IP Library Granted Patent US 8,948,110
Granted Patent B2
US 8,948,110 · App. 13/521,601 · Granted Feb 3, 2015

Apparatus and method for scheduling in carrier aggregated communication systems based on a transmit-receive-frequency gap band

Inventors: Sabine Roessel (München, DE); Frank Frederiksen (Klarup, DK); Klaus Ingemann Pedersen (Aalborg, DK); Jeroen Wigard (Klarup, DK)
Assignee: Cellular Communications Equipment LLC
H04L5/0091H04L5/001H04L5/0035H04L5/0062H04L5/0066H04L5/0073H04L5/0007H04L5/0032H04L5/0053
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Quick Facts
Patent No.
US 8,948,110
App. No.
13/521,601
Granted
Feb 3, 2015
Kind
B2
Abstract

An apparatus, method, system and computer program product is configured for avoiding base station self-interference due to transmit intermodulation in carrier aggregated communication systems. Physical downlink communication channels are allocated to respective component carriers per time interval according to a communication service in which communication is performed on an aggregation of component carriers of one or more frequency band such that component carriers to be used for transmission are separated from component carriers to be used for receiving by a transmit-receive-frequency gap band. However, not all available component carriers to be used for transmission are allocated in the same time interval. Rather, in each time interval, the physical downlink communication channels to be allocated for transmission are allocated to the available component carriers to be used for transmission such that, in each frequency band, the overall emission spectrum does not reach beyond the transmit-receive-frequency gap band.

Claims (76)

1. An apparatus, comprising:

at least one processor;

non-transitory memory storing a program of instructions;

wherein the non-transitory memory storing the program of instructions is configured to, with the at least one processor, configure the apparatus to at least:

schedule allocation of physical downlink communication channels, at least one physical channel of the physical downlink communication channels being configured for downlink control to respective component carriers per time interval according to a communication service in which communication is performed on an aggregation of component carriers of one or more frequency bands such that component carriers to be used for transmission are separated from component carriers to be used for receiving by a transmit-receive-frequency gap band;

exclude certain component carriers of the component carriers to be used for transmission from having allocated the at least one physical channel configured for downlink control;

communicate, on a component carrier which is available, information that the excluded component carriers are not to be monitored;

allocate a physical channel configured for shared uplink use to a component carrier of the component carriers to be used for receiving;

allocate a physical channel configured for shared downlink use to a component carrier of the component carriers to be used for transmission; and

allocate, for consecutive time intervals, the at least one physical channel configured for downlink control to available component carriers of the component carriers to be used for transmission,

wherein not all of the available component carriers of the component carriers to be used for transmission are allocated in the same time interval, and

wherein, in each time interval, the physical downlink communication channels to be allocated for transmission are allocated to the available component carriers of the component carriers to be used for transmission such that, in each frequency band, an overall emission spectrum does not reach beyond the transmit-receive-frequency gap band, so as to prevent any intermodulation interference associated with the overall emission spectrum from extending beyond the transmit-receive-frequency gap band.

2. The apparatus according to claim 1 , wherein the physical downlink communication channels comprise a physical channel for broadcast communication and a primary and a secondary synchronization channel.

3. The apparatus according to claim 1 , wherein the physical downlink communication channels comprise a physical channel configured for hybrid automatic repeat request indication, and

the apparatus is further caused to exclude the certain component carriers of the component carriers to be used for transmission from having allocated the physical channel configured for hybrid automatic repeat request indication which are excluded from having allocated the at least one physical channel configured for downlink control.

4. The apparatus according to claim 1 , wherein the physical downlink communication channels comprise a physical control channel configured for format indication, and

the apparatus is further caused to exclude the certain component carriers of the component carriers to be used for transmission from having allocated the physical control channel configured for format indication which are excluded from having allocated the at least one physical channel configured for downlink control.

5. The apparatus according to claim 1 , wherein the physical downlink communication channels comprise the physical channel configured for shared downlink use.

6. The apparatus according to claim 5 , wherein the apparatus is further caused to apply dynamic downlink inter-cell interference coordination.

7. An evolved Node B, comprising the apparatus according to claim 1 .

8. An apparatus, comprising:

at least one processor;

non-transitory memory storing a program of instructions;

wherein the non-transitory memory storing the program of instructions is configured to, with the at least one processor, configure the apparatus to at least:

schedule allocation of physical downlink communication channels, at least one physical channel of the physical downlink communication channels being configured for downlink control to respective component carriers per time interval according to a communication service in which communication is performed on an aggregation of component carriers of one or more frequency bands such that component carriers to be used for transmission are separated from component carriers to be used for receiving by a transmit-receive-frequency gap band;

exclude certain component carriers of the component carriers to be used for transmission from having allocated the at least one physical channel configured for downlink control;

communicate, on a component carrier which is available, information that the excluded component carriers are not to be monitored;

allocate a physical channel configured for shared uplink use to a component carrier of the component carriers to be used for receiving;

allocate a physical channel configured for shared downlink use to a component carrier of the component carriers to be used for transmission; and

allocate, for consecutive time intervals, the at least one physical channel configured for downlink control to available component carriers of the component carriers to be used for transmission,

wherein not all of the available component carriers of the component carriers to be used for transmission are allocated in the same time interval with maximum transmission power, and

wherein, in each time interval, the physical downlink communication channels to be allocated for transmission are allocated to the available component carriers of the component carriers to be used for transmission such that, in each frequency band, an overall emission spectrum does not reach beyond the transmit-receive-frequency gap band, so as to prevent any intermodulation interference associated with the overall emission spectrum from extending beyond the transmit-receive-frequency gap band.

9. An evolved Node B, comprising the apparatus according to claim 8 .

10. A method, comprising:

allocating physical downlink communication channels, at least one physical channel of the physical downlink communication channels being configured for downlink control to respective component carriers per time interval according to a communication service in which communication is performed on an aggregation of component carriers of one or more frequency bands such that component carriers to be used for transmission are separated from component carriers to be used for receiving by a transmit-receive-frequency gap band;

excluding certain component carriers of the component carriers to be used for transmission from having allocated the at least one physical channel configured for downlink control;

communicating, on a component carrier which is available, information that the excluded component carriers are not to be monitored;

allocating a physical channel configured for shared uplink use to a component carrier of the component carriers to be used for receiving;

allocating a physical channel configured for shared downlink use to a component carrier of the component carriers to be used for transmission; and

allocating, for consecutive time intervals, the at least one physical channel configured for downlink control to available component carriers of the component carriers to be used for transmission,

wherein not all of the available component carriers of the component carriers to be used for transmission are allocated in the same time interval, and

wherein, in each time interval, the physical downlink communication channels to be allocated for transmission are allocated to the available component carriers of the component carriers to be used for transmission such that, in each frequency band, an overall emission spectrum does not reach beyond the transmit-receive-frequency gap band, so as to prevent any intermodulation interference associated with the overall emission spectrum from extending beyond the transmit-receive-frequency gap band.

11. The method according to claim 10 , wherein the physical downlink communication channels comprise a physical channel for broadcast communication and a primary and a secondary synchronization channel.

12. The method according to claim 10 , wherein the physical downlink communication channels comprise a physical channel configured for hybrid automatic repeat request indication, the method further comprising:

excluding the certain component carriers of the component carriers to be used for transmission from having allocated the physical channel configured for hybrid automatic repeat request indication which are excluded from having allocated the at least one physical channel configured for downlink control.

13. The method according to claim 10 , wherein the physical downlink communication channels comprise a physical control channel configured for format indication, and the method further comprising:

excluding the certain component carriers of the component carriers to be used for transmission from having allocated the physical control channel configured for format indication which are excluded from having allocated the at least one physical channel configured for downlink control.

14. The method according to claim 10 , wherein the physical downlink communication channels comprise the physical channel configured for shared downlink use.

15. The method according to claim 14 , further comprising: applying dynamic downlink inter-cell interference coordination.

16. A method, comprising:

allocating of physical downlink communication channels, at least one physical channel of the physical downlink communication channels being configured for downlink control to respective component carriers per time interval according to a communication service in which communication is performed on an aggregation of component carriers of one or more frequency bands such that component carriers to be used for transmission are separated from component carriers to be used for receiving by a transmit-receive-frequency gap band;

excluding certain component carriers of the component carriers to be used for transmission from having allocated the at least one physical channel configured for downlink control;

communicating, on a component carrier which is available, information that the excluded component carriers are not to be monitored;

allocating a physical channel configured for shared uplink use to a component carrier of the component carriers to be used for receiving;

allocating a physical channel configured for shared downlink use to a component carrier of the component carriers to be used for transmission; and

allocating, for consecutive time intervals, the physical channel configured for downlink control to available component carriers of the component carriers to be used for transmission,

wherein not all of the available component carriers of the component carriers to be used for transmission are allocated in the same time interval with maximum transmission power, and

wherein, in each time interval, the physical downlink communication channels to be allocated for transmission are allocated to the available component carriers of the component carriers to be used for transmission such that, in each frequency band, an overall emission spectrum does not reach beyond the transmit-receive-frequency gap band, so as to eliminate intermodulation interference associated with the overall emission spectrum extending beyond the transmit-receive-frequency gap band.

17. A non-transitory computer readable medium storing a program of instructions, execution of which by a processor configures an apparatus to at least:

allocate physical downlink communication channels, at least one physical channel of the physical downlink communication channels being configured for downlink control to respective component carriers per time interval according to a communication service in which communication is performed on an aggregation of component carriers of one or more frequency bands such that component carriers to be used for transmission are separated from component carriers to be used for receiving by a transmit-receive-frequency gap band;

exclude certain component carriers of the component carriers to be used for transmission from having allocated the at least one physical channel configured for downlink control;

communicate, on a component carrier which is available, information that the excluded component carriers are not to be monitored;

allocate a physical channel configured for shared uplink use to a component carrier of the component carriers to be used for receiving;

allocate a physical channel configured for shared downlink use to a component carrier of the component carriers to be used for transmission; and

allocate, for consecutive time intervals, the physical channel configured for downlink control to available component carriers of the component carriers to be used for transmission,

wherein not all of the available component carriers of the component carriers to be used for transmission are allocated in the same time interval, and

wherein, in each time interval, the physical downlink communication channels to be allocated for transmission are allocated to the available component carriers of the component carriers to be used for transmission such that, in each frequency band, an overall emission spectrum does not reach beyond the transmit-receive-frequency gap band, so as to prevent any intermodulation interference associated with the overall emission spectrum from extending beyond the transmit-receive-frequency gap band.

18. A non-transitory computer readable medium storing a program of instructions, execution of which by a processor configures an apparatus to at least:

allocate physical downlink communication channels, at least one physical channel of the physical downlink communication channels being configured for downlink control to respective component carriers per time interval according to a communication service in which communication is performed on an aggregation of component carriers of one or more frequency bands such that component carriers to be used for transmission are separated from component carriers to be used for receiving by a transmit-receive-frequency gap band;

exclude certain component carriers of the component carriers to be used for transmission from having allocated the at least one physical channel configured for downlink control;

communicate, on a component carrier which is available, information that the excluded component carriers are not to be monitored;

allocate a physical channel configured for shared uplink use to a component carrier of the component carriers to be used for receiving;

allocate a physical channel configured for shared downlink use to a component carrier of the component carriers to be used for transmission; and

allocate, for consecutive time intervals, the physical channel configured for downlink control to available component carriers of the component carriers to be used for transmission,

wherein not all of the available component carriers of the component carriers to be used for transmission are allocated in the same time interval with maximum transmission power, and

wherein, in each time interval, the physical downlink communication channels to be allocated for transmission are allocated to the available component carriers of the component carriers to be used for transmission such that, in each frequency band, an overall emission spectrum does not reach beyond the transmit-receive-frequency gap band, so as to prevent any intermodulation interference associated with the overall emission spectrum from extending beyond the transmit-receive-frequency gap band.

Assignments (6)
CORRECTIVE ASSIGNMENT TO CORRECT THE ASSIGNOR NAME PREVIOUSLY RECORDED AT REEL: 0052853 FRAME: 0153. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT. Recorded Mar 12, 2021
From: CELLULAR COMMUNICATIONS EQUIPMENT LLC
To: STARBOARD VALUE INTERMEDIATE FUND LP, AS COLLATERAL AGENT
Reel/Frame 056668/0225 →
RELEASE OF SECURITY INTEREST IN PATENTS Recorded Jul 8, 2020
From: STARBOARD VALUE INTERMEDIATE FUND LP
To: ACACIA RESEARCH GROUP LLC; AMERICAN VEHICULAR SCIENCES LLC; BONUTTI SKELETAL INNOVATIONS LLC; CELLULAR COMMUNICATIONS EQUIPMENT LLC; INNOVATIVE DISPLAY TECHNOLOGIES LLC; LIFEPORT SCIENCES LLC; LIMESTONE MEMORY SYSTEMS LLC; MOBILE ENHANCEMENT SOLUTIONS LLC; MONARCH NETWORKING SOLUTIONS LLC; NEXUS DISPLAY TECHNOLOGIES LLC; PARTHENON UNIFIED MEMORY ARCHITECTURE LLC; R2 SOLUTIONS LLC; SAINT LAWRENCE COMMUNICATIONS LLC; STINGRAY IP SOLUTIONS LLC; SUPER INTERCONNECT TECHNOLOGIES LLC; TELECONFERENCE SYSTEMS LLC; UNIFICATION TECHNOLOGIES LLC
Reel/Frame 053654/0254 →
PATENT SECURITY AGREEMENT Recorded Jun 5, 2020
From: ACACIA RESEARCH GROUP LLC; AMERICAN VEHICULAR SCIENCES LLC; BONUTTI SKELETAL INNOVATIONS LLC; CELLULAR COMMUNICATIONS EQUIPMENT LLC; INNOVATIVE DISPLAY TECHNOLOGIES LLC; LIFEPORT SCIENCES LLC; LIMESTONE MEMORY SYSTEMS LLC; MERTON ACQUISITION HOLDCO LLC; MOBILE ENHANCEMENT SOLUTIONS LLC; MONARCH NETWORKING SOLUTIONS LLC; NEXUS DISPLAY TECHNOLOGIES LLC; PARTHENON UNIFIED MEMORY ARCHITECTURE LLC; R2 SOLUTIONS LLC; SAINT LAWRENCE COMMUNICATIONS LLC; STINGRAY IP SOLUTIONS LLC; SUPER INTERCONNECT TECHNOLOGIES LLC; TELECONFERENCE SYSTEMS LLC; UNIFICATION TECHNOLOGIES LLC
To: STARBOARD VALUE INTERMEDIATE FUND LP, AS COLLATERAL AGENT
Reel/Frame 052853/0153 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 20, 2014
From: NOKIA SOLUTIONS AND NETWORKS OY
To: CELLULAR COMMUNICATIONS EQUIPMENT LLC
Reel/Frame 033153/0134 →
CHANGE OF NAME Recorded Jun 20, 2014
From: NOKIA SIEMENS NETWORKS OY
To: NOKIA SOLUTIONS AND NETWORKS OY
Reel/Frame 033206/0752 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 2, 2012
From: ROESSEL, SABINE; FREDERIKSEN, FRANK; PEDERSEN, KLAUS INGEMANN; WIGARD, JEROEN
To: NOKIA SIEMENS NETWORKS OY
Reel/Frame 029126/0372 →
Continuity (1)
Related Publication 20130021990A1 · Jan 24, 2013