WO2013163952A1 - Procédé et dispositif d'émission de canal de diffusion physique - Google Patents

Procédé et dispositif d'émission de canal de diffusion physique Download PDF

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Publication number
WO2013163952A1
WO2013163952A1 PCT/CN2013/075073 CN2013075073W WO2013163952A1 WO 2013163952 A1 WO2013163952 A1 WO 2013163952A1 CN 2013075073 W CN2013075073 W CN 2013075073W WO 2013163952 A1 WO2013163952 A1 WO 2013163952A1
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Prior art keywords
pbch
transmission
reference signal
drs
antenna port
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PCT/CN2013/075073
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English (en)
Chinese (zh)
Inventor
高雪娟
潘学明
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电信科学技术研究院
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Publication of WO2013163952A1 publication Critical patent/WO2013163952A1/fr

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Classifications

    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/04Wireless resource allocation
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L5/00Arrangements affording multiple use of the transmission path
    • H04L5/0001Arrangements for dividing the transmission path
    • H04L5/0003Two-dimensional division
    • H04L5/0005Time-frequency
    • H04L5/0007Time-frequency the frequencies being orthogonal, e.g. OFDM(A), DMT
    • H04L5/001Time-frequency the frequencies being orthogonal, e.g. OFDM(A), DMT the frequencies being arranged in component carriers
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L5/00Arrangements affording multiple use of the transmission path
    • H04L5/003Arrangements for allocating sub-channels of the transmission path
    • H04L5/0048Allocation of pilot signals, i.e. of signals known to the receiver
    • H04L5/005Allocation of pilot signals, i.e. of signals known to the receiver of common pilots, i.e. pilots destined for multiple users or terminals
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L5/00Arrangements affording multiple use of the transmission path
    • H04L5/003Arrangements for allocating sub-channels of the transmission path
    • H04L5/0053Allocation of signaling, i.e. of overhead other than pilot signals
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L5/00Arrangements affording multiple use of the transmission path
    • H04L5/0001Arrangements for dividing the transmission path
    • H04L5/0014Three-dimensional division
    • H04L5/0023Time-frequency-space
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L5/00Arrangements affording multiple use of the transmission path
    • H04L5/0091Signaling for the administration of the divided path
    • H04L5/0094Indication of how sub-channels of the path are allocated

Definitions

  • the present invention relates to the field of wireless communications, and in particular, to a method and device for transmitting a physical broadcast channel. Background technique
  • LTE-A Long Term Evolution-Advanced
  • LTE-A Long Term Evolution-Advanced
  • LTE-A Long Term Evolution-Advanced
  • the peak rate of the system is significantly higher than that of the Long Term Evolution (LTE) system, which requires downlink lGbps and uplink 500 Mbps. Therefore, the LTE-A system needs to expand the available bandwidth of the terminal, that is, to aggregate multiple consecutive or discontinuous carriers under the same base station (eNB), and simultaneously serve the user equipment (User Equipment, UE) to provide the required Rate, as shown in Figure 1.
  • eNB base station
  • UE User Equipment
  • These aggregated carriers are also called component carriers (CC).
  • CC component carriers
  • Each cell can be a member carrier, and cells (member carriers) under different eNBs cannot be aggregated.
  • each carrier does not exceed 20 MHz at the maximum.
  • the downlink reference signals in the LTE-A system mainly include Cell-specific Reference Signals (CRS) and UE-specific Reference Signals (UTS), or also known as Downlink or Dedicated Reference Signals, DRS. ), Positioning Reference Signal (PRS), Channel State Information Reference Signal (CSI-RS).
  • CRS Cell-specific Reference Signals
  • UTS UE-specific Reference Signals
  • DRS Downlink or Dedicated Reference Signals
  • PRS Positioning Reference Signal
  • CSI-RS Channel State Information Reference Signal
  • PBCH Physical Broadcast Channel
  • Physical Downlink Control Channel Physical Downlink Control Channel
  • PHICH Physical HARQ Indication Channel
  • PCFICH Physical Control Format Indicator Channel
  • PCFICH Physical Control Format Indicator Channel
  • the data demodulation of the physical downlink shared channel (PDSCH), etc. is shown in a physical resource block (PRB) as shown in Fig. 2a and Fig. 2b.
  • Fig. 2a is a normal cycle.
  • Figure 2b shows the mapping method under the
  • is the transmission layer of PDSCH (Layer)
  • the number of DRS mappings on antenna port 7/8/11/13 is the same, and the DRS mapping positions on antenna ports 9/10/12/14 are the same, as shown in Figure 3a and Figure 3b.
  • Figure 3a shows the mapping mode under the regular CP
  • Figure 3b shows the mapping mode under the extended CP.
  • DRS only uses the transmission mode The 7-9 PDSCH is sent on the PRB.
  • Release 10 specifies that when there is a PRB with overlapping resources in the same subframe in the DRS and the PBCH or the synchronization signal (for example, 6 PRBs in the middle of the cell band), the DRS will not be transmitted in these PRBs, so these The PDSCH transmission within the PRB cannot be demodulated based on DRS, but the PDSCH can be demodulated based on CRS in these PRBs.
  • the PBCH in the LTE-A system is updated in a period of 40 ms, and the first four orthogonal frequency divisions of the second time slot (ie, time slot 1) of the subframe 0 of each radio frame in consecutive four radio frames Orthogonal Frequency Division Multiplexing (OFDM) symbol transmission, fixed 72 core carriers occupying the center of the cell frequency band in the frequency domain, as shown in FIG. 4a and FIG. 4b, wherein FIG. 4a is a mapping manner under a conventional CP, such as Figure 4b shows the mapping method under the extended CP.
  • the PBCH in each radio frame can be independently decoded. PBCH supports two transmission modes: single antenna port and multi-antenna port transmit diversity transmission.
  • SFBC Space-Frequency Block Coding
  • PBCH Physical Broadcast Channel
  • FSTD Frequency Switched Transmit Diversity
  • the PBCH always performs resource mapping based on the CRS transmission hypothesis of the 4-antenna port, which can use the RE resource for the RE other than the RE corresponding to the CRS of the 4-antenna port on the OFDM symbol.
  • QPSK Quadrature Phase-Shift Keying
  • the PBCH is used to carry a master information block (MIB), and carries some main cell physical layer information for transmitting parameters that enable the UE to initially access the system, including: downlink system bandwidth, PHICH configuration, and System Frame Number (SFN).
  • MIB master information block
  • SFN System Frame Number
  • the MIB only carries the most important 8-bit SFN information, and the other 2 bits of SFN information can be obtained implicitly by PBCH decoding, that is, the PBCH obtained according to the actual decoding is obtained in the radio frame position in the 40 ms time interval, and the first radio frame corresponds to 00, the second radio frame corresponds to 01, the third radio frame corresponds to 10, and the fourth radio frame corresponds to 11.
  • the PBCH is demodulated based on the CRS, and the number of CRS antenna ports used can be represented by using different scrambling sequences for the Cyclic Redundancy Check (CRC) information of the PBCH, as shown in Table 1.
  • CRC Cyclic Redundancy Check
  • the UE can obtain the number of antenna ports by blindly detecting the scrambling sequence of the CRC of the PBCH.
  • Channels such as PDCCH, PHICH, and PCFICH use the same number of CRS antenna ports as the PBCH.
  • Release 11 (Rel-11) of the LTE-A system determines to introduce a new carrier type (Additional Carrier Type or New Carrier Type, NCT) to enhance system frequency usage and better support. Construct a network and reduce power consumption.
  • a new carrier type Additional Carrier Type or New Carrier Type, NCT
  • the embodiment of the invention provides a method and a device for transmitting a physical broadcast channel, which are used to provide a PBCH transmission scheme that can be applied to an NCT carrier.
  • a method for transmitting a physical broadcast channel PBCH comprising:
  • the base station in the PBCH transmission subframe based on the downlink reference signal for tracking included in the PBCH transmission resource, corresponding to the resource unit RE on the antenna port where the downlink reference signal for tracking is located, and/or used for The demodulated downlink reference signal performs resource mapping on the PBCH corresponding to the RE on the antenna port on which the downlink reference signal for demodulation is transmitted; wherein the downlink reference signal used for tracking includes at least Tracking the cell-specific reference signal CRS, the downlink reference signal for demodulation includes at least a downlink user-specific reference signal DRS; and the base station sends the PBCH according to the resource mapping result.
  • a method for transmitting a physical broadcast channel PBCH comprising:
  • the terminal is based on the downlink reference signal for tracking included in the PBCH transmission resource, the corresponding resource unit RE on the antenna port where the downlink reference signal transmission for tracking is located, and/or the downlink reference signal used for demodulation
  • the corresponding RE on the antenna port where the downlink reference signal for demodulation is transmitted receives the PBCH;
  • the downlink reference signal used for tracking includes at least a cell-specific reference signal CRS for tracking, and the downlink reference signal for demodulation includes at least a downlink user-specific reference signal DRS.
  • a base station comprising:
  • a resource mapping unit configured to: in the PBCH transmission subframe, a resource element RE corresponding to the downlink reference signal for tracking included in the PBCH transmission resource, where the downlink reference signal for tracking is located, And/or a downlink reference signal for demodulation, performing resource mapping on the PBCH corresponding to an RE on an antenna port where the downlink reference signal used for demodulation is located; wherein the downlink reference for tracking The signal includes at least a cell-specific reference signal CRS for tracking, and the downlink reference signal for demodulation includes at least a downlink user-specific reference signal DRS;
  • a sending unit configured to send the PBCH according to the resource mapping result.
  • a terminal comprising:
  • a receiving unit configured to: according to the downlink reference signal for tracking included in the PBCH transmission resource, the corresponding resource unit RE on the antenna port where the downlink reference signal for tracking is located, and/or for demodulation
  • the downlink reference signal receives the PBCH corresponding to the RE on the antenna port where the downlink reference signal for demodulation is transmitted;
  • the downlink reference signal used for tracking includes at least a cell-specific reference signal CRS for tracking, and the downlink reference signal for demodulation includes at least a downlink user-specific reference signal DRS;
  • An obtaining unit configured to acquire carrier information according to the received PBCH.
  • the base station in the PBCH transmission subframe corresponds to the RE on the antenna port where the downlink reference signal for tracking is located, and/or
  • the demodulated downlink reference signal performs resource mapping on the PBCH according to the corresponding RE on the antenna port where the downlink reference signal for demodulation is transmitted, and sends the PBCH according to the resource mapping result.
  • the scheme when performing resource mapping on the PBCH, the scheme performs more reasonable resource mapping on the PBCH according to the downlink reference signal used for tracking on the new carrier type and/or the corresponding RE on the downlink reference signal antenna port used for demodulation. Therefore, the scheme can be applied to PBCH transmission on an NCT carrier to improve resource utilization and PBCH transmission performance.
  • FIG. 1 is a schematic diagram of carrier aggregation in the prior art
  • 2a is a schematic diagram of resource mapping of a CRS in a conventional CP under a conventional CP;
  • 2b is a schematic diagram of resource mapping of a CRS in an extended CP in the prior art
  • FIG. 3a is a schematic diagram of resource mapping of a DRS in a conventional CP under a conventional CP;
  • FIG. 3b is a schematic diagram of resource mapping of a DRS in an extended CP in the prior art
  • 4a is a schematic diagram of resource mapping of a PBCH in a conventional CP under a conventional CP;
  • 4b is a schematic diagram of resource mapping of a PBCH in an extended CP in the prior art
  • FIG. 5 is a schematic flowchart of a method according to an embodiment of the present disclosure.
  • FIG. 6 is a schematic flowchart of another method according to an embodiment of the present disclosure.
  • FIG. 7a is a resource mapping manner of PBCH transmit diversity of a 2-antenna port according to an embodiment of the present invention
  • FIG. 7b is another resource mapping manner of PBCH transmit diversity of a 2-antenna port according to an embodiment of the present invention
  • a further resource mapping manner of the PBCH transmit diversity of the 2 antenna port
  • FIG. 7 is a further resource mapping manner of the PBCH transmit diversity of the 2 antenna port according to the embodiment of the present invention
  • FIG. 8a is a PBCH transmission of the 4 antenna port according to the embodiment of the present invention
  • FIG. 8b is another resource mapping manner of PBCH transmit diversity of 4-antenna port in the embodiment of the present invention
  • FIG. 8c is another resource mapping of PBCH transmit diversity of 4-antenna port in the embodiment of the present invention
  • FIG. 8 is a schematic diagram of another resource mapping manner of a PBCH transmit diversity of a 4-antenna port according to an embodiment of the present invention
  • FIG. 9 is a schematic structural diagram of a device according to an embodiment of the present invention.
  • FIG. 10 is a schematic structural diagram of another device according to an embodiment of the present invention.
  • the working scheme for the NCT carrier is under discussion.
  • the current conclusions include: Support for CRS transmission on a single antenna port (antenna port 0) with a period of 5ms, CRS is not used for downlink data demodulation, only for tracking and measurement;
  • the NCT carrier in Rel-11 cannot work independently and needs to work in conjunction with a legacy carrier. According to whether the receiver has a certain deviation from the legacy carrier in the time domain and the frequency domain, it is divided into a synchronous carrier and an asynchronous carrier. A separate time-frequency synchronization process is required. Therefore, the synchronization signal needs to be transmitted on the NCT carrier.
  • the time-frequency domain resources of the synchronization signal transmission do not overlap with the resources of the downlink reference signals such as CRS and DRS, so as to improve the downlink transmission efficiency of the NCT carrier. Furthermore, in Rel-12 and subsequent releases, the NCT carrier may support independent operation.
  • the currently defined CRS transmission will not be used for demodulation of downlink data transmission, and downlink data transmission such as PBCH, PDCCH, PHCIH, PCFICH, PDSCH, etc. may need to be demodulated based on DRS, and when PBCH and When there is overlap in the DRS, the downlink data cannot be transmitted in the PRB where the PBCH is located, thereby reducing the downlink transmission efficiency of the NCT carrier.
  • there is only one antenna port CRS transmission on the NCT carrier and the PBCH does not always assume that the 4 antenna port CRS performs resource mapping.
  • the embodiment of the present invention provides a PBCH transmission method for a base station side, which includes the following steps:
  • Step 50 The base station in the PBCH transmission subframe, based on the downlink reference signal for tracking included in the PBCH transmission resource, the corresponding resource unit (RE) on the antenna port where the downlink reference signal for tracking is located, and And the downlink reference signal used for demodulation performs resource mapping on the PBCH on the corresponding RE on the antenna port where the downlink reference signal for demodulation is located; wherein the downlink reference signal used for tracking includes at least tracking a cell-specific reference (CRS), the downlink reference signal used for demodulation includes at least a downlink user-specific reference signal (DRS);
  • CRS cell-specific reference
  • DRS downlink user-specific reference signal
  • Step 51 The base station sends a PBCH according to the resource mapping result, that is, the base station sends the resource mapped in step 50.
  • the base station further sends a downlink reference signal for demodulating the PBCH, and the downlink reference signal used for demodulating the PBCH is a DRS or a CRS for demodulation.
  • the base station may perform one of the following seven methods when performing resource mapping in step 50:
  • the PBCH is mapped to the PBCH transmission resource except that the downlink reference signal used for demodulation is on a RE other than the corresponding RE on the antenna port where the downlink reference signal for demodulation is transmitted;
  • the PBCH is mapped to the PBCH transmission resource except for the corresponding RE of the DRS on the K antenna ports where the DRS transmission is located, and the REs of the CRS corresponding to the RE corresponding to the antenna port 0.
  • the PBCH carries 2304 bits of coded bits under the regular cyclic prefix (CP) and the extended CP;
  • the fifth method is used, that is, when the base station maps the PBCH to other REs of the PBCH transmission resource except the corresponding RE of the CRS on the antenna port 0, the coded bit carried by the PBCH under the regular CP is 2208 bits.
  • the coded bit carried under the extended CP is 2112 bits;
  • the base station maps the PBCH to the PBCH transmission resource, except that the DRS is on the RE other than the RE corresponding to the K antenna ports where the DRS transmission is located, and the PBCH is in the regular CP.
  • the coded bits carried in the extended CP are 48*[48-B] bits, where B is the number of REs corresponding to the DRSs in the PBCH transmission resources on the K antenna ports where the DRS transmission is located;
  • the base station maps the PBCH to the PBCH transmission resource, and the RE corresponding to the D antenna on the K antenna ports where the DRS transmission is located, and the RE corresponding to the CRS on the antenna port 0.
  • the coded bits carried by the PBCH under the normal CP are 48*[46-B] bits
  • the coded bits carried under the extended CP are 48*[44-B] bits, where B is a PBCH transmission.
  • the resource mapping is performed by using any one of the above seven methods, in particular, the foregoing first, third, or sixth method is adopted, that is, the PBCH is mapped to the PBCH transmission at the base station.
  • All REs in the resource, or PBCH transmission resources, except for the downlink reference signal used for demodulation on the RE other than the corresponding RE on the antenna port where the downlink reference signal for demodulation is located, or PBCH transmission When the DRS is on the RE other than the corresponding RE on the K antenna ports where the DRS transmission is located, at least one of the following two conditions must be met:
  • Condition 1 The base station transmits the downlink reference signal for tracking.
  • the subframe is different from the subframe in which the PBCH is transmitted (that is, the PBCH transmission subframe); or,
  • the physical resource block (PRB) that the base station transmits the downlink reference signal for tracking is different from the PRB that transmits the PBCH; or
  • the subframe in which the base station transmits the downlink reference signal for tracking is different from the subframe in which the PBCH is transmitted, and the PRB in which the base station transmits the downlink reference signal for tracking is different from the PRB in which the PBCH is transmitted.
  • Condition 2 the subframe in which the base station sends the CRS for tracking is different from the subframe in which the PBCH is transmitted; or the PRB that the base station sends the CRS for tracking is different from the PRB that sends the PBCH; or The subframe in which the base station transmits the CRS for tracking is different from the subframe in which the PBCH is transmitted, and the PRB in which the base station transmits the CRS for tracking is different from the PRB in which the PBCH is transmitted.
  • the resource mapping is performed by using any one of the above seven methods, especially when the first, second, or fifth method is used, that is, the PBCH is mapped to the PBCH at the base station.
  • All the REs in the transmission resource, or the PBCH transmission resources except the downlink reference signal used for tracking on the RE other than the corresponding RE on the antenna port where the downlink reference signal transmission is used for tracking, or the PBCH transmission resource In addition to the CRS on the RE other than the corresponding RE on the antenna port 0, it is required to: Orthogonal Frequency Division Multiplexing (OFDM) symbols and DRS in which the PBCH transmission is located in the PBCH transmission subframe and/or time slot. The OFDM symbol in which the transmission is located is different.
  • OFDM Orthogonal Frequency Division Multiplexing
  • the base station includes, in the PBCH transmission resource, a downlink reference signal for tracking and/or a downlink reference signal for demodulation on the OFDM symbol of the corresponding RE on the antenna port where the transmission is performed, and the vacant part of the available RE does not perform the PBCH resource.
  • the PBCH may be mapped on all available REs on the OFDM, that is, the available REs are not vacated or the available REs are determined to be vacated. The number is 0.
  • the vacant part can use the method that the RE does not perform PBCH resource mapping, and is more suitable for using the second, third, fourth, fifth, sixth or seventh method to perform PBCH.
  • the base station maps the PBCH to the PBCH transmission resource, except for the downlink reference signal used for tracking, the corresponding RE on the antenna port where the downlink reference signal for tracking is located, and/or the downlink for demodulation.
  • the reference signal is on another RE other than the corresponding RE on the antenna port where the downlink reference signal for demodulation is transmitted, or the base station maps the PBCH to the PBCH transmission resource except the corresponding RE of the CRS on the antenna port 0.
  • the DRS is on a RE other than the corresponding RE on the K antenna ports where the DRS transmission is located.
  • the method in which the vacant part can use the RE to not perform PBCH resource mapping can use the method as shown in FIG. 7a to FIG. 7d.
  • the vacant part can use the RE without the PBCH resource mapping method, and the method as shown in FIG. 8a to FIG. 8d can be used.
  • 7a to 7d Muted RE (RE without mapped data) is vacated RE, Grouped RE (grouped RE) is 2 pairs of REs for PBCH transmission;
  • Figure 8a to Figure 8d Muted RE is an vacated RE
  • Grouped RE is a pair of four REs for PBCH transmission.
  • a slash and labeled CRS is the RE used for CRS transmission.
  • the PBCH when the PBCH is mapped to the other REs of the PBCH transmission resource except the corresponding RE of the CRS on the antenna port 0, the PBCH carries the coded bit in the normal CP. *[46-A] bits, the coded bits carried under the extended CP are 48*[44-A] bits, where A is the number of vacated REs; or
  • the base station maps the PBCH to the PBCH transmission resource except for the RE corresponding to the RE on the K antenna ports where the DRS transmission is located, and the PBCH is under the regular CP and the extended CP.
  • the coded bits of the bearer are 48*[48-BA] bits, where A is the number of vacated REs, and B is the number of REs corresponding to the DRSs in the PBCH transmission resources on the K antenna ports where the DRS transmission is located; ,
  • the base station maps the PBCH to the PBCH transmission resource, except for the RE corresponding to the D antenna on the K antenna ports where the DRS transmission is located, and the RE corresponding to the RE corresponding to the CRS on the antenna port 0.
  • the coded bits carried by the PBCH under the normal CP are 48*[46-BA] bits
  • the coded bits carried under the extended CP are 48*[44-BA] bits, where A is the number of vacated REs.
  • B is the number of REs corresponding to the DRSs in the PBCH transmission resources on the K antenna ports where the DRS transmission is located.
  • the base station When the downlink reference signal used for demodulating the PBCH is DRS, the base station does not scramble the cyclic redundancy check (CRC) of the PBCH when transmitting the PBCH in step 51, and is used to demodulate the antenna port where the DRS transmission of the PBCH is located.
  • CRC cyclic redundancy check
  • the number is the number of pre-agreed antenna ports; or,
  • the base station determines, according to the correspondence between the number of antenna ports in which the DRS transmission for demodulating the PBCH is located and the scrambling sequence, a scrambling sequence corresponding to the number of antenna ports currently used to transmit the DRS for demodulating the PBCH, and uses The scrambling sequence scrambles the CRC of the PBCH, and the scrambling sequence indicates the number of antenna ports on which the DRS transmission for demodulating the PBCH is located.
  • the downlink reference signal used for tracking may also include: one or more combinations of PRS, CSI-RS.
  • the base station may perform any of the following two methods when performing resource mapping on the PBCH in step 50:
  • the base station maps the PBCH to the corresponding REs of the PBCH transmission resources except the DRS on the antenna port where the DRS transmission is located, and the CRS is at the antenna port 0, the antenna port 1, and the antenna port.
  • the coded bits carried by the PBCH under the normal CP are 48*[40-B] bits
  • the coded bits carried under the extended CP are 48*[36-B Bit, where B is the number of REs corresponding to the DRS in the PBCH transmission resource on the antenna port where the DRS transmission is located.
  • the base station sends a CRS for demodulating the PBCH, and the specific method can be as follows:
  • a CRS for demodulating a PBCH in a PBCH transmission subframe Transmitting a CRS for demodulating a PBCH in a PBCH transmission subframe, or transmitting a CRS for demodulating a PBCH on a PRB corresponding to a PBCH transmission RE in a PBCH transmission subframe, or a PBCH transmission in a PBCH transmission subframe Transmitting a CRS for demodulating a PBCH in a slot, or transmitting a CRS for demodulating a PBCH in a PRB corresponding to a PBCH transmission RE in a slot of a PBCH in a PBCH transmission subframe, or in a PBCH transmission subframe
  • a CRS for demodulating a PBCH is transmitted on an OFDM symbol for transmitting a PBCH, or a CRS for demodulating a PBCH is transmitted on an OFDM symbol for transmitting a PBCH in a PRB corresponding to
  • the base station initializes the DRS according to the following formula 1 or formula 2:
  • sem is a parameter related to multi-user multiple input and output MU-MIMO
  • the PBCH may be pre-agreed as a fixed value, such as 0 or 1
  • 2" is the number of the PBCH transmission subframe, that is, each subframe is initialized once
  • the PBCH can be pre-agreed to a fixed value, and the value of X is an integer
  • N 1 is a cell identifier.
  • the PBCH transmission subframe is a preset subframe for PBCH transmission, for example, subframe 0 in each radio frame.
  • the PBCH transmission resource is preset, or on the OFDM symbol for transmitting the PBCH in the PRB where the PBCH transmission is located in the PBCH transmission subframe (for example, the first 4 slots of the second slot of the subframe 0 in each radio frame) A set of REs of OFDM symbols).
  • the PRB in which the PBCH transmission is located in the PBCH transmission subframe may be the PRB where the 72 subcarriers in the center of the frequency band are located, that is, the six PRBs in the center of the frequency band.
  • the embodiment of the present invention provides a PBCH transmission method for a terminal side, and the method includes the following steps:
  • Step 60 The terminal is based on the downlink reference signal for tracking included in the PBCH transmission resource, the corresponding RE on the antenna port where the downlink reference signal for tracking is located, and/or the downlink reference signal used for demodulation.
  • the corresponding RE on the antenna port on which the downlink reference signal is transmitted for demodulation receives the PBCH.
  • the downlink reference signal used for tracking includes at least a CRS for tracking, and the downlink reference signal used for demodulation includes at least a DRS. .
  • step 60 the following steps may be included:
  • Step 61 The terminal acquires carrier information according to the received PBCH.
  • the terminal further receives a downlink reference signal for demodulating the PBCH, and the downlink reference signal used for demodulating the PBCH is a DRS or a CRS for demodulation.
  • the terminal receives in step 60.
  • the downlink reference signal used for tracking Receiving a PBCH on another RE other than the corresponding RE on the antenna port where the transmission is located;
  • the downlink reference signal used for demodulation receives the PBCH on the RE other than the corresponding RE on the antenna port where the downlink reference signal for demodulation is transmitted;
  • the downlink reference signal for demodulation is corresponding to the RE on the antenna port where the downlink reference signal for demodulation is located, and the downlink reference signal for tracking is used for tracking Receiving a PBCH on a RE other than the corresponding RE on the antenna port where the downlink reference signal is transmitted;
  • the PBCH is received on the RE other than the corresponding RE on the antenna port 0 of the CRS;
  • the PBCH is received on the other REs other than the corresponding REs on the K antenna ports where the DRS transmission is located;
  • the PBCH is received in the PBCH transmission resource except that the DRS corresponds to the RE on the K antenna ports where the DRS transmission is located, and the REs other than the RE corresponding to the CRS on the antenna port 0.
  • the PBCH carries 2304 bits of coded bits under the regular CP and the extended CP;
  • the fifth method is used, that is, the terminal corresponds to the CRS on the antenna port 0 in the PBCH transmission resource.
  • the PBCH When the PBCH is received, the PBCH carries a coded bit of 2208 bits under the regular CP and 2112 bits of the coded bit carried in the extended CP.
  • the sixth method is used, that is, the terminal receives the PBCH in the PBCH transmission resource except for the RE corresponding to the RE on the K antenna ports where the DRS transmission is located, and the PBCH is in the regular CP and the extended CP.
  • the coded bits of the lower bearer are 48*[48-B] bits, where B is the number of REs corresponding to the DRSs in the PBCH transmission resources on the K antenna ports where the DRS transmission is located;
  • the seventh method is used, that is, the terminal is in the PBCH transmission resource except for the RE corresponding to the DRS on the K antenna ports where the DRS transmission is located, and the REs other than the RE corresponding to the CRS on the antenna port 0.
  • the coded bits carried by the PBCH under the normal CP are 48*[46-B] bits
  • the coded bits carried under the extended CP are 48*[44-B] bits, where B is the DRS in the PBCH transmission resource.
  • the first, third, or sixth method described above is used, that is, all of the terminals in the PBCH transmission resource.
  • the PBCH transmission resource except for the downlink reference signal used for demodulation on the RE other than the corresponding RE on the antenna port where the downlink reference signal transmission for demodulation is located, or the PRSCH transmission resource except DRS
  • the following is required: The subframe in which the terminal receives the downlink reference signal for tracking is different from the subframe in which the PBCH is received, and/ Or, the PRB of the downlink reference signal received by the terminal for tracking is different from the PRB used by the receiving PBCH; or The subframe in which the terminal receives the CRS for tracking is different from the subframe in which the PBCH is received, and/or the PRB that the terminal receives the CRS for
  • the terminal is all in the PBCH transmission resource.
  • the RE, or the PBCH transmission resource, except for the downlink reference signal used for tracking, on the RE other than the corresponding RE on the antenna port where the downlink reference signal transmission is used for tracking, or the PBCH transmission resource except the CRS in the antenna When receiving a PBCH on a RE other than the corresponding RE on port 0, it is required to satisfy: In the PBCH transmission subframe and/or time slot, the OFDM symbol in which the PBCH transmission is located is different from the OFDM symbol in which the DRS transmission is located.
  • the terminal includes a downlink reference signal for tracking in the PBCH transmission resource and/or a downlink reference signal for demodulation on the OFDM symbol of the corresponding RE on the antenna port where the transmission is located, and the vacant part of the available RE does not receive the PBCH,
  • the PBCH may be mapped on all available REs on the OFDM, that is, the available REs are not vacated or the available REs are determined to be vacated. The number is 0.
  • the method that the vacant part can use the RE to not perform PBCH resource mapping is more suitable when the second, third, fourth, fifth, sixth or seventh method is used to receive the PBCH. That is, the terminal in the PBCH transmission resource except for the downlink reference signal used for tracking, the corresponding RE on the antenna port where the downlink reference signal transmission for tracking is located, and/or the downlink reference signal for demodulation is used for the solution.
  • the terminal in the PBCH transmission resource except for the downlink reference signal used for tracking the corresponding RE on the antenna port where the downlink reference signal transmission for tracking is located, and/or the downlink reference signal for demodulation is used for the solution.
  • the PBCH is received on the RE other than the corresponding RE on the antenna port where the downlink reference signal is transmitted, or the terminal in the PBCH transmission resource except the CRS corresponding to the RE on the antenna port 0, and/or the DRS is in the PBCH transmission resource.
  • the PBCH is received on the RE other than the corresponding RE on the K antenna
  • the terminal receives the PBCH in the PBCH transmission resource except the RE corresponding to the RE on the antenna port 0, the PBCH carries the coded bit in the normal CP.
  • the coded bits carried under the extended CP are 48*[44-A] bits, where A is the number of vacated REs; or
  • the terminal receives the PBCH in the PBCH transmission resource except for the RE corresponding to the RE on the K antenna ports where the DRS transmission is located, and the PBCH is under the regular CP and the extended CP.
  • the coded bits of the bearer are 48*[48-BA] bits, where A is the number of vacated REs, and B is the number of REs corresponding to the DRSs in the PBCH transmission resources on the K antenna ports where the DRS transmission is located; ,
  • the coded bits carried by the PBCH under the normal CP are 48*[46-BA] bits, in the extended CP.
  • the coded bits of the lower bearer are 48*[44-BA] bits, where A is the number of vacated REs, and B is the number of REs corresponding to the DRSs in the PBCH transmission resources on the K antenna ports where the DRS transmission is located.
  • the value of K above is 1 or 2 or 4.
  • the antenna ports where the DRS transmission is located are antenna port 5 or antenna port 7 or antenna port 8; when ⁇ is greater than 1, the DRS transmission is located.
  • the antenna ports are from antenna port 7 to antenna port ⁇ +6.
  • the downlink reference signal used for demodulating the PBCH is DRS
  • the terminal receives the PBCH in step 60 the CRC of the PBCH is not descrambled, and the number of antenna ports used for demodulating the PRSCH DRS transmission is a predetermined number of antenna ports.
  • the terminal determines, according to the corresponding relationship between the number of antenna ports in which the DRS transmission for demodulating the PBCH is located and the scrambling sequence, a scrambling sequence corresponding to the number of antenna ports currently used to transmit the DRS for demodulating the PBCH, and uses The scrambling sequence descrambles the CRC of the PBCH, and the scrambling sequence indicates the number of antenna ports on which the DRS transmission for demodulating the PBCH is located.
  • the downlink reference signal used for tracking may also include: one or more combinations of PRS, CSI-RS.
  • the terminal receives the PBCH in step 60, and specifically may use any one of the following two methods:
  • the PBCH is received on the REs other than the corresponding REs on the antenna port 0, the antenna port 1, the antenna port 2, and the antenna port 3;
  • the CRS receives PBCH 0 on REs other than the corresponding REs on antenna port 0, antenna port 1, antenna port 2, and antenna port 3.
  • the terminal is in the PBCH transmission resource except the corresponding RE of the DRS on the antenna port where the DRS transmission is located, and the CRS is at the antenna port 0, the antenna port 1, the antenna port 2, and the antenna port 3.
  • the coded bits carried by the PBCH under the normal CP are 48*[40-B] bits
  • the coded bits carried under the extended CP are 48*[36-B] bits.
  • B is the number of REs corresponding to the DRS in the PBCH transmission resource on the antenna port where the DRS transmission is located.
  • the terminal receives the CRS for demodulating the PBCH, and the specific method can be as follows:
  • Receiving a CRS for demodulating a PBCH in a PBCH transmission subframe, or receiving a CRS for demodulating a PBCH on a PRB corresponding to a PBCH transmission RE in a PBCH transmission subframe, or a PBCH transmission in a PBCH transmission subframe Receiving a CRS for demodulating a PBCH in a time slot, or receiving a CRS for demodulating a PBCH in a PRB corresponding to a PBCH transmission RE in a slot of a PBCH in a PBCH transmission subframe, or in a PBCH transmission subframe Receiving a CRS for demodulating a PBCH on an OFDM symbol for transmitting a PBCH, or transmitting in a PBCH
  • the CRS for demodulating the PBCH is received on the OFDM symbol for transmitting the PBCH in the PRB corresponding to the PBCH transmission RE in the input subframe.
  • Embodiment 1 is a diagrammatic representation of Embodiment 1:
  • Step 1 The base station in the PBCH transmission subframe, based on the downlink reference signal for tracking included in the PBCH transmission resource, corresponding to the RE on the antenna port where the downlink reference signal for tracking is located, and/or used for Demodulating the downlink reference signal to perform resource mapping on the PBCH according to the corresponding RE on the antenna port where the downlink reference signal for demodulation is located; and transmitting the PBCH according to the resource mapping result;
  • the base station sends a downlink reference signal for demodulating the PBCH, and the downlink reference signal used for demodulating the PBCH is a DRS;
  • Step 2 The terminal uses the downlink reference signal for tracking included in the PBCH transmission resource in the downlink for tracking The corresponding RE on the antenna port where the reference signal is transmitted, and/or the downlink reference signal for demodulation receives the PBCH corresponding to the RE on the antenna port where the downlink reference signal for demodulation is transmitted;
  • the terminal receives a downlink reference signal for demodulating the PBCH, and demodulates the PBCH according to the downlink reference signal.
  • the downlink reference signal used to demodulate the PBCH is DRS.
  • the downlink reference signal used for tracking includes at least a CRS for tracking, and the downlink reference signal used for demodulation includes at least a DRS.
  • Embodiment 2 is a diagrammatic representation of Embodiment 1:
  • Step 1 The base station in the PBCH transmission subframe, based on the downlink reference signal for tracking included in the PBCH transmission resource, corresponding to the RE on the antenna port where the downlink reference signal for tracking is located, and/or used for Demodulating the downlink reference signal to perform resource mapping on the PBCH according to the corresponding RE on the antenna port where the downlink reference signal for demodulation is located; and transmitting the PBCH according to the resource mapping result;
  • the base station sends a downlink reference signal for demodulating the PBCH, and the downlink reference signal used for demodulating the PBCH is a CRS;
  • Step 2 The terminal uses the downlink reference signal for tracking included in the PBCH transmission resource in the downlink for tracking The corresponding RE on the antenna port where the reference signal is transmitted, and/or the downlink reference signal for demodulation receives the PBCH corresponding to the RE on the antenna port where the downlink reference signal for demodulation is transmitted;
  • the terminal receives a downlink reference signal for demodulating the PBCH, and demodulates the PBCH according to the downlink reference signal.
  • the downlink reference signal used to demodulate the PBCH is CRS.
  • the downlink reference signal used for tracking includes at least a CRS for tracking, and the downlink reference signal used for demodulation includes at least a DRS.
  • an embodiment of the present invention further provides a base station, where the base station includes:
  • the resource mapping unit 90 is configured to: in the PBCH transmission subframe, the corresponding resource unit RE on the antenna port where the downlink reference signal used for tracking is located, based on the downlink reference signal used for tracking included in the PBCH transmission resource And/or a downlink reference signal for demodulation, performing resource mapping on the PBCH corresponding to an RE on an antenna port where the downlink reference signal used for demodulation is located; wherein, the downlink for tracking Reference signal Include a cell-specific reference signal CRS for tracking, where the downlink reference signal for demodulation includes at least a downlink user-specific reference signal DRS;
  • the sending unit 91 is configured to send the PBCH according to the resource mapping result.
  • the sending unit 91 is further configured to:
  • a downlink reference signal for demodulating the PBCH is transmitted, and the downlink reference signal used for demodulating the PBCH is a DRS or a CRS for demodulation.
  • the resource mapping unit 90 is configured to:
  • the resource mapping unit 90 maps the PBCH to all the REs in the PBCH transmission resource
  • the coded bit carried by the PBCH under the regular cyclic prefix CP and the extended CP is 2304 bits;
  • the coded bit carried by the PBCH under the regular CP is 2208 bits, which is extended.
  • the coded bit carried by the CP is 2112 bits; or
  • the resource mapping unit 90 maps the PBCH to the other REs of the PBCH transmission resource except the corresponding REs on the K antenna ports where the DRS transmission is located, the PBCH is under the regular CP and the extended CP.
  • the coded bits of the bearer are 48*[48-B] bits, where B is the number of REs corresponding to the DRSs in the PBCH transmission resources on the K antenna ports where the DRS transmission is located; or
  • the resource mapping unit 90 Mapping the PBCH to the PBCH transmission resource in the PBCH transmission resource by the resource mapping unit 90, except for the RE corresponding to the K antennas on the K antenna ports where the DRS transmission is located, and the RE corresponding to the CRS on the antenna port 0.
  • the coded bits carried by the PBCH under the normal CP are 48*[46-B] bits
  • the coded bits carried under the extended CP are 48*[44-B] bits, where B is the DRS in the PBCH transmission resource.
  • the resource mapping unit 90 maps the PBCH to all REs in the PBCH transmission resource, or the PBCH transmission resource
  • the downlink reference signal used for demodulation is on the RE other than the corresponding RE on the antenna port where the downlink reference signal transmission for demodulation is located, or in the PBCH transmission resource except the DRS in the DRS transmission
  • the K antenna ports are on the RE other than the corresponding RE:
  • the subframe in which the transmitting unit 91 transmits the downlink reference signal for tracking is different from the subframe in which the PBCH is transmitted, and/or the transmitting unit 91 transmits the physical resource block PRB and the transmission of the downlink reference signal for tracking.
  • the PRB of the PBCH is different; or,
  • the subframe in which the transmitting unit 91 transmits the CRS for tracking is different from the subframe in which the PBCH is transmitted, and/or the PRB in which the transmitting unit 91 transmits the CRS for tracking is different from the PRB in which the PBCH is transmitted.
  • the resource mapping unit 90 maps the PBCH to all REs in the PBCH transmission resource, or the PBCH transmission resource.
  • the downlink reference signal used for tracking is on the RE other than the corresponding RE on the antenna port where the downlink reference signal transmission for tracking, or the PBCH transmission resource corresponds to the CRS on the antenna port 0.
  • the orthogonal frequency division multiplexing OFDM symbol in which the PBCH transmission is located is different from the OFDM symbol in which the DRS transmission is located.
  • the resource mapping unit 90 includes the downlink reference signal for tracking and/or in the PBCH transmission resource.
  • the method of using the RE for the vacant part is applicable to the downlink reference signal used for tracking in the downlink reference signal for tracking when the resource mapping unit 90 maps the PBCH to the PBCH transmission resource.
  • the resource mapping unit 90 maps the PBCH to the PBCH transmission resource, where the RE corresponding to the CRS on the antenna port 0, and/or the DRS correspond to the K antenna ports where the DRS transmission is located.
  • the resource mapping unit 90 maps the PBCH to other REs of the PBCH transmission resource except the RE corresponding to the CRS on the antenna port 0, the coded bit carried by the PBCH under the regular CP is 48*. [46-A] bits, the coded bits carried under the extended CP are 48*[44-A] bits, where A is the number of vacated REs; or
  • the resource mapping unit 90 maps the PBCH to the other REs of the PBCH transmission resource except the corresponding REs on the K antenna ports where the DRS transmission is located, the PBCH is under the regular CP and the extended CP.
  • the coded bits of the bearer are 48*[48-BA] bits, where A is the number of vacated REs, and B is the number of REs corresponding to the DRSs in the PBCH transmission resources on the K antenna ports where the DRS transmission is located; Or,
  • the coded bits carried by the PBCH under the normal CP are 48*[46-BA] bits
  • the coded bits carried under the extended CP are 48*[44-BA] bits, where A is the number of vacated REs.
  • B is the number of REs corresponding to the DRS in the PBCH transmission resource on the K antenna ports where the DRS transmission is located.
  • the sending unit 91 is further configured to:
  • the cyclic redundancy check CRC of the PBCH is not scrambled, and the number of antenna ports in which the DRS transmission for demodulating the PBCH is a predetermined number of antenna ports; or
  • the downlink reference signal used for tracking further includes: one or more combinations of a positioning reference signal PRS and a channel state information reference signal CSI-RS.
  • the resource mapping unit 90 is configured to:
  • the resource mapping unit 90 maps the PBCH to the PBCH transmission resource except the DRS.
  • the code carried by the PBCH under the normal CP when the corresponding RE on the antenna port where the DRS transmission is located and the RE other than the corresponding RE on the antenna port 0, the antenna port 1, the antenna port 2, and the antenna port 3 The bit is 48*[40-B] bits, and the coded bit carried in the extended CP is 48*[36-B] bits, where B is the DRS in the PBCH transmission resource on the antenna port where the DRS transmission is located. The number of corresponding REs.
  • the sending unit 91 is configured to:
  • an embodiment of the present invention provides a terminal, where the terminal includes:
  • the receiving unit 101 is configured to: according to the downlink reference signal for tracking included in the PBCH transmission resource, the corresponding resource unit RE on the antenna port where the downlink reference signal for tracking is located, and/or for demodulation
  • the downlink reference signal is received by the corresponding RE on the antenna port where the downlink reference signal for demodulation is transmitted.
  • the downlink reference signal for tracking includes at least a cell-specific reference signal CRS for tracking, and the downlink reference signal for demodulation includes at least a downlink user-specific reference signal DRS;
  • the obtaining unit 102 is configured to acquire carrier information according to the received PBCH.
  • the receiving unit 101 is further configured to:
  • the downlink reference signal used for demodulating the PBCH is a DRS or a CRS for demodulation.
  • the receiving unit 101 is used to:
  • a corresponding RE in the PBCH transmission resource except for the downlink reference signal used for demodulation on the antenna port where the downlink reference signal transmission for demodulation is located, and a downlink reference signal for tracking are used in the Receiving the PBCH on a RE other than the corresponding RE on the antenna port where the downlink reference signal transmission is located; or, in the PBCH transmission resource, other REs other than the corresponding RE of the CRS on the antenna port 0 Receiving The PBCH; or,
  • the PBCH is received in the PBCH transmission resource except that the DRS corresponds to the RE on the K antenna ports where the DRS transmission is located, and the REs other than the RE corresponding to the CRS on the antenna port 0.
  • the receiving unit 101 when receiving the PBCH on all the REs in the PBCH transmission resource, the coded bit carried by the PBCH under the regular cyclic prefix CP and the extended CP is 2304 bits; or
  • the receiving unit 101 receives the PBCH in the PBCH transmission resource, except that the CRS is on a RE other than the corresponding RE on the antenna port 0, and the PBCH carries 2208 bits of coded bits under the regular CP.
  • the coded bit carried by the CP is 2112 bits; or
  • the receiving unit 101 in the PBCH transmission resource, except that the DRS receives the PBCH on the RE other than the RE corresponding to the K antenna ports where the DRS transmission is located, the PBCH is under the regular CP and the extended CP.
  • the coded bits of the bearer are 48*[48-B] bits, where B is the number of REs corresponding to the DRSs in the PBCH transmission resources on the K antenna ports where the DRS transmission is located; or
  • the receiving unit 101 receives, in the PBCH transmission resource, a RE corresponding to the DRS on the K antenna ports where the DRS transmission is located, and other REs other than the RE corresponding to the CRS on the antenna port 0.
  • the coded bits carried by the PBCH under the normal CP are 48*[46-B] bits
  • the coded bits carried under the extended CP are 48*[44-B] bits, where B is the DRS in the PBCH transmission resource.
  • the receiving unit 101 receives the PBCH, in particular, all the REs in the PBCH transmission resource, or the downlink reference signal used for demodulation in the PBCH transmission resource is used in the solution.
  • a RE other than the corresponding RE on the antenna port where the downlink reference signal transmission is located, or another RE of the PBCH transmission resource except the corresponding RE of the D antenna on the K antenna ports where the DRS transmission is located On, when receiving the PBCH:
  • the receiving unit 101 receives a subframe of the downlink reference signal for tracking different from the subframe that receives the PBCH, and/or the receiving unit 101 receives the physical resource block PRB and the receiving of the downlink reference signal for tracking.
  • the PRB used by the PBCH is different; or,
  • the subframe in which the receiving unit 101 receives the CRS for tracking is different from the subframe in which the PBCH is received, and/or the PRB that the receiving unit 101 receives the CRS for tracking is different from the PRB that receives the PBCH.
  • the receiving unit 101 receives the PBCH, in particular, all the REs in the PBCH transmission resource, or the downlink reference signal used for tracking in the PBCH transmission resource is used in the tracking.
  • the PBCH is received on the RE other than the corresponding RE on the antenna port where the downlink reference signal is transmitted, or on the other RE of the PBCH transmission resource except the RE corresponding to the CRS on the antenna port 0:
  • the orthogonal frequency division multiplexing OFDM symbol in which the PBCH transmission is located is different from the OFDM symbol in which the DRS transmission is located.
  • the receiving unit 101 when the receiving unit 101 uses P antenna port transmit diversity to receive the PBCH: the receiving unit 101 includes the downlink reference signal for tracking and/or used in the PBCH transmission resource.
  • the demodulated downlink reference signal is on the OFDM symbol of the corresponding RE on the antenna port on which the transmission is located, and the vacant part of the available RE does not receive the PBCH, so that the receiving unit 101 transmits diversity using the P antenna ports.
  • the downlink reference signal and/or the downlink reference signal used for demodulation are other REs than the corresponding RE on the antenna port on which the transmission is located.
  • the method for using the RE in the vacant part is applicable to the antenna port where the receiving unit 101 is in the PBCH transmission resource except for the downlink reference signal used for tracking in the downlink reference signal transmission for tracking.
  • the terminal in the PBCH transmission resource except for the RE corresponding to the CRS on the antenna port 0, and/or the other RE of the DRS corresponding to the RE corresponding to the K antenna ports where the DRS transmission is located, When PBCH is described.
  • the receiving unit 101 in the PBCH transmission resource, except that the CRS is on a RE other than the RE corresponding to the antenna port 0, when the PBCH is received, the coded bit carried by the PBCH under the regular CP is 48*. [46-A] bits, the coded bits carried under the extended CP are 48*[44-A] bits, where A is the number of vacated REs; or
  • the receiving unit 101 in the PBCH transmission resource, except that the DRS receives the PBCH on the RE other than the RE corresponding to the K antenna ports where the DRS transmission is located, the PBCH is under the regular CP and the extended CP.
  • the coded bits of the bearer are 48*[48-BA] bits, where A is the number of vacated REs, and B is the number of REs corresponding to the DRSs in the PBCH transmission resources on the K antenna ports where the DRS transmission is located; Or,
  • the receiving unit 101 receives, in the PBCH transmission resource, a RE corresponding to the DRS on the K antenna ports where the DRS transmission is located, and other REs other than the RE corresponding to the CRS on the antenna port 0.
  • the coded bits carried by the PBCH under the normal CP are 48*[46-BA] bits
  • the coded bits carried under the extended CP are 48*[44-BA] bits, where A is the number of vacated REs.
  • B is the number of REs corresponding to the DRSs in the PBCH transmission resources on the K antenna ports where the DRS transmission is located.
  • the receiving unit 101 is configured to: The CRC of the cyclic redundancy check of the PBCH is not descrambled, and the number of antenna ports where the DRS transmission for demodulating the PBCH is a predetermined number of antenna ports; or
  • the scrambling sequence indicating the DRS transmission for demodulating the PBCH The number of antenna ports in which it is located.
  • the downlink reference signal used for tracking further includes: one or more combinations of a positioning reference signal PRS and a channel state information reference signal CSI-RS.
  • the receiving unit 101 is configured to:
  • antenna port 1 In the PBCH transmission resource, except CRS at antenna port 0, antenna port 1, antenna port 2, and antenna port
  • the PBCH transmission resources except for the RE corresponding to the DRS on the antenna port where the DRS transmission is located, and the REs corresponding to the REs of the CRS on the antenna port 0, the antenna port 1, the antenna port 2, and the antenna port 3
  • the PBCH is received.
  • the receiving unit 101 in the PBCH transmission resource, except for the RE corresponding to the DRS on the antenna port where the DRS transmission is located, and the CRS on the antenna port 0, the antenna port 1, the antenna port 2, and the antenna port 3
  • the coded bits carried by the PBCH under the normal CP are 48*[40-B] bits
  • the coded bits carried under the extended CP are 48*[36-B] Bit, where B is the number of REs corresponding to the DRS in the PBCH transmission resource on the antenna port where the DRS transmission is located.
  • the receiving unit 101 is configured to:
  • a CRS for demodulating the PBCH is received.
  • the beneficial effects of the present invention include:
  • the base station in the PBCH transmission subframe based on the downlink reference signal for tracking included in the PBCH transmission resource, is corresponding to the RE on the antenna port where the downlink reference signal for tracking is located. And/or the downlink reference signal for demodulation, the corresponding RE on the antenna port where the downlink reference signal for demodulation is located, resource mapping the PBCH, and transmitting the PBCH according to the resource mapping result.
  • the scheme uses the downlink reference signal for tracking and/or for demodulation according to the new carrier type when performing resource mapping on the PBCH.
  • the corresponding RE on the downlink reference signal antenna port performs more reasonable resource mapping on the PBCH, so that the scheme can be applied to PBCH transmission on the NCT carrier to improve resource utilization and PBCH transmission performance.
  • the computer program instructions can also be stored in a computer readable memory that can direct a computer or other programmable data processing device to operate in a particular manner, such that the instructions stored in the computer readable memory produce an article of manufacture comprising the instruction device.
  • the apparatus implements the functions specified in one or more blocks of a flow or a flow and/or block diagram of the flowchart.
  • These computer program instructions can also be loaded onto a computer or other programmable data processing device such that a series of operational steps are performed on a computer or other programmable device to produce computer-implemented processing for execution on a computer or other programmable device.
  • the instructions provide steps for implementing the functions specified in one or more of the flow or in a block or blocks of a flow diagram.

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Abstract

L'invention porte sur un procédé et un dispositif d'émission d'un canal de diffusion physique (PBCH), concernant le domaine technique des communications sans fil et fournissant une solution d'émission de PBCH applicable à de nouveaux types de porteuse. Selon la présente demande, une station de base effectue un mappage de ressource pour un PBCH dans une sous-trame de transmission de PBCH sur la base d'un élément de ressource (RE) correspondant à un signal de référence de liaison descendante pour un suivi et d'un port d'antenne servant à émettre le signal de référence de liaison descendante pour un suivi et/ou d'un RE correspondant à un signal de référence de liaison descendante pour démodulation et d'un port d'antenne servant à émettre le signal de référence de liaison descendante pour démodulation, le RE étant inclus dans une ressource de transmission de PBCH, et envoie le PBCH conformément à un résultat de mappage de ressource. En conséquence, selon la présente demande, un mappage de ressource plus raisonnable peut être effectué pour un PBCH conformément à des caractéristiques de transmission de signal de référence de nouveaux types de porteuse, de sorte que la solution peut être appliquée aux nouveaux types de porteuse afin d'améliorer l'utilisation des ressources et les performances de transmission de PBCH.
PCT/CN2013/075073 2012-05-04 2013-05-02 Procédé et dispositif d'émission de canal de diffusion physique WO2013163952A1 (fr)

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CN201210138651.8A CN103384163B (zh) 2012-05-04 2012-05-04 物理广播信道的传输方法和设备

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Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN110912644A (zh) * 2019-11-13 2020-03-24 上海交通大学 Cas内物理广播信道的重复发射及接收合并方法

Families Citing this family (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US9426609B2 (en) * 2014-01-24 2016-08-23 Qualcomm Incorporated Methods, apparatuses, and devices for processing positioning reference signals
CN106961315B (zh) 2016-01-11 2020-03-17 电信科学技术研究院 一种窄带pbch传输方法及装置
CN108282284B (zh) * 2017-01-05 2024-04-16 华为技术有限公司 一种发送参考信号的方法和通信设备
CN108631975A (zh) * 2017-03-23 2018-10-09 株式会社Ntt都科摩 参考信号发送方法、信道测量方法、无线基站及用户终端
WO2019205105A1 (fr) * 2018-04-27 2019-10-31 北京小米移动软件有限公司 Procédé de détermination de séquence d'initialisation de brouillage de données et procédé de désembrouillage de données
CN112332961B (zh) * 2020-10-29 2023-02-24 上海擎昆信息科技有限公司 资源映射、解资源映射的方法及其控制方法,以及相关装置

Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20110235743A1 (en) * 2010-03-26 2011-09-29 Lg Electronics Inc. Method and base station for receiving reference signal, and method and user equipment for receiving reference signal
US20120058791A1 (en) * 2010-02-23 2012-03-08 Qualcomm Incorporated Channel state information reference signals

Family Cites Families (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN101998656A (zh) * 2009-08-11 2011-03-30 华为技术有限公司 一种上行控制信息反馈与接收的方法及基站和中继站
CN101795145B (zh) * 2010-02-08 2014-11-05 中兴通讯股份有限公司 测量参考信号的发送方法及系统

Patent Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20120058791A1 (en) * 2010-02-23 2012-03-08 Qualcomm Incorporated Channel state information reference signals
US20110235743A1 (en) * 2010-03-26 2011-09-29 Lg Electronics Inc. Method and base station for receiving reference signal, and method and user equipment for receiving reference signal

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN110912644A (zh) * 2019-11-13 2020-03-24 上海交通大学 Cas内物理广播信道的重复发射及接收合并方法

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