Methods and systems for CSI-RS port selection for CSI-reporting
11538568 · 2022-12-27
Assignee
Inventors
- Shiwei Gao (Nepean, CA)
- Mattias Frenne (Uppsala, SE)
- Robert Mark Harrison (Grapevine, TX)
- Siva Muruganathan (Stittsville, CA)
Cpc classification
G16H10/60
PHYSICS
H04L5/0048
ELECTRICITY
H04B7/0626
ELECTRICITY
G16H20/10
PHYSICS
International classification
G16H20/10
PHYSICS
G16H10/60
PHYSICS
Abstract
According to certain embodiments, a method in a network node, is disclosed. The method comprises selecting a sub set from a predetermined set of P CSI-RS ports for receiving channel information. The network node comprises an antenna array with controllable polarization. Each CSI-RS port corresponds to a combination of a set of resource elements and an antenna port of said antenna array. The predetermined set comprises a first number P1 of CSI-RS ports with a first polarization state and a second number P2 of CSI-RS ports with a second polarization state. The first and second polarization states are distinct. The method further comprises populating the subset with Q CSI-RS pons in such mariner that the ratio of CSI-RS pons respectively having the first and second polarization states is equal to the ratio of the first and second numbers.
Claims
1. A method in a network node of selecting a subset of Channel State Information-Reference Signal (CSI-RS) ports from a predetermined set of P CSI-RS ports for receiving channel information, wherein P is an integer equal to or greater than 2, and wherein: the network node is a network node of a wireless communication network and comprises an antenna array with controllable polarization; each CSI-RS port corresponds to a combination of a set of resource elements and an antenna port of said antenna array; and the predetermined set of the CSI-RS ports comprises a first number P.sub.1 of CSI-RS ports with a first polarization state and a second number P.sub.2 of CSI-RS ports with a second polarization state, the first and second polarization states being distinct, the method comprising: populating the subset of CSI-RS ports with Q CSI-RS ports in such manner that a ratio of CSI-RS ports respectively having the first and second polarization states is equal to the ratio of the first and second numbers, wherein Q≤P; determining whether feedback of a first type or a second type is enabled; if feedback of the first type is to be enabled, transmitting reference signals on CSI-RS ports from the subset for periodic CSI reporting; and if feedback of the second type is to be enabled, transmitting reference signals on CSI-RS ports from the predetermined set for aperiodic Class-A CSI reporting, wherein each CSI-RS port in the predetermined set is associated with an identifier, and wherein one of the following holds: the identifier is explicitly stated in a feedback signal; the identifier is implicitly derivable from an internal structure of a feedback signal; and the identifier is implicitly derivable from a resource used for transmitting a feedback signal.
2. The method of claim 1, wherein the subset is populated with QP.sub.1/(P.sub.1+P.sub.2) CSI-RS ports having the first polarization state and QP.sub.2/(P.sub.1+P.sub.2) CSI-RS ports having the second polarization state.
3. The method of claim 1, wherein P.sub.1−P.sub.2 whereby the subset is populated with equal proportions of CSI-RS ports with the first and second polarization states.
4. The method of claim 1, wherein P.sub.1+P.sub.2=P.
5. The method of claim 4, whereby half of the CSI-RS ports in the subset have the first polarization state and half of the CSI-RS ports in the subset have the second polarization state.
6. The method of claim 1, wherein: the CSI-RS ports with a first polarization state are associated with identifiers in a first predetermined range, and the CSI-RS ports with a second polarization state are associated with identifiers in a second predetermined range, and one of the following holds: (i) the subset is populated with Q/2 CSI-RS ports from a lower portion of the first predetermined range and Q/2 CSI-RS ports from a lower portion of the second predetermined range; (ii) the subset is populated with Q/2 CSI-RS ports from a higher portion of the first predetermined range and Q/2 CSI-RS ports from a higher portion of the second predetermined range.
7. The method of claim 6, wherein each CSI-RS port is associated with an identifier being a port number p given by
8. The method of claim 7, wherein the subset consists of CSI-RS ports with port numbers given by Eq. 1.
9. The method of claim 7, wherein the subset is populated with Q CSI-RS ports associated with port numbers given by
10. The method of claim 6, further comprising: associating the CSI-RS ports with alternative identifiers, which are selected from the ordered set and susceptible of enabling the network node to identify a first type of feedback relating to a CSI reference signal transmitted by the network node on a CSI-RS port.
11. The method of claim 10, wherein the identifiers define an ordering of the CSI-RS ports, which is preserved by the alternative identifiers.
12. The method of claim 11, wherein the alternative identifiers are consecutive.
13. The method of claim 10, where the alternative identifiers p’ are given by
14. The method of claim 1, wherein: each CSI-RS port in the predetermined set is associated with an identifier selected from an ordered set; the first number P.sub.1 of CSI-RS ports are associated with identifiers in a first predetermined range and the second number P.sub.2 of CSI-RS ports are associated with identifiers in a second predetermined range; and said populating comprises populating the subset with a number of CSI-RS ports from a lower portion of the first predetermined range and an equal number of CSI-RS ports from a lower portion of the second predetermined range, each CSI-RS port in the subset being associated with an identifier that is a port number p given by
15. The method of claim 1, further comprising: receiving feedback from a wireless device in the wireless communication network.
16. The method of claim 1, wherein the CSI-RS ports with the first polarization state differ from the CSI-RS ports with the second polarization state in that a first co-phasing coefficient is applied to the CSI-RS ports with the first polarization state and a distinct second co-phasing coefficient is applied to the CSI-RS ports with the second polarization state.
17. A method in a wireless device served by a network node of a wireless communication network, the method comprising: receiving, from the network node, a Channel State information-Reference Signal (CSI-RS) setup comprising K CSI-RS configurations, wherein K>1 and each CSI-RS configuration is comprising N CSI-RS ports and an antenna configuration of the network node with P antenna ports, wherein N is defined in 1<N<P and multiple of 2; determining a subset of Q antenna ports from the P antenna ports, wherein Q<P; determining whether feedback of a first type or a second type is enabled; if feedback of the first type is enabled, measuring channel information based on the reference signals associated with the subset of antenna ports for periodic CSI reporting; if feedback of the second type is enabled, measuring channel information based on signals associated with the P antenna ports for aperiodic Class-A CSI reporting; and reporting the measured channel information to the network node, wherein each CSI-RS port in the predetermined set is associated with an identifier, and wherein one of the following holds: the identifier is explicitly stated in a feedback signal; the identifier is implicitly derivable from an internal structure of a feedback signal; and the identifier is implicitly derivable from a resource used for transmitting a feedback signal.
18. The method of claim 17, wherein: the antenna configuration of the CSI-RS setup comprises P CSI-RS ports; said determining a subset of Q ports comprises determining a first subset of P/2 CSI-RS ports and a second subset of P/2 CSI-RS ports from the P CSI-RS ports, wherein: the first subset comprises N/2 CSI-RS ports from each of the K CSI-RS configurations; and the second subset comprises the remaining N/2 CSI-RS ports from each of the K CSI-RS configurations.
19. The method of claim 18, wherein: the first subset corresponds to a first length-P/2 vector in a codebook used for state information feedback, the vector being selected from a set of possible values in the codebook; the second subset corresponds to a second length-P/2 vector obtainable by scaling the first length-P/2 vector by a complex number.
20. The method of claim 18, wherein the determining comprises forming the first subset as CSI-RS ports indexed by
21. The method of claim 17, wherein the measuring and reporting are performed periodically if feedback of the first type is enabled.
22. The method of claim 17, wherein the determining comprises deriving the Q antenna ports, which ports are indexed by
23. The method of claim 22, wherein the indices of the derived Q antenna ports are re-ordered such that the second set of
24. A network node comprising: an antenna array with controllable polarization; and one or more processors, the one or more processors configured to: select a subset of Channel State Information-Reference Signal (CSI-RS) ports from a predetermined set of P CSI-RS ports for receiving channel information, wherein P is an integer equal to or greater than 2, wherein the predetermined set of P CSI-RS ports comprises a first number P.sub.1 of CSI-RS ports with a first polarization state and a second number P.sub.2 of CSI-RS ports with a second polarization state, wherein the first and second polarization states are distinct, and wherein each CSI-RS port corresponds to a combination of a set of resource elements and an antenna port of said antenna array; populate the subset with Q CSI-RS ports in such manner that the ratio of CSI-RS ports respectively having the first and second polarization states is equal to the ratio of the first and second numbers; determine whether feedback of a first type or a second type is enabled; if feedback of the first type is to be enabled, transmit reference signals on CSI-RS ports from the subset of CSI-RS ports for periodic CSI reporting; and if feedback of the second type is to be enabled, transmit reference signals on CSI-RS ports from the predetermined set of CSI-RS ports for aperiodic Class-A CSI reporting, wherein each CSI-RS port in the predetermined set is associated with an identifier, and wherein one of the following holds: the identifier is explicitly stated in a feedback signal; the identifier is implicitly derivable from an internal structure of a feedback signal; and the identifier is implicitly derivable from a resource used for transmitting a feedback signal.
25. A wireless device configured to be served by a network node in a wireless communication network, the wireless device comprising: one or more processors, the one or more processors configured to: receive, from the network node, a Channel State information-Reference Signal (CSI-RS) setup comprising K CSI-RS configurations, wherein K>1 and each CSI-RS configuration is comprising N CSI-RS ports and an antenna configuration of the network node with P antenna ports, wherein N is defined in 1<N<P and multiple of 2; determine a subset of Q antenna ports from the P antenna ports, wherein Q<P; determine whether feedback of a first type or a second type is enabled; if feedback of the first type is to be enabled, measure channel information based on the reference signals associated with the subset of Q antenna ports for periodic CSI reporting; if a feedback of the second type is to be enabled, measure channel information based on the reference signals associated with the P antenna ports for aperiodic Class-A CSI reporting; and report the measured channel information to the network node, wherein each CSI-RS port in the predetermined set is associated with an identifier, and wherein one of the following holds: the identifier is explicitly stated in a feedback signal; the identifier is implicitly derivable from an internal structure of a feedback signal; and the identifier is implicitly derivable from a resource used for transmitting a feedback signal.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) For a more complete understanding of the disclosed embodiments and their features and advantages, reference is now made to the following description, taken in conjunction with the accompanying drawings, in which:
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DETAILED DESCRIPTION
(24) In 3GPP Release 13, additional antenna ports are specified for CSI feedback, and up to 16 ports can be supported. In future releases, even more ports may be supported (e.g., 37.) However, legacy (Release 12 or earlier) wireless devices support at most 8 ports CSI measurements. Accordingly, there is a need to support legacy terminals with network nodes having more than 8 CSI-RS ports in an efficient manner that does not increase CSI-RS overhead. More specifically, a problem is bow to select a subset of the Release 13 CSI-RS ports for legacy wireless devices and still match to the legacy codebook design for cross-polarized antenna arrays. Even for Release 13 wireless devices, it is beneficial if fewer CSI-RS ports are used for periodic reporting, and the full set of CSI-RS antenna ports is used for aperiodic reporting. A problem then exists with respect to how to select a subset of the configured full set of CSI-RS ports for CSI measurement and reporting.
(25) The present disclosure contemplates various embodiments that may address these and other deficiencies. In the following description, we denote the use of P>8 ports as the second type of CSI reporting (or feedback) and the use of Q≤8 ports as the first type of CSI reporting (or feedback). The first type can thus be used for legacy terminal CSI reporting which do not support greater than 8 ports, or it can be used for PUCCH reporting for wireless devices of second type, e.g. Release 13, (even if they support greater than 8 ports).
(26) In certain embodiments, a first type of feedback and a second type of feedback may be defined where the first type uses Q≤8 ports and the second type is P>8 ports. The second type of feedback is arranged so that First P/2 ports arc of one polarization, while the second half of P/2 ports are of a different (orthogonal) polarization. Additionally, the CSI-RS resources used for the P ports are an aggregation of multiple CSI-RS configurations, each having N (N<P) ports.
(27) The Q CSI-RS ports used for a first type of feedback is then chosen such that (either or both):
(28) 1. They have the same property (as described above) that the P>Q CSI-RS ports used for the second type of feedback (i.e., the First Q/2 ports are with one polarization while the second half of Q/2 ports are with a different (orthogonal) polarization).
(29) 2. They occupy a subset or one of the aggregated CSI-RS configurations used for defining or configuring ports of the second type of feedback.
(30) In certain embodiments, a method for configuring a first set and a second set of CSI-RS resources and the corresponding CSI-RS antenna ports in a network is disclosed. The first set may have Q ports, and the second set may have P>Q ports. The second set may contain an aggregation of K CSI-RS configurations, each having N ports, such that P=NK. The P/2 first ports are mapped to antennas of a first polarization, and the P/2 last ports are mapped to antennas of a second polarization. A mapping of the P ports in the second set of resources to the N ports in each of the K CSI-RS configurations is established. Then, a mapping of ports in the first set of resources to ports in the second set of resources is established so that the Q/2 first ports are mapped to antennas of a first polarization, and the Q/2 last ports are mapped to antennas of a second polarization,
(31) In some cases, the Q ports are mapped to the N ports of one of the K configurations used for aggregating the second set of resources. The ports of the second set of resources may be numbered so that the P/2 first ports are mapped to antennas of a first polarization, and the P/2 last ports are mapped to antennas of a second polarization.
(32) The various embodiments described herein may advantageously not require additional signaling for configuring CSI-RS ports for periodic CSI reporting. In addition, legacy terminals can be supported with the same eNB antenna array as FD-MIMO supporting terminals without additional CSI-RS overhead, since the ports used for first type of CSI feedback is a subset of the ports used for second type of CSI feedback. Furthermore, the codebooks, which are designed for cross polarized antenna arrays where the first half of antenna ports are of one polarization and the second half of antenna ports are of a different polarization, can be used both for the first type and the second type of feedback.
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(34) In certain embodiments, network nodes 115 may interface with a radio network controller. The radio network controller may control network nodes 115 and may provide certain radio resource management functions, mobility management functions, and/or other suitable junctions. In certain embodiments, the functions of the radio network controller may be included in network node 115. The radio network controller may interface with a core network node. In certain embodiments, the radio network controller may interlace with the core network node via an interconnecting network. The interconnecting network may refer to any interconnecting system capable of transmitting audio, video, signals, data, messages, or any combination of the preceding. The interconnecting network may include all or a portion, of a public switched telephone network (PSTN), a public or private data network, a local area network (LAN), a metropolitan area network (MAN), a wide area network (WAN), a local regional, or global communication or computer network such as the Internet, a wireline or wireless network, an enterprise intranet, or any other suitable communication link, including combinations thereof.
(35) In some embodiments, tine core network node may manage the establishment of communication sessions and various other functionalities for wireless devices 110. Wireless devices 110 may exchange certain signals with the core network node using the non-access stratum layer. In non-access stratum signaling, signals between wireless devices 110 and the core network node may be transparently passed through the radio access network. In certain embodiments, network nodes 115 may interface with one or more network nodes over an internode interface. For example, network nodes 115A and 115B may interface over an X2 interface.
(36) As described above, example embodiments of network 100 may include one or more wireless devices 110, and one or more different types of network nodes capable of communicating (directly or indirectly) with wireless devices 110. Wireless device 110 may refer to any type of wireless device communicating with a node and/or with another wireless device in a cellular or mobile communication system. Examples of wireless device 110 include a mobile phone, a smart phone, a PDA (Personal Digital Assistant), a portable computer (e.g., laptop, tablet), a sensor, a modem, a machine-type-communication (MTC) device/machine-to-machine (M2M) device, laptop embedded equipment (LEE), laptop mounted equipment (LME), USB dongles, a D2D capable device, or another device that can provide wireless communication A wireless device 110 may also be referred to as UE, a station (STA), a device, or a terminal in some embodiments. Also, in some embodiments, generic terminology, “radio network node” (or simply “network node”) is used It can be any kind of network node, which may comprise a Node B, base station (BS), multi-standard radio (MSR) radio node such as MSR BS, eNode B, network controller, radio network controller (RNC), base station controller (BSC), relay donor node controlling relay, base transceiver station (BTS), access point (AP), transmission points, transmission nodes, RRU, RRH, nodes in distributed antenna system (DAS), core network node (e.g. MSC, MME etc.), O&M, OSS, SON, positioning node (e.g. E-SMLC), MDT, or any suitable network node. Example embodiments of wireless devices 110, network nodes 115, and other network nodes (such as radio network controller or core network node) are described in more detail with reference to
(37) Although
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(39) Network nodes 115 may be deployed throughout network 100 as a homogenous deployment, heterogeneous deployment, or mixed deployment. A homogeneous deployment may generally describe a deployment made up of the same (or similar) type of network nodes 115 and/or similar coverage and cell sizes and inter-site distances. A heterogeneous deployment may generally describe deployments using a variety of types of network nodes 115 having different cell sizes, transmit powers, capacities, and inter-site distances. For example, a heterogeneous deployment may include a plurality of low-power nodes placed throughout a macro-cell layout. Mixed deployments may include a mix of homogenous portions and heterogeneous portions.
(40) Network node 115 may include one or more of transceiver 1010, processor 1020, memory 1030, and network, interface 1040. In some embodiments, transceiver 1010 facilitates transmitting wireless signals to and receiving wireless signals from wireless device 110 (e.g., via an antenna), processor 1020 executes instructions to provide some or all of the functionality described above as being provided by a network node 115, memory 1030 stores the instructions executed by processor 1020, and network interface 1040 communicates signals to backend network components, such as a gateway, switch, router, Internet, Public Switched Telephone Network (PSTN), core network nodes or radio network controllers 130, etc.
(41) In certain embodiments, network node 115 may be capable of using multi-antenna techniques, and may be equipped with multiple antennas and capable of supporting MIMO techniques. The one or more antennas may have controllable polarization. In other words, each element may have two co-located sub elements with different polarizations (e.g., 90 degree separation as in cross-polarization), so that different sets of beamforming weights will give the emitted wave different polarization.
(42) Processor 1020 may include any suitable combination of hardware and software implemented in one or more modules to execute instructions and manipulate data to perform some or all of the described functions of network node 115. In some embodiments, processor 1020 may include, for example, one or more computers, one or more central processing units (CPUs), one or more microprocessors, one or more applications, and/or other logic.
(43) Memory 1030 is generally operable to store instructions, such as a computer program, software, an application including one or more of logic, rules, algorithms, code, tables, etc. and/or other instructions capable of being executed by a processor. Examples of memory 1030 include computer memory (for example. Random Access Memory (RAM) or Read Only Memory (ROM)), mass storage media (for example, a hard disk), removable storage media (for example, a Compact Disk (CD) or a Digital Video Disk (DVD)), and/or or any other volatile or non-volatile, non-transitory computer-readable and/or computer-executable memory devices that store information.
(44) In some embodiments, network interface 1040 is communicatively coupled to processor 1020 and may refer to any suitable device operable to receive input for network node 115, send output from network node 115, perform suitable processing of the input or output or both, communicate to other devices, or any combination of the preceding. Network interface 1040 may include appropriate hardware (e.g.. port, modem, network interface card, etc.) and software, including protocol conversion and data processing capabilities, to communicate through a network.
(45) Other embodiments of network node 115 may include additional components beyond those shown in
(46) In certain embodiments, network node 115 signals to a wireless device 110 the port layout M.sub.1×M.sub.2, where M,(i=1,2) is the number of antenna ports per polarization for dimension i, and a configuration of CSI-RS reference signals corresponding to a total of P=2 M.sub.1×M.sub.2) CSI-RS ports consisting of an aggregation of K N-port CSI-RS configurations as follows:
(47) CSI-RS configuration with k=0: N CSI-RS ports
(48) CSI-RS configuration with k=1: N CSI-RS ports
(49) CSI-RS configuration with k=K−1: N CSI-RS ports,
(50) where P=K*N and N ∈ {2,4,8}. Hence, network node 115 signals a list of these K CSI-RS configurations by RRC to wireless device 110.
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(52) At step 1108, the subset is populated with Q CSI-RS ports in such manner that the ratio of CSI-RS ports respectively having the first and second polarization states is equal to the ratio of the first and second numbers. In certain embodiments, the subset may be populated with QP.sub.1/(P.sub.1+P.sub.2) CSI-RS posts having the first polarization state and QP.sub.2/(P.sub.1+P.sub.2) CSI-RS ports having the second polarization state. In certain embodiments, P.sub.1 and P.sub.2 may be equal In certain embodiments, half of the CSI-RS ports in the subset may have the first polarization state and half of the CSI-RS ports in the subset have the second polarization state.
(53) In a first particular embodiment, for example, the CSI measurement of first type of report may be performed over the CSI-RS ports from multiple, or all, of the aggregated CSI-RS configurations used in the second type of report. When numbering the antenna ports for the second type of reporting, having P>8 CSI-RS ports, then the following expression may be used:
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where k (=0, . . . , K−1) correspond to the k-th component, of the K CSI-RS configurations (each having N antenna ports) and r is the port index of each component CSI-RS configuration, Each CSI-RS port in the predetermined set may be associated with an identifier selected from an ordered set. The first number P1 of CSI-RS ports may be associated with identifiers in a first predetermined range and a second number P2 of CSI-RS ports may be associated with identifiers in a second predetermined range. The subset may be populated with a number of CSI-RS ports from a lower portion of the first predetermined range and an equal number of CSI-Reports from a lower portion of the second predetermined range, in a particular embodiment. However, it is may be recognized that the subset may also be populated with a number of ports from an upper portion of each predetermined range, a mid portion of each predetermined range, a lower portion of each predetermined range, or any combination thereof of the predetermined ranges. Such port numbering can also be summarized in Table 1 below for (N,K)=(8,2), (4,3) and Table 2 below for (N,K)=(2,8), (2,6).
(55) TABLE-US-00002 TABLE 1 Mapping of 12 and 16 CSI-RS ports using aggregation of multiple eight (N = 8) and four (N = 4) ports CSI-RS configurations Port number (p) 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 Port number of each K = 2, Aggregated 0 15 16 17 18 — — — — 19 20 21 22 — — — — component CSI-RS N = 8 configuration (k) 1 — — — — 15 16 17 18 — — — — 19 20 21 22 configuration (r) K = 3, Aggregated 0 15 16 — — — — — — 17 18 — — — — — — N = 4 configuration (k) 1 — — 15 16 — — — — — — 17 18 — — — — 2 — — — — 15 16 — — — — — — 17 18 — —
(56) TABLE-US-00003 TABLE 2 Mapping of 12 and 16 CSI-RS ports using aggregation of eight (K = 8) and six (K = 6) 2-port (N = 2) CSI-RS confiurations Aggregated CSI-RS Configuration (k) 0 1 2 3 4 5 6 7 Port number of each component CSI-RS configuration (r) 15 16 15 16 15 16 15 16 15 16 15 16 15 16 15 16 CSI-RS K = 8, N = 2 15 23 16 24 17 25 18 26 19 27 20 28 21 29 22 30 Port number K = 6, N = 2 15 21 16 22 17 23 18 24 19 25 20 26 — — — — (p)
(57) In a particular embodiment, each CSI-RS port in the predetermined set may be associated with an identifier selected from an ordered set. The first number P1 of CSI-RS ports may be associated with identifiers in a first predetermined range and a second number P2 of CSI-RS ports may be associated with 10 identifiers in a second predetermined range.
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(60) Since legacy wireless devices, or PUCCH for Release 13 wireless devices (i.e., first type of feedback), need to map to Q ports where Q/2 first ports are co-polarized, and last Q/2 ports also are co-polarized (but with orthogonal polarization) among the P>Q ports used for second type of feedback, the first type of feedback using Q antenna ports can select the first configuration (i.e., k=0) (or the second configuration) in the example shown in
(61) In certain embodiments, some generalized port numbering rules may be employed to achieve this objective for more general values of {M1,M2,P,Q,N,K} than what was assumed in the example described above. For example, the number of CSI-RS ports, Q ∈ {2,4,8}, used for legacy wireless devices 110 (that only support at most 8 ports) and for Release 13 wireless devices 110 using periodic CSI measurement and report on PUCCH may be determined by the following rule: Q=min(4└max(M.sub.1, M.sub.2)/2┘,8). The Q CSI-RS ports for first type of reporting can then be selected from the ports defined for the second type of reporting as follows:
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Some examples of Q CSI-RS port numbering for first type of reporting are shown in Table 3 below.
(63) TABLE-US-00004 TABLE 3 Examples of CSI-RS ports used for P-CSI measurement and report: linking Q to the size of 2D antenna array Subset of CSI-RS ports for first type of reporting among ports used for Port numbering for first M.sub.1 M.sub.2 P Q second type of reporting type of reporting 8 1 16 8 15, 16, 17, 18, 23, 24, 25, 26 15, 16, 17, 18, 19, 20, 21, 22 6 1 12 8 15, 16, 17, 18, 21, 22, 23, 24 15, 16, 17, 18, 19, 20, 21, 22 4 2 16 8 15, 16, 17, 18, 23, 24, 25, 26 15, 16, 17, 18, 19, 20, 21, 22 2 4 16 8 15, 16, 17, 18, 23, 24, 25, 26 15, 16, 17, 18, 19, 20, 21, 22 3 2 12 4 15, 16, 21, 22 15, 16, 17, 18 2 3 12 4 15, 16, 21, 22 15, 16, 17, 18
(64) For instance, if M1=2 and M2=3, and Q=4 ports are used for the first type of CSI reporting and P=12 ports are used for second type of reporting, then ports 15-20 in the second type of reporting will use co-polarized antennas with one polarization, while ports 21-26 will also be a set of co-polarized antennas, but with orthogonal polarization with respect to ports 15-20. For the first type of reporting, the four ports 15-16 and 21-22 are selected among the ports used for second type of reporting. These ports are then re-numbered for the first type of reporting as ports 15-18 respectively to achieve the desired goal that the first Q/2 ports are co-polarized and the last Q/2 ports are also co-polarized but with alternative polarization.
(65) However, the Q CSI-RS ports defined in this way may not always correspond to a resource mapping that exists for a CSI resource of Q ports among the legacy CSI-RS resources For example,
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(67) In the first particular embodiment described above, CSI measurement of a first type of report was performed over the CSI-RS ports from multiple, or all, of the aggregated CSI-RS resources used in the second type of report. According to a second particular embodiment, the ports related to the first type are confined to a single CSI-RS configuration of the multiple aggregated configurations configured for the second type of CSI measurement, and resource. When numbering the antenna ports for the second type of reporting, having P>8 CSI-RS ports, then the following expression is used:
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where k (=0, . . . , K−1) correspond to the k-th CSI-RS configuration (each having N ports). This is the same as that in the first embodiment, and each of the K CSI-RS configurations are mapped to cross-polarized antennas wherein the first half of ports are mapped to one polarization and the second half to the alternate polarization
(69) For example, if N=8, K=2, P=16, then the ports for the k=0 configuration are numbered as {15,16,17,18,23,24,25,26}. Now, the ports 15-22 are mapped to antennas of tire first polarization and ports 23-30 are mapped to antennas of the second polarization.
(70) Again, since CSI report of the first type such as legacy wireless devices 110, or PUCCH for Release 13 wireless devices 110, need to map to Q ports where Q/2 first ports are co-polarized, and last Q/2 ports also are co-polarized (but with orthogonal polarization), the following port selection for the first type of CSI report is proposed in this embodiment to use the first (i.e., k=0) N CSI-RS ports for measurements and reports of the first type (i.e., Q=N). Or alternatively, to use a predefined configuration (e.g., k=0 or k=1) of the K configurations assigned to the second type of reporting, for measurements and reports of the first type.
(71) In comparison, to the first particular embodiment described above, the number of ports of the first type can be changed depending on the value N used per aggregated configuration in the configuration of the second type. More importantly, the ports of the first type have the same CSI-RS resource as that for a legacy CSI-RS configuration with N ports, and these N ports from a single resource contain a complete set of cross-polarized antennas as legacy N ports. Therefore, a legacy wireless device 110 can be configured with Q=N CSI-RS ports and perform CSI measurement and report according to pre-Release 13 procedures. A Release 13 wireless device 110 can also perform periodic CSI measurement and report with the selected Q CSI-RS ports according to pre-Release 13 procedures.
(72) An example of the subset of CSI-RS ports selected in this embodiment for CSI reporting of the first type and/or for CSI reporting by a legacy wireless device 110 is shown in Table 4 below.
(73) TABLE-US-00005 TABLE 4 Examples of CSI-RS ports used for P-CSI measurement and report: M = N Subset of CSI-RS ports for first type of reporting among ports used Port numbering for first M.sub.1 M.sub.2 P N K Q for second type of reporting type of reporting 8 1 16 8 2 8 15, 16, 17, 18, 23, 24, 25, 26 15, 16, 17, 18, 19, 20, 21, 22 6 1 12 4 3 4 15, 16, 21, 22 15, 16, 17, 18 4 2 16 8 2 8 15, 16, 17, 18, 23, 24, 25, 26 15, 16, 17, 18, 19, 20, 21, 22 2 4 16 2 8 2 15, 23 15, 16 3 2 12 4 3 4 15, 16, 21, 22 15, 16, 17, 18 2 3 12 2 6 2 15, 21 15, 16
(74) In certain embodiments, the method for selecting and populating CSI-RS ports for receiving channel information as described above may be performed by a computer networking virtual apparatus.
(75) The selecting module 1710 may perform the selecting functions of computer networking virtual apparatus 1700. For example, selecting module 1710 may select a subset from a predetermined set of P CSI-RS ports for receiving channel information. Each CSI-RS port may correspond to a combination of a set of resource elements and an antenna port of an antenna array. The predetermined set may include a first number P.sub.1 of CSI-RS ports with a first polarization state and a second number P.sub.2 of CSI-RS ports with a second polarization state, where the first and second polarization states are distinct, in certain embodiments.
(76) The populating module 1720 may perform the populating functions of computer networking virtual apparatus 1700. For example, populating module 1720 may populate the subset with Q CSI-RS ports m such manner that the ratio of CSI-RS ports respectively having the first and second polarization states is equal to the ratio of the first and second numbers. In certain embodiments, the subset may be populated with QP.sub.1/(P.sub.1+P.sub.2) CSI-RS ports having the first polarization state and QP.sub.2/(P.sub.1+P.sub.2) CSI-RS ports having the second polarization state. In certain embodiments, P.sub.1 and P.sub.2 may be equal. In certain embodiments, half of the CSI-RS ports in the subset may have the first polarization state and half of the CSI-RS ports in the subset have the second polarization state.
(77) Other embodiments of computer networking virtual apparatus 1700 may include additional components beyond those shown in
(78)
(79) Processor 1820 may include any suitable combination of hardware and software implemented in one or more modules to execute instructions and manipulate data to perform some or all of the described functions of wireless device 110. In some embodiments, processor 1820 may include, for example, one or more computers, one or more central processing units (CPUs), one or more microprocessors, one or more applications, and/or other logic.
(80) Memory 1830 is generally operable to store instructions, such as a computer program, software, an application including one or more of logic, roles, algorithms, code, tables, etc. and/or other instructions capable of being executed by a processor. Examples of memory 1830 include computer memory (for example, Random Access Memory (RAM) or Read Only Memory (ROM)), mass storage media (for example, a hard disk), removable storage media (for example, a Compact Disk (CD) or a Digital Video Disk (DVD)), and/or or any other volatile or non-volatile, non-transitory computer-readable and/or computer-executable memory devices that store information.
(81) Other embodiments of wireless device 110 may include additional components beyond those shown in
(82)
(83) At step 1908, wireless device 110 determines a subset of Q antenna ports from the P antenna ports. In a particular embodiment, for example, a first subset of P/2 CSI-RS ports and a second subset of P/2 CSI-RS ports may be determined from the P CSI-RS ports. The first subset may include N/2 CSI-RS ports from each of the K CSI-RS configurations, and the second subset may include the remaining N/2 CSI-RS ports from each of the K CSI-RS configurations. In a particular embodiment, the first subset may correspond to a first length-P/2 vector of a length-P preceding vector in. a codebook used for state information feedback. By contrast the second subset may correspond to a second length-P/2 vector of the same length-P precoding vector, wherein the second length-P/2 vector is obtainable by scaling the first length-P/2 vector by a complex number.
(84) In certain embodiments, determining the subset of Q antenna ports from the P antenna ports at step 1908 may include forming the first subset as CSI-RS ports indexed by
(85)
Conversely, the second subset may be formed as CSI-RS ports indexed by
(86)
In both subsets, k may run over the K CSI-RS configuration, k=0, 1, . . . , K−1.
(87) At step 1912, wireless device 110 measures channel information based on the reference signals associated with the subset of antenna ports. For example, the channel information may be estimated over received reference signals associated with the subset of ports based on a predefined codebook of Q ports, in a particular embodiment. Additionally, the measuring of channel information may be performed periodically, in certain embodiments.
(88) At step 1916, wireless device 110 reports the measured channel information to the network node 115. For example, estimated channel information may be sent to the network node 115 over a regular physical uplink control channel, in a particular embodiment. Additionally, the reporting of channel information may be performed periodically, in certain embodiments.
(89)
(90) At step 2008, while being served by a second network node 115 distinct from the first network node 115, wireless device 110 receives a reference signal in said specific set of resource elements front the second network node 115 and transmits feedback information to the second network node 115. The reference signal or the combination of the reference signal and the set of resource elements is indicative of an identifier.
(91) In certain embodiments, the method for providing channel information as described above may be performed by a computer networking virtual apparatus,
(92) The receiving module 2110 may perform the receiving functions of computer networking virtual apparatus 2100. For example, in certain embodiments, receiving module 2110 may receive a CSI-RS setup from a network node. The CSI-RS setup may include K-CSI-RS configurations, each with N CSI-RS ports and an antenna configuration of the network node with P antenna ports.
(93) As another example, in certain embodiments, receiving module 2110 may receive a reference signal in a specific set of resource elements from the first network node 115. The reference signal from the first network node or the combination of the reference signal and the set of resource elements are indicative of an identifier. Receiving module 2110 may also receive a reference signal in said set of specific resource elements from a second network node while being served by the second network node 115. Likewise, the reference signal from the second network node or the combination of the reference signal and the set of resource elements are also indicative of an identifier. The reference signals may be received with different, beamforming in spite of tire equality of the identifiers.
(94) The determining module 2120 may perform the determining functions of computer networking virtual apparatus 2100. For example, determining module 2100 may determine a subset of Q antenna ports from the P antenna ports received by receiving module 2110 in certain embodiments.
(95) The measuring module 2130 may perform the measuring functions of computer networking virtual apparatus 2100. For example, measuring module 2130 may measure channel information based on the reference signals associated with the subset of antenna ports. In a particular embodiment, the measuring module 2130 may perform the measuring periodically.
(96) The transmitting and/or reporting module 2140 may perform the transmitting and/or reporting functions of computer networking virtual apparatus 2100. For example, in certain embodiments, transmitting and/or repotting module 2140 may report the measured channel information to the network node. In a particular embodiment, the transmitting and/or reporting module 2140 may perform the reporting function periodically.
(97) In certain embodiments, transmitting and/or reporting module 2140 may transmit feedback information to the first network node 115. Additionally or alternatively, transmitting and/or reporting module 2140 may transmit feedback information to the second network node 115.
(98) Other embodiments of computer networking virtual apparatus 2100 may include additional components beyond those shown in
(99)
(100) Processor 2220 may include any suitable combination of hardware and software implemented in one or more modules to execute instructions and manipulate data to perform some or all of the described functions of the radio network controller or core network node 130. In some embodiments, processor 2220 may include, for example, one or more computers, one or more central processing units (CPUs), one or more microprocessors, one or more applications, and/or other logic.
(101) Memory 2230 is generally operable to store instructions, such as a computer program, software, an application including one or more of logic, rules, algorithms, code, tables, etc. and/or other instructions capable of being executed by a processor. Examples of memory 2230 include computer memory (for example. Random Access Memory (RAM) or Read Only Memory (ROM)), mass storage media (for example, a hard disk), removable storage media (for example, a Compact Disk (CD) or a Digital Video Disk (DVD)), and/or or any other volatile or non-volatile, non-transitory computer-readable and/or computer-executable memory devices that store information.
(102) In some embodiments, network interface 2240 is communicatively coupled to processor 2220 and may refer to any suitable device operable to receive input for the network node, send output from tire network node, perform suitable processing of The input or output or both, communicate to other devices, or any combination of the preceding. Network interface 2240 may include appropriate hardware (e.g., port, modem, network interface card, etc.) and software, including protocol conversion and data processing capabilities, to communicate through a network.
(103) Other embodiments of the network node may include additional components beyond those shown in
(104) According to certain embodiments, a method of selecting a subset from a predetermined set of P CSI-RS ports for receiving channel state information is provided. The method is implemented in a network node (115) of a wireless communication network (100). The network node comprises an antenna array with controllable polarization. Each CSI-RS port corresponds to a combination of a set of resource elements and an antenna port of said antenna array. The predetermined set comprises a first number P.sub.1 of CSI-RS ports with a first polarization state and a second number P.sub.2 of CSI-RS ports with a second polarization state, where the first and second polarization states distinct. The method includes populating the subset with Q CSI-RS ports in such manner that the ratio of CSI-RS ports respectively having the first and second polarization states is equal to the ratio of the first and second numbers.
(105) Optionally, The subset is populated with QP.sub.1/(P.sub.1+P.sub.2) CSI-RS ports having the first polarization state and QP.sub.2/(P.sub.1+P.sub.2) CSI-RS ports having the second polarization state.
(106) Optionally, P.sub.1=P.sub.2, whereby the subset is populated with equal proportions of CSI-RS ports with the first and second polarization states.
(107) Optionally, P.sub.1+P.sub.2=P.
(108) Optionally, half of the CSI-RS ports in the subset have the first polarization state and half of the CSI-RS ports in the subset have the second polarization state.
(109) Optionally, Q≤X.
(110) Optionally, Q is a multiple of 2.
(111) Optionally, Q=2 or Q=4 or Q=8.
(112) Optionally, each CSI-RS port in the predetermined set is associated with an identifier susceptible of enabling the network node to identify feedback relating to a reference signal transmitted by the network node on this CSI-RS port.
(113) Optionally, one of the following holds: the identifier is explicitly stated in a feedback signal; the identifier is implicitly derivable from an internal structure of a feedback signal; and the identifier is implicitly derivable from a resource used for transmitting a feedback signal.
(114) Optionally, the CSI-RS ports are selected from an ordered set.
(115) Optionally, the ordered set is one of a subset of the integers or a subset of an alphabet.
(116) Optionally, populating the subset includes preserving the identifiers with which the CSI-RS ports are associated.
(117) Optionally, the CSI-RS ports with a first polarization state are associated with identifiers in a first predetermined range, and the CSI-RS ports with a second polarization state are associated with identifiers in a second predetermined range. The subset is populated with Q/2 CSI-RS ports from a lower portion of the first predetermined range and Q/2 CSI-RS ports from a lower portion of the second predetermined range.
(118) Optionally, each CSI-RS port is associated with an identifier being a port number p given by
(119)
where K is a number of CSI reference signal configurations, k is any integer in [0, K−1], N is the number of antenna ports or reference signals in each of the K configurations, and r is any integer in [15,14+N].
(120) Optionally, the subset is populated with Q CSI-RS ports associated with port numbers given by
(121)
where k is restricted to
(122)
and Q≥N.
(123) Optionally, the CSI-RS ports are associated with alternative identifiers, which are selected from the ordered set and susceptible of enabling the network node to identify a first type of feedback relating to a CSI reference signal transmitted by the network node on a CSI-RS port.
(124) Optionally, the identifiers define an ordering of the CSI-RS ports, which is preserved by the alternative identifiers.
(125) Optionally, the alternative identifiers are consecutive.
(126) Optionally, the alternate identifiers p′ are given by
(127)
where q=0 is for the first polarization state and q=1 is for the second polarization state.
(128) Optionally, an aggregated resource and port number are assigned to each CSI-RS port in the subset.
(129) Optionally, the number Q of CSI-RS ports in the subset is determined as a function of the number P of CSI-RS ports in the predetermined set.
(130) Optionally, determining includes one of: selecting Q≤8 such that Q<P; selecting Q ∈ {2,4,8} such that Q<P: selecting a greatest possible Q≤8 such that Q<P; and selecting a greatest possible Q ∈ {2,4,8} such that Q<P.
(131) Optionally, the method is implemented in a network node comprising an antenna array with antenna elements arranged along two axes.
(132) Optionally, the first polarization state corresponds to a linear array of antenna elements with one polarization direction and the second polarization state corresponds to a linear array of antenna elements with a second polarization direction.
(133) Optionally, the antenna array comprises cross-polarized antenna elements.
(134) Optionally, the method further includes transmitting a plurality of CSI reference signals over CSI-RS ports from the predetermined set and receiving feedback from, a user equipment (110) in the wireless communication network.
(135) Optionally, the method further includes determining whether feedback of a first or second type is to be enabled. If feedback of the first type is to be enabled, transmitting reference signals on CSI-RS ports from the subset. If feedback of the second type is to be enabled, transmitting reference signals on CSI-RS ports from the predetermined set.
(136) Optionally, the method further includes using a common codebook for both types of reporting.
(137) Optionally, the method further includes using a first codebook for the first type of reporting and a second codebook for the second type of reporting.
(138) Optionally, the first type of feedback is periodic CSI reporting,
(139) Optionally, the method further includes an initial step of signaling to the user equipment a number P of antenna ports by which the network node is configured and signaling a configuration of CSI-RS ports corresponding to the total of P CSI-RS ports being K aggregated N-port CSI-RS configurations, where K is the number of available CSI reference signal configurations.
(140) According to certain embodiments, a method in a user equipment (110) operable in a wireless communication network (100), operable to be served by a plurality of network nodes (115), each of which comprises an antenna, array is provided. The method includes, while being served by a first network node (115A), receiving a reference signal in a specific set of resource elements from the first network node and transmitting feedback information to the first network node. The reference signal or the combination of the reference signal and the set of resource elements is indicative of an identifier. While being served by a second network node (115B) distinct from the first network node, a reference signal in said, set of specific resource elements is received from the second network node, and feedback information is transmitted to the second network node. The reference signal or the combination of the reference signal and the set of resource elements is indicative of an identifier, wherein the reference signal is received with different beamforming from the first and second network nodes in spite of equality of the identifiers.
(141) According to certain embodiments, a method in a user equipment (110) is served by a wireless communication network node (115) equipped with more than eight antenna ports for transmitting signals to the UE. The method includes receiving, from the network node, a CSI-RS configuration comprising K CSI-RS configurations each with N CSI-RS ports and an antenna configuration of the network node with P antenna ports. A subset of Q antenna ports is determined from the P antenna ports. Channel state information is periodically measured based on the reference signals associated the subset of antenna ports. The measured channel state information is periodically reported to the network node.
(142) According to certain embodiments, a method in a network node is disclosed. The method comprises selecting a subset front a. predetermined set of P CSI-RS ports for receiving channel information. The network node comprises an antenna army with controllable polarization. Each CSI-RS port corresponds to a combination of a set of resource elements and an antenna port of said antenna array. The predetermined set comprises a first number P.sub.1 of CSI-RS ports with a first polarization state and a second number P.sub.2 of CSI-RS ports with a second polarization state. The first and second polarization states are distinct. The method further comprises populating the subset with Q CSI-RS ports in such manner that the ratio of CSI-RS ports respectively having the first and second polarization states is equal to the ratio of the first and second numbers.
(143) According to certain embodiments, a method in a wireless device served by a network node of a wireless communication network is provided. The network node is equipped with P=8 or P>8 antenna ports for transmitting signals to the wireless device. The method includes receiving, from the network node, a CSI-RS setup that includes K CSI-RS configurations each with N CSI-RS ports and art antenna configuration of the network node with P antenna ports. A subset of Q antenna ports is determined from the P antenna ports. Channel information is measured based on the reference signals associated with the subset of antenna ports The measure channel information is reported to the network node.
(144) According to certain embodiments, a method in a wireless device of a wireless communication network is provided. The wireless device is served by a plurality of network nodes, and each network node includes an antenna array. The method includes receiving a reference signal in a specific set of resource elements from a first network node while being served by the first network node. Feedback information is transmitted to the first network node. The reference signal or the combination of the reference signal and the set of resource elements is indicative of an identifier. While being served by a second network node distinct from the first network node, a reference signal in said set of specific resource elements is received from the second network node. Feedback information is transmitted to the second network node, and the reference signal or the combination of the reference signal and the set of resource elements is indicative of an identifier. The reference signal is received with different beamforming from the first and second network nodes in spite of the equality of the identifiers.
(145) According to certain embodiments, a network node is provided. The network node includes an antenna array with controllable polarization, and one or more processors. The one or more processors are configured to select a subset from a predetermined set of P CSI-RS ports for receiving channel information, wherein each CSI-RS port corresponds to a combination of a set of resource elements and an antenna port of said antenna array, the predetermined set comprises a first number P.sub.1 of CSI-RS ports with a first polarization state and a second number P.sub.2 of CSI-RS ports with a second polarization state, the first and second polarization states being distinct. The one or more processors are further configured to populate the subset with Q CSI-RS ports in such manner that the ratio of CSI-RS ports respectively having the first and second polarization states is equal to the ratio of the first and second numbers
(146) According to certain embodiments, a wireless device configured to be served by a network node in a wireless communication network is provided. The network node is equipped with P=8 or P>8 antenna ports for transmitting signals to the wireless device. The wireless device includes one or more processors. The one or more processors are configured to receive, from the network node, a CSI-RS set up comprising K CSI reference signal configurations each with N CSI-RS ports and an antenna configuration of the network node with P antenna ports. The one or more processors are further configured to determine a subset of Q antenna ports from the P antenna ports and measure channel information based on the reference signals associated with the subset of antenna ports. The measured channel information is reported to the network node.
(147) According to certain embodiments, a wireless device configured to be served by a plurality of network nodes each comprising an antenna array is provided. The wireless device includes one or more processors. The one or more processors axe configured to, while being served by a first network node, receive a reference signal in a specific set of resource elements from the first network node and transmit feedback information to the first network node. The reference signal or the combination of the reference t signal and the set of resource elements is indicative of an identifier. Tire one or more processors are further configured to, while being served by a second network node distinct from the first network node, receive a reference signal in said specific resource element from the second network node and transmit feedback information to the second network node. The reference signal or the combination of the reference signal and the set of resource elements is indicative of an identifier, and the wireless device is configured to receive the reference signal with different beamforming from the first and second network nodes in spite of equality of the identifiers.
(148) According to certain embodiments, a computer program product comprising instructions stored on non-transient computer-readable media which, when executed by a processor, performs the acts of: selecting a subset from a predetermined set of P CSI-RS ports for receiving channel information, wherein each CSI-RS port corresponds to a combination of a set of resource elements and an antenna port of an antenna array, the predetermined set comprises a first number P.sub.1 of CSI-RS ports with a first polarization state and a second, number P.sub.2 of CSI-RS ports with a second polarization state, the first, and second polarization states being distinct, and populating the subset with Q CSI-RS ports in such manner that the ratio of CSI-RS ports respectively having the first and second polarization states is equal to the ratio of the first and second numbers.
(149) According to certain embodiments, a computer program product, comprising instructions stored on non-transient computer-readable media which, when executed by a processor, performs the acts of: while being served by a first network node, receiving a reference signal in a set of specific resource elements from the first network node and transmitting feedback information to the first network node, wherein the reference signal or the combination of the reference signal and the set of resource elements is indicative of an identifier; and while being served by a second network node distinct from the first network node, receiving a reference signal in said set of specific resource elements from the second network node and transmitting feedback information to the second network node, wherein the reference signal or the combination of the reference signal and the set of resource elements is indicative of an identifier. The reference signal is received with different beamforming from the first and second network nodes in spite of equality of the identifiers.
(150) According to certain embodiments, a computer program product comprising instructions stored on non-transient computer-readable media which, when executed by a processor, performs the acts of: receiving, from a network node, a CSI-RS setup comprising K CSI reference signal configurations each with N CSI-RS ports and an antenna configuration of the network node with P antenna ports, wherein the network node is equipped with P=8 or P>8 antenna ports for transmitting signals to the wireless device; determining a subset of Q antenna ports from the P antenna ports; measuring channel information based on the reference signals associated the subset of antenna ports; and reporting the measured channel information to the network node.
(151) Certain embodiments of the present disclosure may provide one or more technical advantages. As one example, certain embodiments may advantageously not require additional signaling for configuring CSI-RS ports for periodic CSI reporting. As another example, legacy terminals can be supported with the same eNB antenna array as FD-MIMO supporting terminals without additional CSI-RS overhead, since the ports used for first type of feedback is a subset of the ports used for second type of feedback. As yet another example, the codebooks, which are designed for cross polarized antenna arrays where the first half of antenna ports are on one polarization and the second half of antenna ports are on a different, polarization, can be used both for the first type and the second type of feedback.
(152) Modifications, additions, or omissions may be made to the systems and apparatuses described herein without departing from the scope of the disclosure. The components of the systems and apparatuses may be integrated or separated. Moreover, the operations of the systems and apparatuses may be performed by more, fewer, or other components. Additionally, operations of the systems and apparatuses may be performed using any suitable logic comprising software, hardware, and/or other logic. As used in this document, “each” refers to each member of a set or each member of a subset of a set.
(153) Modifications, additions, or omissions may be made to the methods described herein without departing from the scope of the disclosure. The methods may include more, fewer, or other steps. Additionally, steps may be performed in any suitable order.
(154) Although this disclosure has been, described in terms of certain embodiments, alterations and permutations of the embodiments will be apparent to those skilled in the art. Accordingly, the above description of the embodiments does not constrain this disclosure. Other changes, substitutions, and alterations are possible without departing from the spirit and scope of this disclosure, as defined by the following claims.
(155) Abbreviations used in the preceding description include:
(156) ARQ Automatic Retransmission Request
(157) CQI Channel Quality Indicators
(158) CSI Channel State Information
(159) CSI-RS Channel State Information Reference Signals
(160) DFT Discrete Fourier Transform
(161) LTE Long Term Evolution
(162) MIMO Multiple Input Multiple Output
(163) OCC Orthogonal Cover Code
(164) OFDM Orthogonal Frequency Division Multiplexing
(165) PMI Precoding Matrix Indicator
(166) PUCCH Physical Uplink Control Channel
(167) RI Rank Indicator
(168) SINR Signal to interference plus Noise Ratio
(169) TFRE Time Frequency Resource Element
(170) UE User Equipment