IP Library Granted Patent US 11,291,001
Granted Patent B2
US 11,291,001 · App. 16/842,314 · Granted Mar 29, 2022

Time-division duplexing (TDD) in distributed communications systems, including distributed antenna systems (DASs)

Inventors: Dror Ben-Shlomo (Makabim Reut, IL); Isaac Shapira (Petach Tikva, IL)
Assignee: Corning Optical Communications LLC
H04W72/0446H04B1/48H04L5/14H04W72/0406H04B17/318
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Quick Facts
Patent No.
US 11,291,001
App. No.
16/842,314
Granted
Mar 29, 2022
Kind
B2
Abstract

Time-division duplexing (TDD) in distributed communications systems, including distributed antenna systems (DASs) is disclosed. In one embodiment, a control circuit is provided and configured to control the TDD transmit mode of a DAS to control the allocation of time slots for uplink and downlink communications signal distribution in respective uplink path(s) and downlink path(s). The control circuit includes separate power detectors configured to detect either a transmit power level in a downlink path or a receive power level in an uplink path. If the transmit power detected in the downlink path is greater than receive power detected in the uplink path, the control circuit switches the TDD transmit mode to the downlink direction. In this manner, the control circuit does not have to control the TDD transmit mode based solely on detected power in the downlink path, where a directional coupler may leak uplink power in the downlink path.

Claims (55)

1. A distributed communication system capable of supporting time-division duplexing (TDD), the distributed communication system comprising:

a plurality of remote units each configured to receive downlink signals, and to send uplink signals for uplink;

an infrastructure including a plurality of optical fibers; and

a control circuit for controlling TDD switching in the distributed communication system, the control circuit comprising:

a first power detector configured to determine a first power level from at least one radio source;

a second power detector configured to determine a second power level from an uplink path;

a receive/transmit comparator coupled to the first power detector and to the second power detector, wherein the receive/transmit comparator compares the first power level to the second power level to provide an indication indicating when the first power level exceeds the second power level; and

a transmit power comparator configured to determine whether the first power level exceeds a reference value and provide an indication indicative of whether the first power level exceeds the reference value,

wherein the control circuit is configured to determine if the distributed communication system should be switched to TDD transmit mode or TDD receive mode based at least in part on the received indication from the receive/transmit comparator and the received indication from the transmit power comparator.

2. The distributed communication system of claim 1 , wherein the transmit power comparator and the receive/transmit comparator have outputs coupled to a logic circuit.

3. The distributed communication system of claim 1 , further comprising a TDD switching circuit configured to effect the TDD transmit mode and a TDD receive mode for the distributed communication system.

4. The distributed communication system of claim 3 , wherein the TDD switching circuit comprises:

an input switch and an antenna switch located between the input switch and the distributed communication system; and

a transmit amplifier and a receive amplifier located between the input switch and the antenna switch.

5. The distributed communication system of claim 4 , wherein the input switch and the antenna switch are configured to operate in coordination to effect the TDD transmit mode and the TDD receive mode.

6. The distributed communication system of claim 1 , further comprising at least one electrical-to-optical converter configured to convert downlink electrical signals from at least one radio source to downlink optical signals.

7. A communication system capable of supporting time-division duplexing (TDD), the communication system comprising:

at least one remote unit configured to receive downlink signals and to send uplink signals for uplink;

an infrastructure comprising a plurality of optical fibers; and

a control circuit for controlling TDD switching in the communication system, the control circuit comprising:

a first power detector configured to determine a first power level;

a second power detector configured to determine a second power level from an uplink path;

a receive/transmit comparator coupled to the first power detector and to the second power detector, wherein the receive/transmit comparator compares the first power level to the second power level to provide an indication indicating when the first power level exceeds the second power level; and

a transmit power comparator configured to determine whether the first power level exceeds a reference value and provide an indication indicative of whether the first power level exceeds the reference value, wherein the control circuit is configured to determine if the communication system should be switched to TDD transmit mode or TDD receive mode based at least in part on the received indication from the receive/transmit comparator and the received indication from the transmit power comparator; and

a TDD switching circuit configured to effect the TDD transmit mode and a TDD receive mode for the communication system, the TDD switching circuit comprising an input switch and an antenna switch located between the input switch and the communication system.

8. The communication system of claim 7 , wherein the TDD switching circuit further comprises a transmit amplifier and a receive amplifier located between the input switch and the antenna switch.

9. The communication system of claim 8 , wherein the input switch and the antenna switch are configured to operate in coordination to effect the TDD transmit mode and the TDD receive mode.

10. The communication system of claim 7 , further comprising at least one electrical-to-optical converter configured to convert downlink electrical signals from at least one radio source to downlink optical signals.

11. The communication system of claim 10 , wherein the at least one remote unit is configured to transmit wireless communications into a coverage area and receive wireless communications from client devices in a coverage area.

12. A communication system capable of supporting time-division duplexing (TDD), the communication system comprising:

a plurality of remote units coupled to an optical fiber infrastructure, each remote unit configured to receive optical downlink signals, and to send optical uplink signals for uplink; and

a control circuit for controlling TDD switching in the communication system, the control circuit comprising:

a first power detector configured to determine a first power level;

a second power detector configured to determine a second power level from an uplink path;

a receive/transmit comparator coupled to the first power detector and to the second power detector, wherein the receive/transmit comparator compares the first power level to the second power level to provide an indication indicating when the first power level exceeds the second power level; and

a transmit power comparator configured to determine whether the first power level exceeds a reference value and provide an indication indicative of whether the first power level exceeds the reference value,

wherein the control circuit is configured to determine if the communication system should be switched to TDD transmit mode or TDD receive mode based at least in part on the received indication from the receive/transmit comparator and the received indication from the transmit power comparator.

13. The communication system of claim 12 , further comprising at least one electrical-to-optical converter configured to convert downlink electrical signals from at least one radio source to downlink optical signals, and wherein the plurality of remote units are each configured to transmit wireless communications into a coverage area and receive wireless communications from client devices in a coverage area.

14. The communication system of claim 13 , further comprising a saturation comparator configured to compare the first power level with a saturation level reference and provide an indication of saturation of the first power detector.

15. The communication system of claim 13 , further comprising a TDD switching circuit configured to effect the TDD transmit mode and a TDD receive mode for the communication system, the TDD switching circuit comprising:

an input switch and an antenna switch; and

a transmit amplifier and a receive amplifier located between the input switch and the antenna switch.

16. A communication system capable of supporting time-division duplexing (TDD), the communication system comprising:

a plurality of remote units each configured to receive downlink signals and to send uplink signals for uplink, each remote unit comprising at least one electrical-to-optical converter and being configured to transmit wireless communications into a coverage area and receive wireless communications from client devices in a coverage area; and

a control circuit for controlling TDD switching in the communication system, the control circuit comprising:

a first power detector configured to determine a first power level;

a second power detector configured to determine a second power level from an uplink path;

a receive/transmit comparator coupled to the first power detector and to the second power detector, wherein the receive/transmit comparator compares the first power level to the second power level to provide an indication indicating when the first power level exceeds the second power level; and

a transmit power comparator configured to determine whether the first power level exceeds a reference value and provide an indication indicative of whether the first power level exceeds the reference value,

wherein the control circuit is configured to determine if the communication system should be switched to TDD transmit mode or TDD receive mode based at least in part on the received indication from the receive/transmit comparator.

17. The communication system of claim 16 , further comprising a TDD switching circuit configured to effect the TDD transmit mode and a TDD receive mode for the communication system.

18. The communication system of claim 17 , wherein the control circuit is configured to determine if the distributed communication system should be switched to TDD transmit mode or TDD receive mode based at least in part on the received indication from the transmit power comparator.

19. The communication system of claim 17 , wherein the TDD switching circuit comprises:

an input switch and an antenna switch located between the input switch and the communication system; and

a transmit amplifier and a receive amplifier located between the input switch and the antenna switch.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 12, 2025
From: CORNING OPTICAL COMMUNICATIONS LLC
To: ANI ACQUISITION SUB, LLC
Reel/Frame 071270/0328 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 19, 2025
From: CORNING OPTICAL COMMUNICATIONS WIRELESS LTD.
To: CORNING OPTICAL COMMUNICATIONS LLC
Reel/Frame 070259/0059 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 7, 2020
From: BEN-SHLOMO, DROR; SHAPIRA, ISAAC
To: CORNING OPTICAL COMMUNICATIONS LLC
Reel/Frame 052334/0831 →
Continuity (6)
Continuation 16374389 · Apr 3, 2019
Continuation 15975153 · May 9, 2018
Continuation 14962338 · Dec 8, 2015
Continuation PCTIL2014050526 · Jun 11, 2014
Provisional Application 61834075 · Jun 12, 2013
Related Publication 20200236676A1 · Jul 23, 2020