Broadcast Channel Transmission and Demodulation
By employing interleaved DMRS with NR-PSS and NR-SSS for NR-PBCH demodulation, the challenge of increased bandwidth and lack of CRS in NR systems is addressed, achieving improved channel estimation and demodulation efficiency.
Patent Information
- Application Number
- JP2021205357
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2017-08-09
- Filing Date
- 2021-12-17
- Publication Date
- 2025-05-20
- Estimated Expiration
- 2038-01-26
AI Technical Summary
In New Radio (NR) systems, the increased bandwidth of the Physical Broadcast Channel (NR-PBCH) relative to the Secondary Synchronization Signal (NR-SSS) and the absence of a Common Reference Signal (CRS) complicate accurate channel estimation and demodulation, necessitating a new reference signal design for efficient NR-PBCH demodulation.
The implementation of interleaved demodulation reference signals (DMRS) associated with synchronization signal blocks (SSB) for NR-PBCH, utilizing NR-PSS and NR-SSS for improved synchronization and channel estimation, along with hybrid and non-uniform DMRS densities for enhanced channel estimation performance.
This approach enhances the accuracy and efficiency of NR-PBCH demodulation by leveraging existing synchronization signals and optimizing DMRS distribution, improving channel estimation and reducing the need for additional reference signals.
Smart Images

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Abstract
Description
[Technical field]
[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims the benefit of U.S. Provisional Application No. 62 / 454,621, filed February 3, 2017, U.S. Provisional Application No. 62 / 500,702, filed May 3, 2017, U.S. Provisional Application No. 62 / 519,751, filed June 14, 2017, and U.S. Provisional Application No. 62 / 543,155, filed August 9, 2017, the contents of each of which are incorporated herein by reference. [Background technology]
[0002] Fourth generation long term evolution (LTE) such as legacy cellular systems adopt a relatively simple synchronization procedure. For example, in LTE, the physical broadcast channel (PBCH) always uses the same bandwidth as both the primary synchronization signal (PSS) and the secondary synchronization signal (SSS). Therefore, in legacy LTE systems, both are allocated in the same six resource blocks (RBs) in the frequency domain. Due to frequency correlation, the receiver of the wireless transmit / receive unit (WTRU) can use both the PSS and the SSS as reference signals for PBCH demodulation.
[0003] However, in New Radio (NR), the NR-PBCH may consume more bandwidth and may be assigned more RBs than the NR-SSS. In NR, the PBCH may occupy 24 RBs compared to 12 RBs for the SSS. Thus, in NR, the SSS is no longer a good reference signal for PBCH demodulation due to the frequency disparity.
[0004] Furthermore, in LTE, the PBCH may also use a common reference signal (CRS) for PBCH demodulation when it exists. However, in NR, there is no CRS due to NR's attempt to minimize always-on signals. Thus, the CRS is no longer suitable as a reference signal for NR-PBCH demodulation. For improved performance of NR-PBCH demodulation, accurate channel estimation may be required, especially when one-shot detection is considered. Therefore, a new reference signal (RS) design for accurate and efficient NR-PBCH demodulation may be adopted in the new NR-PBCH / NR-SS structure. Summary of the Invention
[0005] A method and apparatus for demodulating a New Radio PBCH (NR-PBCH) signal is disclosed. The method can include receiving a primary SS (PSS) and a secondary synchronization signal (SSS). The received SSS signals can be used as reference signals for detecting a reference signal of the NR-PBCH. These demodulation reference signals can be interleaved with data on the NR-PBCH. In one method, the NR-PBCH demodulation reference signal (DMRS) is associated with a synchronization signal block (SSB) index to improve randomization in the synchronization process. [Brief description of the drawings]
[0006] A more detailed understanding may be had from the following description, given by way of example in conjunction with the accompanying drawings, in which like reference numbers indicate similar elements, and in which: [Figure 1A] FIG. 1 is a system diagram illustrating an example communication system in which one or more disclosed embodiments may be implemented. [Figure 1B] 1A is a system diagram illustrating an example wireless transmit / receive unit (WTRU) that may be used within the communications system illustrated in FIG. 1A, according to an embodiment. [Figure 1C] FIG. 1B is a system diagram illustrating an example radio access network (RAN) and an example core network (CN) that may be used within the communications system illustrated in FIG. 1A, according to an embodiment. [Figure 1D] FIG. 1B is a system diagram illustrating another example RAN and another example CN that may be used within the communications system illustrated in FIG. 1A, according to an embodiment. [Diagram 2] FIG. 1 illustrates an example of a New Radio (NR) Physical Broadcast Channel (NR-PBCH) multiplexed with an NR Primary Synchronization Channel (SS) (NR-PSS) and an NR Secondary Synchronization Channel (NR-SSS) with a repeated NR-PBCH. [Diagram 3] FIG. 13 is a diagram illustrating an example of an NR-PBCH multiplexed with an NR-PSS and NR-SSS having a repeated NR-SS. [Figure 4] FIG. 1 is a diagram illustrating an example of an NR-PBCH dedicated demodulation reference signal design 1 using one antenna port. [Diagram 5] FIG. 13 is a diagram showing an example of NR-PBCH dedicated demodulation reference signal design 3 using two antenna ports. [Figure 6] FIG. 1 illustrates an example NR-PBCH hybrid dedicated demodulation reference signal. [Figure 7] FIG. 1 illustrates an example of a non-uniform density NR-PBCH dedicated demodulation reference signal. [Figure 8] FIG. 1 illustrates an example of non-uniform demodulation reference signal (DMRS) density depending on PSS / SSS bandwidth. [Figure 9] FIG. 1 illustrates an example of configurable NR-PBCH demodulation. [Figure 10A] FIG. 1 is a circuit diagram of a seven-stage M-sequence shifter. [Figure 10B] FIG. 1 is a circuit diagram of a six-stage M-sequence shifter. [Figure 11] 1 is a flow chart of a procedure for receiver processing and information detection. [Figure 12] FIG. 1 illustrates an example of an initial access procedure and NR-PBCH demodulation assisted or aided by a QCL indicator. [Figure 13] A diagram showing an example of using SS blocks associated with different precoders. [Figure 14]A diagram showing an example of using SS blocks associated with different precoders that are shifted on different PBCH messages. [Figure 15] FIG. 1 is a diagram of an example combination of analog beamforming and two-port cyclic delay diversity (CDD) for diversity. [Figure 16] FIG. 1 is a diagram of an example combination of digital and analog beamforming in the time domain. [Figure 17] FIG. 1 is a diagram of an example combination of digital and analog beamforming in the time and frequency domains. [Figure 18] FIG. 1 is a diagram of an example combination of analog beamforming and two-port space-frequency block coding (SFBC) for diversity. [Figure 19] FIG. 1 illustrates an example transmission point (TRP) transmission structure for initial access. [Figure 20] FIG. 1 illustrates an exemplary single-stage exhaustive search beam sweep procedure. [Figure 21] FIG. 13 illustrates an example of a multi-stage WTRU hierarchical beam sweeping procedure. [Figure 22] A diagram showing an example of a multi-stage TRP and TRP / WTRU hierarchical beam sweeping procedure. [Figure 23] A diagram showing an example of a multi-stage TRP / WTRU hierarchical TRP selective beam sweeping procedure. [Figure 24] 13A-13C are diagrams of signal-to-interference-and-noise-ratio (SINR) performance results for different beam sweeping procedures. [Diagram 25] A diagram showing an example of an alternative TRP transmission structure for initial access. [Figure 26] FIG. 13 illustrates an example of an alternative single-stage exhaustive search beam sweep procedure. [Figure 27] FIG. 1 illustrates a single-stage multiple radio frequency (multi-RF) chain TRP beam sweeping procedure. [Figure 28] FIG. 1 illustrates an example of simple bit pattern frequency repetition. [Figure 29]FIG. 13 is another exemplary diagram of swapped repetition of bit pattern frequencies. [Diagram 30] FIG. 1 illustrates an example of combined time and frequency swapped repetition. [Diagram 31] FIG. 13 illustrates a second example of combined time and frequency swapped repetition. [Diagram 32] FIG. 1 shows an example of a length-62 sequence with repetition in frequency. [Diagram 33] FIG. 13 illustrates an example of a distribution of NR-PBCH DMRS for two sequences in a comb pattern. [Diagram 34] FIG. 1 illustrates an example of DMRS and SBTI labels using cyclic shifting. [Diagram 35] FIG. 13 shows an example of DMRS and SBTI labels using cyclic shifting in a comb pattern. [Diagram 36] Table 1 is a sequence of rows representing the different cyclic shifts used to indicate SBTI. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0007] 1A illustrates an example communication system 100 in which one or more disclosed embodiments may be implemented. The communication system 100 may be a multiple access system that provides content, such as voice, data, video, messaging, broadcasts, etc., to multiple wireless users. The communication system 100 may enable multiple wireless users to access such content through sharing of system resources, including wireless bandwidth. For example, the communication system 100 may utilize one or more channel access methods, such as code division multiple access (CDMA), time division multiple access (TDMA), frequency division multiple access (FDMA), orthogonal FDMA (OFDMA), single carrier FDMA (SC-FDMA), zero-tailed unique word DFT spread OFDM (ZT UW DTS-s OFDM), unique word OFDM (UW-OFDM), resource block-filtered OFDM, and filter bank multicarrier (FBMC).
[0008] 1A, the communications system 100 may include wireless transmit / receive units (WTRUs) 102a, 102b, 102c, 102d, a RAN 104 / 113, a CN 106 / 115, a public switched telephone network (PSTN) 108, the Internet 110, and other networks 112, although it will be understood that the disclosed embodiments contemplate any number of WTRUs, base stations, networks, and / or network elements. Each of the WTRUs 102a, 102b, 102c, 102d may be any type of device configured to operate and / or communicate in a wireless environment. For example, the WTRUs 102a, 102b, 102c, 102d, any of which may be referred to as a “base station” and / or “STA,” may be configured to transmit and / or receive wireless signals, and may include user equipment (UE), mobile stations, fixed or mobile subscriber units, subscription-based units, pagers, cellular phones, personal digital assistants (PDAs), smartphones, laptops, netbooks, personal computers, wireless sensors, hotspots or Mi-Fi devices, Internet of things (IoT) devices, watches or other wearables, head mounted displays (HMDs), vehicles, drones, medical devices and applications (e.g., remote surgery), industrial devices and applications (e.g., robots and / or other wireless devices operating in the context of industrial and / or automated processing chains), consumer electronics devices, and devices operating commercial and / or industrial wireless networks, etc. Any of the WTRUs 102a, 102b, 102c, and 102d may be referred to interchangeably as UEs.
[0009] The communication system 100 may also include a base station 114a and / or a base station 114b. Each of the base stations 114a, 114b may be any type of device configured to wirelessly interface with at least one of the WTRUs 102a, 102b, 102c, 102d to facilitate access to one or more communication networks, such as the CN 106 / 115, the Internet 110, and / or other networks 112. For example, the base stations 114a, 114b may be a base transceiver station (BTS), a Node-B, an eNode B, a home Node B, a home eNode B, a gNB, an NR NodeB, a site controller, an access point (AP), a wireless router, etc. Although the base stations 114a, 114b are each shown as a single element, it will be understood that the base stations 114a, 114b may include any number of interconnected base stations and / or network elements.
[0010] The base station 114a may be part of the RAN 104 / 113, which may also include other base stations and / or network elements (not shown), such as a base station controller (BSC), a radio network controller (RNC), relay nodes, etc. The base station 114a and / or the base station 114b may be configured to transmit and / or receive wireless signals on one or more carrier frequencies, which may be referred to as cells (not shown). These frequencies may be in the licensed spectrum, the unlicensed spectrum, or a combination of the licensed and unlicensed spectrum. A cell may provide coverage for wireless services in a particular geographic area, which may be relatively fixed or may change over time. A cell may be further divided into cell sectors. For example, a cell associated with the base station 114a may be divided into three sectors. Thus, in one embodiment, the base station 114a may include three transceivers, one for each sector of the cell. In an embodiment, the base station 114a may employ multiple-input multiple-output (MIMO) technology and thus may utilize multiple transceivers for each sector of the cell. For example, beamforming may be used to transmit and / or receive signals in desired spatial directions.
[0011] The base stations 114a, 114b may communicate with one or more of the WTRUs 102a, 102b, 102c, 102d over an air interface 116, which may be any suitable wireless communication link (e.g., radio frequency (RF), microwave, centimeter wave, micrometer wave, infrared (IR), ultraviolet (UV), visible light, etc.). The air interface 116 may be established using any suitable radio access technology (RAT).
[0012] More specifically, as noted above, the communication system 100 may be a multiple access system and may employ one or more channel access schemes, such as CDMA, TDMA, FDMA, OFDMA, SC-FDMA, etc. For example, the base stations 114a in the RAN 104 / 113 and the WTRUs 102a, 102b, 102c may implement a radio technology, such as Universal Mobile Telecommunications System (UMTS) Terrestrial Radio Access (UTRA), which may establish the air interface 115 / 116 / 117 using Wideband CDMA (WCDMA®). WCDMA may include communication protocols, such as High Speed Packet Access (HSPA) and / or Evolved HSPA (HSPA+). HSPA may include High Speed Downlink (DL) Packet Access (HSDPA) and / or High Speed UL Packet Access (HSUPA).
[0013] In an embodiment, the base station 114a and the WTRUs 102a, 102b, 102c may implement a radio technology such as Evolved UMTS Terrestrial Radio Access (E-UTRA), which may establish the air interface 116 using Long Term Evolution (LTE) and / or LTE Advanced (LTE-A) and / or LTE Advanced Pro (LTE-A Pro).
[0014] In an embodiment, the base station 114a and the WTRUs 102a, 102b, 102c may implement a radio technology, such as New Radio (NR) radio access, capable of establishing the air interface 116 using NR.
[0015] In an embodiment, the base station 114a and the WTRUs 102a, 102b, 102c may implement multiple radio access technologies. For example, the base station 114a and the WTRUs 102a, 102b, 102c may implement LTE and NR radio access together, e.g., using a dual connectivity (DC) principle. Thus, the air interface utilized by the WTRUs 102a, 102b, 102c may be characterized by multiple types of radio access technologies and / or transmissions sent to / from multiple types of base stations (e.g., eNBs and gNBs).
[0016] In other embodiments, the base station 114a and the WTRUs 102a, 102b, 102c may implement a wireless technology such as IEEE 802.11 (i.e., Wireless Fidelity (WiFi)), IEEE 802.16 (i.e., Worldwide Interoperability for Microwave Access (WiMAX)), CDMA2000, CDMA2000 1X, CDMA2000 EV-DO, Interim Standard 2000 (IS-2000), Interim Standard 95 (IS-95), Interim Standard 856 (IS-856), Global System for Mobile Communications (GSM), Enhanced Data Rates for GSM Evolution (EDGE), GSM EDGE (GERAN), or the like.
[0017] The base station 114b of FIG. 1A may be, for example, a wireless router, a Home Node B, a Home eNode B, or an access point, and may utilize any suitable RAT for facilitating wireless connectivity within a localized area, such as an office, a home, a vehicle, a campus, an industrial facility, an air corridor (e.g., for use with drones), a road, etc. In one embodiment, the base station 114b and the WTRUs 102c, 102d may implement a radio technology, such as IEEE 802.11, to establish a wireless local area network (WLAN). In an embodiment, the base station 114b and the WTRUs 102c, 102d may implement a radio technology, such as IEEE 802.15, to establish a wireless personal area network (WPAN). In yet another embodiment, the base station 114b and the WTRUs 102c, 102d may utilize a cellular-based RAT (e.g., WCDMA, CDMA2000, GSM, LTE, LTE-A, LTE-A Pro, NR, etc.) to establish a picocell or femtocell. 1A, the base station 114b may have a direct connection to the Internet 110. Thus, the base station 114b may not be required to access the Internet 110 via the CN 106 / 115.
[0018] The RAN 104 / 113 may communicate with the CN 106 / 115, which may be any type of network configured to provide voice, data, application, and / or Voice over Internet Protocol (VoIP) services to one or more of the WTRUs 102a, 102b, 102c, 102d. The data may have various Quality of Service (QoS) requirements, such as different throughput requirements, latency requirements, error resilience requirements, reliability requirements, data throughput requirements, mobility requirements, etc. The CN 106 / 115 may provide call control, charging services, mobile location services, prepaid calling, Internet connectivity, video distribution, etc., and / or perform high level security functions such as user authentication. Although not shown in FIG. 1A, it will be understood that the RAN 104 / 113 and / or the CN 106 / 115 may communicate directly or indirectly with other RANs employing the same RAT as the RAN 104 / 113 or a different RAT. For example, in addition to being connected to the RAN 104 / 113, which may be utilizing NR radio technology, the CN 106 / 115 may also communicate with another RAN (not shown) employing GSM, UMTS, CDMA2000, WiMAX, E-UTRA, or WiFi radio technology.
[0019] The CN 106 / 115 may also act as a gateway for the WTRUs 102a, 102b, 102c, 102d to access the PSTN 108, the Internet 110, and / or other networks 112. The PSTN 108 may include a circuit-switched telephone network providing plain old telephone service (POTS). The Internet 110 may include a global system of interconnected computer networks and devices that use common communication protocols such as TCP, UDP, and / or IP in the TCP / IP Internet protocol suite. The networks 112 may include wired or wireless communication networks owned and / or operated by other service providers. For example, the networks 112 may include another CN connected to one or more RANs that may employ the same RAT as the RAN 104 / 113 or a different RAT.
[0020] Some or all of the WTRUs 102a, 102b, 102c, 102d in the communications system 100 may include multi-mode capabilities (e.g., the WTRUs 102a, 102b, 102c, 102d may include multiple transceivers for communicating with different wireless networks over different wireless links). For example, the WTRU 102c shown in FIG. 1A may be configured to communicate with a base station 114a that may employ a cellular-based wireless technology and a base station 114b that may employ an IEEE 802 wireless technology.
[0021] 1B is a system diagram illustrating an example WTRU 102. As shown in FIG. 1B, the WTRU 102 may include, among other things, a processor 118, a transceiver 120, a transmit / receive element 122, a speaker / microphone 124, a keypad 126, a display / touchpad 128, non-removable memory 130, removable memory 132, a power source 134, a GPS chipset 136, and / or other peripherals 138. It will be understood that the WTRU 102 may include any sub-combination of the above elements while remaining consistent with an embodiment.
[0022] The processor 118 may be a general purpose processor, a special purpose processor, a conventional processor, a digital signal processor (DSP), multiple microprocessors, one or more microprocessors in association with a DSP core, a controller, a microcontroller, an application specific integrated circuit (ASIC), a field programmable gate array (FPGA) circuit, any other type of integrated circuit (IC), a state machine, etc. The processor 118 may perform signal coding, data processing, power control, input / output processing, and / or any other functionality that enables the WTRU 102 to operate in a wireless environment. The processor 118 may be coupled to the transceiver 120, which may be coupled to the transmit / receive element 122. Although FIG. 1B depicts the processor 118 and the transceiver 120 as separate components, it will be understood that the processor 118 and the transceiver 120 may be incorporated together in an electronic package or chip.
[0023] The transmit / receive element 122 may be configured to transmit signals to or receive signals from a base station (e.g., base station 114a) over the air interface 116. For example, in one embodiment, the transmit / receive element 122 may be an antenna configured to transmit and / or receive RF signals. In an embodiment, the transmit / receive element 122 may be an emitter / detector configured to transmit and / or receive, for example, IR, UV, or visible light signals. In yet another embodiment, the transmit / receive element 122 may be configured to transmit and receive both RF and light signals. It will be appreciated that the transmit / receive element 122 may be configured to transmit and / or receive any combination of wireless signals.
[0024] 1B as a single element, the WTRU 102 may include any number of transmit / receive elements 122. More specifically, the WTRU 102 may employ MIMO technology. Thus, in one embodiment, the WTRU 102 may include two or more transmit / receive elements 122 (e.g., multiple antennas) for transmitting and receiving wireless signals over the air interface 116.
[0025] The transceiver 120 may be configured to modulate signals to be transmitted by the transmit / receive element 122 and demodulate signals received by the transmit / receive element 122. As mentioned above, the WTRU 102 may have multi-mode capabilities. Thus, the transceiver 120 may include multiple transceivers to enable the WTRU 102 to communicate via multiple RATs, such as, for example, NR and IEEE 802.11.
[0026] The processor 118 of the WTRU 102 may be coupled to and may receive user input data from a speaker / microphone 124, a keypad 126, and / or a display / touchpad 128 (e.g., a liquid crystal display (LCD) display unit or an organic light emitting diode (OLED) display unit). The processor 118 may also output user data to the speaker / microphone 124, the keypad 126, and / or the display / touchpad 128. The processor 118 may also access information from and store data in any type of suitable memory, such as a non-removable memory 130 and / or a removable memory 132. The non-removable memory 130 may include RAM, ROM, a hard disk, or any other type of memory storage device. The removable memory 132 may include a subscriber identity module (SIM) card, a memory stick, a secure digital (SD) memory card, or the like. In other embodiments, the processor 118 may access information from memory that is not physically located on the WTRU 102, such as on a server or home computer (not shown), and may store data in those memories.
[0027] The processor 118 may receive power from the power source 134 and may be configured to distribute and / or control power to other components in the WTRU 102. The power source 134 may be any suitable device for powering the WTRU 102. For example, the power source 134 may include one or more dry batteries (e.g., nickel-cadmium (NiCd), nickel-zinc (NiZn), nickel-metal hydride (NiMH), lithium-ion (Li-ion), etc.), solar cells, fuel cells, etc.
[0028] The processor 118 may also be coupled to a GPS chipset 136, which may be configured to provide location information (e.g., longitude and latitude) regarding a current location of the WTRU 102. In addition to or instead of information from the GPS chipset 136, the WTRU 102 may receive location information from a base station (e.g., base stations 114a, 114b) over the air interface 116 and / or determine its location based on the timing of signals received from two or more nearby base stations. It will be appreciated that the WTRU 102 may obtain location information by way of any suitable location determination method while remaining consistent with an embodiment.
[0029] The processor 118 may further be coupled to other peripherals 138, which may include one or more software and / or hardware modules that provide additional features, functionality, and / or wired or wireless connectivity. For example, the peripherals 138 may include an accelerometer, an electronic compass, a satellite transceiver, a digital camera (for photos and / or videos), a USB port, a vibration device, a television transceiver, a hands-free headset, a Bluetooth module, a frequency modulation (FM) radio unit, a digital music player, a media player, a video game player module, an Internet browser, a virtual reality and / or augmented reality (VR / AR) device, an activity tracker, etc. The peripherals 138 may include one or more sensors, which may be one or more of a gyroscope, an accelerometer, a Hall effect sensor, a magnetometer, an orientation sensor, a proximity sensor, a temperature sensor, a time sensor, a geolocation sensor, an altimeter, a light sensor, a touch sensor, a barometer, a gesture sensor, a biometric sensor, and / or a humidity sensor.
[0030] The WTRU 102 may include a full-duplex radio, for which transmission and reception of some or all of the signals (e.g., associated with a particular subframe for both the UL (e.g., for transmission) and the downlink (e.g., for reception)) may be parallel and / or simultaneous. The full-duplex radio may include an interference management unit 139 for reducing and / or substantially eliminating self-interference by hardware (e.g., chokes) or signal processing by a processor (e.g., a separate processor (not shown) or the processor 118). In an embodiment, the WTRU 102 may include a half-duplex radio for transmission and reception of some or all of the signals (e.g., associated with a particular subframe for both the UL (e.g., for transmission) and the downlink (e.g., for reception)).
[0031] 1C is a system diagram illustrating the RAN 104 and the CN 106 according to an embodiment. As mentioned above, the RAN 104 may employ E-UTRA radio technology to communicate with the WTRUs 102a, 102b, 102c over the air interface 116. The RAN 104 may also communicate with the CN 106.
[0032] The RAN 104 may include eNode-Bs 160a, 160b, 160c, although it will be understood that the RAN 104 may include any number of eNode-Bs while remaining consistent with an embodiment. The eNode-Bs 160a, 160b, 160c may each include one or more transceivers for communicating with the WTRUs 102a, 102b, 102c over the air interface 116. In one embodiment, the eNode-Bs 160a, 160b, 160c may implement MIMO technology. Thus, the eNode-B 160a may, for example, use multiple antennas to transmit wireless signals to and / or receive wireless signals from the WTRU 102a.
[0033] Each of the eNode-Bs 160a, 160b, 160c may be associated with a particular cell (not shown) and may be configured to handle radio resource management decisions, handover decisions, scheduling of users in the UL and / or DL, etc. As shown in FIG 1C, the eNode-Bs 160a, 160b, 160c may communicate with one another via an X2 interface.
[0034] 1C may include a Mobility Management Gateway (MME) 162, a Serving Gateway (SGW) 164, and a Packet Data Network (PDN) Gateway (i.e., PGW) 166. Although each of the above elements is shown as part of the CN 106, it will be understood that any of these elements may be owned and / or operated by an entity other than a CN operator.
[0035] The MME 162 may be connected to each of the eNode-Bs 160a, 160b, 160c in the RAN 104 via an S1 interface and may act as a control node. For example, the MME 162 may be responsible for authenticating users of the WTRUs 102a, 102b, 102c, bearer activation / deactivation, selecting a particular serving gateway during initial attachment of the WTRUs 102a, 102b, 102c, etc. The MME 162 may also provide a control plane function for switching between the RAN 104 and other RANs (not shown) that employ other radio technologies, such as GSM and / or WCDMA.
[0036] The SGW 164 may be connected to each of the eNode-Bs 160a, 160b, 160c in the RAN 104 via an S1 interface. The SGW 164 may generally route and forward user data packets to / from the WTRUs 102a, 102b, 102c. The SGW 164 may also perform other functions, such as anchoring the user plane during inter-eNode B handover, triggering paging when DL data is available for the WTRUs 102a, 102b, 102c, managing and storing the context of the WTRUs 102a, 102b, 102c, etc.
[0037] The SGW 164 may be connected to a PGW 166, which may provide the WTRUs 102a, 102b, 102c with access to packet-switched networks, such as the Internet 110, to facilitate communications between the WTRUs 102a, 102b, 102c and IP-enabled devices.
[0038] The CN 106 may facilitate communications with other networks. For example, the CN 106 may provide the WTRUs 102a, 102b, 102c with access to circuit-switched networks, such as the PSTN 108, to facilitate communications between the WTRUs 102a, 102b, 102c and traditional land-line communications devices. For example, the CN 106 may include or communicate with an IP gateway (e.g., an IP Multimedia Subsystem (IMS) server) that serves as an interface between the CN 106 and the PSTN 108. The CN 106 may also provide the WTRUs 102a, 102b, 102c with access to other networks 112, which may include other wired or wireless networks owned and / or operated by other service providers.
[0039] Although the WTRU is described in Figures 1A-1D as a wireless terminal, it is contemplated that in certain representative embodiments such a terminal may use a wired communications interface (e.g., temporarily or permanently) with the communications network.
[0040] In an exemplary embodiment, the other network 112 may be a WLAN.
[0041] A WLAN in infrastructure basic service set (BSS) mode may have an access point (AP) for the BSS and one or more stations (STAs) associated with the AP. The AP may have access or interface to a distribution system (DS) or another type of wired / wireless network that carries traffic into and / or out of the BSS. Traffic to a TA originating from outside the BSS may arrive through the AP and be delivered to a STA. Traffic to a destination outside the BSS originating from a STA may be sent to the AP to be delivered to the respective destination. Traffic between STAs in a BSS may be sent through the AP, e.g., a source STA may send traffic to the AP, and the AP may deliver traffic to the destination STA. Traffic between STAs in a BSS may be considered and / or referred to as peer-to-peer traffic. Peer-to-peer traffic may be sent (e.g., directly) between a source STA and a destination STA using a direct link setup (DLS). In certain representative embodiments, the DLS may use 802.11e DLS or 802.11z tunneled DLS (TDLS). A WLAN using an Independent BSS (IBSS) mode may not have an AP, and the STAs (e.g., all of the STAs) in or using the IBSS may communicate directly with each other. IBSS mode communication is sometimes referred to herein as an "ad-hoc" mode of communication.
[0042] When using an 802.11ac infrastructure mode of operation or a similar mode of operation, the AP may transmit a beacon on a fixed channel, such as a primary channel. The primary channel may be a fixed width (e.g., 20 MHz bandwidth) or may be a width that is dynamically set by signaling. The primary channel may be an operating channel of the BSS and may be used by STAs to establish a connection with the AP. In a particular representative embodiment, for example, in an 802.11 system, Carrier Sense Multiple Access / Collision Avoidance (CSMA / CA) may be implemented. In CSMA / CA, STAs (e.g., all STAs), including the AP, may sense the primary channel. If the primary channel is sensed / detected and / or determined by a particular STA to be busy, the particular STA may yield. One STA (e.g., only one station) may transmit at any given time in a given BSS.
[0043] High throughput (HT) STAs may use a 40 MHz wide channel for communication, for example, by combining a primary 20 MHz channel with an adjacent or non-adjacent 20 MHz channel to form a 40 MHz wide channel.
[0044] A Very High Throughput (VHT) STA may support 20 MHz, 40 MHz, 80 MHz, and / or 160 MHz wide channels. The 40 MHz and / or 80 MHz channels may be formed by combining contiguous 20 MHz channels. The 160 MHz channel may be formed by combining eight contiguous 20 MHz channels or by combining two non-contiguous 80 MHz channels, the latter sometimes referred to as an 80+80 configuration. In the 80+80 configuration, the data may be passed through a segment parser that can split the data into two streams after channel encoding. Inverse Fast Fourier Transform (IFFT) processing and time domain processing may be performed separately for each stream. The streams may be mapped to two 80 MHz channels and the data may be transmitted by the transmitting STA. At the receiver of the receiving STA, the above operations for the 80+80 configuration may be reversed and the combined data may be sent to the Medium Access Control (MAC).
[0045] Sub-1 GHz operation modes are supported by 802.11af and 802.11ah. In 802.11af and 802.11ah, the channel operating bandwidth and carriers are reduced compared to those used in 802.11n and 802.11ac. 802.11af supports 5 MHz, 10 MHz and 20 MHz bandwidths in TV White Space (TVWS) spectrum, and 802.11ah supports 1 MHz, 2 MHz, 4 MHz, 8 MHz and 16 MHz bandwidths using non-TVWS spectrum. According to a representative embodiment, 802.11ah can support meter type control / machine type communication (MTC), such as MTC devices in macro coverage areas. MTC devices may have specific capabilities, including, for example, specific bandwidths and / or limited bandwidth support (e.g., support of only that bandwidth). MTC devices may include a battery with a battery life above a threshold (e.g., having a very long battery life).
[0046] The channel bandwidth of WLAN systems that can support multiple channels, as well as 802.11n, 802.11ac, 802.11af, and 802.11ah, includes a channel that can be designated as a primary channel. The primary channel can have a bandwidth equal to the largest common operating bandwidth supported by all STAs in the BSS. The bandwidth of the primary channel can be set and / or limited by the STA that supports the smallest bandwidth operating mode among all STAs operating in the BSS. In an 802.11ah example, the primary channel may be 1 MHz wide for a STA (e.g., an MTC type device) that supports 1 MHz mode (e.g., only supports 1 MHz mode), even if the AP and other STAs in the BSS support 2 MHz, 4 MHz, 8 MHz, 16 MHz, and / or other channel bandwidth operating modes. Carrier sensing and / or network allocation vector (NAV) setting may depend on the state of the primary channel. If the primary channel is busy, e.g., due to a STA (that only supports 1 MHz mode of operation) transmitting to the AP, the entire available frequency band may be considered busy even if most of the frequency band remains idle and available.
[0047] In the United States, the available frequency bands that may be used by 802.11ah are 902MHz to 928MHz. In South Korea, the available frequency bands are 917.5MHz to 923.5MHz. In Japan, the available frequency bands are 916.5MHz to 927.5MHz. The total bandwidth available for 802.11ah is 6MHz to 26MHz depending on the country code.
[0048] 1D is a system diagram illustrating the RAN 113 and the CN 115 according to an embodiment. As mentioned above, the RAN 113 may employ NR radio technology to communicate with the WTRUs 102a, 102b, 102c over the air interface 116. The RAN 113 may also communicate with the CN 115.
[0049] The RAN 113 may include gNBs 180a, 180b, 180c, although it will be appreciated that the RAN 113 may include any number of gNBs while remaining consistent with an embodiment. The gNBs 180a, 180b, 180c may each include one or more transceivers for communicating with the WTRUs 102a, 102b, 102c over the air interface 116. In an embodiment, the gNBs 180a, 180b, 180c may implement MIMO technology. For example, the gNBs 180a, 108b may utilize beamforming to transmit signals to and / or receive signals from the gNBs 180a, 180b, 180c. Thus, the gNB 180a may transmit wireless signals to and / or receive wireless signals from the WTRU 102a using, for example, multiple antennas. In an embodiment, the gNBs 180a, 180b, 180c may implement carrier aggregation technology. For example, the gNB 180a may transmit multiple component carriers to the WTRU 102a (not shown). Some of these component carriers may be on a licensed spectrum and the remaining component carriers may be on an unlicensed spectrum. In an embodiment, the gNBs 180a, 180b, 180c may implement coordinated multipoint (CoMP) technology. For example, the WTRU 102a may receive coordinated transmissions from the gNBs 180a and 180b (and / or gNB 180c).
[0050] The WTRUs 102a, 102b, 102c may communicate with the gNBs 180a, 180b, 180c using transmissions associated with a scalable numerology. For example, the OFDM symbol spacing and / or OFDM subcarrier spacing may vary for different transmissions, different cells, and / or different portions of the wireless transmission spectrum. The WTRUs 102a, 102b, 102c may communicate with the gNBs 180a, 180b, 180c using subframes or transmission time intervals (TTIs) of various or scalable lengths (e.g., including various numbers of OFDM symbols and / or absolute times of continuously varying lengths).
[0051] The gNBs 180a, 180b, 180c may be configured to communicate with the WTRUs 102a, 102b, 102c in a standalone configuration and / or a non-standalone configuration. In a standalone configuration, the WTRUs 102a, 102b, 102c may communicate with the gNBs 180a, 180b, 180c without accessing another RAN (e.g., eNode-Bs 160a, 160b, 160c, etc.). In a standalone configuration, the WTRUs 102a, 102b, 102c may utilize one or more of the gNBs 180a, 180b, 180c as mobility anchor points. In a standalone configuration, the WTRUs 102a, 102b, 102c may communicate with the gNBs 180a, 180b, 180c using signals in unlicensed bands. In a non-standalone configuration, the WTRUs 102a, 102b, 102c may communicate / connect with the gNBs 180a, 180b, 180c while also communicating / connecting with other RANs, such as the eNode-Bs 160a, 160b, 160c. For example, the WTRUs 102a, 102b, 102c may implement the DC principle to communicate with one or more gNBs 180a, 180b, 180c and one or more eNode-Bs 160a, 160b, 160c substantially simultaneously. In a non-standalone configuration, the eNode-Bs 160a, 160b, 160c may act as a mobility anchor for the WTRUs 102a, 102b, 102c, and the gNBs 180a, 180b, 180c may provide additional coverage and / or throughput for serving the WTRUs 102a, 102b, 102c.
[0052] Each of the gNBs 180a, 180b, 180c may be associated with a particular cell (not shown) and may be configured to handle radio resource management decisions, handover decisions, scheduling of users in the UL and / or DL, support for network slicing, dual connectivity, interworking between NR and E-UTRA, routing of user plane data to user plane functions (UPFs) 184a, 184b, routing of control plane information to access and mobility management functions (AMFs) 182a, 182b, etc. As shown in FIG. 1D, the gNBs 180a, 180b, 180c may communicate with each other via an Xn interface.
[0053] 1D may include at least one AMF 182a, 182b, at least one UPF 184a, 184b, at least one Session Management Function (SMF) 183a, 183b, and possibly a Data Network (DN) 185a, 185b. Although each of the above elements is shown as part of the CN 115, it will be understood that any of these elements may be owned and / or operated by an entity other than the CN operator.
[0054] The AMF 182a, 182b may be connected to one or more of the gNBs 180a, 180b, 180c in the RAN 113 via an N2 interface and may act as a control node. For example, the AMF 182a, 182b may be responsible for authenticating users of the WTRUs 102a, 102b, 102c, supporting network slicing (e.g., handling different PDU sessions with different requirements), selecting a particular SMF 183a, 183b, managing registration areas, terminating NAS signaling, mobility management, etc. Network slicing may be used by the AMF 182a, 182b to customize CN support for the WTRUs 102a, 102b, 102c based on the type of service being utilized for the WTRUs 102a, 102b, 102c. Different network slices may be established for different use cases, such as, for example, services relying on Ultra-Reliable Low-Latency (URLLC) access, services relying on Enhanced Large Capacity Mobile Broadband (eMBB) access, and / or services relying on Machine Type Communications (MTC) access, etc. The AMF 182a, 182b may provide a control plane function for switching between the RAN 113 and other RANs (not shown) that employ other radio technologies, such as LTE, LTE-A, LTE-A Pro, and / or non-3GPP access technologies, such as WiFi.
[0055] The SMFs 183a, 183b may be connected to the AMFs 182a, 182b in the CN 115 via an N11 interface. The SMFs 183a, 183b may also be connected to the UPFs 184a, 184b in the CN 115 via an N4 interface. The SMFs 183a, 183b may select and control the UPFs 184a, 184b and configure the routing of traffic through the UPFs 184a, 184b. The SMFs 183a, 183b may perform other functions such as managing and assigning UE IP addresses, managing PDU sessions, controlling policy enforcement and QoS, providing downlink data notification, etc. The PDU session type may be IP-based, non-IP-based, Ethernet-based, etc.
[0056] The UPFs 184a, 184b may be connected to one or more of the gNBs 180a, 180b, 180c in the RAN 113 via an N3 interface, which may provide the WTRUs 102a, 102b, 102c with access to packet-switched networks, such as the Internet 110, to facilitate communications between the WTRUs 102a, 102b, 102c and IP-enabled devices. The UPFs 184a, 184b may also perform other functions, such as routing and forwarding packets, enforcing user plane policies, supporting multi-homed PDU sessions, handling user plane QoS, buffering downlink packets, providing mobility anchoring, etc.
[0057] The CN 115 may facilitate communication with other networks. For example, the CN 115 may include or communicate with an IP gateway (e.g., an IP Multimedia Subsystem (IMS) server) that acts as an interface between the CN 115 and the PSTN 108. The CN 115 may also provide the WTRUs 102a, 102b, 102c with access to other networks 112, which may include other wired or wireless networks owned and / or operated by other service providers. In an embodiment, the WTRUs 102a, 102b, 102c may be connected to local data networks (DNs) 185a, 185b through the UPFs 184a, 184b via an N3 interface to the UPFs 184a, 184b and an N6 interface between the UPFs 184a, 184b and the DNs 185a, 185b.
[0058] 1A-1D and the corresponding description thereof, one or more or all of the functions described herein with respect to one or more of the WTRUs 102a-d, base stations 114a-b, eNode-Bs 160a-c, MME 162, SGW 164, PGW 166, gNBs 180a-c, AMFs 182a-b, UPFs 184a-b, SMFs 183a-b, DNs 185a-b, and / or any other devices described herein may be performed by one or more emulation devices (not shown). The emulation devices may be one or more devices configured to emulate one or more or all of the functions described herein. For example, the emulation devices may be used to test other devices and / or to simulate network and / or WTRU functions.
[0059] The emulation device may be designed to implement one or more tests of other devices in a lab environment and / or an operator network environment. For example, the one or more emulation devices may perform one or more or all functions while fully or partially implemented and / or deployed as part of a wired and / or wireless communication network to test other devices in the communication network. The one or more emulation devices may perform one or more or all functions while temporarily implemented / deployed as part of a wired and / or wireless communication network. The emulation device may be directly coupled to another device for testing and / or may perform testing using wireless communication.
[0060] The emulation device or devices may perform one or more functions without being implemented / deployed as part of a wired and / or wireless communication network. For example, the emulation device may be utilized in a test lab and / or in a test scenario in a non-deployed (e.g., test) wired and / or wireless communication network to implement testing of one or more components. The emulation device or devices may be test equipment. Direct RF coupling and / or wireless communication via RF circuitry (which may include, for example, one or more antennas) may be used by the emulation device to transmit and / or receive data.
[0061] Based on the general requirements set by the ITU Radiocommunication Sector (ITU-R), Next Generation Mobile Network (NGMN) group and the 3rd Generation Partnership Project (3GPP), a rough classification of use cases for the emerging 5G system can be denoted as enhanced mobile broadband (eMBB), massive machine type communication (mMTC), and ultra-reliable low latency communication (URLLC). Different use cases may focus on different requirements such as higher data rates, higher spectral efficiency, lower power and higher energy efficiency, smaller latency, higher reliability, etc. A wide range of spectrum bands, ranging from 700 MHz to 80 GHz, are being considered for various deployment scenarios.
[0062] It is well known that as carrier frequencies increase, severe path loss becomes a critical constraint to ensure sufficient coverage area. Transmission in mmWave systems may further suffer from non-line-of-sight losses such as diffraction loss, penetration loss, oxygen absorption loss, foliage loss, etc. During initial access, the base station and the WTRU may need to overcome these large path losses to discover each other. Utilizing tens or even hundreds of antenna elements for the generated beamforming signal is an effective way to compensate for the severe path loss by providing large beamforming gain. Beamforming techniques may include digital, analog, and hybrid beamforming.
[0063] Cell search is the procedure by which the WTRU acquires time and frequency synchronization with a cell and finds the cell ID of that cell. The transmitted LTE synchronization signal is transmitted in the 0th and 5th subframes of every radio frame and is used for time and frequency synchronization during initial setup. As part of the system acquisition process, the WTRU sequentially synchronizes to the OFDM symbol, slot, subframe, half-frame and radio frame based on the synchronization signal. The two synchronization signals are the Primary Synchronization Signal (PSS) and the Secondary Synchronization Signal (SSS). The PSS is used to derive the slot, subframe and half-frame boundaries. It also provides the physical layer cell identity (PCI) within the cell identity group. The SSS is used to derive the radio frame boundaries. It also allows the WTRU to determine the cell identity group, which can range from 0 to 167.
[0064] Following successful synchronization and PCI acquisition, the WTRU decodes the Physical Broadcast Channel (PBCH) with the help of the CRS to obtain MIB information regarding system bandwidth, system frame number (SFN), and PHICH configuration. Note that the LTE synchronization signal and the PBCH are transmitted continuously according to a standardized periodicity.
[0065] It is agreed that in NR, blind detection of the NR-PBCH transmission scheme or the number of antenna ports is not required for the WTRU. For NR-PBCH transmission, a single fixed number of antenna ports is supported. For NR-PBCH transmission, NR can employ both digital and analog beamforming techniques, especially in high frequency bands. Digital beamforming using multi-antenna technology and / or analog beamforming using single or multi-port beamforming technology may be considered in NR. For the reference signal of NR-PBCH demodulation, NR can employ the use of a synchronization signal (e.g., NR-SSS) or built-in DMRS for NR-PBCH demodulation. If a mobility reference signal (MRS) is supported in the SS block, the MRS may be multiplexed into the SS block. The numerology of NR-PBCH may be the same or different from that of NR-SSS. An embodiment of digital beamforming using multi-antenna technology, analog beamforming using single or multi-port beamforming technology, or a hybrid scheme combining both digital and analog beamforming is considered for data transmission in connected mode. Similar techniques should also be considered for idle mode or initial access and designed for broadcast channels such as NR-PBCH for optimal system performance.
[0066] The NR-PSS and / or NR-SSS may be used as reference signals for NR-PBCH demodulation. Alternatively, a reference signal dedicated to the NR-PBCH may be used. Such a reference signal may be embedded within the NR-PBCH signal and channel. Even without an additional signal or reference signal, the receiver may still be able to demodulate the NR-PBCH signal and channel. A reference signal or demodulation reference signal (DMRS) for such demodulation may be specific to the NR-PBCH and multiplexed and embedded within the NR-PBCH resources. By doing so, an NR-PBCH dedicated demodulation reference signal (DMRS) may be used for NR-PBCH demodulation. The term DMRS, as used herein, may refer to one or more demodulation reference signals.
[0067] Time division multiplexing of NR-SS and NR-PBCH may be preferable in order to use NR-SS (either NR-PSS or NR-SSS) as a reference signal for NR-PBCH demodulation.
[0068] FIG. 2 illustrates NR-PBCH multiplexed with NR-PSS and NR-SSS, where the NR-PBCH, NR-PSS, and NR-SSS are multiplexed in a TDM manner. The NR-PBCH signal and channel may be repeated and placed before or after the NR-SS. Such a design may be used for, but is not limited to, carrier frequency offset compensation purposes. As shown in FIG. 2, each of the PSSs 204, 214, 226, the SSSs 206, 218, 228, and the PBCHs 208, 210, 216, 220, 224, 230 occupy the same frequency. In a first example, option 1 202, the PSS 204 is transmitted before the SSS 206, which is followed by the first PBCH 208 and the second PBCH 210. In option 2 212, the PSS 214 is transmitted before the PBCH 216, which is followed by the SSS 218 and the PBCH 220. Option 2 212 may be used to provide PBCH information prior to completing synchronization. In option 2 212, PSS 214 is transmitted before PBCH 216, SSS 218, and PBCH 220. In yet another option, option 3 222, PBCH 224 is transmitted before PSS 226, which is followed by SSS 228 and PBCH 230. Option 3 222 may allow PBCH information to be received prior to any synchronization information.
[0069] Similarly, FIG. 3 is a timing diagram 300 illustrating the use of NR-SS signals in two different options 310, 320. Either or both of the NR-PSS or NR-SSS may be repeated and placed before or after the NR-PBCH. The repeated NR-PSS or NR-SSS may also be used for, but not limited to, carrier frequency offset estimation or compensation purposes. As shown in FIG. 3, in option 4 310, a first PSS transmission 312 may occur before a second PSS transmission 314. After the second PSS transmission 314, an SSS transmission 316 may be transmitted, which is followed by a PBCH transmission 318. In option 5 320, an SSS 322 may be transmitted before a PSS transmission 324. An SSS transmission 326 may follow the PSS transmission 324 along with a PBCH transmission 328.
[0070] FIG. 4 is an example diagram of a first NR-PBCH dedicated demodulation reference signal design 400 in which one antenna port is used in the two options 401, 420. In both option 1 402 and option 2 420, one antenna is used for the NR-PBCH dedicated DMRS. In the first option, option 1 402, the repeated NR-PBCH dedicated DMRS are placed at the same frequency location or subcarrier to aid in carrier frequency offset (CFO) estimation. In one example, DMRS 404 is at the same frequency location as DMRS 406, DMRS 408 is at the same frequency location as DMRS 410, DMRS 412 is at the same frequency location as DMRS 414, and DMRS 416 is at the same frequency location as DMRS 418. In the second option, option 2 420, a different pattern is used for the NR-PBCH DMRS, in which the DMRS are placed with a fixed offset in the frequency domain to cover other frequency locations or subcarriers and / or obtain frequency diversity. For example, if the DMRS density is 1 / 6 for both NR-PBCH symbols, the DMRS in the second PBCH OFDM symbol may be offset by 3 REs with respect to the first PBCH OFDM symbol. This can create a perfect comb pattern of DMRS between the two NR-PBCH OFDM symbols. The combined or joint DMRS in the two PBCH OFDM symbols can be 1 / 3 DMRS density in a lower Doppler channel, which may improve channel estimation performance. This may come at the expense of not being able to estimate or compensate CFO using DMRS. However, in the mapping of data REs in this case, some data REs may be repeated in the case where PBCH data is repeated in the second PBCH OFDM symbol, which may be used for CFO estimation and compensation. As shown in option 2 420, DMRS 422 is offset from DMRS 430, DMRS 424 is offset from DMRS 432, DMRS 426 is offset from DMRS 434, and DMRS 428 is offset from DMRS 436.
[0071] FIG. 5 is a third example of an NR-PBCH dedicated demodulation reference signal design 500 using two antenna ports in two options 502, 540. An NR-PBCH dedicated DMRS with two antenna ports is shown in FIG. 5. In the first option 502, the repeated NR-PBCH dedicated DMRS 504-534 are placed at the same frequency location or subcarrier for each antenna port to aid in carrier frequency offset (CFO) estimation. In the second option, option 2 540, a different pattern is used for the NR-PBCH DMRS, where the DMRS at the two antenna ports are placed with a fixed offset in the frequency domain to cover other frequency locations or subcarriers and / or obtain frequency diversity. In option 2 540, DMRS1 542, 548, 550, 556, 558, 564, 566, 572 and DMRS2 544, 546, 552, 554, 560, 562, 568, 570 are alternated in frequency.
[0072] In one or more embodiments, a hybrid dedicated demodulation reference signal (H-DMRS) may be utilized. Some of the repeated NR-PBCH dedicated DMRS may be placed at the same frequency location or subcarrier for each antenna port to aid in CFO estimation, and other repeated NR-PBCH dedicated DMRS may be placed at different frequency locations or subcarriers and / or obtain frequency diversity.
[0073] Figure 6 is a diagram 600 of two different NR-PBCH hybrid dedicated demodulation reference signal (H-DMRS) designs 602, 620. As shown in Figure 6, in the hybrid one-port approach 602, DMRS 604 may be in the same frequency location as DMRS 606, and DMRS 608 may be in a different frequency location than DMRS 610. DMRS 612 may be located in the same frequency location as DMRS 614, and DMRS 616 may be located in a different frequency location than DMRS 618. In the hybrid two-port 620 approach, DMRS1 622 may be at the same frequency location as DMRS1 624, DMRS2 626 may be at the same frequency location as DMRS2 628, DMRS1 630 may be at the same frequency location as DMRS2 632, DMRS2 634 may be at the same frequency location as DMRS1 636, DMRS1 638 may be at the same frequency location as DMRS1 640, DMRS2 642 may be at the same frequency location as DMRS2 644, DMRS1 646 may be at the same frequency location as DMRS2 648, and DMRS2 650 may be at the same frequency location as DMRS1 652. The DMRSs are transmitted on two different ports. In an example, DMRS1 is transmitted from antenna port 1 and DMRS2 is transmitted from antenna port 2 with a fixed offset in frequency. If the offset is zero, the DMRSs on both antenna ports have the same frequency location.
[0074] In an embodiment, a non-uniform DMRS density may be used that may employ different densities of demodulation reference signals (DMRS). A higher density of DMRS may be placed in the OFDM symbol of the NR-PBCH to assist in channel estimation. However, to reduce DMRS overhead, a lower density of DMRS may be placed in the second OFDM symbol of the NR-PBCH. These DMRS may be the same as the DMRS in the first OFDM symbol of the NR-PBCH on the same subcarrier, which may facilitate estimation of the CFO. This may reduce the code rate. With the second symbol closer to the SSS, channel estimation may be supported by the use of the SSS.
[0075] 7 illustrates a non-uniform density NR-PBCH demodulation reference signal 700 for use with two different configuration options 702, 720. In an embodiment, precoding may or may not be applied to pilot subcarriers. Precoding may also be used to remove second OFDM symbol common phase error to improve detection performance of the NR-PBCH at the receiver.
[0076] NR-PBCH / SS multiplexing and DMRS allocation embodiments may enable efficient and high performance NR-PBCH demodulation. Figures 4 and 5 show how DMRSs are mapped to the same frequency location across symbols, e.g., to improve performance of CFO estimation. These figures also show that DMRSs may be mapped with a fixed frequency offset across symbols, which may improve channel estimation due to the resulting frequency diversity.
[0077] Both of these performance enhancing techniques may be realized using a hybrid DMRS mapping similar to that shown in FIG. 6. In FIG. 7 and other embodiments, PSS and / or SSS may be used to assist channel estimation where DMRS density is lower. This may be referred to as a diverse density (DD) method. FIG. 7 illustrates an embodiment of a DD-DMRS1 port 702 and a DD-DMRS2-port 720. In the DD-DMRS1 port 702 embodiment, a PSS signal 704 may be transmitted before the SSS signal 706. Prior to the PSS signal 704, DMRSs 708, 712, 714, 718 may be transmitted at a first time. After the SSS signal 706, DMRSs 710, 716 may be transmitted at a second time. At the second time, fewer DMRSs may be transmitted. The DMRS signals 708, 710, 714, 716 at the first and second times may overlap in frequency as shown. In the example DD-DMRS2 port 720, more DMRS signals 726-744 may be transmitted compared to the example DD-DMRS1 port 702. These DMRSs 726-744 may be transmitted before the PSS 722 and after the SSS 724, similar to the 1-port option 702.
[0078] In one example, NR-PSS and NR-SSS have different bandwidth allocations compared to NR-PBCH. For example, NR-PSS and NR-SSS may use 12 RBs while PBCH may use 24 RBs. Thus, there are 12 RBs of PBCH that overlap with NR-PSS / NR-SSS and another 12 that do not overlap with NR-PSS / NR-SSS. At the receiver after cell ID detection, NR-PSS and NR-SSS may be considered as known sequences that can serve as reference symbols to demodulate the overlapped RBs of NR-PBCH. This technique may be used to improve performance and / or efficiency of the design. Performance improvement may be achieved by allowing NR-PSS and / or NR-SSS to assist with channel estimation, and efficiency may be achieved by allowing reduction or even complete elimination of DMRS in the SS bandwidth. This concept is illustrated in FIG. 8. The left side 800 of FIG. 8 shows a design where the SS block mapping order is NR-[PSS PBCH1 SSS PBCH2]. 8 right side 830 shows a design where the SS block mapping order is NR-[PBCH1 PSS SSS PBCH2]. The same design for DMRS may be applied to other possible mapping orders, NR-[PSS-SSS-PBCH1-PBCH2], NR-[PSS-PBCH1-PBCH2-SSS].
[0079] As shown in FIG. 8, the central RBs 806, 808 of NR-PBCH symbol 1 802 or symbol 2 804 have no DMRS or have reduced density (hereinafter, reduced density) DMRS. This increases the number of REs available for data transmission and therefore reduces the effective code rate for the same payload. If the channel estimation performance is similar, the reduced effective code rate may improve performance. If DMRS is not used for the central RBs, the PSS 810 or SSS 812 or both may be used for channel estimation. If reduced density DMRS is used for the central RBs, the PSS 810 or SSS 812 or both may be used as additional assistance with the existing DMRS to perform 2D channel estimation for the central RBs. The PBCH1 DMRSs 814 and 818 may include DMRS at full density. The same may be true for the PBCH2 DMRSs 816 and 820. Note that the reduction in NR-PBCH density may also depend on the distance from the NR-SSS. For NR-[PSS PBCH1 SSS PBCH2] 800, both NR-PBCHs may have the same density for DMRS or no DMRS. However, in the NR-[PBCH1 PSS SSS PBCH2] configuration 830, PBCH1 may have a higher DMRS density than PBCH2, even in RBs that overlap with NR-PSS and NR-SSS.
[0080] As shown in NR-[PBCH1 PSS SSS PBCH2] configuration 830, PSS 832 and SSS 834 are between PBCH1 836 and PBCH2 838. PBCH1 836 and PBCH2 838 consist of no DMRS or reduced density DMRS in center frequency portions 836 and 838. PBCH1 DMRS 840 and 844 may include DMRS at full density. The same may be true for PBCH2 DMRS 842 and 846.
[0081] The DMRS density may be 1 / 3, 1 / 4, 1 / 6 or another density depending on the design selected. When the DMRS density is 1 / 3, it means that 1 out of 3 resource elements (REs) is used for the DMRS. Similarly, when the DMRS density is 1 / 4 or 1 / 6, it means that 1 out of 4 or 6 resource elements (REs) is used for the DMRS, respectively.
[0082] The various options disclosed may provide different performance benefits and efficiency gains that may be applicable in different scenarios. To enable all possible options, simple signaling may be provided to indicate which option is being used, for example in the NR-SSS and / or new radio tertiary synchronization signal (NR-TSS).
[0083] FIG. 9 is a flow diagram 900 detailing an example performance of configurable NR-PBCH demodulation. The following example procedure may be used at the receiver: An NR-PSS signal may be searched for (902). Timing and frequency information may be obtained using the NR-PSS / NR-SSS (904). A configuration indicator carried on the NR-SSS indicating the reference signal configuration may be decoded and the configuration indicator may be checked (906). For example, FIG. 9 shows two overall reference configurations, configuration 1 908 and configuration 2 910. In configuration 1 908, the PBCH reference signal is embedded using DMRS. The DMRS may be mapped according to one of the various configurations shown in FIGS. 4-7. This information may also be carried on the NR-SSS. In configuration 2 910, a joint SS / DMRS reference signal is provided. An example scenario for configuration 2 910 is when the PBCH bandwidth is larger than the SS bandwidth, where reduced DMRS density may be used in the overlapping bandwidth. This may be consistent with embodiments disclosed, particularly with reference to one or more of Figures 7 or 8. Regardless of the selection of configuration 1 908 or configuration 2 910, the NR-PBCH may finally be demodulated (916) using the estimated channel response.
[0084] This non-uniform DMRS mapping of configuration 2 910 is shown in Figures 7 and 8. The exact density of the DMRS in the overlap region may range from 1, which corresponds to using the same density in the non-overlapping region, to 0, which corresponds to no DMRS in the overlap region. Also, the DMRS mapping portion may use any of the same techniques shown in Figures 4-6. Finally, as in configuration 1 908, the level of this lower configuration may be signaled from the NR-SSS and / or NR-TSS. Channel estimation using only DMRS (configuration 1 908) may be performed (912). Alternatively, channel estimation using joint SS / DMRS (configuration 2 910) may be selected accordingly (914). The receiver may use a 2D (time-frequency) based algorithm for better joint interpolation across time and frequency. OFDM symbols of the NR-PBCH may be received. The channel estimation may be used to equalize and detect the NR-PBCH symbols, and the symbols may be decoded (916) using an appropriate channel decoder, for example, using polar decoding.
[0085] The NR-PBCH may be transmitted on N OFDM symbols. In a first embodiment, the NR-PBCH coded bits are mapped across REs in the N PBCH symbols, where N is the number of PBCH symbols in the NR-SS block. In a second embodiment, the NR-PBCH coded bits are mapped across REs in the PBCH symbol, and the NR-PBCH symbol is copied to N-1 NR-PBCH symbols in the NR-SS block.
[0086] For example, for N=2, the following may be used: In a first embodiment, the NR-PBCH coded bits are mapped across the REs in both PBCH symbols. In a second embodiment, the NR-PBCH coded bits are mapped across the REs in an NR-PBCH symbol, and that NR-PBCH symbol is copied to a second NR-PBCH symbol NR-SS block.
[0087] In a first embodiment in which the NR-PBCH coded bits are mapped across the REs in both PBCH symbols, the NR-PBCH coded bits are mapped across the REs in the N PBCH symbols without repetition. The NR-PBCH resources may be allocated in different ways. A frequency first mapping solution may be used. The data to RE mapping may be mapped in frequency first as an order. The RE mapping may be performed first in frequency and then in time secondly. The RE mapping in frequency may be followed by the RE mapping in time. The RE mapping may be applied to data, DMRS, or sequences, etc. In this case, the QPSK symbol generated from the data coming from the channel encoder is first mapped to the first NR-PBCH OFDM symbol, which is followed by the second or remaining N-1 NR-PBCH OFDM symbols. A time first mapping may be used. The QPSK symbols generated from the data coming from the channel encoder may be first mapped to the first RE of each NR-PBCH OFDM symbol, which is followed by the second RE of each NR-PBCH OFDM symbol, etc. A hybrid method may be used, in which the QPSK symbols generated from the data coming from the channel encoder are first mapped to the first (n) RBs of each NR-PBCH OFDM symbol, which is followed by the second (n) RBs of each NR-PBCH OFDM symbol, where "n" may be a predefined or configured integer known to both the transmitter and the receiver.
[0088] In a second embodiment where the NR-PBCH coded bits are mapped across the REs in the NR-PBCH symbol, the NR-PBCH symbol is copied to a second NR-PBCH symbol NR-SS block with repetitions such that the NR-PBCH coded bits are mapped across the REs in the PBCH symbol. In a simple design, the NR-PBCH data (and / or the DMRS) may be copied to the second or remaining N-1 NR-PBCH OFDM symbols. In another embodiment, frequency hopping of the data may be performed. Data mapped to one RB in the first NR-PBCH symbol may be mapped to another RB in the second NR-PBCH symbol. This frequency hopping pattern is known to the receiver, so it may be able to combine them to increase the frequency of decoding. The DMRS in this case may not need to frequency hop. Thus, the CFO may be estimated at the receiver using the DMRS position. In another embodiment, frequency hopping may be used only for the 12 RBs that do not overlap with the NR-PSS and NR-SSS. In one embodiment, an offset may be applied to the second PBCH symbol relative to the first PBCH symbol. This offset may be with respect to the phase of the data symbols. This phase offset may be detected at the receiver and the implicit information may be decodable. For example, if the phase difference between the first and second symbols is [0,pi / 2,pi,3pi / 2], two bits of implicit information may be indicated. It is also possible to have a shift that is known based on the cell ID. In this case, the purpose is not to indicate anything but to randomize the data using a cell-specific shift. This offset may be with respect to the frequency position of the data symbols. As with the phase, this may be a cell-specific shift that is known to increase the randomization or that may be used to blindly decode a few bits. The shift may be a frequency shift, a time shift, or a phase shift, etc., or one or more combinations thereof.
[0089] In an embodiment, a hybrid design may be implemented. In this hybrid design, the first 12 central RBs of both PBCH symbols may be filled with all data. This data may then be copied to the 12 side RBs, e.g., 6+6 on either side of the center. This design is important because all data symbols are present in the center RB. If the SNR is good, this allows the WTRU to detect the PBCH using a smaller bandwidth, e.g., the center 12 RBs. In this way, the WTRU only needs to receive and demodulate the center 12 RBs, which may also save power. Frequency hopping may or may not be used here.
[0090] If frequency hopping is used, the center portion of the first symbol may be copied to the 12 RBs of the second symbol, and the center portion of the second symbol may be copied to the 12 RBs of the first symbol. Since the receiver knows this pattern, it can carefully extract and assemble the DMRS block before transmitting to the channel decoder. This may result in good performance in the WTRU at lower SNR, but careful demapping of the REs is required during combining at the receiver.
[0091] In another embodiment, the RE mapping may be a function of cell ID and / or SS block ID. This embodiment is motivated by interference randomization. Before detecting the NR-PBCH, the WTRU should have detected the cell ID using the NR-PSS / NR-SSS. Also, in some cases, the SS block ID may already be known before encoding the NR-PBCH. This may be the case, for example, if the TSS was transmitted and the SS block ID was carried by the TSS, or if some prior knowledge about the SS block index is available.
[0092] It may be desirable to use DMRS RE mapping as a function of cell ID or SS block index or both. If the frequency location of the DMRS depends on the cell ID, it may reduce interference from neighboring cells. For example, this may include shifting the location of one, more, or all of the DMRS in the OFDM symbols for the NR-PBCH. In one or more embodiments, the terms SS block ID, SS block index, and SS block time index may be used interchangeably.
[0093] At the receiver, once the WTRU detects the NR-PSS / NR-SSS, the cell ID and / or SS block ID will be known. The WTRU may be able to use the cell ID and / or SS block ID and the mapping function to identify the location of the DMRS of the NR-PBCH. The WTRU can then continue channel estimation for the PBCH using the DMRS. PBCH demodulation and decoding is then performed. As different cells transmit DMRS in different locations, interference may be reduced, mitigated, or avoided.
[0094] To achieve better randomization, the sequence of the DMRS (e.g., sequence or scrambling sequence) may depend on the cell ID or SS block index or both. The sequence of the DMRS (e.g., sequence or scrambling sequence) may depend on other information such as the half radio frame indicator in combination with, separately from, or in isolation from the SS block index or cell ID. The DMRS may use any different sequence. Optionally, it may include an M sequence, a Gold sequence, a ZC sequence, or a PN sequence. The different parameters of these sequences may be functions of the cell ID or the SS block index.
[0095] In either case, the DMRS of the PBCH may be used as the DMRS of the PDSCH. This also applies to the RBs occupied by the PBCH. Rate matching may be used to convert the coded bits to all the used data REs (512), which may vary depending on the DMRS design.
[0096] Different sequences can be used as DMRS for the NR-PBCH. One sequence of interest is a maximum length sequence (M-sequence). Due to its noise-optimal properties and very good correlation properties, the M-sequence can serve a dual purpose. The M-sequence may be used to deliver information and may act as a reference symbol for demodulation of the NR-PBCH.
[0097] For example, if 24 RBs are allocated to the NR-PBCH, then two DMRSs may be present in each RB in each OFDM symbol. Thus, in each OFDM symbol, 48 symbols may be required as DMRSs. There may be design choices to have fewer or more DMRSs based on a particular embodiment or implementation choice. The M sequence is 2 M It has a length of -1, allowing for a variety of options.
[0098] FIG. 10A shows a circuit arrangement 1000 configured to generate an M-sequence of length 7. As shown in FIG. 10A, there are seven stages 1002-1014 representing the seven bits available for shifting. At each clock pulse of the circuit arrangement, bits from stage 6 1012 are shifted into stage 7 1014, bits from stage 5 1010 are shifted into stage 6 1012, bits from stage 4 1008 are shifted into stage 5 1010, bits from stage 3 1006 are shifted into stage 4 1008, bits from stage 2 1004 are shifted into stage 3 1006, and bits from stage 1 1002 are shifted into stage 2 1004. The output of stage 7 1014 is ORed 1016 with the output of stage 6 1012 and provided to stage 1 1002. In this manner, input bits are continually shifted into stage 1. An output 1018 is shown from stage 7 1014. In this way, a length-127 M-sequence can be generated from a length-7 shift register using seven stages, which can be used for one or both of the OFDM symbols of the NR-PBCH.
[0099] FIG. 10B shows a length 63 M-sequence that may be generated from a length 6 shift register 1020. Thus, there are only six stages 1022-1032 shown in FIG. 10B. An output 1036 may come from stage 6 1032. An OR 1034 of stage 5 1030 and stage 6 1032 may be fed to stage 1 1022. This sequence may be used for one or both of the OFDM symbols of the NR-PBCH with some repetition or padding with some known symbols. For example, it may be padded with all ones to match the length of the sequence to the number of DMRSs required. It may also be possible to use a length 5 shift register to generate a length 31 M-sequence and repeat it to cover all DMRSs in each OFDM symbol. The same or different sequences may be used for the other OFDM symbols. It may also be possible to concatenate two different M-sequences of the same or different lengths. This may allow for two shifts at the expense of higher correlation. This increases the amount of information transmitted at the expense of detection reliability. However, if the sequence is long, this may be a viable option. The M sequence may be scrambled with another sequence, or another PN sequence may be used. Parameters such as the shift or polynomial of the sequence may be a function of the cell ID. This may allow for orthogonal DMRS between different cells.
[0100] Longer length M-sequences may provide better correlation properties. These sequences may be used with different shifts. Using different shifts, it may be possible to use 31, 62, or 127 M-sequence bit lengths to implicitly indicate [5,6,7] bits of information. One option may include, but is not limited to, indicating SS block index, details to aid in channel decoding of the NR-PBCH including information on polar code and beam ID. This may further be used for any other information that requires very low latency. If the SS block ID is not indicated using DMRS but is known prior to decoding of the NR-PBCH, the shift or polynomial-like parameters of the sequence may be a function of the SS block ID. The shift may be, but is not limited to, a frequency shift, a time shift, a phase shift, or a position shift, etc. A combination of these shift types may also be used.
[0101] FIG. 11 is a flow chart 1100 illustrating a procedure used for exemplary receiver processing and information detection. The receiver may first acquire timing and frequency using NR-PSS and NR-SSS (1102). The receiver may receive OFDM symbols for the NR-PBCH (1104). The DMRS RE allocation may be a function of cell ID and / or SS block ID (1106), and the DMRS RE mapping may be discovered based on the cell ID and / or SS block ID. The SS block ID may be implicit in the DMRS (1108), and the receiver may use the NR-PSS to estimate the channel and pre-equalize the REs containing the DMRS for the NR-PBCH (1110). The receiver may extract frequency domain symbols for the DMRS for the NR-PBCH (1118). These symbols are correlated with the original M-sequence used to generate the DMRS for the PBCH. A strong peak at one of the offsets is given. This, as well as the SS block index, gives the information embedded in the DMRS. If multiple M-sequences are used, careful extraction and correlation may be used to identify the transmission shift of each M-sequence. Using the detected shift, a local copy of the DMRS may be generated, which may be used to detect and decode the NR-PBCH. The DMRS sequence may be a function of the cell ID and / or SS block ID (1112), and a local copy of the DMRS may be generated based on the cell ID and / or SS block ID. The local copy of the DMRS may be used for channel estimation for the NR-PBCH and demodulation / decoding of the NR-PBCH. The local copy may be found (1114) via a lookup in a local table or database (1116).
[0102] In another embodiment, ZC sequences may be used as DMRS for NR-PBCH. They may be used to deliver information using different cyclic shifts and may serve as reference symbols for demodulation of NR-PBCH. For example, if 24 RBs are allocated to NR-PBCH, there may be two DMRSs for each RB in each OFDM symbol. Thus, in each OFDM symbol, N symbols may be required for DMRS. In one embodiment, N may be 48. The length of the ZC sequence may be selected to match the number of DMRSs. The best route for the ZC sequence may be determined by simulation.
[0103] It may also be possible to concatenate two different ZC sequences of the same or different length. The ZC sequence may be scrambled with another PN sequence or M sequence. The parameters, e.g., the root of the ZC sequence, or the cyclic shift of the ZC sequence, may be a function of the cell ID. This may allow for orthogonal DMRS between different cells. The longer the length of the ZC sequence, the better the correlation properties. These sequences may be used with different cyclic shifts. Using different shifts, it may be possible to carry [4,5,6] bits of information for ZC sequences of length 31, 62, 127, respectively, which may be used to indicate information to aid channel decoding of the NR-PBCH. This may include information about polar encoding and / or decoding, including the beam ID. It is also possible to use different roots of the ZC sequence. The WTRU may be able to blindly identify the ZC sequence used. This may be used to carry implicit information as well. This may be used for any other information that requires very little latency. If the SS block ID is not indicated using DMRS but is known prior to decoding of the NR-PBCH, parameters such as the root of the ZC sequence or the cyclic shift of the ZC sequence may be a function of the SS block ID.
[0104] With respect to receiver processing, the following procedures may be used to detect information: The receiver may first acquire timing and frequency using NR-PSS / NR-SSS. The receiver may receive OFDM symbols of the NR-PBCH. The DMRS RE allocation may be a function of the cell ID and / or SS block ID, and the DMRS RE mapping may be obtained based on the cell ID and / or SS block ID. The DMRS sequence may be a function of the cell ID and / or SS block ID, and a local copy of the DMRS may be generated based on the cell ID and / or SS block ID. The local copy of the DMRS may be used for channel estimation for the NR-PBCH and demodulation / decoding of the NR-PBCH.
[0105] Gold sequences may be used for DMRS. Gold sequences may be generated by multiplying two M-sequences together. These M-sequences should be generated from irreducible primitive polynomials, and both polynomials should be favorable pairs. For design, the following process may be used:
[0106] Two M-sequences can be generated from the preferred pair polynomial. Two different shifts are used for both (m0 and m1). These are XORed. The sequences are BPSK modulated and repeated or truncated to satisfy all DMRS.
[0107] If the selected length of the M sequence is 31, which may be repeated, the following polynomial combinations may be used: octal values 45, 75, 67, in that order.
[0108] If g(x)=x5+x2+1,
[0109]
number
[0110] If g(x)=x5+x4+x3+x2+1,
[0111]
number
[0112] If g(x)=x5+x4+x2+x+1,
[0113]
number
[0114] Other irreducible primitive polynomials are not excluded (octal values 51, 37, 73). Initializations such as the following may be used, but other initializations may not be excluded.
[0115] x(0)=0,x(1)=0,x(2)=0,x(3)=0,x(4)=1
[0116] If the M-sequence length is 63 (for denser DMRS), the following polynomial combinations may be used (the octal values are 103, 147, 155, respectively):
[0117] If g(x)=x6+x+1,
[0118]
number
[0119] If g(x)=x6+x5+x2+x+1,
[0120]
number
[0121] If g(x)=x6+x5+x3+x2+x+1,
[0122]
number
[0123] Other irreducible primitive polynomials are not excluded (octal values 133, 141, 163). Initializations such as the following may be used, but other initializations may not be excluded.
[0124] x(0)=0,x(1)=0,x(2)=0,x(3)=0,x(4)=0,x(5)=1,
[0125] The shifts in the two sequences may be defined using the following equation: where s1, s2 are two sequences of length L. m0 and m1 are the two shifts. The value of n ranges from 0 to L-1.
[0126]
number
[0127] The combining functions m0 and m1 may be used to indicate details to assist in channel decoding of the NR-PBCH, which may include information regarding polar encoding and / or decoding, and the beam ID.
[0128] In another option, parameters such as the polynomial of the sequence and / or the shift of the sequence may be functions of the cell ID. This may allow for orthogonal DMRS between different cells. If the SS block ID is not indicated using DMRS but is known prior to decoding of the NR-PBCH, then those parameters may be functions of the SS block ID.
[0129] With regard to receiver processing, the following procedures may be used to detect information: the receiver may first acquire timing and frequency using NR-PSS / NR-SSS, the receiver may receive OFDM symbols of the NR-PBCH, the DMRS RE allocation may be a function of the cell ID and / or SS block ID, the DMRS RE mapping may be obtained based on the cell ID and / or SS block ID, the DMRS sequence may be a function of the cell ID and / or SS block ID, a local copy of the DMRS may be generated based on the cell ID and / or SS block ID, and the local copy of the DMRS may be used for channel estimation for the NR-PBCH and demodulation / decoding of the NR-PBCH.
[0130] The NR-PBCH may employ precoder rotation techniques to improve performance. In this case, the NR-PBCH reference signal, DMRS, and / or SS may or may not be precoded using the same precoder rotation pattern as the NR-PBCH data. Assuming the same precoder is used, the precoder rotation may be applied in either the frequency domain or the time domain. Several different options that may be used for frequency domain precoder rotation are detailed below.
[0131] A single precoder may be used for each NR-PBCH. A single precoder may be applied to all RBs, e.g., 24 RBs, NR-PBCH data, and associated reference signals. A DMRS may be generated from a single sequence, e.g., an M, ZC, or Gold sequence, since longer sequences may improve detection performance. A DMRS may be generated from two separate sequences divided by bandwidth.
[0132] A single precoder may be used per RBG. The RBs in the PBCH, along with associated reference signals, may be divided into multiple RB groups (RBGs), and a different precoder may be applied to each group. Note that the use of different precoders may increase frequency diversity and therefore improve performance. In general, the RBGs vary from 1 to N, where N is the number of RBs in the NR-PBCH, in which case we return to the options above. The patterns may be known by the WTRU via signaling from the SS or predefined. Each RBG may use a different sequence, but it may be important to adjust the number of DMRSs and the length of the sequences to match each other. The sequence length should be such that an attempt is made to achieve optimal correlation properties, so that a particular sequence can span more than one RBG.
[0133] A single precoder may be used per sub-RB. In an example scenario, a precoder may be used per RE, subcarrier, or OFDM symbol for the PBCH. A predefined precoder rotation pattern may be used across REs, subcarriers, or OFDM symbols for the PBCH. One precoder may be used per DMRS. One DMRS group may be defined as a half RB, a partition of an RB, or a RE group (REG). An association between DMRS REs and data REs in the PBCH may be defined. This may also improve frequency diversity.
[0134] Precoder rotation may also be applied in the time domain. Several different options that may be used for time domain precoder rotation are detailed herein.
[0135] A single precoder can be applied for NR-PBCH transmission. In this case, the single precoder is applied to all PBCH data and reference signals. Different precoders can be applied for each modulo(n) NR-PBCH transmission. In this case, different precoders are applied for each NR-PBCH transmission for each modulo(n). For example, when n = 2, the following can be applied. That is, NR-PBCH transmission (0) applies precoder (0), NR-PBCH transmission (1) applies precoder (1), NR-PBCH transmission (3) applies precoder (0), NR-PBCH transmission (4) applies precoder (1), and so on. The cycle can enable different WTRUs to obtain improved performance of different NR-PBCH transmissions based on each WTRU-specific spatial and frequency domain channel characteristics.
[0136] In each of the above cases, when there are multiple precoders applied for each NR-PBCH, a cyclic pattern can be selected to maximize spatial and frequency diversity. In an open-loop scheme, this cyclic pattern can be predetermined and selected, for example, based on the spatial characteristics of the generated precoder beams. Frequency domain characteristics can also be considered when selecting the precoder pattern to maximize frequency domain diversity.
[0137] In order to use both NR-SS and built-in DMRS for NR-PBCH demodulation, an indicator may be introduced that indicates to the WTRU whether NR-SS and built-in DMRS can be jointly used for channel estimation and coherent combining for NR-PBCH demodulation. A quasi-coexistence (QCL) indicator may be introduced for initial access and NR-PBCH demodulation. When two signals are transmitted from two different antennas, the channels experienced by the two antennas may still have many large-scale characteristics in common. For example, the two signals may have the same or similar Doppler spread or shift, average delay, average delay spread, or average gain, and thus they may be used by the WTRU in setting parameters for channel estimation. However, when the distance of these two antennas is separated, the signals from these two antenna ports may also differ in terms of large-scale characteristics. The QCL indicator may be used to indicate the long-term channel characteristics of various antenna ports and various reference signals. For example, NR-SS and DMRS dedicated to PBCH may be assumed to be QCL even though they are not on the same antenna port. In a multiple transmission point (TRP) (multi-TRP) transmission, the NR-SS and PBCH dedicated DMRS may not be assumed to be QCL depending on whether they are co-located. The QCL indicator may be indicated in the NR-SS signal. If message-based NR-SS is used, the QCL indicator may be carried by the synchronization payload. If sequence-based NR-SS is used, the QCL may be embedded in the NR-PSS or NR-SSS or a combination of both. For example, different frequency and / or time relative offsets may be used to indicate the QCL. Various root indices or circular shifts of the ZC sequence may be used to indicate the QCL. Furthermore, various combinations of X and Y components in the NR-PSS or NR-SSS may be used to indicate the QCL.Once the QCL is indicated to the WTRU, the WTRU may use both the NR-PSS and / or NR-SSS as reference signals combined with the NR-PBCH dedicated DMRS for channel estimation. QCL-assisted initial access and NR-PBCH demodulation may be performed. Such QCL parameters may include, but are not limited to, Doppler spread or shift, channel mean delay, channel mean delay spread, channel mean gain, beam correlation, and spatial correlation.
[0138] FIG. 12 is a flow chart 1200 illustrating an example of a supplementary access procedure and NR-PBCH demodulation assisted or aided by a QCL indicator. Demodulation of NR-PBCH assisted by a QCL indicator is shown in FIG. 12. In this method, a QCL indicator is introduced to assist NR-PBCH demodulation. Depending on the value of the QCL, different configurations of channel estimation may be used for NR-PBCH demodulation. One exemplary method for NR-PBCH demodulation assisted by a QCL indicator is detailed below. The WTRU may search for an NR-SS signal (1202) and may detect NR-PSS and NR-SSS (1204). The received QCL indicator and / or the value of the QCL indicator may be checked. If the QCL indicates a first configuration, e.g., configuration 1 1208, the WTRU may perform channel estimation 1210 using both NR-SS and NR-PBCH-DMRS (1210). If the QCL indicates a second configuration, e.g., configuration 2 1212, then the WTRU may perform channel estimation using only the NR-PBCH-DMRS (1214). The WTRU may demodulate the NR-PBCH signal and channel using the channel response estimated from either configuration 1 1208 or configuration 2 1212 (1216).
[0139] Multi-antenna techniques may be used for the transmission of the NR-PBCH. For example, two-port space-frequency block coding (SFBC) and two-port precoder cycling may be used as the multi-antenna technique for the NR-PBCH. A single antenna port may be used for simplicity reasons. When multiple multi-antenna techniques are used for the NR-PBCH, information regarding the multi-antenna technique used for the NR-PBCH may be indicated to the WTRU. Such an indication may be conveyed by the NR-PSS and / or NR-SSS to indicate one or more multi-antenna techniques, or in one embodiment, to indicate the MIMO scheme or method used for the NR-PBCH. Both digital and analog beamforming techniques may be used. A hybrid digital and analog beamforming scheme may be used.
[0140] Precoder cycling may be used as one of the multi-antenna techniques shown. Both open-loop and semi-open-loop methods may be used. A precoder using large-delay cycling delay diversity (CDD) and / or small-delay CDD may be used. The precoder cycling pattern may be performed in time and / or frequency and may be pre-determined and signaled to the WTRU. Both the NR-PBCH signal and the channel containing the embedded DMRS in the NR-PBCH signal may use the same precoder set and the same precoder cycling pattern may be applied. The gNB or TRP may perform digital beam sweeping in time and / or frequency. Digital beamforming using precoder cycling or SFBC may be combined with analog beamforming and beam sweeping of the NR-PBCH.
[0141] An exemplary precoder rotation design for the NR-PBCH is disclosed herein. The transmission of the NR-PBCH may be based on two antenna ports with precoder rotation. The transmissions on these two ports may have the same or different types of precoders and precoder schemes, for example, open loop (including large delay CDD or small delay CDD) or semi-open loop, etc. may be utilized.
[0142] In semi-open loop, the gNB or TRP can apply a precoder, which is W = W 1 ·W 2 and the wideband precoding matrix W 1 represents the long-term statistics, and the (narrowband) precoding matrix W 2 represents the instantaneous channel state. In the semi-open loop PBCH scheme, the long-term precoding matrix W 1 is fed back from one or more WTRUs to the gNB. This can actually define the set of DFT beams to be used for this WTRU, suggesting the approximate direction of the WTRU. Note that this semi-open loop procedure may be valid for connected mode WTRUs. If the WTRUs of a cell are located in a certain small area of the gNB, the semi-open loop PBCH method may be applied, in which case the W 1 may be determined by the WTRU location. The gNB may then cycle through the narrowband precoding matrix W to determine the final precoder. The cycling pattern may be in the time and / or frequency domain.
[0143] Digital precoder or analog beamformer 1 A digital beamformer may be used for 2 One exemplary design may be used for analog beamforming, e.g., DFT and a digital precoder W 2 Based on W 1 The precoder rotation is W 2 may be used for
[0144] In another exemplary design, e.g., a DFT-based digital W 1 , and W 2 may be used. The precoder rotation is W 2 Or W 1 and W 2 may be performed for both.
[0145] In another exemplary design, e.g., a precoder codebook-based digital W 1 , and W 2 may be used. The precoder rotation is W 2 Or W 1 and W 2 Precoder cycling may be performed for both analog, digital beamforming or precoding, or a combination of the two.
[0146] FIG. 13 is an example 1300 using SS blocks associated with different precoders. In an open-loop CDD transmission of the PBCH, CDD coefficients may be applied at the subcarrier level or the RB level. The rotation pattern may be in the time and / or frequency domain. Since the PBCH is broadcast repeatedly over a certain time period, each PBCH message may be associated with a transmission pattern of the PBCH. FIG. 13 shows an example of four SS blocks 1302-1308 having the same content. Each SS block 1302-1308 may be associated with a different precoder 1310-1316 that directs the PBCH message in a different direction. In this example, SS1 1302 is associated with precoder 1 1310, SS2 1304 is associated with precoder 1 1312, SS3 1306 is associated with precoder 1 1314, and SS4 1308 is associated with precoder 1 1316. Each of the precoders 1-4 1310-1316 is depicted and shown for illustrative purposes only. The quality of each of the selected precoders may be similar or different from the conventional MIMO precoders of 4G. For example, a three-dimensional (3D) precoder may be used. In this way, in the third dimension, the WTRU altitude in the vertical domain can be considered. Other precoders may support highly parallel antenna technologies. Existing MIMO precoding, e.g., 4G technologies, may be used. Existing codebooks may be used. New codebooks may be added in addition to existing codebooks for backward compatibility and / or flexible deployment scenarios.
[0147] FIG. 14 illustrates an example 1400 in which SS blocks are associated with different precoders that are shifted across different PBCH messages 1402, 1420, 1440, 1460. The association between precoders and SS blocks can be the same or different between different PBCH messages 1402, 1420, 1440, 1460. In one embodiment, the association can be shifted. FIG. 14 illustrates an example that illustrates how the association of precoders and SS blocks shifts with the PBCH messages 1402, 1420, 1440, 1460. Specifically, in the first PBCH message 1402, SS block i is associated with precoder i. Thus, precoder 1 1404 is associated with SS block 1 1406, precoder 2 1408 is associated with SS block 2 1410, precoder 3 1412 is associated with SS block 3 1414, and precoder 4 1416 is associated with SS block 4 1418. In the second PBCH message 1420, SS block i is associated with precoder i+1 mod 4, etc. Thus, precoder 2 1422 is associated with SS block 1 1424, precoder 3 1426 is associated with SS block 2 1428, precoder 4 1430 is associated with SS block 3 1432, and precoder 1 1434 is associated with SS block 4 1436. In message 3 1440, precoder 3 1442 is associated with SS block 1 1444, precoder 4 1446 is associated with SS block 2 1448, precoder 1 1450 is associated with SS block 3 1452, and precoder 2 1454 is associated with SS block 4 1456. In message 4 1460, precoder 4 1462 is associated with SS block 1 1464, precoder 1 1466 is associated with SS block 2 1468, precoder 2 1470 is associated with SS block 3 1472, and precoder 3 1474 is associated with SS block 4 1476. As discussed above in connection with FIG. 13, various precoding schemes may be used in FIG. 14 as well.Some precoding schemes may include nonlinear precoding (NLP) schemes, such as Tomlinson-Harashima precoding or vector perturbation. Other hybrid precoding schemes may include semi-dynamic or dynamic switching between linear precoding and NLP.
[0148] FIG. 15 is a diagram of a transmit circuitry 1500 configured for an example combination of analog beamforming and two-port cyclic delay diversity (CDD) for diversity. The above digital beam sweeping scheme of FIG. 14 may be combined with analog beam sweeping. FIG. 15 illustrates an example of combining CDD with analog beamforming. This is directed to exploring greater diversity gain in the space, frequency, and time domains. FIG. 15 illustrates two RF chains, namely RF chain 1 1502 and RF chain 2 1504. RF chain 1 1502 circuitry may be configured to transmit 1510 at time t1 1506 using a first precoder. After a delay period, which may be implemented by, for example, a timer or clock circuitry 1510, a second transmission 1512 may be sent by RF chain 2 1504 using a second precoder. The second transmission may be sent at time t2 1508. The first transmission 1510 and the second transmission 1512 may partially or completely overlap in time, or may not overlap at all.
[0149] 16 is a diagram 1600 of an example combination of digital and analog beamforming shown in the time domain. 1 n patterns and n in analog beam sweeping method 2 Assume that there are n patterns and n for the total number of cycles. 1 ·n 2 Exemplary combinations are shown in FIG. 1 =n 2 = 2. Furthermore, while the digital beam sweep simultaneously maintains n for the analog beam 2In an alternative embodiment, only one beam sweep may be required, as shown in FIG. 17, for analog beam sweeping in the time domain, n 2 In addition to performing beam sweeping, n 1 A beam sweep of 1602 and 1604 may be performed. As shown in FIG. 16, the same digital precoders 1602 and 1604 may be used for the first and second transmissions. For those same transmissions, two different analog beams 1606 and 1608 may be generated. For the third and fourth transmissions, a second digital precoder 1610 and 1612 may be used. The second digital precoders 1610 and 1612 may be the same digital precoder. Analog beam 1 1614 and analog beam 2 1616 may be different analog beams to achieve diversity.
[0150] FIG. 17 is a diagram of an example combination of digital and analog beamforming in the time and frequency domains. In this embodiment, alternative analog beams are shown in the time domain and alternative digital beams are shown in the frequency domain. Referring to FIG. 17, in a first transmission at a time, a second digital precoder 1702 is used at the same frequency as the first digital precoder 1704. At the same time, two identical analog beams 1706 and 1708 are transmitted. As a second transmission at another time, two different digital precoders 1710 and 1712 are used with two identical analog beams 1714 and 1716.
[0151] FIG. 18 is a diagram of an example combination of analog beamforming and two-port space-frequency block coding (SFBC) for transmit diversity. Using the circuit configuration as shown in FIG. 18, the transmission of the NR-PBCH can be based on one or more transmit diversity schemes, including a two-port SFBC scheme. In the high frequency band, for example, the transmission on each port may be associated with multiple antenna elements, and analog beamforming on each port may be used to obtain further diversity gain. FIG. 18 shows an example SFBC design combined with analog beamforming to achieve further diversity gain. As shown, symbols S0 1802 and S1 1804 are sent on antenna port 1 1810 via different subcarriers subcarrier 1 1806 and subcarrier 2 1808, and symbols -S1*1814 and S0*1812 are sent on antenna port 2 1816 via different subcarriers subcarrier 1 1806 and subcarrier 2 1808. In this example, diversity in the digital domain is achieved by inverting S1 1804, S0 1802, and S0*1814, -S1*1812. Thus, the bit streams provided to RF Chain 1 1818 and RF Chain 2 1820, respectively, are reversed. In the analog domain, RF Chain 1 1818 and RF Chain 2 1820 may each use a different beamforming technique. In that case, there may be different beam shapes 1822 and 1824 transmitted to the receiver.
[0152] In one embodiment, analog beamforming circuitry can adjust the beam direction and beam width for each of the antenna ports 1810 and 1816 in the SFBC scheme 1800. The control of analog beamforming may rely on prior knowledge of the WTRU geographic distribution. The WTRU geographic distribution or beam position profile may be provided via uplink signaling or grant-free access.
[0153] 5G NR communications at frequencies above 6 GHz are likely to rely on highly directional transmission and reception. The first step to establish a reliable link is the so-called initial access procedure, which includes cell search, PBCH transmission, and RACH procedures. Procedures associated with current 4G LTE systems may be used as a basis. However, since LTE is limited to below 6 GHz, directional transmission and reception are not required and are not incorporated into these initial access procedures. Thus, new initial access procedures may need to be designed that take into account the additional complexities associated with directional communication systems. Since each transmit and receive beam may cover a limited angular interval, a procedure may need to be established to identify beam pairs that may be used for communication. This procedure may be performed by beam sweeping at the transmit and / or receive points. The addition of the beam sweep procedure may add significant complexity and power consumption, overhead, latency, etc. may need to be taken into account.
[0154] A conventional beam sweeping procedure may involve the TRP and WTRU "testing" all combinations of beam pairs and selecting the beam pair that may provide the best performance. The "testing" may be performed by the TRP transmitting a known sequence on a given beam while the WTRU receives the given beam and measures the resulting SINR. The measurements may be repeated for all possible beam pairs and the beam pair that returns the maximum SINR value is selected. The framework for this type of procedure is defined in the TRP for 5G NR as shown in FIG. 19.
[0155] 19 is an example TRP transmission structure 1900 that may be used for initial access. The transmission of the initial access based signal occurs within a synchronization signal burst time T ssb Occurred during 1902 and T of SS period 1904 p Repeat every T seconds to accommodate the beam sweep procedure. ssb1902 may be composed of an integer number of OFDM symbols 1906 and 1908, e.g., each OFDM symbol may be transmitted over an OFDM symbol time T sym 1910. Using this basic framework, the WTRU can further sweep through the set of beams and ultimately determine the beam pair to use for subsequent communications. In this manner, at any time T p In a second, it may be possible to cycle through and test multiple beams during the initial synchronization, which can provide a significant performance improvement without having to perform additional testing after synchronization.
[0156] One simple way to design a complete beam sweeping procedure using the framework defined in FIG. 19 is to perform an exhaustive search over all available beam pairs at the TRP and the WTRU, as shown in FIG. 20.
[0157] FIG. 20 illustrates an exemplary single-stage exhaustive search beam sweeping procedure 2000. In FIG. 20, each SS burst 2002, 2004, 2006 may be composed of N OFDM symbols, each symbol transmitting a single beam, with the N beams covering the entire angular region of the TRP 2008. As also illustrated, the WTRU 2010 receives from a single beam for the entire SS burst, and thus a complete beam sweep requires M SS bursts 2012, 2014, 2016 to test all possible beam pairs. Note that to address signal jamming at the WTRU 2010, it is anticipated that there will be multiple receive arrays. For example, an array may be on each side of a rectangular device. If this is the case and each array supports M beams, then the total number of WTRU beams, and therefore the total number of SS bursts for a complete beam sweep, is four. As previously discussed, system overhead, access latency, and total power consumption are concerns for the initial access procedure. These concerns are articulated herein in terms of overhead, latency, and power consumption. In terms of overhead, each OFDM symbol used for synchronization is not available for other purposes, such as data transmission. This may be a concern for large N. The duration of the entire procedure may be viewed as additional overhead in terms of the reduced time that may be used for communication. In terms of latency, one of the things that provides an improved user experience is the ability to quickly establish a communication link. In this sense, a large M, further combined with multiple arrays to try to suppress interference, may significantly increase access times. Power consumption is another concern, and generally speaking, low power consumption is desirable. Low power consumption is especially desirable in WTRUs, since they are typically battery operated devices. Each beam pair measurement requires WTRU power, and therefore limiting the number of beam pair measurements may be used to reduce power consumption.
[0158] FIG. 21 is an example of multi-stage WTRU hierarchical beam sweeping 2100. An alternative to the single-stage exhaustive search beam sweeping procedure shown in FIG. 20 is the multi-stage layered approach 2100. The search can start with a wide beam covering a relatively large angular region in the first stage, then progressively reduce the angular search space and width of the beam used in the subsequent stages. This progressive reduction can be applied to the TRP only, the WTRU only, or both the TRP and the WTRU simultaneously. For illustration purposes, an example of three-stage layered WTRU beam sweeping is shown in FIG. 21. In this example, the WTRU 2102 uses four arrays, each array covering its angular region using 12 beams. From a latency perspective, an exhaustive beam sweeping procedure may require 4×12=48 SS bursts. The three-stage 2104-2108 procedure shown may require 4+4+3=11 SS bursts 2110-2120. Furthermore, from a power consumption perspective, the exhaustive beam sweeping procedure requires 48N measurements, whereas the current three-stage procedure requires only 11N measurements to be performed. In either case, this is a savings of about 77%. The following disclosure describes this procedure in more detail. For all stages 2104-2108, the TRP 2122 transmits N beams for each SS burst 2110-2120 over N OFDM symbols. The WTRU 2102, on the other hand, operates differently over time. In the first stage 2104, the WTRU 2102 receives using a single quasi-omni beam for array 2124 for each SS burst. In the second stage 2106, the WTRU 2102 receives from four wide beams 2126 from the array that yielded the maximum SINR from stage 1 2104. In the third stage 2108 , the WTRU 2102 receives from three narrow beams 2128 spatially contained within the wide beam that yielded the highest SINR from stage two 2106 .
[0159] An additional example using multi-stage TRP hierarchical beam sweeping is shown in FIG. 22. Note that FIG. 22 also shows an embodiment in which multi-stage TRP / WTRU hierarchical beam sweeping is possible since the WTRUs can be hierarchical. An exemplary procedure for these cases is as follows: In the first stage 2202, the TRP 2204 transmits from four wide beams for each SS burst 2208-2210 over four OFDM symbols. Meanwhile, in the first stage 2202, the WTRU 2206 receives from M beams using a single beam for each SS burst 2208-2210. In the second stage 2212, the TRP transmits from N narrow beams for each SS burst 2214-2216 over N OFDM symbols. In the second stage 2212, the WTRU 2206 has three options 2214-2218. In a first option 2214, the WTRU 2206 receives from M beams, using one beam per SS burst, but the WTRU 2206 may only measure TRP narrow beams that are spatially contained within the TRP wide beam detected in the first stage 2202. In a second option 2216, to further reduce power consumption, the WTRU 2206 may receive from only the one WTRU beam that yielded the largest SINR measurement from the first stage 2202. In a third option 2218, to increase the SINR from directional gain, the WTRU may use a hierarchical approach and receive from a set of narrow beams that are spatially contained within the detected WTRU 2206 wide beam from the first stage 2202.
[0160] For the first two options 2214-2216, if it is assumed that there are three narrow TRP beams per wide beam, the number of beam pair measurements required is 4M+3M for option 1 and 4M+3 for option 2. This compares to the number of measurements required in a single-stage coverage procedure, where the number of measurements required is 12M. This results in savings of approximately 42% and 60%, respectively. The third option 2218 combines the TRP 2204 and WTRU 2206 hierarchical beam sweeps. In this case, the number of measurements required is 4M+3M. narrow In this case, M=4 and Mnarrow If it is assumed that .times. ...
[0161] Another aspect of the initial access procedure to consider is the amount of interference seen by the WTRU from other TRPs. The multi-stage procedure, which was primarily used to reduce latency, power consumption, and overhead, may be further modified to address interference issues as well. The main idea to reduce interference is to leverage the use of multiple stages, where information from previous stages can be used in later stages to filter and potentially "turn off" certain TRP beams.
[0162] FIG. 23 shows an example of such an approach, called selective beam sweeping, combined with a multi-stage TRP / WTRU hierarchical beam sweeping procedure. A general description of this procedure is detailed as follows. In the first stage 2302, a TRP 2304 selects N W For each SS burst 2308-2310 on N OFDM symbols, W In the same stage 2302, the WTRU 2312 transmits from M wide beams 2306, one beam per SS burst. W In the second stage 2316, the TRP 2304 receives from the selected LN N WTRUs transmit only from narrow beams 2318, where L is the total number of wide beams detected by all WTRUs, and N N is the number of narrow beams in each wide beam. The TRP 2304 may repeat transmission for each SS burst 2318-2322.
[0163] The TRP can learn or acquire information about the detected wide beams directly from the WTRU via uplink using the beam pairs from the first stage, or indirectly from an anchor TRP to which the WTRU is already connected. The WTRU can learn or acquire information about the detected wide beams directly from the WTRU via uplink using the beam pairs from the first stage, or indirectly from an anchor TRP to which the WTRU is already connected. N The signal can be received from a narrow beam.
[0164] The procedure shown in FIG. 23 combines TRP hierarchical beam sweeping, WTRU hierarchical beam sweeping, and TRP selective beam sweeping to maximize SINR and simultaneously reduce power consumption, latency, and overhead. With respect to improving SINR by reducing WTRU interference from "other" TRPs, it should be noted that this method may have advantages when WTRU density is low and / or WTRUs are unevenly distributed. As an illustration, a situation may be considered in which all WTRUs are concentrated in a specific geographic area within the TRP coverage area. For example, this may be the case for a sporting event or concert. In this case, each WTRU is accessing the TRP using a similarly directed TRP beam, and thus, once this is learned by the TRP, there is no need for the TRP to transmit on a specific beam. It should also be noted that this embodiment, in addition to reducing interference, may provide power consumption savings at the TRP.
[0165] The benefits of the above procedure may also be seen empirically via system simulation. FIG. 24 shows SINR results 2400 from four different beam sweeping procedures, three of which are repeated with non-uniform WTRU distribution to show the TRP selectivity sweeping performance gain. The results of the simulated procedures are summarized herein. One result shown involves a single-stage beam sweep 2402. The single-stage beam sweeping may be a single-stage simulation performed with only a uniform WTRU distribution, since a second stage is required to activate the TRP selectivity beam sweeping. The performance of the single-stage beam sweeping 2402 is substantially identical to the two-stage TRP selectivity beam sweeping procedure with a uniform WTRU distribution. Therefore, they are both labeled 2402.
[0166] There is no hierarchical sweeping in the two-stage TRP selectivity beam sweeping 2402, and as described above, the performance is substantially identical to the single-stage procedure above when the WTRUs are uniformly distributed. When the WTRUs are non-uniformly distributed, SINR gains based on reduced interference levels can be realized. The case of two-stage selectivity non-uniform 2408 is shown for comparison.
[0167] Another result shown is a two-stage TRP hierarchical selective beam sweep 2404. There is an overall gain over the above procedure based on the TRP hierarchical approach using narrower beams in the second stage. There is also a gain based on reduced interference from TRP beams that are turned "off" when the WTRUs are also unevenly distributed. The case of two-stage selective TRP hierarchical uneven 2410 is shown for comparison.
[0168] Another result is a two-stage TRP / WTRU hierarchical selective beam sweep 2406. There is additional gain based on adding a WTRU hierarchical approach, again using narrower beams in the second stage. There is also gain based on reducing interference from TRP beams that are turned "off" when the WTRUs are also unevenly distributed. The case of two-stage selective TRP / WTRU uneven 2412 is shown for comparison.
[0169] FIG. 25 shows an alternative form 2500 of the TRP transmission structure shown in FIG. 19. As shown in FIG. 25, the defined SS bursts 2502-2508 and SS period 2510 are still retained. In this case, a single SS burst 2502-2508 still occupying multiple OFDM symbols is assumed to be transmitted in a single beam direction. The SS bursts 2502-2508 are repeated every Tp seconds in the SS period Tp 2510 as shown previously, but in this case, instead of repeating the same beam pattern, a different beam direction is selected for each SS burst. After N SS bursts, the pattern repeats. Thus, in this case, a complete beam sweep will take a minimum of N SS bursts time, depending on how the WTRU beam sweeping is implemented.
[0170] A simple full beam sweeping procedure using the framework defined in Figure 25 may be performed by performing an exhaustive search over all available TRP and WTRU beam pairs. This procedure 2600 shown in Figure 26 is similar to that shown in Figure 20, except that the roles of the WTRU and TRP are switched with respect to beam sweeping ordering. The TRP 2602 transmits one of N beam directions during SS bursts 2604-2608, and the WTRU 2610 cycles through all M beam directions during each SS burst 2604-2608. In this process, a full beam sweep requires N SS burst times to complete.
[0171] General observations may apply to cell-center WTRUs. In general, it is likely that less antenna gain may be required for cell-center WTRUs compared to cell-edge WTRUs. This is likely to be true at and before the completion of the initial access procedure and to allow for successful data transfer. Additionally, it is noted that multiple RF chain transmissions are easier to perform in a TRP than in a WTRU for reasons such as cost and power. With these observations in mind, a beam sweeping procedure may be performed based on the transmission structure shown in FIG. 25. The procedure may reduce access latency and save processing power for the cell-center WTRU while allowing the cell-edge WTRU to gain access. This procedure is shown in FIG. 27.
[0172] FIG. 27 is an example of a single stage multi-RF chain TRP beam sweep 2700. In the example shown in FIG. 27, two RF chains 2702-2704 are used in the TRP for the initial access procedure. The first RF chain 2702 is N N Narrow beams 2706 are used to cover the TRP serving area, and the second RF chain 2704 has N W N wide beams 2708 are used to cover the same TRP serving area, where N W <N N One or more WTRUs 2710 can receive from all M beams during each SS burst 2712-2722. This configuration allows cell-center WTRUs to complete the initial access procedure with reduced latency compared to cell-edge WTRUs. The procedure is described in more detail as follows: The first TRP RF chain 2702 receives N SS bursts 2712-2716 for each SS burst 2712-2716. N The beam sweep period is N N The second RF chain 2704 receives N bursts for each SS burst 2718-2722. W The beam sweep period is N W In one embodiment, N W <N NRF chains 1 and 2 can use the same, partially overlapping, or completely different circuit configurations. On the WTRU side, the WTRU cycles through all M beams during each SS burst 2724-2730. The cell center WTRU cycles through N W The cell edge WTRU can determine the beam pair after N SS bursts. N The WTRU may determine the beam pair after the SS burst. The WTRU may decide to search for a wide TRP beam or a narrow TRP beam based on various criteria, such as information from an anchor TRP or an initial signal power measurement.
[0173] MIMO and multi-beam transmission may be enabled for initial access, and in one embodiment, grant-free transmission may be enabled for MIMO as well as beamforming for PBCH and subsequent DL transmissions. At least one set of beamforming parameters may be provided, determined, configured, and / or known, for example, by a specification. The configuration may be provided and / or transmitted, for example, by the gNB, via signaling, such as broadcast or dedicated signaling. The configuration may be received by the WTRU.
[0174] A precoder may be used herein as a non-limiting example of a beamforming parameter. Some other examples include an antenna port, e.g., a CSI-RS port, a set of antenna ports, a beam ID or a set of beam IDs, etc. In the embodiments and examples described herein, any other beamforming parameter may be used in place of a precoder and still be consistent with the embodiments herein.
[0175] The WTRU selects at least one precoder, e.g., W 1 Or W 2The WTRU may select a precoder from a first set of precoders. The WTRU may select a second precoder from a second set of precoders. The first set and the second set may be the same or different. The WTRU may select a precoder that may be preferred or recommended. The WTRU may signal or indicate, for example, to the gNB, the at least one precoder that it has selected.
[0176] The WTRU may select a precoder for a broadcast transmission for a broadcast channel, such as a PBCH. The WTRU may use a first precoder for a first reception of the broadcast channel. The WTRU may determine or know the first precoder prior to use. The first precoder may be a defined precoder that may be known by the WTRU.
[0177] The WTRU may determine the first precoder from at least one synchronization channel, e.g., from at least one of the time and / or frequency positions, e.g., relative positions, of the first and second synchronization channels, or a payload associated with the synchronization channel, or a sequence of the synchronization channel.
[0178] The WTRU may use a first precoder, e.g., until instructed to use a different precoder. The WTRU may indicate a precoder, e.g., a preferred precoder, e.g., for a broadcast channel. The WTRU may indicate a precoder to the gNB. The WTRU may indicate a precoder, e.g., in grant-free access, which the WTRU may make, e.g., before or without establishing an RRC connection. The WTRU may indicate a precoder, e.g., in grant-free access, which the WTRU may make, e.g., before or without establishing an RRC connection with the gNB.
[0179] Grant-free access may be a transmission that uses time and / or frequency resources without a grant, e.g., an explicit grant. Grant-free access may be or include random access, such as two-step or four-step random access. Grant-free access may be or include one-step transmission or one-step random access, e.g., message 1 or only message 1 of a random access procedure.
[0180] Resources and / or preambles that may be used for grant free access may be configured via a broadcast channel or system information. The grant free access may include transmission of at least one of a preamble, control information, and / or a data payload. The WTRU may use the preamble, control information, and / or data payload to indicate a selected precoder. The WTRU may expect a response or acknowledgment for the grant free access and / or for information carried by the grant free access. Alternatively, the WTRU may not expect a response or acknowledgment for the grant free access, such as a grant free access that may be used to indicate beamforming parameters.
[0181] The gNB may receive the precoder indicator, for example, from the WTRU. The gNB may receive the precoder indicator via grant-free access. The gNB may receive the precoder indicator for a broadcast channel. The gNB may use the precoder indicator for semi-open loop MIMO applied to the broadcast channel.
[0182] The gNB may receive a first precoder indicator from the first WTRU and a second precoder indicator from the second WTRU. The gNB may determine a precoder to use, for example, for a broadcast channel, based on the first precoder indicator and the second precoder indicator. The gNB may use the determined precoder, for example, for transmission of the broadcast channel.
[0183] In an example, the determined precoder may be a compromise between the first and second precoders. In another example, the first precoder may be used sometimes and the second precoder may be used sometimes. For example, the gNB may cycle through a set of indicated precoders that it receives from a set of WTRUs that may provide beaconing on the same beam or set of beams or from the same or similar direction. The gNB may alternate between the first indicated precoder and the second indicated precoder.
[0184] The gNB may indicate beamforming parameters such as a precoder in response to the grant-free access. The response may be via DL control information (DCI) or a DL data channel that may have an associated DCI that may indicate resources for the DL data channel. The DCI may use a common RNTI. The WTRU may monitor the common RNTI to receive the DCI and / or DL data.
[0185] A synchronization (sync) channel or set of synchronization channels may be used to indicate a precoder that may be used for a broadcast channel. The gNB may modify the synchronization channel or set of synchronization channels when it modifies the precoder for the broadcast channel. The modifications may be to the synchronization channel sequence, the time and / or frequency position using, for example, relative positions of the first and second synchronization channels, and / or the payload associated with the synchronization channel.
[0186] The first broadcast channel may be used to indicate a precoder and / or a precoder rotation pattern that may be used for the second broadcast channel. The indication may be provided within a payload carried by the first broadcast channel.
[0187] The WTRU may use the indicated precoder and / or precoder rotation pattern for reception of a channel, such as a secondary broadcast channel. The indication may be provided by the gNB. The WTRU may use the selected precoder for reception of a channel, such as a broadcast channel or a secondary broadcast channel. The selected precoder or precoder rotation pattern may be one that the WTRU indicated, for example, in grant free access. The selected precoder or precoder rotation pattern may be one that the WTRU indicated, for example, to the gNB.
[0188] In an example, a WTRU may receive a channel, such as a broadcast channel, using a first precoder. The WTRU may use a second precoder, for example, to receive a channel when reception is unsuccessful with the first precoder or to receive a secondary broadcast channel.
[0189] The first or second precoder may be a precoder selected by the WTRU. The WTRU may use the first or second precoder after indicating the first or second precoder (e.g., to the gNB and / or in grant-free access). The second or first precoder may be an initial, predefined, configured, or indicated precoder. The WTRU may select a precoder, e.g., a W-CDMA precoder based on long-term statistics. 1 , precoder, e.g., W 2The grant-free transmission may be used to feed back at least one of: an analog beamformer, e.g., a beam ID or a set of beam IDs, a beam pair link or a set of beam pair links, an antenna port or a virtual antenna port, e.g., a CSI-RS port or a set of CSI-RS ports, a beam position profile, an ACK / NACK in response to a beam, or a WTRU beam correspondence or correlation.
[0190] A length 72 DMRS sequence may be generated in case of time duplicated sequence DMRS. This sequence may be mapped to 72 RE DMRS of the first OFDM symbol and copied onto the second OFDM symbol. If QPSK modulation is used, a length 144 sequence may be generated and converted to 72 QPSK symbols and mapped to all REs of each OFDM symbol. If BPSK modulation is used, a length 72 sequence may be generated and mapped to all REs of each OFDM symbol. In this configuration, since only one sequence is generated, it can carry the SS block time index (SBTI). The terms SS block ID, SS block index, and SS block time index may be used interchangeably. Different methods of SBTI indication are disclosed. Each DMRS RE for the second OFDM symbol is repeated in time, and thus residual CFO estimation may be performed and corrected. However, if the length of the sequence is shortened, it may degrade the detection performance of SBTI. Similar to using channel estimation, it is difficult to perform pre-equalization of these symbols outside the NR-PSS / NR-SSS bandwidth. This can cause the receiver to perform non-coherent detection and thus degrade performance.
[0191] For example, in a frequency-specific sequence DMRS configuration, a DMRS sequence of length 72 may be generated (S(1:72)). This is mapped to the central 12 RBs on both OFDM symbols of the NR-PBCH. This same sequence is also copied to the remaining 12 RBs (outside the SS bandwidth). This may be done in a number of different ways.
[0192] Figures 28 and 29 show frequency repetition or frequency swapped repetition 2800, 2900. In Figure 28, bits S(19:36) 2802-2804 are seen twice on PBCH1. Similarly for bits S(1:18) 2808-2810. A similar order may be seen on PBCH2. In this example, bits S(55:72) 2814-2816 are repeated twice along with bits S(37:54) 2818-2820. Figure 28 provides the repetition in the frequency domain rather than the time domain.
[0193] FIG. 29 is another example 2900 of frequency repetition. In FIG. 29, PBCH1 2902 carries bits S(19:36) 2906 between bits S(1:18) 2904 and bits S(1:18) 2908. Neighboring bits S(1:18) 2908 are another instance of bits S(19:36) 1910. On PBCH2 2912, bits S(55:72) 2916 are found between bits S(37:54) 2914 and bits S(37:54) 2918. Neighboring bits S(37:54) 2918 are bits S(55:72) 2920. Frequency swapping can result in greater diversity. It may also be possible to perform frequency and / or time swap repetition in different ways.
[0194] Some example embodiments 3000, 3100 are shown in Figures 30 and 31. In Figure 30, on PBCH1 3002, bits S(19:36) 3006 are between bits S(55:72) 3004 and bits S(1:18) 3008. Adjacent to bits S(1:18) 3008 are bits S(37:54) 3010. PBCH2 3012 includes bits S(55:72) 3016 located between bits S(19:36) 3014 and bits S(37:54) 3018. Bits S(37:54) 3018 are located adjacent to bits S(1:18) 3020. In this way, redundancy is provided in the time domain and frequency interleaving is applied.
[0195] Figure 31 is an example similar to that of Figure 30. In Figure 31, on PBCH1 3102, bits S(19:36) 3106 are located between bits S(37:54) 3104 and bits S(1:18) 3108. Adjacent to bits S(1:18) 3108 are bits S(55:72) 3110. PBCH2 3112 includes bits S(55:72) 3116 located between bits S(1:18) 3014 and bits S(37:54) 3118. Bits S(37:54) 3118 are located adjacent to bits S(19:36) 3120. Figure 31 reverses the bit ordering of Figure 30 such that the higher numbered bits 3004 and 3014 of Figure 30 are moved to opposite frequency ends 3110, 3120 of Figure 31. This is similar for bits S(37:54) 3002 and S(1:18) 3020 of Figure 30 and S(37:54) 3104 and S(1:18) 3114 of Figure 31.
[0196] A potential feature of these configurations is that only the central REs may need to be decoded to find the SBTI. These configurations can reduce the SBTI detection complexity when the channel condition is known to be good based on NR-PSS / NR-SSS detection. In this configuration, NR-PSS / NR-SSS may be used for pre-equalization for coherent detection of the sequence carried on the central RBs. For RBs outside the NR-SS bandwidth, non-coherent detection may need to be performed. They may be combined with the coherent detection of the central RBs.
[0197] NR-PSS and NR-SSS may occupy only N REs, e.g., N=127 REs in the center instead of all 144 REs of 12 RBs. Thus, good channel estimation can be performed for only 31 REs in one OFDM symbol or a total of 62 REs in two OFDM symbols. Extrapolation of channel estimation may not be performed very well. Also, this method may not allow subcarriers to be repeated in time, and therefore residual CFO estimation is not possible. Thus, modified methods may be used additionally or in combination.
[0198] In one embodiment, a length-62 DMRS sequence may be mapped to the middle 12 RBs on the subcarriers overlapping with NR-PSS / NR-SSS, and a repeated sequence is mapped to the remaining 12 RBs. Figure 32 shows a length-62 sequence with repetition in frequency. An exemplary diagram of PBCH1 3202 and PBCH2 is shown. The areas marked with × 3204-3216 are areas where payload may be transmitted. The shaded area in Figure 32 represents the PBCH DMRS REs and sequences, but is not the payload. The DMRS subcarriers 3204-3216 are populated with symbols repeated in the second OFDM symbol of the NR-PBCH on the DMRS RE. Due to the asymmetry, in each OFDM symbol, the higher band (outside the SS band) has two such REs and the lower band (outside the SS band) has three such REs. They may be used for CFO compensation and channel estimation. In the outer regions of the NR-SS bandwidth, these subcarriers may be more evenly distributed. This length-62 scheme may also have various configurations, such as time and frequency swapping, as shown in Figures 28-31. As shown in Figure 32, the shaded areas 3218-3236 may carry a sequence of PBCH DMRSs. PBCH2 includes payload elements 3240-3252, and bits used for DMRSs 3254-3270. In this manner, the payload elements may be interleaved with the DMRSs.
[0199] All the schemes described above had a single sequence that contains information about SBTI. Therefore, using these DMRSs for channel estimation is possible only after the SBTI is decoded. Therefore, only information within the SS bandwidth can be used to coherently decode the SBTI. To overcome this problem, another design is disclosed. In this design, there are two sequences used. The first sequence is mapped onto the DMRS RE of the first OFDM symbol of the NR-PBCH. The second sequence is mapped onto the DMRS RE of the second OFDM symbol of the NR-PBCH.
[0200] The first sequence is generated using a cell ID. For convenience, this is referred to as the reference DMRS. The cell ID may be determined from NR-PSS / NR-SSS detection. Using the cell ID, the first sequence may be determined. Channel estimation may be performed for those REs using knowledge of the sequence. These channel estimates may be used to pre-equalize the DMRS REs or subcarriers. The second sequence depends only on the SBTI, or on the cell ID and the SBTI together. As this sequence is used to indicate the SBTI, the term labeled DMRS is used to refer to this sequence as used herein. After coherently detecting the second sequence, the SBTI may be decoded. This sequence may be a function of several variables.
[0201] In another variation of the same concept, a known base sequence may be generated. This base is modified using a cell ID to generate a sequence for a reference DMRS. The sequence may also be modified using the SBTI to generate a sequence for a tagged DMRS. The reference DMRS is used to pre-equalize and coherently estimate the tagged DMRS and thus detect the SBTI.
[0202] These modifications as a function of SBTI may be performed using some of the following: different initializations of a Linear Feedback Shift Register (LFSR) for the gold code M-sequence, a frequency or circular shift of the gold code M-sequence, a gold sequence frequency or circular shift, a circular shift, and performing scrambling on the original sequence.
[0203] Once the NR-PSS and NR-SSS are detected, they may be used as known sequences for channel estimation and pre-equalization for the central RBs, and it may be possible to use the reference DMRS only for RBs (or subcarriers) that are not occupied by the NR-PSS / NR-SSS. Thus, the indicator DMRS is mapped onto the first and second OFDM symbols of the NR-PBCH in the bandwidth that overlaps with the NR-PSS and NR-SSS. This can increase the length of the sequence used for the indicator DMRS and can improve the performance of the indicator DMRS.
[0204] In the above design, the first sequence is mapped onto the first OFDM symbol of the NR-PBCH and the second sequence is mapped onto the second OFDM symbol. It may also be possible to alternate the two sequences within one OFDM symbol. Thus, the sequences are mapped onto the DMRS REs of alternating OFDM symbols of the NR-PBCH. This can improve the channel estimation performance using one of the sequences. It can also improve the diversity of the second sequence and thus the detection of SBTI. This pattern is shown in Figure 33, which shows the NR-PBCH DMRS distribution of two sequences in a comb pattern.
[0205] Figure 33 is an example 3300 of NR-PBCH DMRS distribution for two sequences in a comb pattern. In Figure 33, r1 3304-3310 indicate REs to which reference DMRSs are mapped, and r2 3312-3316 indicate REs to which indicator DMRSs are mapped. With reference to NR-PBCH1 3302, r1 3304-3310 are distributed among r2 3312-3316. With reference to NR-PBCH2 3318, r1 3320-3324 are distributed among r2 3326-3332.
[0206] This comb pattern may be used to transmit the reference DMRS and the beacon DMRS. In one design, the reference DMRS sequence may be generated using only the cell ID, which may be modified using the SBTI to generate the beacon DMRS sequence.
[0207] In another option, a known base sequence is generated, which is modified using a cell ID to generate a sequence for the reference DMRS, and the base sequence is also modified using the SBTI to generate a sequence for the tagged DMRS.
[0208] Similar to the simple pattern case, further modifications as a function of SBTI may be performed with one or more of different initializations of a Linear Feedback Shift Register (LFSR) for the gold code M-sequence, frequency or cyclic shift of the gold code M-sequence, gold sequence frequency or cyclic shift, cyclic shift, and / or scrambling on one or more original sequences.
[0209] Similar to the simple pattern case, NR-PSS and NR-SSS may be used for channel estimation and pre-equalization for the central RBs. It is possible to use the reference DMRS only for RBs (or subcarriers) not occupied by NR-PSS / NR-SSS. Thus, the indicator DMRS is mapped onto the first and second OFDM symbols of the NR-PBCH in the bandwidth overlapping with NR-PSS and NR-SSS. This can increase the length of the sequence used for the indicator DMRS, and thus improve the performance of the indicator DMRS.
[0210] Short LFSR gold sequences can be implemented using shift registers. In this way, shift registers of different lengths can be used to generate gold sequences. For example, in the short length case, if an LFSR of length 7 is used, we get: c(n) = (x 1(n)+x 2 (n))mod2 x 1 (n+7)=(x 1 (n+4)+x 1 (n))mod2 x 2 (n+7)=(x 2 (n+1)+x 2 (n))mod2
[0211] One or both M-sequences may be initialized with states x(0) = 0, x(1) = 0, x(2) = 0, ..., x(5) = 0, x(6) = 1. If only one LFSR is initialized with
[0001] , the other LFSR may be initialized using the SS block time index or cell ID or a combination of both.
[0212] Longer LFSR Gold sequences may be used in addition or in combination. Longer LFSR gold sequences may also be generated using longer shift registers, and when selecting the output, the shift (Nc) may be used to select a portion of the gold sequence of the desired length. c(n) = (x 1 (n+N c )+x 2 (n+N c ))mod2 x 1 (n+31)=(x 1 (n+3)+x 1 (n))mod2 x 2 (n+31)=(x 2 (n+3)+x 2 (n+2)+x 2 (n+1)+x 2 (n))mod2
[0213] Nc may be defined as an integer, for example, Nc=1600.
[0214] Very long LFSR gold sequences, for example of length 64, may also be generated by a longer shift register, and in selecting the output, the shift (Nc) may be used to select a portion of the gold sequence of the desired length. c(n) = (x 1 (n+N c )+x 2 (n+N c ))mod2 x 1 (n+63)=(x 1 (n+1)+x 1 (n))mod2 x 2 (n+63)=(x 2 (n+38)+x 2 (n+13)+x 2 (n+1)+x 2 (n))mod2
[0215] In this example,
[0216]
number
[0217] where Nc can be a much larger integer and can be determined experimentally to find good correlation sequences.
[0218] Any of the above sequences may have scrambling applied to them before modulation (BPSK / QPSK). The scrambling code may be generated from an LFSR of similar length.
[0219] A cyclic shift may be applied to either Gold sequence after modulation (BPSK / QPSK).
[0220] The circular shift is
[0221]
number
[0222] where m=0, 1, ..., M-1 and i is the shift index. In this example, seq is the original modulated sequence, and seq CS is a sequence with a circular shift.
[0223] Modulation is used for the sequences, and all of the above sequences can be BPSK or QPSK modulated.
[0224] When using BPSK, r(m) = (1-2·c(m)), where:
[0225]
number
[0226] Using QPSK, each two bits can be combined into one symbol as follows:
[0227]
number
[0228] however,
[0229]
number
[0230]
number
[0231] Bits that are a distance apart can be combined into one symbol as follows:
[0232]
number
[0233] however,
[0234]
number
[0235] In an embodiment, NR-PBCH DMRS time block ID indication / detection may be implemented. Different initialization of the M-sequence LFSR may be performed.
[0236] For example, c(n)=(x 1 (n)+x 2 (n))mod2 x 1 (n+7)=(x 1 (n+4)+x 1 (n))mod2 x 2 (n+7)=(x 2 (n+1)+x 2 (n))mod2 Consider the gold code defined by
[0237] x1 is the first M-sequence and x2 is the second M-sequence that generates the gold code. The LFSRs for generating one or both of the m-sequences x1, x2 used to generate the gold code can be initialized using the SBTI or cell ID or a combination of both, or even a combination of many more variables such as the RNTI, slot number, cell ID, half frame, etc.
[0238] Various examples of these initial settings are listed below.
[0239] Option 1:
[0240]
number
[0241] Option 2:
[0242]
number
[0243] where x is a known integer. Option 3:
[0244]
number
[0245] where x is L lfsr An integer smaller than -1-10.
[0246]
number
[0247] Option 4:
[0248]
number
[0249] Option 5 may be a more generalized option of option 4.
[0250]
number
[0251] Here, x1 through x5 can be experimentally determined to have the best correlation properties, although other options are possible.
[0252] It may also be possible to generate two different gold sequences using two different initializations: for example, a first shift resulting in a reference DMRS may be used for pre-equalization, and another shift resulting in a beacon DMRS may be used to indicate SBTI.
[0253] If only one sequence is used, partially coherent / partially non-coherent detection can be performed. Different hypotheses of the gold sequence are generated (using different initializations of the M sequence) to detect SBTI at the receiver.
[0254] A frequency or circular shift of the individual M-sequences may be applied. c(n)=(x m0 1 (n)+x m1 2 (n))mod2 x 1 (n+7)=(x 1 (n+4)+x 1 (n))mod2 x 2 (n+7)=(x 2 (n+1)+x 2 (n))mod2 however,
[0255]
number
[0256]
number
[0257] The cyclic shift values m0, m1 are determined jointly or separately by the cell ID and / or the SBTI. Knowing the relationship between the cell ID, the SBTI, and m0, m1, as well as the knowledge of the cell ID from the PSS / SSS detection, hypotheses may be generated about the SBTI and used to detect which SBTI was indicated in the gold code.
[0258] It may be possible to generate two different gold sequences using two different cyclic shifts in the M-sequence. The first shift resulting in a reference DMRS is used for pre-equalization, and the other shift resulting in a beacon DMRS is used to indicate SBTI. If only one sequence is used, partial coherent / partial non-coherent detection may be performed. Different hypotheses are generated (using different frequency shifts of the respective M-sequences) to detect SBTI at the receiver.
[0259] The frequency or cyclic shift of the gold sequence can be as follows: r = c((n+m0) mod L) c(n)=(x 1 (n)+x 2 (n))mod2 x 1 (n+7)=(x 1 (n+4)+x 1 (n))mod2 x 2 (n+7)=(x 2 (n+1)+x 2 (n))mod2
[0260] The cyclic shift value m0 is determined by the cell ID and / or SBTI. Knowing the relationship between the cell ID, SBTI, and m0, as well as the knowledge of the cell ID from the PSS / SSS detection, a hypothesis may be generated for the SBTI and to detect which SBTI is indicated by the gold code. This is a special case of "cyclic shift of individual M-sequence", where both sequences have the same shift (m0=m1).
[0261] It may be possible to generate two different gold sequences using two different cyclic shifts in frequency: one used for pre-equalization and one used to indicate SBTI.
[0262] If only one sequence is used, partially coherent / partially non-coherent detection can be performed. Different hypotheses can be generated, for example using different frequency shifts of this gold sequence, to detect SBTI at the receiver.
[0263] FIG. 34 is an example 3400 of DMRS and SBTI labels using cyclic shift. FIG. 35 is an example 3500 of DMRS and SBTI labels using cyclic shift in a comb pattern. Circular shift techniques may be employed and several examples are provided herein. The first sequence (reference DMRS) is generated using the following procedure. Initial value c init Using the
[0264]
number
[0265] A demodulation reference signal for the first OFDM symbol of the NR-PBCH can be generated.
[0266]
number
[0267] is QPSK modulated,
[0268]
number
[0269]
number
[0270] is defined as follows:
[0271] In the above formula,
[0272]
number
[0273] Here, c(i) denotes a designated bandwidth in resource blocks for NR-PBCH transmission. The pseudo-random sequence c(i) may be defined in accordance with one or more embodiments described herein.
[0274] The second sequence (signature DMRS) is generated using the following procedure: A demodulation reference signal for the second OFDM symbol of the NR-PBCH is generated by a circular shift with respect to the sequence of the first symbol.
[0275]
number
[0276] In this example, k=2 or 3 depending on how many bits need to be indicated for the SS block timing index. These sequences can be mapped in a simple pattern of a comb pattern. Due to the cyclic nature of the cyclic shift, the 8th tone of both the reference DMRS and the beacon DMRS is identical. This property can be used to estimate the CFO at the receiver, and the cyclic shift can be used to estimate the SBTI.
[0277] CFO estimates:
[0278]
number
[0279] where fc is the carrier frequency and ΔnOFDM=2 (the distance between two OFDM symbols). This property is explained below.
[0280] For example, when m=0:17
[0281]
number
[0282] is shown in Table 1.
[0283] The eight rows (rows 0 to 8) shown in Table 1 represent different cyclic shifts used to indicate different SBTIs. Different rows are used to indicate the values of the multipliers used for the DMRS REs. These cyclic shifts are orthogonal to each other.
[0284] The circularly shifted DMRS may be applied in the time domain, where a phase shift in the frequency domain translates to a time index offset in the time domain, which can result in faster detection of SBTI (without multiple hypothesis testing).
[0285] Therefore, (DMRS pbch2 / DMRS pbch1 ) is a channel-free differential estimate (if the channel does not change significantly from symbol to symbol). The IFFTs of these ratios for each SBTI are time-shifted versions of each other. Thus, coherent detection of SBTI can be performed quickly and with lower complexity.
[0286] A scrambling sequence, which may be a function of the SBTI, may be applied to the reference DMRS to generate a beacon DMRS. Using the scrambling pattern known to the receiver, hypotheses may be generated to find the SBTI, thereby allowing the SBTI to be detected.
[0287] The transmit power of the REs for the PBCH DMRS may be higher than that of the REs for the PBCH data. To achieve this, a power boost with a known factor may be applied to the PBCH DMRS transmission. Knowledge of this factor at the receiver may be important.
[0288] Although the features and elements of the invention have been described in particular combinations in the preferred embodiments, each feature or element may be used alone without the other features and elements of the preferred embodiments, or in various combinations with or without other features and elements of the invention. It should be noted that while each of the beams shown in the figures is illustrated with respect to a particular orientation, this is for purposes of illustration and no limitation with respect to a particular beam type, width or orientation is intended.
[0289] Although the embodiments described herein take into account LTE, LTE-A, New Radio (NR) or 5G specific protocols, it will be appreciated that the embodiments described herein are not limited to this scenario and may also be applicable to other wireless systems.
[0290] Although features and elements are described above in certain combinations, one skilled in the art will appreciate that each feature or element may be used alone or in any combination with other features and elements. Also, the embodiments described herein may be implemented in a computer program, software, or firmware embodied in a computer-readable medium for execution by a computer or processor. Examples of computer-readable media include electronic signals (transmitted over wired or wireless connections) and computer-readable storage media. Examples of computer-readable storage media include, but are not limited to, ROM, RAM, registers, cache memory, semiconductor memory devices, magnetic media such as internal hard disks and removable disks, magneto-optical media, and optical media such as CD-ROM disks and digital versatile disks (DVDs). Software and associated processors may be used to implement a radio frequency transceiver for use in a WTRU, UE, terminal, base station, RNC, or any host computer.
Claims
1. 1. A method performed by a wireless transmit / receive unit (WTRU), comprising: receiving at least one symbol of a synchronization signal block (SSB) consisting of four symbols; a first symbol in said four symbol period comprises a Primary Synchronization Signal (PSS); a second symbol in the four symbol period comprises a first physical broadcast channel (PBCH) signal and a first demodulation reference signal (first DMRS); a third symbol in said four symbol period comprises a Secondary Synchronization Signal (SSS); a fourth symbol in the four symbol period comprises a second PBCH signal and a second DMRS; The first DMRS and the second DMRS are located in the same subcarrier. method.
2. The method of claim 1 , wherein the first DMRS is located on a subcarrier according to a cell identifier (ID).
3. 2. The method of claim 1, wherein the PSS and the SSS occupy the same frequency spectrum, and a PBCH occupies a larger frequency spectrum than the PSS and the SSS.
4. The method of claim 1 , further comprising determining an SSB time index based on the first DMRS.
5. 1. A wireless transmit / receive unit (WTRU), comprising: A receiver configured to receive at least one symbol of a synchronization signal block (SSB) consisting of four symbols, a first symbol in said four symbol period comprises a Primary Synchronization Signal (PSS); a second symbol in the four symbol period comprises a first physical broadcast channel (PBCH) signal and a first demodulation reference signal (first DMRS); a third symbol in said four symbol period comprises a Secondary Synchronization Signal (SSS); a fourth symbol in the four symbol period comprises a second PBCH signal and a second DMRS; The first DMRS and the second DMRS are located in the same subcarrier. W.T.R.U.
6. The WTRU of claim 5 , wherein the first DMRS is located on a subcarrier according to a cell identifier (ID).
7. The WTRU of claim 5 , wherein the PSS and the SSS occupy the same frequency spectrum, and a PBCH occupies a larger frequency spectrum than the PSS and the SSS.
8. The WTRU of claim 5 , further comprising: a circuit configured to determine an SSB time index based on the first DMRS.