The present disclosure relates to coordination of radio resources, and in particular to cell coordination using a cluster-specific channel state information (CSI) reference signal (RS) configuration.
As demand for wireless devices continues to surge, Long Term Evolution (LTE) and LTE-Advanced continue to evolve with a focus on providing higher capacity by increasing peak data rates, spectral efficiency, improving performance at cell edges and increasing the number of active subscribers that are simultaneously supported, etc. One way LTE-Advanced strives to achieve high capacity is by supporting enhanced use of multi-antenna techniques such as Multiple Input Multiple Output (MIMO) or Beam Forming (BF). MIMO is used to increase the overall bitrate through simultaneous transmission, using two or more different antennas, of two or more different information signals on the same radio resources to be received by one (single user) or more (multi-user) receivers using two or more antennas. In the case of BF, the same information is precoded and transmitted by more than one antenna towards the intended receiver. A precoding vector of the precoding is adapted such that most of the transmitted power is directed towards the intended receiver. These multi-antenna transmission techniques combined with cell coordination further enhance the overall network capacity and coverage. In cell coordination, the downlink (DL) and uplink (UL) transmissions across a cluster of cells are scheduled such that the inter-cell interference is controlled and the transmission from or to a wireless device is scheduled from an appropriate cell within the cluster to maximize the signal to interference ratio.
In order to be able to adjust the type of multi-antenna transmission scheme, a number of different Transmission Modes (TM) have been defined. For example, in 3GPP LTE-Advanced in release 10, TM 9 was introduced to combine the advantages of high spectral efficiency, e.g., support up to 8-layer single user (SU) MIMO and multi-user (MU) MIMO, and cell-edge data rates (Beam Forming) on the downlink (DL). TM 9 also supports dynamic switching between SU MIMO and MU MIMO. Further, channel state information (CSI) reference signals (RS) are introduced to assist the connected wireless devices to measure the CSI and feedback CSI information to the network node. Using the CSI-RS, data can be transmitted on more than four independent layers (up to eight independent layers) unlike in the case of cell-specific reference symbols (CRS), where the number of independent layers are limited to four. The RS overhead due to the inclusion of CSI-RS is less than the overhead due to cell-specific reference symbols (CRS). Typically the overhead due to CSI-RS per physical resource block (PRB) is one resource element (RE) per antenna port per subframe. CSI-RS configuration is dependent on the number of transmit antenna ports. For example, there are two, four and eight REs per PRB for one or two, four and eight transmit antenna ports respectively, as defined in 3GPP Technical Specification 36.211 v10.5.0.
In TM 9, each cell can configure one non-zero power (NZP) CSI-RS and one zero power (ZP) CSI-RS per carrier. In particular, CSI reference signal configuration is mapped to (k′, l′) for normal cyclic prefix as defined in 3GPP TS 36.211. Table 1 illustrates this mapping. Here k′ and l′ identify the RE within a PRB pair in which k′ is the frequency index and l′ is the orthogonal frequency-division multiplexing (OFDM) symbol index within a PRB pair. Also, ns indicates the slot number within the PRB pair.
In subframes configured for CSI-RS transmission, the reference signal sequence rl,n
a
k,l
(p)
=w
l″
·r
l,n
(m′)
where ak,l(p) represents the complex valued modulation symbol corresponding to the kth frequency index, lth OFDM symbol in a subframe transmitted on antenna port p. Several variables are defined below.
In TM 9, each cell can configure one NZP CSI-RS and one ZP CSI-RS per carrier. The wireless device reports one CSI report per carrier. Therefore, in existing systems, there is very limited feedback from a TM 9 wireless device to assist in DL cell coordination.
The present disclosure advantageously provides a method, node and system for cell coordination, and in particular, provides a cluster-specific CSI-RS configuration for cell coordination.
In one embodiment of the disclosure, a node for managing cell coordination is provided. The node includes processing circuitry including a processor, and a memory. The memory contains instructions that, when executed by the processor, configure the processor to: determine a cluster of a plurality of cells including a first cell, the cluster of the plurality of cells having a plurality of antennas and determine a channel state information reference signal, CSI-RS, configuration corresponding to a total number of the plurality of antennas. The memory further includes instructions that, when executed by the processor, configure the processor to: partition radio resources corresponding to the CSI-RS configuration into a plurality of partitioned radio resources, and cause the first cell to transmit at least one CSI-RS signal according to a first partition of the plurality of partitioned radio resources while muting the radio resources of the remaining plurality of partitioned resources.
According to one aspect of this embodiment, a total number of partitions of the plurality of partitioned radio resources corresponding to the determined CSI-RS configuration is one of greater than and equal to a number of cells in the cluster. According to one aspect of this embodiment, the memory contains further instructions that, when executed by the processor, configure the processor to: determine a zero power, ZP, CSI-RS configuration based on a number of CSI-RS signals to be transmitted by the plurality of cells and configure radio resources at each of the plurality of cells to transmit according to the ZP CSI-RS configuration. The determined CSI-RS configuration corresponds to the total number of the plurality of antennas being a non-zero power, NZP, CSI-RS configuration.
According to one aspect of this embodiment, the determined CSI-RS configuration corresponds to a CSI-RS configuration for a cell with more than a total number of transmits antennas of the first cell. According to one aspect of this embodiment, the first partition of the plurality of partitioned radio resources includes a number of unmuted radio resources equal to a number of transmit antennas of the first cell. According to one aspect of this embodiment, the plurality of cells includes a second cell. The memory containing further instructions that, when executed by the processor, configure the processor to cause the second cell to transmit at least one CSI-RS signal according to a second partition of the plurality of partitioned radio resources while muting the radio resources of the remaining plurality of partitions resources, the second partition being different from the first partition. According to one aspect of this embodiment, each of a plurality of cells of the cluster have a same cellular identification, Cell ID.
According to one aspect of this embodiment the memory contains further instructions that, when executed by the processor, configure the processor to: receive at least one CSI report associated with a first wireless device in communication with at least one cell of the plurality of cells. The at least one CSI report is based at least in part on the transmission of at least one CSI-RS signal according to one of the partitions of the plurality of partitioned radio resources. The memory contains further instructions that, when executed by the processor, configure the processor to schedule downlink transmission to the first wireless device based at least in part on the received at least one CSI report. According to one aspect of this embodiment, the at least one CSI report includes at least one of channel-quality indication, CQI, precoder matrix indication, PMI, and rank indication, RI.
According to one aspect of this embodiment, the memory contains further instructions that, when executed by the processor, configure the processor to: receive at least one uplink signal associated with the first wireless device in communication with at least one of the plurality of cells and determine at least one uplink signal quality of the at least one uplink signal at at least one of the plurality of cells. The memory contains further instructions that, when executed by the processor, configure the processor to select a subset of the plurality of cells for downlink transmission to the first wireless device based on the determined at least one uplink signal quality of the at least one uplink signal at at least one of the plurality of cells, and schedule downlink transmission to the first wireless device on the selected subset of the plurality of cells. According to one aspect of this embodiment, the memory contains further instructions that, when executed by the processor, configure the processor to: precode the downlink transmission to the first wireless device on first radio resources on the subset of the plurality of cells based on a precoder matrix indication, PMI, received in the at least one CSI report associated with the first wireless device, and mute the first radio resources on the remaining plurality of cells to the first wireless device.
According to one aspect of this embodiment, the memory contains further instructions that, when executed by the processor, configure the processor to: determine downlink radio resources of at least one of the plurality of cells that are muted during the scheduled downlink transmission to the first wireless device on the selected subset of the plurality of cells, and schedule downlink transmission to a second wireless device on the at least one of the plurality of cells that are muted.
According to one aspect of this embodiment, the memory contains further instructions that, when executed by the processor, configure the processor to: determine a ZP CSI-RS configuration based on a number of CSI-RS signals to be transmitted by the plurality of cells, and apply the ZP CSI-RS configuration to each of the plurality of cells. The determined CSI-RS configuration corresponds to the total number of the plurality of antennas being a NZP CSI-RS configuration.
In another embodiment of the disclosure, a method for managing cell coordination is provided. A cluster of a plurality of cells including a first cell is determined. The cluster of the plurality of cells having a plurality of antennas. A channel state information reference signal, CSI-RS, configuration corresponding to a total number of the plurality of antennas is determined. Radio resources corresponding to the CSI-RS configuration are partitioned into a plurality of partitioned radio resources. The first cell is caused to transmit at least one CSI-RS signal according to a first partition of the plurality of partitioned radio resources while muting the radio resources of the remaining plurality of partitioned resources. According to one aspect of this embodiment, a total number of partitions of the plurality of the partitioned of radio resources corresponding to the determined CSI-RS configuration is one of greater than and equal to a number of cells in the cluster.
According to one aspect of this embodiment, a zero power, ZP, CSI-RS configuration is determined based on a number of CSI-RS signals to be transmitted by the plurality of cells. Radio resources at each of the plurality of cells are configured to transmit according to the ZP CSI-RS configuration. The determined CSI-RS configuration corresponding to the total number of the plurality of antennas is a non-zero power, NZP, CSI-RS configuration. According to one aspect of this embodiment, the determined CSI-RS configuration corresponds to a CSI-RS configuration for a cell with more than a total number of transmits antennas of the first cell. According to one aspect of this embodiment, the first partition of the plurality of partitioned radio resources comprises a number of unmuted radio resources equal to at least a number of transmit antennas of the first cell.
According to one aspect of this embodiment, the plurality of cells includes a second cell. The second cell is caused to transmit at least one CSI-RS signal according to a second partition of the plurality of partitioned radio resources while muting the radio resources of the remaining plurality of partitions resources. The second partition is different from the first partition. According to one aspect of this embodiment, each of a plurality of cells of the cluster have a same cellular identification, Cell ID. According to one aspect of this embodiment, at least one CSI report associated with a first wireless device in communication with at least one cell of the plurality of cells is received. The at least one CSI report is based at least in part on the transmission of the at least one CSI-RS signal according to one of the partitions of the plurality of partitioned radio resources. Downlink transmission to the first wireless device based at least in part on the received at least one CSI report is scheduled.
According to one aspect of this embodiment, the at least one CSI report includes at least one of channel-quality indication, CQI, precoder matrix indication, PMI, and rank indication, RI. According to one aspect of this embodiment, at least one uplink signal associated with the first wireless device in communication with at least one cell of the plurality of cells is received and at least one uplink signal quality of the at least one uplink signal at at least one of the plurality of cells is determined. A subset of the plurality of cells for downlink transmission to the first wireless device are selected based on the determined at least one uplink signal quality of the at least one uplink signal at at least one of the plurality of cells. Downlink transmission are scheduled to the first wireless device on the selected subset of the plurality of cells.
According to one aspect of this embodiment, the downlink transmission to the first wireless device on first radio resources on the subset of the plurality of cells is precoded based on a precoder matrix indication, PMI, received in the at least one CSI report associated with the first wireless device. The first radio resources on the remaining plurality of cells to the first wireless device are muted. According to one aspect of this embodiment, downlink radio resources of at least one of the plurality of cells that are muted during the scheduled downlink transmission to the first wireless device on the selected subset of the plurality cells are determined, and downlink transmission to a second wireless device on at least one of the plurality of cells that are muted are scheduled. The second subset is a subset of the first subset of the plurality of cells. According to one aspect of this embodiment, a ZP CSI-RS configuration is determined based on a number of CSI-RS signals to be transmitted by the plurality of cells. The ZP CSI-RS configuration is applied to each of the plurality of cells. The determined CSI-RS configuration corresponding to the total number of the plurality of antennas is a NZP CSI-RS configuration.
In another embodiment of the disclosure, a node for managing cell coordination of a cluster of a plurality of cells including a first cell is provided. The cluster of the plurality of cells includes a plurality of antennas. Each cell of the plurality of cells is configured on a respective partition of radio resources. The radio resources have a channel state information reference signal, CSI-RS, configuration corresponding to a total number of the plurality of antennas. The node includes processing circuitry including a processor, and a memory. The memory contains instructions that, when executed by the processor, configure the processor to: cause the first cell to transmit at least one CSI-RS signal according to a first partition of the radio resources while muting the remaining radio resources, and receive at least one CSI report associated with a first wireless device in communication with at least one of the plurality of cells. The at least one CSI report is based at least in part on the transmission of the at least one CSI-RS signal according to at least the first partition of the plurality of partitioned radio resources. The memory contains further instructions that, when executed by the processor, configure the processor to schedule downlink transmission to the first wireless device based at least in part on the received at least one CSI report.
According to one aspect of this embodiment, the memory contains further instructions that, when executed by the processor, configure the processor to: receive at least one uplink signal associated with the first wireless device in communication with at least one cell of the plurality of cells and determine at least one uplink signal quality of the at least one uplink signal at at least one of the plurality of cells. The memory contains further instructions that, when executed by the processor, configure the processor to: select a subset of the plurality of cells for downlink transmission to the first wireless device based on the determined at least one uplink signal quality of the at least one uplink signal at at least one of the plurality of cells, and schedule downlink transmission to the first wireless device based on the selected subset of the plurality of cells.
In another embodiment of the disclosure, a method for managing cell coordination of a cluster of a plurality of cells including a first cell is provided. The cluster of the plurality of cells includes a plurality of antennas. Each cell of the plurality of cells is configured on a respective partition of radio resources. The radio resources have a channel state information reference signal, CSI-RS, configuration corresponding to a total number of the plurality of antennas. The first cell is caused to transmit at least one CSI-RS signal according to a first partition of the radio resources while muting the remaining radio resources. At least one CSI report associated with a first wireless device in communication with at least one cell of the plurality of cells is received. The at least one CSI report is based at least in part on the transmission of the at least one CSI-RS signal according to at least the first partition of the plurality of partitioned radio resources. Downlink transmission to the first wireless device is scheduled based at least in part on the received at least one CSI report.
According to one aspect of this embodiment, at least one uplink signal associated with the first wireless device in communication with at least one cell of the plurality of cells is received. At least one uplink signal quality of the at least one uplink signal at at least one of the plurality of cells is determined. A subset of the plurality of cells for downlink transmission to the first wireless device is selected based on the determined at least one uplink signal quality of the at least one uplink signal at at least one of the plurality of cells. Downlink transmission to the first wireless device is scheduled based on the selected subset of the plurality of cells.
In another embodiment of the disclosure, a node for managing cell coordination is provided. The node includes a configuration module configured to determine a cluster of a plurality of cells including a first cell. The cluster of the plurality of cells have a plurality of antennas. The configuration module is configured to determine a channel state information reference signal, CSI-RS, configuration corresponding to a total number of the plurality of antennas, partition radio resources corresponding to the CSI-RS configuration into a plurality of partitioned radio resources, and cause the first cell to transmit at least one CSI-RS signal according to a first partition of the plurality of partitioned radio resources while muting the radio resources of the remaining plurality of partitioned resources.
In another embodiment of the disclosure, a computer readable storage medium storing executable instructions for managing cell coordination is provided. When the stored executable instructions are executed by a processor, the processor is caused to determine a cluster of a plurality of cells including a first cell. The cluster of the plurality of cells having a plurality of antennas. The processor is further configured to determine a channel state information reference signal, CSI-RS, configuration corresponding to a total number of the plurality of antennas, partition radio resources corresponding to the CSI-RS configuration into a plurality of partitioned radio resources, and cause the first cell to transmit at least one CSI-RS signal according to a first partition of the plurality of partitioned radio resources while muting the radio resources of the remaining plurality of partitioned resources.
A more complete understanding of the present disclosure, and the attendant advantages and features thereof, will be more readily understood by reference to the following detailed description when considered in conjunction with the accompanying drawings wherein:
The method(s), node(s) and system(s) described herein advantageously provide cell coordination for wireless communications. In particular, a cluster-specific CSI-RS configuration to assist cell coordination is provided. For example, the same cluster-based CSI-RS configuration is used in all cells within the cluster in which unmuted radio resources corresponding to the CSI-RS configuration are partitioned. The cluster-specific CSI-RS configuration, e.g., non-zero power (NZP) CSI-RS configuration, corresponds to the total number of transmit antennas of all the cells within the cluster. The cluster-specific CSI-RS configuration advantageously allows all the wireless devices within the cluster to report CSI that represents the achievable signal-to-interference plus noise ratio (SINR) with respect to the cluster of cells. Further, based on the uplink signal quality derived from the uplink signal received from the wireless device and cluster-specific CSI report received from the wireless device, subsequent downlink transmissions to the wireless device can be scheduled on a selected set of radio resources using parameter(s) specified in the CSI report. Therefore, using the total number of antennas of all the cells within the cluster, multi-layer transmission can be scheduled for the wireless device. For multiple wireless devices with downlink transmission scheduled on a set of cells within the cluster, the downlink transmission can simultaneously be scheduled for the multiple wireless devices on the same radio resources to achieve multi-user MIMO transmission. Further, in one or more embodiments, an additional CSI-RS configuration, e.g., zero-power (ZP) CSI-RS configuration, is provided in which the additional CSI-RS configuration allows wireless devices to measure received power of interference received from cells outside the cluster, which may provide further advantageous such as interference rejection combining as discussed below.
Before describing in detail exemplary embodiments that are in accordance with the disclosure, it is noted that the embodiments reside primarily in combinations of apparatus/node components and processing steps related to providing cell coordination in a cluster. Accordingly, components have been represented where appropriate by conventional symbols in drawings, showing only those specific details that are pertinent to understanding the embodiments of the disclosure so as not to obscure the disclosure with details that will be readily apparent to those of ordinary skill in the art having the benefit of the description herein.
As used herein, relational terms, such as “first,” “second,” “top” and “bottom,” and the like, may be used solely to distinguish one entity or element from another entity or element without necessarily requiring or implying any physical or logical relationship or order between such entities or elements. The terminology used herein is for the purpose of describing particular embodiments only and is not intended to be limiting of the concepts described herein. As used herein, the singular forms “a”, “an” and “the” are intended to include the plural forms as well, unless the context clearly indicates otherwise. It will be further understood that the terms “comprises,” “comprising,” “includes” and/or “including” when used herein, specify the presence of stated features, integers, steps, operations, elements, and/or components, but do not preclude the presence or addition of one or more other features, integers, steps, operations, elements, components, and/or groups thereof.
Unless otherwise defined, all terms (including technical and scientific terms) used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this disclosure belongs. It will be further understood that terms used herein should be interpreted as having a meaning that is consistent with their meaning in the context of this specification and the relevant art and will not be interpreted in an idealized or overly formal sense unless expressly so defined herein.
In embodiments described herein, the joining term, “in communication with” and the like, may be used to indicate electrical or data communication, which may be accomplished by physical contact, induction, electromagnetic radiation, radio signaling, infrared signaling or optical signaling, for example. One having ordinary skill in the art will appreciate that multiple components may interoperate and modifications and variations are possible of achieving the electrical and data communication.
Referring now to drawing figures in which like reference designators refer to like elements there is shown in
One or more wireless devices 14 are in communication with one or more nodes 12. Wireless device 14 may be a radio communication device, target device, device-to-device wireless device, user equipment (UE), machine type wireless device or wireless device capable of machine to machine communication, a sensor equipped with wireless device, tablet, mobile terminal, mobile telephone, laptop, computer, appliance, automobile, smart phone, laptop embedded equipped (LEE), laptop mounted equipment (LME), USB dongle and customer premises equipment (CPE), among other devices that can communicate radio or wireless signals as are known in the art.
RRM node 16 includes one or more communication interfaces 18 for communicating with one or more nodes 12 and one or more wireless devices 14. RRM node 16 includes one or more processors 20 for performing RRM node 16 functions described herein. RRM node 16 includes memory 22 that is configured to store code such as configuration code 24, coordination code 26, scheduling code 28 and/or cell coordination code 30. For example, configuration code 24 includes instructions, which when executed by processor 20, causes processor 20 to perform the configuration process, discussed in detail with respect to
In one or more embodiments, processor 20 and memory 22 form processing circuitry 32 containing instructions which, when executed configure processor 20 to perform the one or more functions described with respect to
While RRM node 16 is shown as a separate element from node 12, in one or more embodiments: RRM node 16 and node 12 may be the same element, node 12 may include functions of RRM node 16, or RRM node 16 may include functions of node 12.
Memory 22 may include non-volatile and/or volatile memory. For example, non-volatile memory may include a hard drive, flash memory, programmable integrated circuits, memory stick, solid state memory and the like. Also, volatile memory may include random access memory and others known in the art. In one or more embodiments, memory 22 is any suitable tangible computer readable medium that may be utilized including hard disks, CD-ROMs, electronic storage devices, optical storage devices, or magnetic storage devices.
Processing circuitry 32 determines a channel state information reference signal (CSI-RS) configuration, e.g., non-zero power (NZP) CSI-RS configuration, corresponding to a total number of the plurality of antennas associated with cluster 15 (Block S102). The CSI-RS configuration corresponding to the total number of the plurality of transmit antennas is configured for all the cells 13 in cluster 15, even though the one or more cells 13 in cluster 15 includes or is associated with less transmit antennas than the total number of transmit antennas. For example, if there are four cells 13 in cluster 15 and each cell 13 has two transmit antennas, then the CSI-RS configuration corresponds to an eight transmit antenna configuration. In other words, the antenna ports corresponding to CSI-RS configuration correspond to actual transmit antennas. In general, as outlined in 3GPP specification TS36.211, the antenna ports corresponding to CSI-RS configuration are referred to as antenna port 15 up to antenna port 22.
The exact set of resource elements, i.e., radio resources, out of a maximum of forty different resource elements within a physical resource block (PRB) pair that are assigned CSI reference signals varies depending on CSI-RS configuration. In other words, a CSI-RS configuration corresponds to a predefined total amount of resource element(s) or radio resources in a physical resource block (PRB) in which the specific resource elements used are based on the specific CSI-RS configuration. For example, if the CSI-RS configuration consists of one or two “CSI reference signals configured” from Table 1, the CSI-RS would consist of two reference signals transmitted on two resource elements in each PRB pair across the carrier bandwidth. With a maximum of forty REs allocated in a PRB pair, in the case of one or two CSI-RS signals configured, there is a possibility for 20 different CSI-RS configurations in a resource-block pair.
In another example, if the CSI-RS configuration consists of four or eight “CSI-reference signals configured” from Table 1 that correspond to four or eight transmit antennas, the CSI-RS resources may be pair-wise frequency multiplexed as specified in Table 6.105.2-1 of 3GPP TS36.211. In the case of four/eight CSI-RS signals that are configured there are ten/five different CSI-RS configurations respectively. An example of a CSI-RS configuration and corresponding radio resources for cluster 15 with four cells 13 in which each cell 13 is associated or includes two antennas is discussed in detail with respect to
In one or more embodiments, in addition to NZP CSI-RS, ZP reference signal is configured at all cells 13 within cluster 15. For example, all the cells 13 in cluster 15 may be configured with the same ZP CSI-RS configuration, i.e., same corresponding ZP CSI-RS REs, as discussed in detail with respect to
Processing circuitry 32 partitions radio resources corresponding to the CSI-RS configuration into a plurality of partitioned radio resources (Block S104). For example, radio resources corresponding to an eight transmit antenna non-zero power (NZP) CSI-RS configuration are partitioned such that each cell 13 in cluster 15 is assigned respective partitioned resources of the NZP CSI-RS configuration, as discussed in detail with respect to
In one or more embodiments, the number of partitions of radio resources, i.e., REs, corresponding to the determined CSI-RS configuration is one of greater than and equal to a number of cells 13 in cluster 15. For example, in one or more embodiments, cluster 15 includes three cells, e.g., Cells 13a, 13b and 13c, in which two cells, e.g., Cells 13a and 13b, each have two transmit antennas and one cell, e.g., Cell 13c, has four transmit antennas. As described above, radio resources corresponding to the CSI-RS configuration with eight CSI-RS signals are partitioned into four partitions. Two partitions are assigned to cell 13c with four transmit antennas, one partition is assigned to cell 13a and one partition is assigned to cell 13b. For each cell, the remaining partitions are muted such that only the partition(s) assigned to a cell remains unmuted for transmission of the CSI-RS signal(s). In one or more embodiments, the number of partitions of radio resources corresponding to the determined CSI-RS configuration is not less than the number of cells in the cluster.
In one or more embodiments, if an additional ZP CSI-RS configuration is configured, the ZP CSI-RS configuration is not partitioned among the cells 13 in cluster 15, i.e., each cell 13 in cluster 15 is assigned the same corresponding ZP CSI-RS resources as discussed in detail with respect to
Processing circuitry 32 causes cell 13, e.g., first cell 13, of cluster 15 to transmit at least one CSI-RS signal according to its respective partitioned radio resources while muting the radio resources of the remaining plurality of partitioned resources (Block S106). For example, in the four cell cluster 15 example where each cell 13 has two transmit antennas, two transmit antennas of a first cell 13 transmit on two REs, e.g., two NZP CSI-RS REs, assigned for CSI ports 15 and 16 while muting REs, e.g., other NZP CSI-RS REs, for CSI ports 17-22. Similarly, two transmit antennas of another cell 13, e.g., second cell 13, transmit on two REs assigned for CSI ports 17 and 18 while the other REs that corresponds to other CSI ports, i.e., 15, 16 and 19-22 CSI ports, are muted. In other words, a second cell 13 of cluster 15 is caused to transmit at least one CSI-RS signal according to a second partition of the plurality of partitioned radio resources while muting the radio resources of the remaining plurality of partitions resources in which the second partition is different from the first partition that is assigned to a first cell 13 of cluster 15.
Wireless device 14 receives and uses the transmitted NZP CSI-RS signal to determine CSI, for example, for transmission settings related to multi-antenna configuration, scheduling, etc., which is subsequently reported back, via CSI report(s), to RRM node 16 via node 12 or directly back to RRM node 16 such as if node 12 functionality is implemented in RRM node 16. The CSI report may include channel quality indication (CQI), precoder matrix indication (PMI) and rank indication (RI) that reflect the spatial, temporal and frequency correlation characteristics of the radio channel between each cell 13 or transmit point and wireless device 14. In a codebook based precoding, wireless device 14 evaluates the detected signal quality from all the predefined precoding vectors and picks the precoding vector which maximizes the detected signal quality. Corresponding rank and CQI along with the selected PMI are reported back to the serving cell 13 via the CSI reports. In one or more embodiments, wireless device 14 measures the inter-cluster interference from DL transmissions on the cells 13 outside cluster 15.
Wireless device 14 uses these interference measurements to improve the CSI measurements or determination of CSI. In one or more embodiments, each cell 13 of cluster 15 also transmits a ZP CSI-RS signals assigned to respective cells 13 of cluster 15.
Referring to
Similarly the OFDM indices for l′ of 2 and ns of 1 corresponds to the OFDM symbols 9 and 10. As shown in
The NZP CSI-RS resource partitioning illustrated in
In one or more embodiments, wireless device 14 receiving respective CSI-RS REs from the four cells 13 receives the cluster-specific CSI-RS configuration illustrated in
In one or more embodiments, each cell is configured with an additional CSI-RS configuration such as a ZP CSI-RS configuration. For example, as illustrated in
Also, as illustrated in
A coordination process is illustrated in
Referring to Block S108, processing circuitry 32 receives at least one uplink signal associated with wireless device 14, e.g., first wireless device, in communication with at least one cell 13 of cluster 15. Examples of uplink signals are described above. Processing circuitry 32 determines at least one uplink signal quality of the at least one uplink signal at at least one of the plurality of cells (Block S110). In one or more embodiments, the received power of the uplink signal is measured in dBm. Processing circuitry 32 selects a subset of cells 13 of cluster 15 for downlink transmission to wireless device 14 based on the determined at least one signal quality of the at least on uplink signal at at least one of the plurality of cells (Block S112). For example, wireless device 14a in
Referring to
In one or more embodiments, the same radio resources can be reused for DL transmission towards wireless device 14d from cell 13d using CSI feedback received from wireless device 14d. For example, in one or more embodiments, memory 22 contains further instructions that, when executed by the processor 20, configure the processor 20 to determine downlink radio resources of a first subset of the plurality of cells that are muted during transmission to the first wireless device, and schedule downlink transmission to a second wireless device on a second subset of the plurality of cells on the downlink radio resources that are muted. The second subset is a subset of the first subset of the plurality of cells.
Referring to
Another coordinating process, which may be embodied as coordination code 26 is described with respect to
Referring to
A process for radio resource control (RRC) signaling during transition between cells 13 of different sub-clusters of cluster 15 is described with respect to
The maximum of eight total number of antennas per cluster 15/subcluster is based on 3GPP standards that define a maximum number of eight antenna ports for certain transmission modes, e.g., TM 9. Respective CSI-RS configurations with eight transmit antennas are assigned per subcluster as discussed in
Therefore, the cluster-specific CSI-RS configuration advantageously allows the wireless device to report CSI that represents the achievable signal-to-interference plus noise ratio (SINR) with respect to one of the coordinating cells, thereby increasing the reliability of the CSI.
As will be appreciated by one of skill in the art, the concepts described herein may be embodied as a method, data processing system, and/or computer program product. Accordingly, the concepts described herein may take the form of an entirely hardware embodiment, an entirely software embodiment or an embodiment combining software and hardware aspects all generally referred to herein as a “circuit” or “module.” Furthermore, the disclosure may take the form of a computer program product on a tangible computer usable storage medium having computer program code embodied in the medium that can be executed by a computer. Any suitable tangible computer readable medium may be utilized including hard disks, CD-ROMs, electronic storage devices, optical storage devices, or magnetic storage devices.
Some embodiments are described herein with reference to flowchart illustrations and/or block diagrams of methods, systems and computer program products. It will be understood that each block of the flowchart illustrations and/or block diagrams, and combinations of blocks in the flowchart illustrations and/or block diagrams, can be implemented by computer program instructions. These computer program instructions may be provided to a processor of a general purpose computer, special purpose computer, or other programmable data processing apparatus to produce a machine, such that the instructions, which execute via the processor of the computer or other programmable data processing apparatus, create means for implementing the functions/acts specified in the flowchart and/or block diagram block or blocks.
These computer program instructions may also be stored in a computer readable memory or storage medium that can direct a computer or other programmable data processing apparatus to function in a particular manner, such that the instructions stored in the computer readable memory produce an article of manufacture including instruction means which implement the function/act specified in the flowchart and/or block diagram block or blocks.
The computer program instructions may also be loaded onto a computer or other programmable data processing apparatus to cause a series of operational steps to be performed on the computer or other programmable apparatus to produce a computer implemented process such that the instructions which execute on the computer or other programmable apparatus provide steps for implementing the functions/acts specified in the flowchart and/or block diagram block or blocks.
It is to be understood that the functions/acts noted in the blocks may occur out of the order noted in the operational illustrations. For example, two blocks shown in succession may in fact be executed substantially concurrently or the blocks may sometimes be executed in the reverse order, depending upon the functionality/acts involved. Although some of the diagrams include arrows on communication paths to show a primary direction of communication, it is to be understood that communication may occur in the opposite direction to the depicted arrows.
Computer program code for carrying out operations of the concepts described herein may be written in an object oriented programming language such as Java® or C++. However, the computer program code for carrying out operations of the disclosure may also be written in conventional procedural programming languages, such as the “C” programming language. The program code may execute entirely on the user's computer, partly on the user's computer, as a stand-alone software package, partly on the user's computer and partly on a remote computer or entirely on the remote computer. In the latter scenario, the remote computer may be connected to the user's computer through a local area network (LAN) or a wide area network (WAN), or the connection may be made to an external computer (for example, through the Internet using an Internet Service Provider).
Many different embodiments have been disclosed herein, in connection with the above description and the drawings. It will be understood that it would be unduly repetitious and obfuscating to literally describe and illustrate every combination and subcombination of these embodiments. Accordingly, all embodiments can be combined in any way and/or combination, and the present specification, including the drawings, shall be construed to constitute a complete written description of all combinations and subcombinations of the embodiments described herein, and of the manner and process of making and using them, and shall support claims to any such combination or subcombination.
It will be appreciated by persons skilled in the art that the disclosure is not limited to what has been particularly shown and described herein above. In addition, unless mention was made above to the contrary, it should be noted that all of the accompanying drawings are not to scale. A variety of modifications and variations are possible in light of the above teachings, which is limited only by the following claims.
Filing Document | Filing Date | Country | Kind |
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PCT/IB2015/056125 | 8/11/2015 | WO | 00 |