectively. The plurality of main-HEU O/E converters 396(1)-396(Q) is coupled to the plurality of remote-HEU E/O converters 404(1)-404(Q) over the plurality of respective optical fiber-based uplink communications mediums 387(1)-387(Q), respectively.


With continuing reference to FIG. 10, a digital signal processing circuit (not shown) in the DAIM 388 or the DIM 390 splits a combined downlink digital RF signal (not shown) into a plurality of bandwidth-reduced combined downlink digital RF signals 406(1)-406(Q). The plurality of bandwidth-reduced combined downlink digital RF signals 406(1)-406(Q) is distributed to the remote HEU 384 via the plurality of digital remote distribution interfaces 392(1)-392(Q). Similarly, a digital signal processing circuit (not shown) in the remote-HEU DIM 398 splits a combined uplink digital RF signal (not shown) into a plurality of bandwidth-reduced combined uplink digital RF signals 408(1)-408(Q). The plurality of bandwidth-reduced combined uplink digital RF signals 408(1)-408(Q) is distributed to the main HEU 382 via the plurality of remote-DIM digital remote distribution interfaces 400(1)-400(Q).


By providing the plurality of digital remote distribution interfaces 392(1)-392(Q) in the main HEU 382 and the plurality of remote-DIM digital remote distribution interfaces 400(1)-400(Q) in the remote HEU 384, it is possible to provide the plurality of main-HEU E/O converters 394(1)-394(Q), the plurality of main-HEU O/E converters 396(1)-396(Q), the plurality of remote-HEU O/E converters 402(1)-402(Q), and the plurality of remote-HEU E/O converters 404(1)-404(Q) with reduced complexities and costs. However, it may be desirable to combine the plurality of optical fiber-based communications mediums 386(1)-386(Q) into a single optical fiber-based communications medium to achieve further cost savings. In this regard, FIG. 11 is a schematic diagram of an exemplary DAS 380(1) comprising a main HEU 382(1) coupled to a remote HEU 384(1) using wavelength-division multiplexing (WDM). Common elements between FIGS. 10 and 11 are shown therein with common element numbers, thus will not be re-described herein.


With reference to FIG. 11, the main HEU 382(1) comprises a main-HEU WDM circuit 410 that is coupled to a remote-HEU WDM circuit 412 comprised in the remote HEU 384(1) over an optical fiber-based digital communications medium 414. In the main HEU 382(1), the plurality of main-HEU E/O converters 394(1)-394(Q) converts the plurality of bandwidth-reduced combined downlink digital RF signals 406(1)-406(Q) into a plurality of bandwidth-reduced combined downlink optical RF signals 416(1)-416(Q). The main-HEU WDM circuit 410 wavelength multiplexes the plurality of bandwidth-reduced combined downlink optical RF signals 416(1)-416(Q) to generate a combined downlink optical RF signal 418. The remote-HEU WDM circuit 412 in turn wavelength de-multiplexes the combined downlink optical RF signal 418 back into the plurality of bandwidth-reduced combined downlink optical RF signals 416(1)-416(Q). The plurality of remote-HEU O/E converters 402(1)-402(Q) subsequently convert the plurality of bandwidth-reduced combined downlink optical RF signals 416(1)-416(Q) into the plurality of bandwidth-reduced combined downlink digital RF signals 406(1)-406(Q).


With continuing reference to FIG. 11, in the remote HEU 384(1), the plurality of remote-HEU E/O converters 404(1)-404(Q) converts the plurality of bandwidth-reduced combined uplink digital RF signals 408(1)-408(Q) into a plurality of bandwidth-reduced combined uplink optical RF signals 420(1)-420(Q). The remote-HEU WDM circuit 412 wavelength multiplexes the plurality of bandwidth-reduced combined uplink optical RF signals 420(1)-420(Q) to generate a combined uplink optical RF signal 422. The main-HEU WDM circuit 410 in turn wavelength de-multiplexes the combined uplink optical RF signal 422 back into the plurality of bandwidth-reduced combined uplink optical RF signals 420(1)-420(Q). The plurality of main-HEU O/E converters 396(1)-396(Q) subsequently converts the plurality of bandwidth-reduced combined uplink optical RF signals 420(1)-420(Q) into the plurality of bandwidth-reduced combined uplink digital RF signals 408(1)-408(Q).


Alternative to adding the plurality of digital remote distribution interfaces 392(1)-392(Q) in the DAIM 388 or the DIM 390 and the plurality of remote-DIM digital remote distribution interfaces 400(1)-400(Q) in the remote-HEU DIM 398 in FIG. 10, it is also possible to utilize multiple DAIMs and/or DIMs for digital and/or analog communications signals distribution between a main HEU and a remote HEU. In this regard, FIG. 12 is a schematic diagram of an exemplary DAS 430 wherein a main HEU 432 and a remote HEU 434 are configured to concurrently distribute digital and/or analog communications signals multiple using a plurality of DAIMs 436(1)-436(Q) and a plurality of DIMs 438(1)-438(Q). Common elements between FIGS. 10 and 12 are shown therein with common element numbers, thus will not be re-described herein.


With reference to FIG. 12, a main-HEU load-sharing bus 440 interconnects the plurality of DAIMs 436(1)-436(Q). A main-HEU load-sharing controller 442, which may be incorporated into the plurality of DAIMs 436(1)-436(Q) for example, is configured to implement load sharing among the plurality of bandwidth-reduced combined downlink digital RF signals 406(1)-406(Q). In the remote HEU 434, a remote-HEU load-sharing bus 444 interconnects the plurality of DIMs 438(1)-438(Q). A remote-HEU load-sharing controller 446, which may be incorporated into the plurality of DIMs 438(1)-438(Q) for example, is configured to implement load sharing among the plurality of bandwidth-reduced combined uplink digital RF signals 408(1)-408(Q).


Alternative to employing the plurality of optical fiber-based communications mediums 386(1)-386(Q) between the main HEU 432 and the remote HEU 434, it may be desirable to combine the plurality of optical fiber-based communications mediums 386(1)-386(Q) into a single optical fiber-based communications medium to achieve further cost savings. In this regard, FIG. 13 is a schematic diagram of an exemplary DAS 430(1) wherein a main HEU 432(1) and a remote HEU 434(1) are configured to concurrently distribute digital and/or analog communications signals multiple using WDM. Common elements between FIGS. 12 and 13 are shown therein with common element numbers, thus will not be re-described herein.


With reference to FIG. 13, the main HEU 432(1) comprises a main-HEU WDM circuit 448 that is coupled to a remote-HEU WDM circuit 450 comprised in the remote HEU 384(1) over an optical fiber-based digital communications medium 452. In the main HEU 432(1), the plurality of main-HEU E/O converters 394(1)-394(Q) converts the plurality of bandwidth-reduced combined downlink digital RF signals 406(1)-406(Q) into a plurality of bandwidth-reduced combined downlink optical RF signals 454(1)-454(Q). The main-HEU WDM circuit 448 wavelength multiplexes the plurality of bandwidth-reduced combined downlink optical RF signals 454(1)-454(Q) to generate a combined downlink optical RF signal 456. The remote-HEU WDM circuit 450 in turn wavelength de-multiplexes the combined downlink optical RF signal 456 back into the plurality of bandwidth-reduced combined downlink optical RF signals 454(1)-454(Q). The plurality of remote-HEU O/E converters 402(1)-402(Q) subsequently converts the plurality of bandwidth-reduced combined downlink optical RF signals 454(1)-454(Q) into the plurality of bandwidth-reduced combined downlink digital RF signals 406(1)-406(Q).


With continuing reference to FIG. 11, in the remote HEU 434(1), the plurality of remote-HEU E/O converters 404(1)-404(Q) converts the plurality of bandwidth-reduced combined uplink digital RF signals 408(1)-408(Q) into a plurality of bandwidth-reduced combined uplink optical RF signals 458(1)-458(Q). The remote-HEU WDM circuit 450 wavelength multiplexes the plurality of bandwidth-reduced combined uplink optical RF signals 458(1)-458(Q) to generate a combined uplink optical RF signal 460. The main-HEU WDM circuit 448 in turn wavelength de-multiplexes the combined uplink optical RF signal 460 back into the plurality of bandwidth-reduced combined uplink optical RF signals 458(1)-458(Q). The plurality of main-HEU O/E converters 396(1)-396(Q) subsequently converts the plurality of bandwidth-reduced combined uplink optical RF signals 458(1)-458(Q) into the plurality of bandwidth-reduced combined uplink digital RF signals 408(1)-408(Q).


The DAIM 120 in FIG. 3 or the DIM 189 in FIG. 4 may be provided in an analog DAS 470 in an indoor environment, as illustrated in FIG. 14. FIG. 14 is a partially schematic cut-away diagram of an exemplary building infrastructure in which the analog DAS 470, which can include the DAIM 120 in FIG. 3 or the DIM 189 in FIG. 4 to support the distribution of digital and/or communications signals, can be employed. The building infrastructure 472 in this embodiment includes a first (ground) floor 474(1), a second floor 474(2), and a third floor 474(3). The floors 474(1)-474(3) are serviced by a central unit 476, which may include the DAIM 120 in FIG. 3 or the DIM 189 in FIG. 4, to provide antenna coverage areas 478 in the building infrastructure 470. The central unit 476 is communicatively coupled to a base station 480 to receive downlink communications signals 482D from the base station 480. The central unit 476 is communicatively coupled to remote antenna units 484 to receive uplink communications signals 482U from the remote antenna units 484, as previously discussed above. The downlink and uplink communications signals 482D, 482U communicated between the central unit 476 and the remote antenna units 484 are carried over a riser cable 486. The riser cable 486 may be routed through interconnect units (ICUs) 488(1)-488(3) dedicated to each of the floors 474(1)-474(3) that route the downlink and uplink communications signals 482D, 482U to the remote antenna units 484 and also provide power to the remote antenna units 484 via array cables 490.


Unless otherwise expressly stated, it is in no way intended that any method set forth herein be construed as requiring that its steps be performed in a specific order. Accordingly, where a method claim does not actually recite an order to be followed by its steps or it is not otherwise specifically stated in the claims or descriptions that the steps are to be limited to a specific order, it is no way intended that any particular order be inferred.


It will be apparent to those skilled in the art that various modifications and variations can be made without departing from the spirit or scope of the invention. Since modifications, combinations, sub-combinations and variations of the disclosed embodiments incorporating the spirit and substance of the invention may occur to persons skilled in the art, the invention should be construed to include everything within the scope of the appended claims and their equivalents.

Claims
  • 1. An optical fiber-based wide-area distributed antenna system (DAS), comprising: a main DAS comprising a main head-end unit (HEU), wherein the main HEU comprises: one or more radio interface modules (RIMs) communicatively coupled to one or more base transceiver stations (BTSs);a radio frequency (RF) combiner/splitter coupled to the one or more RIMs;an optical splitter/combiner coupled to the RF combiner/splitter;one or more main-HEU digital interface modules (DIMs) coupled to the optical splitter/combiner, wherein each of the one or more main-HEU DIMs is coupled to a respective optical fiber-based downlink digital communications medium via a respective electrical-to-optical (E/O) converter and a respective optical fiber-based uplink digital communications medium via a respective optical-to-electrical (O/E) converter; andone or more remote DASs comprising one or more remote HEUs, respectively, wherein a remote HEU among the one or more remote HEUs comprises: one or more remote-HEU DIMs corresponding to one or more RF bands, respectively, wherein at least one remote-HEU DIM among the one or more remote-HEU DIMs comprised in the remote HEU is configured to interface with a respective main-HEU DIM in the main HEU;wherein the at least one remote-HEU DIM configured to interface with the respective main-HEU DIM in the main HEU is coupled to the respective optical fiber-based downlink digital communications medium via a respective remote-HEU O/E converter and is coupled to the respective optical fiber-based uplink digital communications medium via a respective remote-HEU E/O converter;a remote-HEU RF combiner/splitter coupled to the one or more remote-HEU DIMs;a remote-HEU optical splitter/combiner coupled to the remote-HEU RF combiner/splitter; andone or more remote-HEU optical interface modules (OIMs) coupled to the remote-HEU optical splitter/combiner, wherein the one or more remote-HEU OIMs is coupled with one or more remote-DAS remote antenna units (RAUs).
  • 2. The optical fiber-based wide-area DAS of claim 1, wherein: the one or more RIMs are configured to receive one or more downlink analog RF communications signals from the one or more BTSs;the one or more RIMs are further configured to convert the one or more downlink analog RF communications signals into one or more downlink analog RF signals that are adapted for distribution in the optical fiber-based wide-area DAS;the one or more RIMs are further configured to provide the one or more downlink analog RF signals to the RF combiner/splitter;the RF combiner/splitter is configured to combine the one or more downlink analog RF signals to generated a combined downlink analog RF signal;the RF combiner/splitter is further configured to provide the combined downlink analog RF signal to the optical splitter/combiner;the optical splitter/combiner is configured to split and recombine the combined downlink analog RF signal to generate a plurality of second downlink analog RF signals for the one or more main-HEU DIMs, respectively; andthe optical splitter/combiner is further configured to provide the plurality of second downlink analog RF signals to the one or more main-HEU DIMs.
  • 3. The optical fiber-based wide-area DAS of claim 2, wherein a main-HEU DIM among the one or more main-HEU DIMs in the main HEU comprises: a main-DIM upstream digital bus interface;a main-DIM downstream digital bus interface;at least one main-DIM digital remote distribution interface coupled to the respective optical fiber-based downlink digital communications medium via the respective E/O converter and the respective optical fiber-based uplink digital communications medium via the respective O/E converter;a main-DIM analog local distribution interface coupled to a main-HEU optical splitter/combiner;a main-DIM digital communications interface to be coupled with a main-DAS digital signal source;a main-DIM analog-to-digital (A/D) converter coupled to the main-DIM analog local distribution interface;a main-DIM digital-to-analog (D/A) converter coupled to the main-DIM analog local distribution interface;a main-DIM digital signal processing circuit coupled to the main-DIM A/D converter, the main-DIM D/A converter, the main-DIM upstream digital bus interface, the main-DIM downstream digital bus interface, the at least one main-DIM digital remote distribution interface, and the main-DIM digital communications interface; anda main-DIM digital signal processing controller communicatively coupled to the main-DIM digital signal processing circuit;wherein the main-DIM digital signal processing circuit is configured to: generate a combined downlink digital RF signal based on a respective second downlink analog RF signal among the plurality of second downlink analog RF signals; andprovide the combined downlink digital RF signal to the at least one main-DIM digital remote distribution interface.
  • 4. The optical fiber-based wide-area DAS of claim 1, wherein a remote-HEU DIM among the one or more remote-HEU DIMS comprised in the remote HEU among the one or more remote HEUs comprises: a remote-DIM upstream digital bus interface;a remote-DIM downstream digital bus interface;at least one remote-DIM digital remote distribution interface;wherein the at least one remote-DIM digital remote distribution interface is coupled to the respective remote-HEU E/O converter and the respective remote-HEU O/E converter if the remote-HEU DIM is the at least one remote-HEU DIM configured to interface with the respective main-HEU DIM in the main HEU;a remote-DIM analog local distribution interface coupled to the remote-HEU RF combiner/splitter;a remote-DIM digital communications interface to be coupled with a remote-DAS digital signal source associated with the remote HEU;a remote-DIM analog-to-digital (A/D) converter coupled to the remote-DIM analog local distribution interface;a remote-DIM digital-to-analog (D/A) converter coupled to the remote-DIM analog local distribution interface;a remote-DIM digital signal processing circuit coupled to the remote-DIM A/D converter, the remote-DIM D/A converter, the remote-DIM upstream digital bus interface, the remote-DIM downstream digital bus interface, the at least one remote-DIM digital remote distribution interface, and the remote-DIM digital communications interface; anda remote-DIM digital signal processing controller communicatively coupled to the remote-DIM digital signal processing circuit.
  • 5. The optical fiber-based wide-area DAS of claim 4, wherein the remote-DIM digital signal processing circuit in the remote-HEU DIM is configured to: if the remote-HEU DIM is the at least one remote-HEU DIM configured to interface with the respective main-HEU DIM in the main HEU: receive a combined downlink digital RF signal from the respective main-HEU DIM in the main HEU through the at least one remote-DIM digital remote distribution interface;convert the combined downlink digital RF signal into one or more first remote-DIM downlink digital RF signals corresponding to the one or more RF bands, respectively;provide the one or more first remote-DIM downlink digital RF signals to the remote-DIM upstream digital bus interface; andprovide the one or more first remote-DIM downlink digital RF signals to the remote-DIM downstream digital bus interface.
  • 6. The optical fiber-based wide-area DAS of claim 5, wherein the remote-DIM digital signal processing circuit in the remote-HEU DIM is further configured to: receive one or more second remote-DIM downlink digital RF signals from the remote-DIM upstream digital bus interface, wherein the one or more second remote-DIM downlink digital RF signals correspond to the one or more RF bands;provide the one or more second remote-DIM downlink digital RF signals to the remote-DIM downstream digital bus interface;receive one or more third remote-DIM downlink digital RF signals from the remote-DIM downstream digital bus interface, wherein the one or more third remote-DIM downlink digital RF signals correspond to the one or more RF bands; andprovide the one or more third remote-DIM downlink digital RF signals to the remote-DIM upstream digital bus interface.
  • 7. The optical fiber-based wide-area DAS of claim 6, wherein the remote-DIM digital signal processing circuit in the remote-HEU DIM is further configured to: receive a remote-DAS downlink digital baseband signal from the remote-DIM digital communications interface;convert the remote-DAS downlink digital baseband signal to generate one or more fourth remote-DIM downlink digital RF signals corresponding to the one or more RF bands, respectively;provide the one or more fourth remote-DIM downlink digital RF signals to the remote-DIM downstream digital bus interface; andprovide the one or more fourth remote-DIM downlink digital RF signals to the remote-DIM upstream digital bus interface.
  • 8. The optical fiber-based wide-area DAS of claim 7, wherein the remote-DIM digital signal processing circuit in the remote-HEU DIM is further configured to: combine one or more remote-DIM downlink digital RF signals to generate a remote-DIM combined downlink digital RF signal corresponding to an RF band associated with the remote-HEU DIM among the one or more RF bands supported by the remote HEU, wherein the one or more remote-DIM downlink digital RF signals are programmably determined by the remote-DIM digital signal processing controller from the one or more first remote-DIM downlink digital RF signals, the one or more second remote-DIM downlink digital RF signals, the one or more third remote-DIM downlink digital RF signals, and the one or more fourth remote-DIM downlink digital RF signals based on the RF band associated with the remote-HEU DIM; andprovide the remote-DIM combined downlink digital RF signal to the remote-DIM D/A converter.
  • 9. The optical fiber-based wide-area DAS of claim 8, wherein the remote-DIM D/A converter in the remote-HEU DIM is configured to: convert the remote-DIM combined downlink digital RF signal into a remote-DIM combined downlink analog RF signal; andprovide the remote-DIM combined downlink analog RF signal to the remote-DIM analog local distribution interface.
  • 10. The optical fiber-based wide-area DAS of claim 9, wherein the remote-HEU RF combiner/splitter comprised in the remote HEU is configured to: receive one or more remote-DIM combined downlink analog RF signals from the one or more remote-HEU DIMS comprised in the remote HEU;convert and combine the one or more remote-DIM combined downlink analog RF signals to generate a remote-HEU combined downlink analog RF signal; andprovide the remote-HEU combined downlink analog RF signal to the remote-HEU optical splitter/combiner comprised in the remote HEU.
  • 11. The optical fiber-based wide-area DAS of claim 10, wherein the remote-HEU optical splitter/combiner comprised in the remote HEU among the one or more remote HEUs is configured to: receive the remote-HEU combined downlink analog RF signal from the remote-HEU RF combiner/splitter comprised in the remote HEU;split the remote-HEU combined downlink analog RF signal to generate one or more remote-OIM downlink analog RF signals; andprovide the one or more remote-OIM downlink analog RF signals to the one or more remote-HEU OIMs comprised in the remote HEU.
  • 12. The optical fiber-based wide-area DAS of claim 11, wherein the one or more remote-HEU OIMs comprised in the remote HEU among the one or more remote HEUs are configured to: receive the one or more remote-OIM downlink analog RF signals from the one or more remote-HEU OIMs comprised in the remote HEU;convert the one or more remote-OIM downlink analog RF signals into one or more remote-OIM downlink optical RF signals; andprovide the one or more remote-OIM downlink optical RF signals to the one or more remote-DAS RAUs.
  • 13. The optical fiber-based wide-area DAS of claim 4, wherein the one or more remote-HEU OIMs comprised in the remote HEU among the one or more remote HEUs are configured to: receive one or more remote-OIM uplink optical RF signals from the one or more remote-DAS RAUs;convert the one or more remote-OIM uplink optical RF signals into one or more remote-OIM uplink analog RF signals; andprovide the one or more remote-OIM uplink analog RF signals to the remote-HEU optical splitter/combiner.
  • 14. The optical fiber-based wide-area DAS of claim 13, wherein the remote-HEU optical splitter/combiner comprised in the remote HEU among the one or more remote HEUs is configured to: receive the one or more remote-OIM uplink analog RF signals from the one or more remote-HEU OIMs comprised in the remote HEU;combine the one or more remote-OIM uplink analog RF signals to generate a remote-HEU combined uplink analog RF signal; andprovide the remote-HEU combined uplink analog RF signal to the remote-HEU RF combiner/splitter in the remote HEU.
  • 15. The optical fiber-based wide-area DAS of claim 14, wherein the remote-HEU RF combiner/splitter comprised in the remote HEU among the one or more remote HEUs is configured to: receive the remote-HEU combined uplink analog RF signal from the remote-HEU optical splitter/combiner;split the remote-HEU combined uplink analog RF signal into one or more remote-DIM combined uplink analog RF signals corresponding to the one or more RF bands, respectively; andprovide the one or more remote-DIM combined uplink analog RF signals to the one or more remote-HEU DIMS comprised in the remote HEU based on the one or more RF bands, respectively.
  • 16. The optical fiber-based wide-area DAS of claim 1, wherein a main-HEU DIM among the one or more main-HEU DIMS comprised in the main-HEU comprises a plurality of digital remote distribution interfaces.
  • 17. The optical fiber-based wide-area DAS of claim 16, wherein: the plurality of digital remote distribution interfaces comprised in the main-HEU DIM is coupled to a main-HEU wavelength-division multiplexer (WDM); andthe main-HEU WDM is coupled to a respective optical fiber-based downlink digital communications medium and a respective optical fiber-based uplink digital communications medium.
  • 18. The optical fiber-based wide-area DAS of claim 16, wherein the plurality of digital remote distribution interfaces comprised in the main-HEU DIM is coupled to a plurality of respective optical fiber-based downlink digital communications mediums and a plurality of respective optical fiber-based uplink digital communications mediums, respectively.
  • 19. The optical fiber-based wide-area DAS of claim 18, wherein a remote-HEU DIM comprised in the remote HEU in the one or more remote DASs comprises a plurality of remote-DIM digital remote distribution interfaces.
  • 20. The optical fiber-based wide-area DAS of claim 19, wherein the plurality of remote-DIM digital remote distribution interfaces in the remote-HEU DIM is coupled to: the plurality of respective optical fiber-based downlink digital communications mediums that are coupled to a respective DAIM in the main HEU; andthe plurality of respective optical fiber-based uplink digital communications mediums that are coupled to the respective DAIM in the main HEU.
  • 21. The optical fiber-based wide-area DAS of claim 18, wherein: the plurality of remote-DIM digital remote distribution interfaces comprised in the remote-HEU DIM is coupled to a remote-HEU wavelength-division multiplexer (WDM); andthe remote-HEU WDM is coupled to a respective optical fiber-based downlink digital communications medium and a respective optical fiber-based uplink digital communications medium.
PRIORITY APPLICATION

This application is a continuation of International Application No. PCT/IL15/051217, filed on Dec. 15, 2015, which claims the benefit of priority under 35 U.S.C. § 119 of U.S. Provisional Application No. 62/093,649, filed on Dec. 18, 2014, the contents of which are relied upon and incorporated herein by reference in their entireties.

US Referenced Citations (803)
Number Name Date Kind
4365865 Stiles Dec 1982 A
4867527 Dotti et al. Sep 1989 A
4889977 Haydon Dec 1989 A
4896939 O'Brien Jan 1990 A
4916460 Powell Apr 1990 A
4972505 Isberg Nov 1990 A
5039195 Jenkins et al. Aug 1991 A
5042086 Cole et al. Aug 1991 A
5125060 Edmundson Jun 1992 A
5189718 Barrett et al. Feb 1993 A
5189719 Coleman et al. Feb 1993 A
5206655 Caille et al. Apr 1993 A
5210812 Nilsson et al. May 1993 A
5260957 Hakimi et al. Nov 1993 A
5263108 Kurokawa et al. Nov 1993 A
5267122 Glover et al. Nov 1993 A
5268971 Nilsson et al. Dec 1993 A
5280472 Gilhousen et al. Jan 1994 A
5295154 Meier et al. Mar 1994 A
5299947 Barnard Apr 1994 A
5301056 O'Neill Apr 1994 A
5339058 Lique Aug 1994 A
5339184 Tang Aug 1994 A
5377035 Wang et al. Dec 1994 A
5379455 Koschek Jan 1995 A
5400391 Emura et al. Mar 1995 A
5404570 Charas et al. Apr 1995 A
5424864 Emura Jun 1995 A
5428636 Meier Jun 1995 A
5444564 Newberg Aug 1995 A
5457557 Zarem et al. Oct 1995 A
5459727 Vannucci Oct 1995 A
5469523 Blew et al. Nov 1995 A
5499241 Thompson et al. Mar 1996 A
5504746 Meier Apr 1996 A
5519691 Darcie et al. May 1996 A
5543000 Lique Aug 1996 A
5544161 Bigham et al. Aug 1996 A
5546443 Raith Aug 1996 A
5553064 Paff et al. Sep 1996 A
5557698 Gareis et al. Sep 1996 A
5574815 Kneeland Nov 1996 A
5598288 Collar Jan 1997 A
5603080 Kallander et al. Feb 1997 A
5615034 Hori Mar 1997 A
5621786 Fischer et al. Apr 1997 A
5627879 Russell et al. May 1997 A
5640678 Ishikawa et al. Jun 1997 A
5642405 Fischer et al. Jun 1997 A
5644622 Russell et al. Jul 1997 A
5648961 Ebihara Jul 1997 A
5651081 Blew et al. Jul 1997 A
5657374 Russell et al. Aug 1997 A
5668562 Cutrer et al. Sep 1997 A
5677974 Elms et al. Oct 1997 A
5682256 Motley et al. Oct 1997 A
5684799 Bigham et al. Nov 1997 A
5689355 Okubo et al. Nov 1997 A
5703602 Casebolt Dec 1997 A
5726984 Kubler et al. Mar 1998 A
5774789 van der Kaay et al. Jun 1998 A
5790536 Mahany et al. Aug 1998 A
5790606 Dent Aug 1998 A
5802173 Hamilton-Piercy et al. Sep 1998 A
5802473 Rutledge et al. Sep 1998 A
5805983 Naidu et al. Sep 1998 A
5809422 Raleigh et al. Sep 1998 A
5812296 Tarusawa et al. Sep 1998 A
5818619 Medved et al. Oct 1998 A
5821510 Cohen et al. Oct 1998 A
5825651 Gupta et al. Oct 1998 A
5825829 Borazjani et al. Oct 1998 A
5832364 Gustafson Nov 1998 A
5838474 Stilling Nov 1998 A
5852651 Fischer Dec 1998 A
5854986 Dorren et al. Dec 1998 A
5867485 Chambers et al. Feb 1999 A
5880863 Rideout et al. Mar 1999 A
5881200 Burt Mar 1999 A
5883882 Schwartz Mar 1999 A
5890055 Chu et al. Mar 1999 A
5896568 Tseng et al. Apr 1999 A
5903834 Wallstedt et al. May 1999 A
5910776 Black Jun 1999 A
5913003 Arroyo et al. Jun 1999 A
5917636 Wake et al. Jun 1999 A
5930682 Schwartz et al. Jul 1999 A
5936754 Ariyavisitakul et al. Aug 1999 A
5943372 Gans et al. Aug 1999 A
5946622 Bojeryd Aug 1999 A
5949564 Wake Sep 1999 A
5959531 Gallagher, III et al. Sep 1999 A
5960344 Mahany Sep 1999 A
5969837 Farber et al. Oct 1999 A
5982413 Irie et al. Nov 1999 A
5983070 Georges et al. Nov 1999 A
5987303 Dutta et al. Nov 1999 A
6005884 Cook et al. Dec 1999 A
6006105 Rostoker et al. Dec 1999 A
6014546 Georges et al. Jan 2000 A
6016426 Bodell Jan 2000 A
6023625 Myers, Jr. Feb 2000 A
6046992 Meier et al. Apr 2000 A
6067053 Runyon et al. May 2000 A
6078622 Boytim et al. Jun 2000 A
6088381 Myers, Jr. Jul 2000 A
6112086 Wala Aug 2000 A
6124957 Goel et al. Sep 2000 A
6127917 Tuttle Oct 2000 A
6128470 Naidu et al. Oct 2000 A
6148041 Dent Nov 2000 A
6150921 Werb et al. Nov 2000 A
6157810 Georges et al. Dec 2000 A
6219553 Panasik Apr 2001 B1
6222503 Gietema et al. Apr 2001 B1
6223021 Silvia et al. Apr 2001 B1
6232870 Garber et al. May 2001 B1
6236789 Fitz May 2001 B1
6240274 Izadpanah May 2001 B1
6268946 Larkin et al. Jul 2001 B1
6292673 Maeda et al. Sep 2001 B1
6301240 Slabinski et al. Oct 2001 B1
6314163 Acampora Nov 2001 B1
6317599 Rappaport et al. Nov 2001 B1
6323980 Bloom Nov 2001 B1
6324391 Bodell Nov 2001 B1
6330244 Swartz et al. Dec 2001 B1
6334219 Hill et al. Dec 2001 B1
6337754 Imajo Jan 2002 B1
6353406 Lanzl et al. Mar 2002 B1
6353600 Schwartz et al. Mar 2002 B1
6356374 Farhan Mar 2002 B1
6359714 Imajo Mar 2002 B1
6373611 Farhan et al. Apr 2002 B1
6374078 Williams et al. Apr 2002 B1
6374124 Slabinski Apr 2002 B1
6374311 Mahany et al. Apr 2002 B1
6389010 Kubler et al. May 2002 B1
6392770 Sasai et al. May 2002 B1
6405018 Reudink et al. Jun 2002 B1
6405058 Bobier Jun 2002 B2
6405308 Gupta et al. Jun 2002 B1
6438301 Johnson et al. Aug 2002 B1
6438371 Fujise et al. Aug 2002 B1
6452915 Jorgensen Sep 2002 B1
6477154 Cheong et al. Nov 2002 B1
6480702 Sabat, Jr. Nov 2002 B1
6486907 Farber et al. Nov 2002 B1
6496290 Lee Dec 2002 B1
6501768 Marin et al. Dec 2002 B2
6501942 Weissman et al. Dec 2002 B1
6501965 Lucidarme Dec 2002 B1
6504636 Seto et al. Jan 2003 B1
6512478 Chien Jan 2003 B1
6519395 Bevan et al. Feb 2003 B1
6523177 Brown Feb 2003 B1
6525855 Westbrook et al. Feb 2003 B1
6526264 Sugar et al. Feb 2003 B2
6549772 Chavez et al. Apr 2003 B1
6556551 Schwartz Apr 2003 B1
6560441 Sabat, Jr. et al. May 2003 B1
6577794 Currie et al. Jun 2003 B1
6577801 Broderick et al. Jun 2003 B2
6580402 Navarro et al. Jun 2003 B2
6580905 Naidu et al. Jun 2003 B1
6580918 Leickel et al. Jun 2003 B1
6583763 Judd Jun 2003 B2
6594496 Schwartz Jul 2003 B2
6597325 Judd et al. Jul 2003 B2
6606430 Bartur et al. Aug 2003 B2
6615074 Mickle et al. Sep 2003 B2
6634811 Gertel et al. Oct 2003 B1
6636747 Harada et al. Oct 2003 B2
6640103 Inman et al. Oct 2003 B1
6643437 Park Nov 2003 B1
6652158 Bartur et al. Nov 2003 B2
6654616 Pope, Jr. et al. Nov 2003 B1
6657535 Magbie et al. Dec 2003 B1
6658269 Golemon et al. Dec 2003 B1
6670930 Navarro Dec 2003 B2
6675294 Gupta et al. Jan 2004 B1
6687437 Starnes et al. Feb 2004 B1
6690328 Judd Feb 2004 B2
6697603 Lovinggood et al. Feb 2004 B1
6704298 Matsumiya et al. Mar 2004 B1
6704545 Wala Mar 2004 B1
6704579 Woodhead et al. Mar 2004 B2
6710366 Lee et al. Mar 2004 B1
6731880 Westbrook et al. May 2004 B2
6758913 Tunney et al. Jul 2004 B1
6763226 McZeal, Jr. Jul 2004 B1
6771862 Kamik et al. Aug 2004 B2
6771933 Eng et al. Aug 2004 B1
6784802 Stanescu Aug 2004 B1
6785558 Stratford et al. Aug 2004 B1
6788666 Linebarger et al. Sep 2004 B1
6801767 Schwartz et al. Oct 2004 B1
6807374 Imajo et al. Oct 2004 B1
6812824 Goldinger et al. Nov 2004 B1
6812905 Thomas et al. Nov 2004 B2
6826164 Mani et al. Nov 2004 B2
6826165 Meier et al. Nov 2004 B1
6826337 Linnell Nov 2004 B2
6831901 Millar Dec 2004 B2
6842433 West et al. Jan 2005 B2
6842459 Binder Jan 2005 B1
6847856 Bohannon Jan 2005 B1
6850510 Kubler et al. Feb 2005 B2
6865390 Goss et al. Mar 2005 B2
6873823 Hasarchi et al. Mar 2005 B2
6876056 Tilmans et al. Apr 2005 B2
6876852 Li et al. Apr 2005 B1
6879290 Toutain et al. Apr 2005 B1
6882833 Nguyen Apr 2005 B2
6883710 Chung Apr 2005 B2
6885846 Panasik et al. Apr 2005 B1
6889060 Fernando et al. May 2005 B2
6895185 Chung May 2005 B1
6895253 Carloni et al. May 2005 B1
6909399 Zegelin et al. Jun 2005 B1
6915058 Pons Jul 2005 B2
6919858 Rofougaran Jul 2005 B2
6920330 Caronni et al. Jul 2005 B2
6924997 Chen et al. Aug 2005 B2
6930987 Fukuda et al. Aug 2005 B1
6931183 Panak et al. Aug 2005 B2
6933849 Sawyer Aug 2005 B2
6940916 Warner et al. Sep 2005 B1
6961312 Kubler et al. Nov 2005 B2
6963289 Aljadeff et al. Nov 2005 B2
6963552 Sabat, Jr. et al. Nov 2005 B2
6965718 Koertel Nov 2005 B2
6968107 Belardi et al. Nov 2005 B2
6970652 Ihang et al. Nov 2005 B2
6973243 Koyasu et al. Dec 2005 B2
6974262 Rickenbach Dec 2005 B1
7006465 Toshimitsu et al. Feb 2006 B2
7013087 Suzuki et al. Mar 2006 B2
7015826 Chan et al. Mar 2006 B1
7016308 Gallagher Mar 2006 B1
7020451 Sugar et al. Mar 2006 B2
7020473 Splett Mar 2006 B2
7024166 Wallace et al. Apr 2006 B2
7035512 Van Bijsterveld Apr 2006 B2
7035671 Solum Apr 2006 B2
7039399 Fischer May 2006 B2
7047028 Cagenius May 2006 B2
7050017 King et al. May 2006 B2
7053838 Judd May 2006 B2
7054513 Herz et al. May 2006 B2
7072586 Aburakawa et al. Jul 2006 B2
7082320 Kattukaran et al. Jul 2006 B2
7084769 Bauer et al. Aug 2006 B2
7092710 Stoter et al. Aug 2006 B1
7093985 Lord et al. Aug 2006 B2
7103312 Judd et al. Sep 2006 B2
7103377 Bauman et al. Sep 2006 B2
7106931 Sutehall et al. Sep 2006 B2
7110381 O'Sullivan et al. Sep 2006 B1
7114859 Tuohimaa et al. Oct 2006 B1
7127175 Mani et al. Oct 2006 B2
7127176 Sasaki Oct 2006 B2
7133697 Judd et al. Nov 2006 B2
7142503 Grant et al. Nov 2006 B1
7142535 Kubler et al. Nov 2006 B2
7160032 Nagashima et al. Jan 2007 B2
7181206 Pedersen Feb 2007 B2
7199443 Elsharawy Apr 2007 B2
7200305 Dion et al. Apr 2007 B2
7200391 Chung et al. Apr 2007 B2
7228072 Mickelsson et al. Jun 2007 B2
7245603 Lucidarme et al. Jul 2007 B1
7257328 Levinson et al. Aug 2007 B2
7263293 Ommodt et al. Aug 2007 B2
7269311 Kim et al. Sep 2007 B2
7286507 Oh et al. Oct 2007 B1
7286843 Scheck Oct 2007 B2
7286854 Ferrato et al. Oct 2007 B2
7295119 Rappaport et al. Nov 2007 B2
7310430 Mallya et al. Dec 2007 B1
7313415 Wake et al. Dec 2007 B2
7315735 Graham Jan 2008 B2
7324730 Varkey et al. Jan 2008 B2
7343164 Kallstenius Mar 2008 B2
7349633 Lee et al. Mar 2008 B2
7359408 Kim Apr 2008 B2
7359674 Markki et al. Apr 2008 B2
7366150 Lee et al. Apr 2008 B2
7366151 Kubler et al. Apr 2008 B2
7369526 Lechleider et al. May 2008 B2
7379669 Kim May 2008 B2
7392029 Pronkine Jun 2008 B2
7394883 Funakubo et al. Jul 2008 B2
7403156 Coppi et al. Jul 2008 B2
7409159 Izadpanah Aug 2008 B2
7412224 Kotola et al. Aug 2008 B2
7424228 Williams et al. Sep 2008 B1
7442679 Stolle et al. Oct 2008 B2
7444051 Tatat et al. Oct 2008 B2
7450853 Kim et al. Nov 2008 B2
7450854 Lee et al. Nov 2008 B2
7451365 Wang et al. Nov 2008 B2
7457646 Mahany et al. Nov 2008 B2
7460507 Kubler et al. Dec 2008 B2
7460829 Utsumi et al. Dec 2008 B2
7460831 Hasarchi Dec 2008 B2
7466925 Iannelli Dec 2008 B2
7469105 Wake et al. Dec 2008 B2
7477597 Segel Jan 2009 B2
7483504 Shapira et al. Jan 2009 B2
7493129 Mostafa et al. Feb 2009 B1
7496070 Vesuna Feb 2009 B2
7496384 Seto et al. Feb 2009 B2
7522552 Fein et al. Apr 2009 B2
7542452 Penumetsa Jun 2009 B2
7548695 Wake Jun 2009 B2
7551641 Pirzada et al. Jun 2009 B2
7552246 Mahany et al. Jun 2009 B2
7557758 Rofougaran Jul 2009 B2
7580384 Kubler et al. Aug 2009 B2
7586861 Kubler et al. Sep 2009 B2
7590354 Sauer et al. Sep 2009 B2
7599420 Forenza et al. Oct 2009 B2
7606594 Jesse et al. Oct 2009 B2
7627250 George et al. Dec 2009 B2
7630690 Kaewell, Jr. et al. Dec 2009 B2
7633934 Kubler et al. Dec 2009 B2
7646743 Kubler et al. Jan 2010 B2
7646777 Hicks, III et al. Jan 2010 B2
7653397 Pemu et al. Jan 2010 B2
7668153 Zavadsky Feb 2010 B2
7668565 Ylänen et al. Feb 2010 B2
7684709 Ray et al. Mar 2010 B2
7688811 Kubler et al. Mar 2010 B2
7693486 Kasslin et al. Apr 2010 B2
7697467 Kubler et al. Apr 2010 B2
7715375 Kubler et al. May 2010 B2
7715466 Oh et al. May 2010 B1
7751374 Donovan Jul 2010 B2
7751838 Ramesh et al. Jul 2010 B2
7760703 Kubler et al. Jul 2010 B2
7761093 Sabat, Jr. et al. Jul 2010 B2
7764978 West Jul 2010 B1
7768951 Kubler et al. Aug 2010 B2
7773573 Chung et al. Aug 2010 B2
7778603 Palin et al. Aug 2010 B2
7783263 Sperlich et al. Aug 2010 B2
7787854 Conyers et al. Aug 2010 B2
7805073 Sabat, Jr. et al. Sep 2010 B2
7809012 Ruuska et al. Oct 2010 B2
7817958 Scheinert et al. Oct 2010 B2
7817969 Castaneda et al. Oct 2010 B2
7835328 Stephens et al. Nov 2010 B2
7844273 Scheinert Nov 2010 B2
7848316 Kubler et al. Dec 2010 B2
7848731 Dianda et al. Dec 2010 B1
7853234 Afsahi Dec 2010 B2
7870321 Rofougaran Jan 2011 B2
7881755 Mishra et al. Feb 2011 B1
7894423 Kubler et al. Feb 2011 B2
7899007 Kubler et al. Mar 2011 B2
7907972 Walton et al. Mar 2011 B2
7912043 Kubler et al. Mar 2011 B2
7916706 Kubler et al. Mar 2011 B2
7917145 Mahany et al. Mar 2011 B2
7920553 Kubler et al. Apr 2011 B2
7920858 Sabat, Jr. et al. Apr 2011 B2
7924783 Mahany et al. Apr 2011 B1
7929940 Dianda et al. Apr 2011 B1
7936713 Kubler et al. May 2011 B2
7948897 Stuart et al. May 2011 B2
7949364 Kasslin et al. May 2011 B2
7957777 Vu et al. Jun 2011 B1
7962042 Deas Jun 2011 B2
7962176 Li et al. Jun 2011 B2
7969009 Chandrasekaran Jun 2011 B2
7969911 Mahany et al. Jun 2011 B2
7990925 Tinnakomsrisuphap et al. Aug 2011 B2
7996020 Chhabra Aug 2011 B1
8005152 Wegener Aug 2011 B2
8010116 Scheinert Aug 2011 B2
8018907 Kubler et al. Sep 2011 B2
8036308 Rofougaran Oct 2011 B2
8082353 Huber et al. Dec 2011 B2
8086192 Rofougaran et al. Dec 2011 B2
8107464 Schmidt et al. Jan 2012 B2
8135102 Wiwel et al. Mar 2012 B2
8155525 Cox Apr 2012 B2
8174428 Wegener May 2012 B2
8213401 Fischer et al. Jul 2012 B2
8270387 Cannon et al. Sep 2012 B2
8274929 Schmidt et al. Sep 2012 B2
8279800 Schmidt et al. Oct 2012 B2
8290483 Sabat, Jr. et al. Oct 2012 B2
8306563 Zavadsky et al. Nov 2012 B2
8346091 Kummetz et al. Jan 2013 B2
8346278 Wala et al. Jan 2013 B2
8422884 Mao Apr 2013 B2
8428510 Stratford et al. Apr 2013 B2
8457562 Zavadsky et al. Jun 2013 B2
8462683 Uyehara et al. Jun 2013 B2
8467823 Seki et al. Jun 2013 B2
8472579 Uyehara et al. Jun 2013 B2
8509215 Stuart Aug 2013 B2
8509850 Zavadsky et al. Aug 2013 B2
8526970 Wala et al. Sep 2013 B2
8532242 Fischer et al. Sep 2013 B2
8548526 Schmidt et al. Oct 2013 B2
8583100 Koziy et al. Nov 2013 B2
8606110 Rospsha Dec 2013 B2
8626245 Zavadsky et al. Jan 2014 B2
8634766 Hobbs et al. Jan 2014 B2
8681917 McAllister et al. Mar 2014 B2
8682338 Lemson et al. Mar 2014 B2
8693342 Uyehara et al. Apr 2014 B2
8694034 Notargiacomo Apr 2014 B2
8699982 Singh Apr 2014 B2
8737300 Stapleton et al. May 2014 B2
8737454 Wala et al. May 2014 B2
8743718 Grenier et al. Jun 2014 B2
8743756 Uyehara et al. Jun 2014 B2
8792933 Chen Jul 2014 B2
8837659 Uyehara et al. Sep 2014 B2
8837940 Smith et al. Sep 2014 B2
8908607 Kummetz et al. Dec 2014 B2
8929288 Stewart et al. Jan 2015 B2
8948816 Fischer et al. Feb 2015 B2
8958789 Bauman et al. Feb 2015 B2
8976067 Fischer Mar 2015 B2
9001811 Wala et al. Apr 2015 B2
9037143 Berlin et al. May 2015 B2
9042732 Cune et al. May 2015 B2
9270374 Cune et al. Feb 2016 B2
9325429 Berlin et al. Apr 2016 B2
9525488 Beamon et al. Dec 2016 B2
20010000621 Mitsuda et al. May 2001 A1
20010036163 Sabat, Jr. et al. Nov 2001 A1
20010053011 Imajo Dec 2001 A1
20020003645 Kim et al. Jan 2002 A1
20020012336 Hughes et al. Jan 2002 A1
20020012495 Sasai et al. Jan 2002 A1
20020031113 Dodds et al. Mar 2002 A1
20020048071 Suzuki et al. Apr 2002 A1
20020055371 Amon et al. May 2002 A1
20020075906 Cole et al. Jun 2002 A1
20020090915 Komara et al. Jul 2002 A1
20020092347 Niekerk et al. Jul 2002 A1
20020111149 Shoki Aug 2002 A1
20020111192 Thomas et al. Aug 2002 A1
20020114038 Amon et al. Aug 2002 A1
20020123365 Thorson et al. Sep 2002 A1
20020126967 Panak et al. Sep 2002 A1
20020130778 Nicholson Sep 2002 A1
20020181668 Masoian et al. Dec 2002 A1
20020190845 Moore Dec 2002 A1
20030007214 Aburakawa et al. Jan 2003 A1
20030016418 Westbrook et al. Jan 2003 A1
20030045284 Copley et al. Mar 2003 A1
20030078052 Atias et al. Apr 2003 A1
20030078074 Sesay et al. Apr 2003 A1
20030141962 Barink Jul 2003 A1
20030161637 Yamamoto et al. Aug 2003 A1
20030165287 Krill et al. Sep 2003 A1
20030174099 Bauer et al. Sep 2003 A1
20030209601 Chung Nov 2003 A1
20040001719 Sasaki Jan 2004 A1
20040008114 Sawyer Jan 2004 A1
20040017785 Zelst Jan 2004 A1
20040037300 Lehr et al. Feb 2004 A1
20040041714 Forster Mar 2004 A1
20040043764 Bigham et al. Mar 2004 A1
20040047313 Rumpf et al. Mar 2004 A1
20040049321 Lehr et al. Mar 2004 A1
20040078151 Aljadeff et al. Apr 2004 A1
20040100930 Shapira et al. May 2004 A1
20040105435 Morioka Jun 2004 A1
20040106435 Bauman et al. Jun 2004 A1
20040110469 Judd et al. Jun 2004 A1
20040126068 Van Bijsterveld Jul 2004 A1
20040146020 Kubler et al. Jul 2004 A1
20040149736 Clothier Aug 2004 A1
20040151164 Kubler et al. Aug 2004 A1
20040151503 Kashima et al. Aug 2004 A1
20040157623 Splett Aug 2004 A1
20040160912 Kubler et al. Aug 2004 A1
20040160913 Kubler et al. Aug 2004 A1
20040162115 Smith et al. Aug 2004 A1
20040162116 Han et al. Aug 2004 A1
20040165573 Kubler et al. Aug 2004 A1
20040175173 Deas Sep 2004 A1
20040175177 Lee et al. Sep 2004 A1
20040198451 Varghese Oct 2004 A1
20040202257 Mehta et al. Oct 2004 A1
20040203704 Ommodt et al. Oct 2004 A1
20040203846 Caronni et al. Oct 2004 A1
20040204109 Hoppenstein Oct 2004 A1
20040208526 Mibu Oct 2004 A1
20040218873 Nagashima et al. Nov 2004 A1
20040230846 Mancey et al. Nov 2004 A1
20040233877 Lee et al. Nov 2004 A1
20040258105 Spathas et al. Dec 2004 A1
20050052287 Whitesmith et al. Mar 2005 A1
20050058451 Ross Mar 2005 A1
20050068179 Roesner Mar 2005 A1
20050076982 Metcalf et al. Apr 2005 A1
20050078006 Hutchins et al. Apr 2005 A1
20050093679 Zai et al. May 2005 A1
20050099343 Asrani et al. May 2005 A1
20050116821 Wilsey et al. Jun 2005 A1
20050141545 Fein et al. Jun 2005 A1
20050143077 Charbonneau Jun 2005 A1
20050147071 Karaoguz et al. Jul 2005 A1
20050148306 Hiddink Jul 2005 A1
20050159108 Fletcher et al. Jul 2005 A1
20050174236 Brookner Aug 2005 A1
20050201761 Bartur et al. Sep 2005 A1
20050219050 Martin Oct 2005 A1
20050220458 Kupershmidt et al. Oct 2005 A1
20050224585 Durrant et al. Oct 2005 A1
20050226625 Wake et al. Oct 2005 A1
20050232636 Durrant et al. Oct 2005 A1
20050242188 Vesuna Nov 2005 A1
20050252971 Howarth et al. Nov 2005 A1
20050266797 Utsumi et al. Dec 2005 A1
20050266854 Niiho et al. Dec 2005 A1
20050269930 Shimizu et al. Dec 2005 A1
20050271396 Lannelli Dec 2005 A1
20060002326 Vesuna Jan 2006 A1
20060014548 Bolin et al. Jan 2006 A1
20060017633 Pronkine Jan 2006 A1
20060019604 Hasarchi Jan 2006 A1
20060045054 Utsumi et al. Mar 2006 A1
20060053324 Giat et al. Mar 2006 A1
20060062579 Kim et al. Mar 2006 A1
20060079290 Seto et al. Apr 2006 A1
20060094470 Wake et al. May 2006 A1
20060104643 Lee et al. May 2006 A1
20060159388 Kawase et al. Jul 2006 A1
20060182446 Kim et al. Aug 2006 A1
20060182449 Iannelli et al. Aug 2006 A1
20060189354 Lee et al. Aug 2006 A1
20060233506 Noonan et al. Oct 2006 A1
20060239630 Hase et al. Oct 2006 A1
20060267843 Sakama et al. Nov 2006 A1
20060274704 Desai et al. Dec 2006 A1
20070008939 Fischer Jan 2007 A1
20070009266 Bothwell et al. Jan 2007 A1
20070058978 Lee et al. Mar 2007 A1
20070060045 Prautzsch Mar 2007 A1
20070060055 Desai et al. Mar 2007 A1
20070071128 Meir et al. Mar 2007 A1
20070076649 Lin et al. Apr 2007 A1
20070093273 Cai Apr 2007 A1
20070149250 Crozzoli et al. Jun 2007 A1
20070157251 Shrivastava et al. Jul 2007 A1
20070166042 Seeds et al. Jul 2007 A1
20070208961 Ghoshal et al. Sep 2007 A1
20070224954 Gopi Sep 2007 A1
20070243899 Hermel et al. Oct 2007 A1
20070248358 Sauer Oct 2007 A1
20070253714 Seeds et al. Nov 2007 A1
20070257796 Easton et al. Nov 2007 A1
20070264009 Sabat, Jr. et al. Nov 2007 A1
20070274279 Wood et al. Nov 2007 A1
20070285239 Easton et al. Dec 2007 A1
20070286599 Sauer et al. Dec 2007 A1
20070297005 Montierth et al. Dec 2007 A1
20080007453 Vassilakis et al. Jan 2008 A1
20080013909 Kostet et al. Jan 2008 A1
20080013956 Ware et al. Jan 2008 A1
20080013957 Akers et al. Jan 2008 A1
20080014948 Scheinert Jan 2008 A1
20080026765 Charbonneau Jan 2008 A1
20080031628 Dragas et al. Feb 2008 A1
20080043714 Pemu Feb 2008 A1
20080043784 Wilcox Feb 2008 A1
20080044186 George et al. Feb 2008 A1
20080056167 Kim et al. Mar 2008 A1
20080058018 Scheinert Mar 2008 A1
20080063387 Yahata et al. Mar 2008 A1
20080080863 Sauer et al. Apr 2008 A1
20080098203 Master et al. Apr 2008 A1
20080118014 Reunamaki et al. May 2008 A1
20080119198 Hettstedt et al. May 2008 A1
20080124086 Matthews May 2008 A1
20080124087 Hartmann et al. May 2008 A1
20080129634 Pera et al. Jun 2008 A1
20080134194 Liu Jun 2008 A1
20080145061 Lee et al. Jun 2008 A1
20080150514 Codreanu et al. Jun 2008 A1
20080159226 He et al. Jul 2008 A1
20080159744 Soto et al. Jul 2008 A1
20080166094 Bookbinder et al. Jul 2008 A1
20080168283 Penning Jul 2008 A1
20080181282 Wala et al. Jul 2008 A1
20080194226 Rivas et al. Aug 2008 A1
20080207253 Jaakkola et al. Aug 2008 A1
20080212969 Fasshauer et al. Sep 2008 A1
20080219670 Kim et al. Sep 2008 A1
20080232799 Kim Sep 2008 A1
20080247716 Thomas et al. Oct 2008 A1
20080253351 Pemu et al. Oct 2008 A1
20080253773 Iheng Oct 2008 A1
20080260388 Kim et al. Oct 2008 A1
20080261656 Bella et al. Oct 2008 A1
20080268833 Huang et al. Oct 2008 A1
20080273844 Kewitsch Nov 2008 A1
20080279137 Pemu et al. Nov 2008 A1
20080279299 Reuven et al. Nov 2008 A1
20080280569 Hazani et al. Nov 2008 A1
20080291830 Pemu et al. Nov 2008 A1
20080292322 Daghighian et al. Nov 2008 A1
20080298813 Song et al. Dec 2008 A1
20080304831 Miller, II et al. Dec 2008 A1
20080310848 Yasuda et al. Dec 2008 A1
20080311944 Hansen et al. Dec 2008 A1
20090022304 Kubler et al. Jan 2009 A1
20090028087 Nguyen et al. Jan 2009 A1
20090028317 Ling et al. Jan 2009 A1
20090041413 Hurley Feb 2009 A1
20090047023 Pescod et al. Feb 2009 A1
20090059903 Kubler et al. Mar 2009 A1
20090061796 Arkko et al. Mar 2009 A1
20090061939 Andersson et al. Mar 2009 A1
20090073916 Zhang et al. Mar 2009 A1
20090081985 Rofougaran et al. Mar 2009 A1
20090086693 Kennedy Apr 2009 A1
20090087181 Gray Apr 2009 A1
20090088072 Rofougaran et al. Apr 2009 A1
20090092394 Wei et al. Apr 2009 A1
20090097855 Thelen et al. Apr 2009 A1
20090135078 Lindmark et al. May 2009 A1
20090149221 Liu et al. Jun 2009 A1
20090154621 Shapira et al. Jun 2009 A1
20090169163 Abbott, III et al. Jul 2009 A1
20090175214 Star et al. Jul 2009 A1
20090180407 Sabat et al. Jul 2009 A1
20090180423 Kroener Jul 2009 A1
20090180426 Sabat et al. Jul 2009 A1
20090218407 Rofougaran Sep 2009 A1
20090218657 Rofougaran Sep 2009 A1
20090221249 Aue et al. Sep 2009 A1
20090238307 Singh Sep 2009 A1
20090245084 Moffatt et al. Oct 2009 A1
20090245153 Li et al. Oct 2009 A1
20090245221 Piipponen Oct 2009 A1
20090252136 Mahany et al. Oct 2009 A1
20090252204 Shatara et al. Oct 2009 A1
20090252205 Rheinfelder et al. Oct 2009 A1
20090258652 Lambert et al. Oct 2009 A1
20090285147 Subasic et al. Nov 2009 A1
20090290632 Wegener Nov 2009 A1
20100002626 Schmidt et al. Jan 2010 A1
20100002661 Schmidt et al. Jan 2010 A1
20100009394 Guo Jan 2010 A1
20100027443 LoGalbo et al. Feb 2010 A1
20100054227 Hettstedt et al. Mar 2010 A1
20100056200 Tolonen Mar 2010 A1
20100067426 Voschina et al. Mar 2010 A1
20100067906 Adhikari et al. Mar 2010 A1
20100080154 Noh et al. Apr 2010 A1
20100080182 Kubler et al. Apr 2010 A1
20100083330 Bernstein et al. Apr 2010 A1
20100087227 Francos et al. Apr 2010 A1
20100091475 Toms et al. Apr 2010 A1
20100118864 Kubler et al. May 2010 A1
20100127937 Chandrasekaran et al. May 2010 A1
20100134257 Puleston et al. Jun 2010 A1
20100144337 Dean Jun 2010 A1
20100148373 Chandrasekaran Jun 2010 A1
20100156721 Alamouti et al. Jun 2010 A1
20100177759 Fischer et al. Jul 2010 A1
20100177760 Cannon et al. Jul 2010 A1
20100188998 Pemu et al. Jul 2010 A1
20100189439 Novak et al. Jul 2010 A1
20100190509 Davis Jul 2010 A1
20100196013 Franklin Aug 2010 A1
20100202326 Rofougaran et al. Aug 2010 A1
20100202356 Fischer et al. Aug 2010 A1
20100208777 Ogaz Aug 2010 A1
20100215028 Fischer Aug 2010 A1
20100225413 Rofougaran et al. Sep 2010 A1
20100225556 Rofougaran et al. Sep 2010 A1
20100225557 Rofougaran et al. Sep 2010 A1
20100232323 Kubler et al. Sep 2010 A1
20100246558 Harel Sep 2010 A1
20100255774 Kenington Oct 2010 A1
20100258949 Henderson et al. Oct 2010 A1
20100260063 Kubler et al. Oct 2010 A1
20100278530 Kummetz et al. Nov 2010 A1
20100290355 Roy et al. Nov 2010 A1
20100290787 Cox Nov 2010 A1
20100291949 Shapira et al. Nov 2010 A1
20100296458 Wala et al. Nov 2010 A1
20100296816 Larsen Nov 2010 A1
20100309049 Reunamäki et al. Dec 2010 A1
20100311472 Rofougaran et al. Dec 2010 A1
20100311480 Raines et al. Dec 2010 A1
20100329161 Ylanen et al. Dec 2010 A1
20100329166 Mahany et al. Dec 2010 A1
20110007724 Mahany et al. Jan 2011 A1
20110007733 Kubler et al. Jan 2011 A1
20110008042 Stewart Jan 2011 A1
20110021146 Pemu Jan 2011 A1
20110021224 Koskinen et al. Jan 2011 A1
20110045767 Rofougaran et al. Feb 2011 A1
20110055875 Lussman Mar 2011 A1
20110065450 Kazmi Mar 2011 A1
20110069668 Chion et al. Mar 2011 A1
20110071734 Van Wiemeersch et al. Mar 2011 A1
20110086614 Brisebois et al. Apr 2011 A1
20110116393 Hong et al. May 2011 A1
20110116572 Lee et al. May 2011 A1
20110126071 Han et al. May 2011 A1
20110135308 Tarlazzi et al. Jun 2011 A1
20110141895 Zhang Jun 2011 A1
20110149879 Noriega et al. Jun 2011 A1
20110158297 Ding et al. Jun 2011 A1
20110158298 Djadi et al. Jun 2011 A1
20110170577 Anvari Jul 2011 A1
20110170619 Anvari Jul 2011 A1
20110182230 Ohm et al. Jul 2011 A1
20110182255 Kim et al. Jul 2011 A1
20110194475 Kim et al. Aug 2011 A1
20110201368 Faccin et al. Aug 2011 A1
20110204504 Henderson et al. Aug 2011 A1
20110211439 Manpuria et al. Sep 2011 A1
20110215901 Van Wiemeersch et al. Sep 2011 A1
20110222415 Ramamurthi et al. Sep 2011 A1
20110222434 Chen Sep 2011 A1
20110222619 Ramamurthi et al. Sep 2011 A1
20110223958 Chen et al. Sep 2011 A1
20110223959 Chen Sep 2011 A1
20110223960 Chen et al. Sep 2011 A1
20110223961 Chen et al. Sep 2011 A1
20110227795 Lopez et al. Sep 2011 A1
20110236024 Mao Sep 2011 A1
20110237178 Seki et al. Sep 2011 A1
20110241881 Badinelli Oct 2011 A1
20110243201 Phillips et al. Oct 2011 A1
20110244887 Dupray et al. Oct 2011 A1
20110256878 Zhu et al. Oct 2011 A1
20110268033 Boldi et al. Nov 2011 A1
20110268446 Cune et al. Nov 2011 A1
20110268449 Berlin Nov 2011 A1
20110268452 Beaman et al. Nov 2011 A1
20110274021 He et al. Nov 2011 A1
20110281536 Lee et al. Nov 2011 A1
20110316755 Ayatollahi et al. Dec 2011 A1
20120106657 Fischer et al. May 2012 A1
20120139793 Sharawi Jun 2012 A1
20120177026 Uyehara et al. Jul 2012 A1
20120296816 Kim et al. Nov 2012 A1
20120314797 Kummetz et al. Dec 2012 A1
20130012195 Sabat, Jr. et al. Jan 2013 A1
20130017863 Kummetz et al. Jan 2013 A1
20130034358 Sung Feb 2013 A1
20130040676 Kang et al. Feb 2013 A1
20130107763 Uyehara et al. May 2013 A1
20130121703 Kummetz May 2013 A1
20130150063 Berlin et al. Jun 2013 A1
20130188959 Cune et al. Jul 2013 A1
20130210490 Fischer et al. Aug 2013 A1
20130236180 Kim Sep 2013 A1
20130272202 Stapleton et al. Oct 2013 A1
20130330086 Berlin et al. Dec 2013 A1
20140006931 Pettitt et al. Jan 2014 A1
20140016583 Smith Jan 2014 A1
20140050483 Berlin Feb 2014 A1
20140057627 Hejazi et al. Feb 2014 A1
20140069318 Johnson et al. Mar 2014 A1
20140112667 Neukirch Apr 2014 A1
20140140225 Wala May 2014 A1
20140146797 Zavadsky et al. May 2014 A1
20140146905 Zavadsky et al. May 2014 A1
20140146906 Zavadsky et al. May 2014 A1
20140204900 Kawasaki Jul 2014 A1
20140219140 Uyehara et al. Aug 2014 A1
20140241224 Fischer et al. Aug 2014 A1
20140243033 Wala et al. Aug 2014 A1
20140248050 Crilly, Jr. Sep 2014 A1
20140269318 Hasarchi et al. Sep 2014 A1
20140269859 Hanson et al. Sep 2014 A1
20140286643 George Sep 2014 A1
20140308043 Heidler et al. Oct 2014 A1
20140308044 Heidler et al. Oct 2014 A1
20140314061 Trajkovic et al. Oct 2014 A1
20150098351 Zavadsky et al. Apr 2015 A1
20150098372 Zavadsky et al. Apr 2015 A1
20150098419 Zavadsky et al. Apr 2015 A1
20150155942 Baker Jun 2015 A1
20150180575 Bruckman Jun 2015 A1
20150382292 Heidler et al. Dec 2015 A1
20160013844 Berlin Jan 2016 A1
20160036505 George Feb 2016 A1
20160087724 Liu Mar 2016 A1
20160134348 George May 2016 A1
20160204878 Goodwill Jul 2016 A1
20170201322 Harel Jul 2017 A1
20170207548 Schwartzman et al. Jul 2017 A1
20170207853 Harel Jul 2017 A1
20170237493 Hazani Aug 2017 A1
20170237497 Yogeeswaran Aug 2017 A1
Foreign Referenced Citations (159)
Number Date Country
645192 Jan 1994 AU
731180 Mar 2001 AU
2065090 Feb 1998 CA
2242707 Sep 2002 CA
2815509 May 2012 CA
1745560 Mar 2006 CN
101076961 Nov 2007 CN
101090299 Dec 2007 CN
101151811 Mar 2008 CN
101296525 Oct 2008 CN
101346006 Jan 2009 CN
101496306 Jul 2009 CN
101542928 Sep 2009 CN
201315588 Sep 2009 CN
19705253 Aug 1998 DE
20104862 Sep 2001 DE
10249414 May 2004 DE
0391597 Oct 1990 EP
0461583 Dec 1991 EP
0477952 Apr 1992 EP
0477952 Apr 1992 EP
0714218 May 1996 EP
0766343 Apr 1997 EP
0687400 Nov 1998 EP
0993124 Apr 2000 EP
1056226 Nov 2000 EP
1173034 Jan 2002 EP
1202475 May 2002 EP
1227605 Jul 2002 EP
1267447 Dec 2002 EP
1347584 Sep 2003 EP
1363352 Nov 2003 EP
1391897 Feb 2004 EP
1443687 Aug 2004 EP
1455550 Sep 2004 EP
1501206 Jan 2005 EP
1503451 Feb 2005 EP
1511203 Mar 2005 EP
1530316 May 2005 EP
1267447 Aug 2006 EP
1693974 Aug 2006 EP
1742388 Jan 2007 EP
1173034 Jul 2007 EP
1954019 Aug 2008 EP
1968250 Sep 2008 EP
1357683 May 2009 EP
2110955 Oct 2009 EP
2253980 Nov 2010 EP
1570626 Nov 2013 EP
2323252 Sep 1998 GB
2366131 Feb 2002 GB
2370170 Jun 2002 GB
2399963 Sep 2004 GB
2428149 Jan 2007 GB
05260018 Oct 1993 JP
08181661 Jul 1996 JP
09083450 Mar 1997 JP
09162810 Jun 1997 JP
09200840 Jul 1997 JP
11068675 Mar 1999 JP
11088265 Mar 1999 JP
2000152300 May 2000 JP
2000341744 Dec 2000 JP
2002264617 Sep 2002 JP
2003148653 May 2003 JP
2003172827 Jun 2003 JP
2004172734 Jun 2004 JP
2004245963 Sep 2004 JP
2004247090 Sep 2004 JP
2004264901 Sep 2004 JP
2004265624 Sep 2004 JP
2004317737 Nov 2004 JP
2004349184 Dec 2004 JP
2005018175 Jan 2005 JP
2005087135 Apr 2005 JP
2005134125 May 2005 JP
2007228603 Sep 2007 JP
2008172597 Jul 2008 JP
20040053467 Jun 2004 KR
20110087949 Aug 2011 KR
2012035459 Apr 2012 KR
2009014710 Jan 2009 NO
2009145789 Dec 2009 NO
9603823 Feb 1996 WO
9748197 Dec 1997 WO
9935788 Jul 1999 WO
0042721 Jul 2000 WO
0178434 Oct 2001 WO
0184760 Nov 2001 WO
0221183 Mar 2002 WO
0230141 Apr 2002 WO
02102102 Dec 2002 WO
03024027 Mar 2003 WO
03098175 Nov 2003 WO
2004030154 Apr 2004 WO
2004047472 Jun 2004 WO
2004056019 Jul 2004 WO
2004059934 Jul 2004 WO
2004086795 Oct 2004 WO
2004093471 Oct 2004 WO
2005062505 Jul 2005 WO
2005069203 Jul 2005 WO
2005069203 Jul 2005 WO
2005073897 Aug 2005 WO
2005079386 Sep 2005 WO
2005101701 Oct 2005 WO
2005111959 Nov 2005 WO
2005117337 Dec 2005 WO
2006011778 Feb 2006 WO
2006018592 Feb 2006 WO
2006019392 Feb 2006 WO
2006039941 Apr 2006 WO
2006046088 May 2006 WO
2006051262 May 2006 WO
2006077569 Jul 2006 WO
2006094441 Sep 2006 WO
2006133609 Dec 2006 WO
2006136811 Dec 2006 WO
2007048427 May 2007 WO
2007075579 Jul 2007 WO
2007077451 Jul 2007 WO
2007088561 Aug 2007 WO
2007091026 Aug 2007 WO
2008008249 Jan 2008 WO
2008027213 Mar 2008 WO
2008033298 Mar 2008 WO
2008039830 Apr 2008 WO
2009014710 Jan 2009 WO
2009100395 Aug 2009 WO
2009100396 Aug 2009 WO
2009100397 Aug 2009 WO
2009100398 Aug 2009 WO
2010087919 Aug 2010 WO
2010090999 Aug 2010 WO
2011043172 Apr 2011 WO
2011112373 Sep 2011 WO
2011139937 Nov 2011 WO
2011139939 Nov 2011 WO
2011139942 Nov 2011 WO
2011160117 Dec 2011 WO
2012024345 Feb 2012 WO
2012051227 Apr 2012 WO
2012051230 Apr 2012 WO
2012054553 Apr 2012 WO
2012058182 May 2012 WO
2012100468 Aug 2012 WO
2012170865 Dec 2012 WO
2013009835 Jan 2013 WO
2013063025 May 2013 WO
2013122915 Aug 2013 WO
2014022211 Feb 2014 WO
2014070236 May 2014 WO
2014082070 May 2014 WO
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Non-Patent Literature Citations (110)
Entry
Patent Cooperation Treaty, International Search Report for PCT/IL2015/051219, dated Mar. 17, 2016, 5 pages.
Patent Cooperation Treaty, International Search Report for PCT/IL2015/051217, dated Mar. 17, 2016, 5 pages.
Notification of Grant for Chinese patent application 201190000473.1 dated Aug. 28, 2013, 4 pages.
International Search Report for PCT/US2011/034725 dated Aug. 5, 2011, 4 pages.
Non-final Office Action for U.S. Appl. No. 12/892,424 dated Nov. 5, 2012, 22 pages.
International Search Report and Written Opinion for PCT/US2011/034738 dated Jul. 27, 2011, 13 pages.
International Search Report for PCT/US2011/047821 dated Oct. 25, 2011, 4 pages.
International Preliminary Report on Patentability for PCT/US2011/047821 dated Feb. 19, 2013, 10 pages.
Non-final Office Action for U.S. Appl. No. 13/025,719 dated Sep. 11, 2013, 18 pages.
Parker et al., “Radio-over-fibre technologies arising from the Building the future Optical Network in Europe (BONE) project,” IET Optoelectron., 2010, vol. 4, Issue 6, pp. 247-259
Singh et al., “Distributed coordination with deaf neighbors: efficient medium access for 60 GHz mesh networks,” IEEE INFOCOM 2010 proceedings, 9 pages.
Examination Report for European patent application 11754570.7 dated Nov. 18, 2013, 7 pages.
Final Office Action for U.S. Appl. No. 13/025,719 dated Dec. 31, 2013, 20 pages.
Advisory Action for U.S. Appl. No. 13/025,719 dated Mar. 14, 2014, 6 pages.
Non-final Office Action for U.S. Appl. No. 13/785,603 dated Dec. 23, 2013, 15 pages.
Final Office Action for U.S. Appl. No. 13/785,603 dated Apr. 14, 2014, 17 pages.
Advisory Action for U.S. Appl. No. 13/785,603 dated Jun. 30, 2014, 3 pages.
Non-final Office Action for U.S. Appl. No. 13/785,603 dated Sep. 9, 2014, 10 pages.
Final Office Action for U.S. Appl. No. 13/785,603 dated Dec. 4, 2014, 8 pages.
Non-final Office Action for U.S. Appl. No. 13/762,432 dated Aug. 20, 2014, 4 pages.
Notice of Allowance for U.S. Appl. No. 13/762,432 dated Dec. 24, 2014, 7 pages.
Chowdhury et al., “Multi-service Multi-carrier Broadband MIMO Distributed Antenna Systems for In-building Optical Nireless Access,” Presented at the 2010 Conference on Optical Fiber Communication and National Fiber Optic Engineers Conference, Mar. 21-25, 2010, San Diego, California, IEEE, pp. 1-3.
International Search Report for PCT/US2011/055861 dated Feb. 7, 2012, 4 pages.
International Preliminary Report on Patentability for PCT/US2011/055861 dated Apr. 25, 2013, 9 pages.
International Search Report for PCT/US2011/055858 dated Feb. 7, 2012, 4 pages.
International Preliminary Report on Patentability for PCT/US2011/055858 dated Apr. 25, 2013, 8 pages.
International Search Report for PCT/US2011/034733 dated Aug. 1, 2011, 5 pages.
International Preliminary Report on Patentability for PCT/US2011/034733 dated Nov. 15, 2012, 8 pages.
First Office Action for Chinese patent application 201180024499.4 dated Dec. 1, 2014, 13 pages.
Examination Report for European patent application 11754570.7 dated Jan. 13, 2015, 5 pages.
Final Office Action for U.S. Appl. No. 13/967,426 dated Apr. 29, 2015, 22 pages.
Final Office Action for U.S. Appl. No. 14/711,306 dated Jul. 9, 2015, 16 pages.
Advisory Action for U.S. Appl. No. 13/967,426 dated Jul. 6, 2015, 3 pages.
Examination Report for European patent application 11721160.7 dated Oct. 21, 2015, 7 pages.
Translation of the Second Office Action for Chinese patent application 201180024499.4 dated Aug. 17, 2015, 3 pages.
Advisory Action for U.S. Appl. No. 14/711,306 dated Oct. 8, 2015, 3 pages.
Non-final Office Action for U.S. Appl. No. 13/967,426 dated Sep. 17, 2015, 27 pages.
Mohammed, Maalim, et al., “New Compact Design of Dual Notched Bands UWB Antenna with Slots in Radiating and Feeding Elements,” IEEE Student Conference on Research and Development, Dec. 16-17, 2013, Putrajaya, Malaysia, IEEE, pp. 374-379.
International Search Report and Written Opinion for PCT/IL2015/051205 dated Mar. 10, 2016, 14 pages.
International Search Report for PCT/IL2015/051219 dated Mar. 17, 2016, 5 pages.
International Search Report and Written Opinion for PCT/IL2015/051217 dated Mar. 17, 2016, 14 pages.
International Search Report and Written Opinion for PCT/IL2015/051095 dated Mar. 2, 2016, 14 pages.
International Search Report and Written Opinion for PCT/IL2015/051061 dated Feb. 15, 2016, 12 pages.
Notice of Allowance for U.S. Appl. No. 13/025,719 dated Aug. 11, 2016, 8 pages.
Non-final Office Action for U.S. Appl. No. 14/664,305 dated Jul. 7, 2016, 45 pages.
Final Office Action for I14/664,305, dated Dec. 23, 2016, 24 pages.
Non-final Office Action for I15/049,913 dated Jun. 16, 2016, 20 pages.
Final Office Action for I15/049,913, dated Nov. 25, 2016, 16 pages.
Notice of Allowance and Examiner-Initiated Interview Summary for U.S. Appl. No. 15/098,941, dated Jul. 14, 2016, 18 pages.
Corrected Notice of Allowability for U.S. Appl. No. 15/098,941, dated Jul. 27, 2016, 5 pages.
Advisory Action for U.S. Appl. No. 15/049,913, dated Feb. 15, 2017, 3 pages.
Non-Final Office Action for U.S. Appl. No. 15/381,952, dated Jan. 27, 2017, 14 pages.
International Search Report for PCT/IL2015/050970, dated May 9, 2016, 6 pages.
International Preliminary Report on Patentability for PCT/IL2015/050970, dated Apr. 6, 2017, 17 pages.
Non-Final Office Action for U.S. Appl. No. 14/496,507, dated Feb. 24, 2017, 15 pages.
Advisory Action for U.S. Appl. No. 14/664,305, dated Mar. 1, 2017, 3 pages.
Non-Final Office Action for U.S. Appl. No. 14/664,305, dated Apr. 7, 2017, 34 pages.
Non-Final Office Action for U.S. Appl. No. 15/332,505, dated Apr. 5, 2017, 24 pages.
Author Unknown, “Fiber Optic Distributed Antenna System,” Installation and Users Guide, ERAU Version 1.5, May 2002, Andrews Corporation, 53 pages.
Translation of the First Office Action for Chinese Patent Application No. 201610029179.2, dated Jul. 27, 2017, 19 pages.
Invitation to Pay Fees for International Patent Application No. PCT/IL2015/050970, dated Feb. 17, 2016, 6 pages.
Final Office Action for U.S. Appl. No. 14/664,305, dated Sep. 5, 2017, 34 pages.
Examiner's Answer to the Appeal Brief for U.S. Appl. No. 15/049,913, dated Jun. 22, 2017, 22 pages.
Notice of Allowance for U.S. Appl. No. 15/332,505, dated Aug. 31, 2017, 8 pages.
Notice of Allowance for U.S. Appl. No. 15/381,952, dated May 9, 2017, 7 pages.
Notice of Allowance for U.S. Appl. No. 15/381,952, dated Jul. 31, 2017, 7 pages.
Final Office Action for U.S. Appl. No. 14/496,507, dated Sep. 28, 2017, 21 pages.
Non-Final Office Action for U.S. Appl. No. 15/473,827, dated Sep. 22, 2017, 38 pages.
Author Unknown, “ADC Has 3rd Generation Services Covered at CeBIT 2001,” Business Wire, Mar. 20, 2001, 3 pages.
Author Unknown, “Andrew Unveils the InCell Fiber Optic Antenna System for In-Building Wireless Communications,” Fiber Optics Weekly Update, Dec. 1, 2000, Information Gatekeepers Inc., pp. 3-4.
Arredondo, Albedo et al., “Techniques for Improving In-Building Radio Coverage Using Fiber-Fed Distributed Antenna Networks,” IEEE 46th Vehicular Technology Conference, Atlanta, Georgia, Apr. 28-May 1, 1996, pp. 1540-1543, vol. 3.
Fitzmaurice, M. et al., “Distributed Antenna System for Mass Transit Communications,” Vehicular Technology Conference, Boston, Massachusetts, Sep. 2000, IEEE, pp. 2011-2018.
Ghafouri-Shiraz, et al., “Radio on Fibre Communication Systems Based on Integrated Circuit-Antenna Modules,” Microwave and Millimeter Wave Technology Proceedings, Beijing, China, Aug. 1998, IEEE, pp. 159-169.
Griffin, R.A. et al., “Radio-Over-Fiber Distribution Using an Optical Millimeter-Wave/DWDM Overlay,” Optical Fiber Communication Conference, San Diego, California, Feb. 1999, IEEE, pp. 70-72.
Juntunen, J. et al., “Antenna Diversity Array Design for Mobile Communication Systems,” Proceedings of the 2000 IEEE International Conference on Phased Array Systems and Technology, Dana Point, California, May 2000, IEEE, pp. 65-67.
Lee, D. et al., “Ricocheting Bluetooth,” 2nd International Conference on Microwave and Millimeter Wave Technology Proceedings, Beijing, China, Sep. 2000, IEEE, pp. 432-435.
Lee, T., “A Digital Multiplexed Fiber Optic Transmission System for Analog Audio Signals,” IEEE Western Canada Conference on Computer, Power, and Communications Systems in a Rural Environment, Regina, Saskatchewan, May 1991, pp. 146-149.
Schuh et al., “Hybrid Fibre Radio Access: A Network Operators Approach and Requirements,” Proceedings of the 10th Microcoll Conference, Mar. 21-24, 1999, Budapest, Hungary, pp. 211-214.
Schweber, Bill, “Maintaining cellular connectivity indoors demands sophisticated design,” EDN Network, Dec. 21, 2000, 2 pages, http://www.edn.com/design/integrated-circuit-design/4362776/Maintaining-cellular-connectivity-indoors-demands-sophisticated-design.
Margotte, B. et al., “Fibre Optic Distributed Antenna System for Cellular and PCN/PCS Indoor Coverage,” Microwave Engineering Europe, Jun. 1998, 6 pages.
Matsunaka et al., “Point-to-multipoint Digital Local Distribution Radio System in the 21 GHz Band,” KDD Technical Journal, Mar. 1991, No. 145, p. 43-54.
Translation of the First Office Action for Chinese patent application 201180039569.3 dated Jan. 16, 2015, 7 pages.
International Search Report for PCT/US2012/025337 dated May 16, 2012, 4 pages.
Non-final Office Action for U.S. Appl. No. 13/025,719 dated Mar. 31, 2015, 26 pages.
Non-final Office Action for U.S. Appl. No. 13/967,426 dated Dec. 26, 2014, 15 pages.
Cooper, A.J., “Fibre/Radio for the Provision of Cordless/Mobile Telephony Services in the Access Network,” Electronics Letters, 1990, pp. 2054-2056, vol. 26, No. 24.
Bakaul, M., et al., “Efficient Multiplexing Scheme for Wavelength-Interleaved DWDM Millimeter-Wave Fiber-Radio Systems,” IEEE Photonics Technology Letters, Dec. 2005, vol. 17, No. 12.
Huang, C., et al., “A WLAN-Used Helical Antenna Fully Integrated with the PCMCIA Carrier,” IEEE Transactions on Antennas and Propagation, Dec. 2005, vol. 53, No. 12, pp. 4164-4168.
Gibson, B.C., et al., “Evanescent Field Analysis of Air-Silica Microstructure Waveguides,” The 14th Annual Meeting of the IEEE Lasers and Electro-Optics Society, 1-7803-7104-4/01, Nov. 12-13, 2001, vol. 2, pp. 709-710.
International Search Report for PCT/US07/21041 dated Mar. 7, 2008, 3 pages.
No Author, “ITU-T G.652, Telecommunication Standardization Sector of ITU, Series G: Transmission Systems and Media, Digital Systems and Networks, Transmission Media Characteristics—Optical Fibre Cables, Characteristics of a Single-Mode Optical Fiber and Cable,” ITU-T Recommendation G.652, International Telecommunication Union, Jun. 2005, 20 pages.
No Author, “ITU-T G.657, Telecommunication Standardization Sector of ITU, Dec. 2006, Series G: Transmission Systems and Media, Digital Systems and Networks, Transmission Media and Optical Systems Characteristics—Optical Fibre Cables, Characteristics of a Bending Loss Insensitive Single Mode Optical Fibre and Cable for the Access Network,” ITU-T Recommendation G.657, International Telecommunication Union, 19 pages.
Kojucharow, K., et al., “Millimeter-Wave Signal Properties Resulting from Electrooptical Upconversion,” IEEE Transactions on Microwave Theory and Techniques, Oct. 2001, vol. 49, No. 10, pp. 1977-1985.
Monro, T.M., et al., “Holey Fibers with Random Cladding Distributions,” Optics Letters, Feb. 15, 2000, vol. 25, No. 4, pp. 206-208.
Moreira, J.D., et al., “Diversity Techniques for OFDM Based WLAN Systems,” The 13th IEEE International Symposium on Personal, Indoor and Mobile Radio Communications, Sep. 15-18, 2002, vol. 3, pp. 1008-1011.
Niiho, T., et al., “Multi-Channel Wireless LAN Distributed Antenna System Based on Radio-Over-Fiber Techniques,” The 17th Annual Meeting of the IEEE Lasers and Electro-Optics Society, Nov. 2004, vol. 1, pp. 57-58.
Paulraj, A.J., et al., “An Overview of MIMO Communications—A Key to Gigabit Wireless,” Proceedings of the IEEE, Feb. 2004, vol. 92, No. 2, 34 pages.
Pickrell, G.R., et al., “Novel Techniques for the Fabrication of Holey Optical Fibers,” Proceedings of SPIE, Oct. 28-Nov. 2, 2001, vol. 4578, 2002, pp. 271-282.
Opatic, D., “Radio over Fiber Technology for Wireless Access,” Ericsson, Oct. 17, 2009, 6 pages.
Roh, W., et al., “MIMO Channel Capacity for the Distributed Antenna Systems,” Proceedings of the 56th IEEE Vehicular Technology Conference, Sep. 2002, vol. 2, pp. 706-709.
Seto, I., et al., “Antenna-Selective Transmit Diversity Technique for OFDM-Based WLANs with Dual-Band Printed Antennas,” 2005 IEEE Wireless Communications and Networking Conference, Mar. 13-17, 2005, vol. 1, pp. 51-56.
Shen, C., et al., “Comparison of Channel Capacity for MIMO-DAS versus MIMO-CAS,” The 9th Asia-Pacific Conference on Communications, Sep. 21-24, 2003, vol. 1, pp. 113-118.
Wake, D. et al., “Passive Picocell: A New Concept in Wireless Network Infrastructure,” Electronics Letters, Feb. 27, 1997, vol. 33, No. 5, pp. 404-406.
Winters, J., et al., “The Impact of Antenna Diversity on the Capacity of Wireless Communication Systems,” IEEE Transactions on Communications, vol. 42, No. 2/3/4, Feb./Mar./Apr. 1994, pp. 1740-1751.
Translation of the Second Office Action for Chinese Patent Application No. 201610029179.2, dated Feb. 1, 2018, 3 pages.
Decision on Appeal for U.S. Appl. No. 15/049,913, dated Apr. 19, 2018, 8 pages.
Non-Final Office Action for U.S. Appl. No. 15/472,909, dated Mar. 8, 2018, 18 pages.
Final Office Action for U.S. Appl. No. 15/473,827, dated Jan. 26, 2018, 40 pages.
Advisory Action for U.S. Appl. No. 15/473,827, dated Apr. 9, 2018, 3 pages.
Non-Final Office Action for U.S. Appl. No. 15/584,189, dated Apr. 4, 2018, 12 pages.
Related Publications (1)
Number Date Country
20170207853 A1 Jul 2017 US
Provisional Applications (1)
Number Date Country
62093649 Dec 2014 US
Continuations (1)
Number Date Country
Parent PCT/IL2015/051217 Dec 2015 US
Child 15475589 US