WO2015043500A1 - 一种传输pbch的方法、系统和设备 - Google Patents

一种传输pbch的方法、系统和设备 Download PDF

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Publication number
WO2015043500A1
WO2015043500A1 PCT/CN2014/087510 CN2014087510W WO2015043500A1 WO 2015043500 A1 WO2015043500 A1 WO 2015043500A1 CN 2014087510 W CN2014087510 W CN 2014087510W WO 2015043500 A1 WO2015043500 A1 WO 2015043500A1
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symbols
subframe
pbch
frame
res
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PCT/CN2014/087510
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English (en)
French (fr)
Inventor
徐伟杰
潘学明
沈祖康
邢艳萍
贾民丽
Original Assignee
电信科学技术研究院
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Application filed by 电信科学技术研究院 filed Critical 电信科学技术研究院
Priority to US15/025,281 priority Critical patent/US20160227567A1/en
Priority to EP14849473.5A priority patent/EP3051896B1/en
Publication of WO2015043500A1 publication Critical patent/WO2015043500A1/zh

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    • 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
    • H04L5/0044Arrangements for allocating sub-channels of the transmission path allocation of payload
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/12Wireless traffic scheduling
    • H04W72/1263Mapping of traffic onto schedule, e.g. scheduled allocation or multiplexing of flows
    • H04W72/1273Mapping of traffic onto schedule, e.g. scheduled allocation or multiplexing of flows of downlink data flows
    • 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
    • H04L5/0058Allocation criteria
    • H04L5/006Quality of the received signal, e.g. BER, SNR, water filling
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/30Resource management for broadcast services
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L5/00Arrangements affording multiple use of the transmission path
    • H04L5/14Two-way operation using the same type of signal, i.e. duplex
    • H04L5/1469Two-way operation using the same type of signal, i.e. duplex using time-sharing

Definitions

  • the present invention relates to the field of wireless communication technologies, and in particular, to a method, system, and device for transmitting a PBCH.
  • MTC terminal may have some of the characteristics of a variety of Machine to Machine (M2M) communication features, such as low mobility, small amount of transmitted data, insensitivity to communication delay, and extremely low requirements. Features such as power consumption.
  • M2M Machine to Machine
  • GSM Global System for Mobile Communications
  • operators find terminals that work in some scenarios, such as terminals working in basements, shopping malls, or building corners, due to wireless signals.
  • the signal is greatly occluded, and the signal is greatly attenuated.
  • the terminal cannot communicate with the network, and the deep coverage of the network for these scenarios will greatly increase the network construction cost.
  • the operator has been tested and believes that it is necessary to enhance the existing coverage of GSM by 15 dB to meet the coverage requirements of the above scenarios.
  • Subsequent LTE technology will replace GSM for M2M transmission. Since LTE and GSM coverage are basically the same, LTE technology also needs to enhance 15dB coverage to meet the M2M transmission requirements in the above scenario.
  • a feasible method is to adopt a transmission rate reduction technique such as repeated transmission or rate matching for the existing channel of the LTE system.
  • a transmission rate reduction technique such as repeated transmission or rate matching for the existing channel of the LTE system.
  • PBCH Physical Broadcast Channel
  • it may be repeated nearly 100 times or more to satisfy the 15 dB coverage enhancement.
  • a method, system and device for transmitting a PBCH are provided for transmitting a coverage enhanced PBCH according to an embodiment of the present invention.
  • the network side device determines, in the at least one radio frame, the resource that covers the enhanced PBCH;
  • the network side device transmits the coverage enhanced PBCH on the determined resource.
  • the network side device determines, in the at least one radio frame, the resource that covers the enhanced PBCH, and The enhanced coverage of the PBCH is transmitted over the identified resources. Since the resources carrying the coverage enhanced PBCH can be determined, the transmission coverage enhanced PBCH is realized, and the system performance is improved.
  • the network side device determines, in the at least one radio frame, the resource that covers the enhanced PBCH, including:
  • the network side device uses the following resources in the at least one radio frame as a resource for mapping the enhanced PBCH:
  • the sub-frame 5 In some or all of the sub-frame 0, the sub-frame 5, and the sub-frame 9, some or all of the symbols other than the symbols occupied by the conventional PBCH, SSS, and PDCCH, except for the CRS ports 0 to 3. Some or all of the REs other than the RE; and/or
  • some or all of the symbols other than the symbols occupied by the PSS and the PDCCH in the DwPTS of the subframe some or all of the REs other than the RE in which the CRS ports 0 to 3 are located; and/or
  • the specific symbol is the same symbol in the subframe 6 as the symbol number used for transmitting the coverage enhanced PBCH in the DwPTS of the subframe 1.
  • the network side device determines, in the at least one radio frame, the resource that covers the enhanced PBCH, including:
  • the network side device uses the following resources in the at least one radio frame as a resource for mapping the enhanced PBCH:
  • the sub-frame 5 in addition to the conventional PBCH, SSS, and some or all of the symbols other than the symbols occupied by the PDCCH, except for the reserved CSI-RS
  • some or all of the symbols other than the symbols occupied by the PSS and the PDCCH in the DwPTS of the subframe some or all of the REs other than the RE in which the CRS ports 0 to 3 are located; and/or
  • the specific symbol is the same symbol in the subframe 6 as the symbol number used for transmitting the coverage enhanced PBCH in the DwPTS of the subframe 1.
  • the network side device determines, in the at least one radio frame, the resource that covers the enhanced PBCH, including:
  • the network side device uses the following resources in the at least one radio frame as a resource for mapping the enhanced PBCH:
  • the sub-frame 5 in part or all of the symbols other than the symbols of the conventional PBCH and the PDCCH, the part of the symbol in which the CRS port is located or Some or all of the REs except the RE where the CRS ports 0 to 3 are located in all symbols; and/or
  • the specific symbol is the same symbol in the subframe 6 as the symbol number used for transmitting the coverage enhanced PBCH in the DwPTS of the subframe 1.
  • the network side device determines, in the at least one radio frame, the resource that covers the enhanced PBCH, including:
  • the network side device uses the following resources in the at least one radio frame as a resource for mapping the enhanced PBCH:
  • the sub-frame 5 In some or all of the sub-frame 0, the sub-frame 5, and the sub-frame 9, except for some or all of the symbols other than the symbols occupied by the conventional PBCH, SSS, and CSI-RS, except for the CRS port 0 to 3 part or all of the REs other than the RE in which it resides; and/or
  • the specific symbol is the same symbol in the subframe 6 as the symbol number used for transmitting the coverage enhanced PBCH in the DwPTS of the subframe 1.
  • the resources of the at least one radio frame that map the enhanced PBCH are located on N subcarriers in the center of the system bandwidth of the radio frame, where N is a positive integer.
  • the N is 72.
  • the user equipment receives the coverage enhanced PBCH on the determined resource.
  • the user equipment determines, in the at least one radio frame, the resource that covers the enhanced PBCH, including:
  • the user equipment uses the following resources in the at least one radio frame as a resource for mapping the enhanced PBCH:
  • the sub-frame 5 In some or all of the sub-frame 0, the sub-frame 5, and the sub-frame 9, some or all of the symbols other than the symbols occupied by the conventional PBCH, SSS, and PDCCH, except for the CRS ports 0 to 3. Some or all of the REs other than the RE; and/or
  • some or all of the symbols other than the symbols occupied by the PSS and the PDCCH in the DwPTS of the subframe some or all of the REs other than the RE in which the CRS ports 0 to 3 are located; and/or
  • the specific symbol is the same symbol in the subframe 6 as the symbol number used for transmitting the coverage enhanced PBCH in the DwPTS of the subframe 1.
  • the user equipment determines, in the at least one radio frame, the resource that covers the enhanced PBCH, including:
  • the user equipment uses the following resources in the at least one radio frame as a resource for mapping the enhanced PBCH:
  • the sub-frame 5 in addition to the conventional PBCH, SSS, and some or all of the symbols other than the symbols occupied by the PDCCH, except for the reserved CSI-RS
  • some or all of the symbols other than the symbols occupied by the PSS and the PDCCH in the DwPTS of the subframe some or all of the REs other than the RE in which the CRS ports 0 to 3 are located; and/or
  • the specific symbol is the same symbol in the subframe 6 as the symbol number used for transmitting the coverage enhanced PBCH in the DwPTS of the subframe 1.
  • the user equipment determines, in the at least one radio frame, the resource that covers the enhanced PBCH, including:
  • the user equipment uses the following resources in the at least one radio frame as a resource for mapping the enhanced PBCH:
  • the sub-frame 5 in part or all of the symbols other than the symbols of the conventional PBCH and the PDCCH, the part of the symbol in which the CRS port is located or Some or all of the REs except the RE where the CRS ports 0 to 3 are located in all symbols; and/or
  • the specific symbol is the same symbol in the subframe 6 as the symbol number used for transmitting the coverage enhanced PBCH in the DwPTS of the subframe 1.
  • the user equipment determines, in the at least one radio frame, the resource that covers the enhanced PBCH, including:
  • the user equipment uses the following resources in the at least one radio frame as a resource for mapping the enhanced PBCH:
  • the sub-frame 5 In some or all of the sub-frame 0, the sub-frame 5, and the sub-frame 9, except for some or all of the symbols other than the symbols occupied by the conventional PBCH, SSS, and CSI-RS, except for the CRS port 0 to 3 part or all of the REs other than the RE in which it resides; and/or
  • the specific symbol is the same symbol in the subframe 6 as the symbol number used for transmitting the coverage enhanced PBCH in the DwPTS of the subframe 1.
  • the resources of the at least one radio frame that map the enhanced PBCH are located on N subcarriers in the center of the system bandwidth of the radio frame, where N is a positive integer.
  • the N is 72.
  • a first determining module configured to determine, in the at least one radio frame, a resource that maps the enhanced PBCH
  • a sending module configured to transmit the coverage enhanced PBCH on the determined resource.
  • the network side device determines, in the at least one radio frame, the resource that covers the enhanced PBCH, and transmits the coverage enhanced PBCH on the determined resource. Since the resources carrying the coverage enhanced PBCH can be determined, the transmission coverage enhanced PBCH is realized, and the system performance is improved.
  • the first determining module is specifically configured to:
  • the following resources in at least one radio frame are used as mappings to cover the resources of the enhanced PBCH:
  • the sub-frame 5 In some or all of the sub-frame 0, the sub-frame 5, and the sub-frame 9, some or all of the symbols other than the symbols occupied by the conventional PBCH, SSS, and PDCCH, except for the CRS ports 0 to 3. Some or all of the REs other than the RE; and/or
  • some or all of the symbols other than the symbols occupied by the PSS and the PDCCH in the DwPTS of the subframe some or all of the REs other than the RE in which the CRS ports 0 to 3 are located; and/or
  • the specific symbol is the same symbol in the subframe 6 as the symbol number used for transmitting the coverage enhanced PBCH in the DwPTS of the subframe 1.
  • the first determining module is specifically configured to:
  • the following resources in at least one radio frame are used as mappings to cover the resources of the enhanced PBCH:
  • the sub-frame 5 in addition to the conventional PBCH, SSS, and some or all of the symbols other than the symbols occupied by the PDCCH, except for the reserved CSI-RS
  • some or all of the symbols other than the symbols occupied by the PSS and the PDCCH in the DwPTS of the subframe some or all of the REs other than the RE in which the CRS ports 0 to 3 are located; and/or
  • the specific symbol is the same symbol in the subframe 6 as the symbol number used for transmitting the coverage enhanced PBCH in the DwPTS of the subframe 1.
  • the first determining module is specifically configured to:
  • the following resources in at least one radio frame are used as mappings to cover the resources of the enhanced PBCH:
  • the sub-frame 5 in part or all of the symbols other than the symbols of the conventional PBCH and the PDCCH, the part of the symbol in which the CRS port is located or Some or all of the REs except the RE where the CRS ports 0 to 3 are located in all symbols; and/or
  • the specific symbol is the same symbol in the subframe 6 as the symbol number used for transmitting the coverage enhanced PBCH in the DwPTS of the subframe 1.
  • the first determining module is specifically configured to:
  • the following resources in at least one radio frame are used as mappings to cover the resources of the enhanced PBCH:
  • the sub-frame 5 In some or all of the sub-frame 0, the sub-frame 5, and the sub-frame 9, except for some or all of the symbols other than the symbols occupied by the conventional PBCH, SSS, and CSI-RS, except for the CRS port 0 to 3 part or all of the REs other than the RE in which it resides; and/or
  • the specific symbol is the same symbol in the subframe 6 as the symbol number used for transmitting the coverage enhanced PBCH in the DwPTS of the subframe 1.
  • the resources of the at least one radio frame that map the enhanced PBCH are located on N subcarriers in the center of the system bandwidth of the radio frame, where N is a positive integer.
  • a processor configured to determine, in the at least one radio frame, a resource that covers the enhanced PBCH, and transmits, by using the transceiver, the coverage enhanced PBCH on the determined resource;
  • a transceiver for transmitting and receiving data under the control of the processor.
  • the processor is specifically configured to:
  • the following resources in at least one radio frame are used as mappings to cover the resources of the enhanced PBCH:
  • the sub-frame 5 In some or all of the sub-frame 0, the sub-frame 5, and the sub-frame 9, some or all of the symbols other than the symbols occupied by the conventional PBCH, SSS, and PDCCH, except for the CRS ports 0 to 3. Some or all of the REs other than the RE; and/or
  • some or all of the symbols other than the symbols occupied by the PSS and the PDCCH in the DwPTS of the subframe some or all of the REs other than the RE in which the CRS ports 0 to 3 are located; and/or
  • the specific symbol is the same symbol in the subframe 6 as the symbol number used in the PBCH for transmitting the coverage enhancement in the DwPTS of the subframe 1.
  • the processor is specifically configured to:
  • the following resources in at least one radio frame are used as mappings to cover the resources of the enhanced PBCH:
  • the sub-frame 5 in addition to the conventional PBCH, SSS, and some or all of the symbols other than the symbols occupied by the PDCCH, except for the reserved CSI-RS
  • some or all of the symbols other than the symbols occupied by the PSS and the PDCCH in the DwPTS of the subframe some or all of the REs other than the RE in which the CRS ports 0 to 3 are located; and/or
  • the specific symbol is the same symbol in the subframe 6 as the symbol number used in the PBCH for transmitting the coverage enhancement in the DwPTS of the subframe 1.
  • the processor is specifically configured to:
  • the following resources in at least one radio frame are used as mappings to cover the resources of the enhanced PBCH:
  • the sub-frame 5 in part or all of the symbols other than the symbols of the conventional PBCH and the PDCCH, the part of the symbol in which the CRS port is located or Some or all of the REs except the RE where the CRS ports 0 to 3 are located in all symbols; and/or
  • the specific symbol is the same symbol in the subframe 6 as the symbol number used in the PBCH for transmitting the coverage enhancement in the DwPTS of the subframe 1.
  • the processor is specifically configured to:
  • the following resources in at least one radio frame are used as mappings to cover the resources of the enhanced PBCH:
  • the sub-frame 5 In some or all of the sub-frame 0, the sub-frame 5, and the sub-frame 9, except for some or all of the symbols other than the symbols occupied by the conventional PBCH, SSS, and CSI-RS, except for the CRS port 0 to 3 part or all of the REs other than the RE in which it resides; and/or
  • the specific symbol is the same symbol in the subframe 6 as the symbol number used in the PBCH for transmitting the coverage enhancement in the DwPTS of the subframe 1.
  • the resources of the at least one radio frame that map the enhanced PBCH are located on N subcarriers in the center of the system bandwidth of the radio frame, where N is a positive integer.
  • a second determining module configured to determine, in the at least one radio frame, a resource that maps the enhanced PBCH
  • a receiving module configured to receive the coverage enhanced PBCH on the determined resource.
  • the second determining module is specifically configured to:
  • the following resources in at least one radio frame are used as mappings to cover the resources of the enhanced PBCH:
  • the sub-frame 5 In some or all of the sub-frame 0, the sub-frame 5, and the sub-frame 9, some or all of the symbols other than the symbols occupied by the conventional PBCH, SSS, and PDCCH, except for the CRS ports 0 to 3. Some or all of the REs other than the RE; and/or
  • some or all of the symbols other than the symbols occupied by the PSS and the PDCCH in the DwPTS of the subframe some or all of the REs other than the RE in which the CRS ports 0 to 3 are located; and/or
  • the specific symbol is the same symbol in the subframe 6 as the symbol number used for transmitting the coverage enhanced PBCH in the DwPTS of the subframe 1.
  • the second determining module is specifically configured to:
  • the following resources in at least one radio frame are used as mappings to cover the resources of the enhanced PBCH:
  • the sub-frame 5 in addition to the conventional PBCH, SSS, and some or all of the symbols other than the symbols occupied by the PDCCH, except for the reserved CSI-RS
  • some or all of the symbols other than the symbols occupied by the PSS and the PDCCH in the DwPTS of the subframe some or all of the REs other than the RE in which the CRS ports 0 to 3 are located; and/or
  • the specific symbol is the same symbol in the subframe 6 as the symbol number used for transmitting the coverage enhanced PBCH in the DwPTS of the subframe 1.
  • the second determining module is specifically configured to:
  • the following resources in at least one radio frame are used as mappings to cover the resources of the enhanced PBCH:
  • the sub-frame 5 in part or all of the symbols other than the symbols of the conventional PBCH and the PDCCH, the part of the symbol in which the CRS port is located or Some or all of the REs except the RE where the CRS ports 0 to 3 are located in all symbols; and/or
  • the specific symbol is the same symbol in the subframe 6 as the symbol number used for transmitting the coverage enhanced PBCH in the DwPTS of the subframe 1.
  • the second determining module is specifically configured to:
  • the following resources in at least one radio frame are used as mappings to cover the resources of the enhanced PBCH:
  • the sub-frame 5 In some or all of the sub-frame 0, the sub-frame 5, and the sub-frame 9, except for some or all of the symbols other than the symbols occupied by the conventional PBCH, SSS, and CSI-RS, except for the CRS port 0 to 3 part or all of the REs other than the RE in which it resides; and/or
  • the specific symbol is the same symbol in the subframe 6 as the symbol number used for transmitting the coverage enhanced PBCH in the DwPTS of the subframe 1.
  • the resources of the at least one radio frame that map the enhanced PBCH are located on N subcarriers in the center of the system bandwidth of the radio frame, where N is a positive integer.
  • a processor configured to determine, in the at least one radio frame, a resource that covers the enhanced PBCH, and receive, by the transceiver, the coverage enhanced PBCH on the determined resource;
  • a transceiver for transmitting and receiving data under the control of the processor.
  • the processor is specifically configured to:
  • the following resources in at least one radio frame are used as mappings to cover the resources of the enhanced PBCH:
  • the sub-frame 5 In some or all of the sub-frame 0, the sub-frame 5, and the sub-frame 9, some or all of the symbols other than the symbols occupied by the conventional PBCH, SSS, and PDCCH, except for the CRS ports 0 to 3. Some or all of the REs other than the RE; and/or
  • some or all of the symbols other than the symbols occupied by the PSS and the PDCCH in the DwPTS of the subframe some or all of the REs other than the RE in which the CRS ports 0 to 3 are located; and/or
  • the specific symbol is the same symbol in the subframe 6 as the symbol number used in the PBCH for transmitting the coverage enhancement in the DwPTS of the subframe 1.
  • the processor is specifically configured to:
  • the following resources in at least one radio frame are used as mappings to cover the resources of the enhanced PBCH:
  • the sub-frame 5 in addition to the conventional PBCH, SSS, and some or all of the symbols other than the symbols occupied by the PDCCH, except for the reserved CSI-RS
  • some or all of the symbols other than the symbols occupied by the PSS and the PDCCH in the DwPTS of the subframe some or all of the REs other than the RE in which the CRS ports 0 to 3 are located; and/or
  • the specific symbol is the same symbol in the subframe 6 as the symbol number used in the PBCH for transmitting the coverage enhancement in the DwPTS of the subframe 1.
  • the processor is specifically configured to:
  • the following resources in at least one radio frame are used as mappings to cover the resources of the enhanced PBCH:
  • the sub-frame 5 in part or all of the symbols other than the symbols of the conventional PBCH and the PDCCH, the part of the symbol in which the CRS port is located or Some or all of the REs except the RE where the CRS ports 0 to 3 are located in all symbols; and/or
  • the specific symbol is the same symbol in the subframe 6 as the symbol number used in the PBCH for transmitting the coverage enhancement in the DwPTS of the subframe 1.
  • the processor is specifically configured to:
  • the following resources in at least one radio frame are used as mappings to cover the resources of the enhanced PBCH:
  • the sub-frame 5 In some or all of the sub-frame 0, the sub-frame 5, and the sub-frame 9, except for some or all of the symbols other than the symbols occupied by the conventional PBCH, SSS, and CSI-RS, except for the CRS port 0 to 3 part or all of the REs other than the RE in which it resides; and/or
  • the specific symbol is the same symbol in the subframe 6 as the symbol number used in the PBCH for transmitting the coverage enhancement in the DwPTS of the subframe 1.
  • the resources of the at least one radio frame that map the enhanced PBCH are located on N subcarriers in the center of the system bandwidth of the radio frame, where N is a positive integer.
  • a network side device configured to determine, in the at least one radio frame, a resource that covers the enhanced PBCH; and transmit the coverage enhanced PBCH on the determined resource;
  • a user equipment configured to determine, in the at least one radio frame, a resource that covers the enhanced PBCH; and receive the coverage enhanced PBCH on the determined resource.
  • the network side device determines, in the at least one radio frame, the resource that covers the enhanced PBCH, and transmits the coverage enhanced PBCH on the determined resource. Since the resources carrying the coverage enhanced PBCH can be determined, the transmission coverage enhanced PBCH is realized, and the system performance is improved.
  • FIG. 1 is a schematic structural diagram of a system for transmitting a PBCH according to an embodiment of the present invention
  • FIG. 2 is a schematic diagram of a first resource mapping according to an embodiment of the present invention.
  • FIG. 3 is a schematic diagram of a second resource mapping according to an embodiment of the present invention.
  • FIG. 4 is a schematic diagram of a third resource mapping according to an embodiment of the present invention.
  • FIG. 5 is a schematic diagram of a fourth resource mapping according to an embodiment of the present invention.
  • FIG. 6 is a schematic diagram of a fifth resource mapping according to an embodiment of the present invention.
  • FIG. 7 is a schematic diagram of a sixth resource mapping according to an embodiment of the present invention.
  • FIG. 8 is a schematic structural diagram of a first network side device in a system for transmitting a PBCH according to an embodiment of the present invention.
  • FIG. 9 is a schematic structural diagram of a first type of user equipment in a system for transmitting a PBCH according to an embodiment of the present invention.
  • FIG. 10 is a schematic structural diagram of a second network side device in a system for transmitting a PBCH according to an embodiment of the present invention
  • FIG. 11 is a schematic structural diagram of a second user equipment in a system for transmitting a PBCH according to an embodiment of the present invention.
  • FIG. 12 is a schematic flowchart of a method for transmitting a PBCH by a network side device according to an embodiment of the present invention
  • FIG. 13 is a schematic flowchart of a method for a user equipment to receive a PBCH according to an embodiment of the present invention.
  • the network side device determines, in the at least one radio frame, the resource that covers the enhanced PBCH, and transmits the coverage enhanced PBCH on the determined resource. Since the resources carrying the coverage enhanced PBCH can be determined, the transmission coverage enhanced PBCH is realized, and the system performance is improved.
  • the system for transmitting a PBCH in the embodiment of the present invention includes:
  • the network side device 10 is configured to determine, in the at least one radio frame, a resource that covers the enhanced PBCH, and transmit the coverage enhanced PBCH on the determined resource.
  • the user equipment 20 is configured to determine, in the at least one radio frame, a resource that covers the enhanced PBCH, and receive the coverage enhanced PBCH on the determined resource.
  • the specific coverage of the resources of the enhanced PBCH in the radio frame may be specified in the protocol as required, or the base station and the user equipment are notified by the upper layer, or the user equipment is notified after the base station determines.
  • the number of radio frames including resources for mapping the coverage enhanced PBCH may be 4, 8, 12, and the like. If there are multiple radio frames, these radio frames may be all consecutive, partially continuous, or fully discontinuous.
  • the resources of the at least one radio frame that map the enhanced PBCH are located on N subcarriers in the center of the system bandwidth of the radio frame, where N is a positive integer.
  • N may be 72. Of course, it can be other numbers.
  • mapping overlay enhanced PBCH For a radio frame, there are many resources that can be used as a mapping overlay enhanced PBCH, and several are listed below.
  • Case 1 Subframe 0, Subframe 5, and part or all of the subframes 9 except for the conventional PBCH, the Secondary Synchronization Signal (SSS), and the Physical Downlink Control Channel (PDCCH).
  • SSS Secondary Synchronization Signal
  • PDCCH Physical Downlink Control Channel
  • RE resource element
  • CRS cell-specific reference signals
  • DwPTS downlink pilot time slot
  • PSS primary synchronization signal
  • CRS CRS ports 0 to 3
  • the specific symbol is the same symbol in the subframe 6 as the symbol number used in the PBCH for transmitting the coverage enhancement in the DwPTS of the subframe 1.
  • Case 2 part or all of the subframe 0, subframe 5, and subframe 9, except for some or all of the symbols other than the symbols occupied by the conventional PBCH, SSS, and PDCCH, except reserved a part or all of the REs other than the RE occupied by the channel state information reference signal (CSI-RS) and a part of the RE other than the RE where the CRS ports 0 to 3 are located or All RE; and / or
  • CSI-RS channel state information reference signal
  • some or all of the symbols other than the symbols occupied by the PSS and the PDCCH in the DwPTS of the subframe some or all of the REs other than the RE in which the CRS ports 0 to 3 are located; and/or
  • the specific symbol is the same symbol in the subframe 6 as the symbol number used in the PBCH for transmitting the coverage enhancement in the DwPTS of the subframe 1.
  • Case 3 In some or all of the sub-frame 0, the sub-frame 5, and the sub-frame 9, in some or all of the symbols other than the symbols occupied by the conventional PBCH and the PDCCH, the symbol in which the CRS port is located is Some or all of the REs of some or all of the REs other than the RE where the CRS ports 0 to 3 are located; and/or
  • the specific symbol is the same symbol in the subframe 6 as the symbol number used in the PBCH for transmitting the coverage enhancement in the DwPTS of the subframe 1.
  • Case 4 in part or all of the subframe 0, subframe 5, and subframe 9, except for some or all of the symbols other than the symbols occupied by the conventional PBCH, SSS, and CSI-RS, except CRS Some or all of the REs other than the RE where the ports 0 to 3 are located; and/or
  • the specific symbol is the same symbol in the subframe 6 as the symbol number used in the PBCH for transmitting the coverage enhancement in the DwPTS of the subframe 1.
  • the conventional PBCH is the PBCH specified by 3GPP TS 36.211 Release 8 (Release 8).
  • the coverage enhanced PBCH in the embodiment of the present invention is a PBCH that performs coverage enhancement on a conventional PBCH.
  • the coverage enhanced PBCH occupies more resources than the traditional PBCH.
  • the step of generating the coverage enhanced PBCH signal is: coverage source information bits carried by the enhanced PBCH signal are subjected to Cyclic Redundancy Check (CRC), convolutional coding, rate matching, scrambling, quadrature phase shift keying (Quaternary Phase Shift Keying, QPSK) After the steps of modulation, precoding and layer mapping, a coverage enhanced PBCH complex value signal sequence is obtained.
  • CRC Cyclic Redundancy Check
  • QPSK Quadrature phase shift keying
  • which subframes are specifically adopted may be specified in the protocol.
  • the network side device may transmit in the subframe 0 and the subframe 5.
  • the user equipment needs to perform the detection and coverage enhancement PBCH detection in the subframe 0 and the subframe 5 according to the protocol. .
  • the user equipment may separately try to cover the enhanced PBCH resource detection based on the subframe 0, or only based on the subframe 5, or based on the signals received in the subframe 0 and the subframe 5, and according to the specific mapping manner of the PBCH resources. Either way, it can be detected correctly.
  • the subframe 0 is used for detection, as long as the detection is correct, it is not necessary to detect other subframes. If sub-frame 0 detection is not correct, it can be further detected in combination with the part in sub-frame 5 until the detection is correct.
  • the network side device may transmit only in subframe 0, subframe 5, and/or subframe 1 and subframe 6; in particular,
  • the special subframe is configured as the special subframe configuration 0 and the special subframe configuration 5
  • the special subframe configuration since the number of symbols in the DwPTS is three, no additional symbol is transmitted to cover the enhanced PBCH, so if the special subframe configuration is used,
  • the coverage enhanced PBCH does not exist in the DwPTS mapping symbol number in the special subframe configuration (that is, there is no additional symbol transmission coverage enhanced PBCH), even if the coverage enhanced PBCH is specified in the DwPTS, the network side device
  • the coverage enhanced PBCH is also not transmitted in the DwPTS.
  • the terminal since the terminal does not know the specific configuration of the special subframe on the network side, it is not known whether the PBCH is mapped in the subframes 1 and 6. Therefore, it is necessary to separately try to assume that the coverage enhanced PBCH is only in the subframe 0 and the subframe 5.
  • the case of transmission and the coverage of the enhanced PBCH are detected in both cases where the enhanced PBCH is transmitted in subframe 0, subframe 5, and subframes 1, 6, in any of the hypothetical situations. The next test is correct. In the case where the subframe 0 is used for detection, as long as the detection is correct, it is not necessary to detect other subframes.
  • the sub-frame 0 detection is not correct, it can be further detected by combining the parts in the sub-frame 5; again, if the sub-frames 0, 5 are not correct, an attempt can be made to further combine the parts in the sub-frame 1 and the sub-frame 6 for detection until The test is correct.
  • the resources of the PBCH that cover the enhanced PBCH in each subframe are specified in the protocol, so that the network side device and the user equipment are consistent.
  • the mapped PBCH in the DwPTS does not map the symbol number in the special subframe configuration.
  • Existence that is, no additional symbol delivery coverage enhanced PBCH
  • it is immediately specified to transmit the coverage enhanced PBCH in the DwPTS, and the network side device does not transmit the coverage enhanced PBCH in the DwPTS.
  • the embodiment of the present invention covers the enhanced PBCH by using the reserved CSI-RS RE or the symbol bearer, and reduces the collision probability with the CSI-RS when the PBCH is repeatedly transmitted, and has the advantage of being compatible with the legacy UE.
  • An example of the method is given by taking a conventional CP as an example.
  • the extended CP is similar to the conventional CP and will not be described here. Due to space and similar principles, only the example of transmitting PBCH in subframes 0, 1, 5, and 6 is used. The use of subframe 9 to transmit coverage enhanced PBCH is not described in the embodiment.
  • the coverage enhanced PBCH is mapped to other REs of the subframes 0 and 5 except the symbols occupied by the conventional PBCH, SSS, and PDCCH except for the other REs of the RE where the CRS ports 0-3 are located.
  • the coverage enhanced PBCH is mapped to symbols 3, 4, 5, 6 in slot 0 in subframe 0, symbols 4, 5 in slot 1, and symbols in slot 10 in subframe 5.
  • the symbols 0, 1, 2, 3, 4, and 5 in 3, 4, 5, and 6 and the time slot 11 are on the other REs of the 16 symbols except the RE of the CRS port 0-3.
  • the coverage enhanced PBCH is mapped to other REs of the REs where the CRS ports 0-3 are located, except for the symbols occupied by the existing PBCH, PSS, SSS, and PDCCH.
  • the application of this example achieves a better effect in a special subframe configuration supporting the number of symbols in the DwPTS being greater than or equal to 6. .
  • the coverage enhanced PBCH is mapped to symbols 3, 4, 5, 6 in slot 0 of subframe 0, symbols 4, 5 in slot 1, and DwPTS in subframe 1.
  • the symbols 3, 4, and 5 are on the other REs of the 22 symbols except the CRS port 0-3.
  • the DwPTS in the subframe 1 and the subframe 6 no longer maps the PBCH.
  • Example 3 The coverage enhanced PBCH is mapped to other REs of the subframes 0 and 5 except the existing PBCH, SSS, and PDCCH symbols, except for the CRS port 0-3 and the RE of the reserved CSI-RS port. on.
  • the coverage enhanced PBCH is mapped to symbols 3, 4, 5, 6 in slot 0 in subframe 0, symbols 4, 5 in slot 1, and symbols in slot 10 in subframe 5.
  • 3, 4, 5, 6 and the symbols 0, 1, 2, 3, 4, 5 in slot 11 have a total of 16 symbols except CRS port 0-3 and the reserved CSI-RS port occupies the rest of the RE On RE.
  • Example 4 The coverage enhanced PBCH is mapped to the subframes 0, 1, 5, and 6 except for the existing PBCH, PSS, SSS, and PDCCH symbols except for the CRS port 0-3 and the reserved CSI-RS port. On the other RE of the RE.
  • the application of this example achieves a better effect in a special subframe configuration supporting the number of symbols in the DwPTS being greater than or equal to 6. .
  • the coverage enhanced PBCH is mapped to symbols 3, 4, 5, 6 in slot 0 of subframe 0, symbols 4, 5 in slot 1, and DwPTS in subframe 1.
  • the symbols 3, 4, and 5 have a total of 22 symbols on the other REs except the CRS port 0-3 and the reserved CSI-RS port.
  • the DwPTS in the subframe 1 and the subframe 6 no longer maps the PBCH.
  • Example 5 The coverage enhanced PBCH is mapped to the subframes 0 and 5 except for the existing PBCH and PDCCH symbols. All the symbols of the CRS port in the other symbols and some or all of the symbols other than the symbols occupied by the PSS and the PDCCH on the subframes 1, 6 and other REs other than the RE where the CRS port 0-3 is located .
  • the application of this example achieves a better effect in a special subframe configuration supporting the number of symbols in the DwPTS being greater than or equal to 6. .
  • the coverage enhanced PBCH is mapped to symbol 4 in slot 0 in subframe 0, symbols 4, 5 in slot 1, and symbols 3, 4 in DwPTS in subframe 1.
  • symbols 0, 1, 4 in slot 11, and symbols 3, 4, 5 in DwPTS of subframe 6 have a total of 12 symbols except CRS port 0 -3 of the other REs occupying RE.
  • the DwPTS in the subframe 1 and the subframe 6 no longer maps the PBCH.
  • Example 6 The coverage enhanced PBCH is mapped to all the symbols except the existing PBCH, PDCCH, SSS, and CSI-RS symbols in subframes 0 and 5, and the PSS and PDCCH are occupied on subframes 1 and 6. Some or all of the other symbols outside the symbol are on other REs than the RE where CRS port 0-3 is located.
  • the application of this example achieves a better effect in a special subframe configuration supporting the number of symbols in the DwPTS being greater than or equal to 6. .
  • the coverage enhanced PBCH is mapped to symbols 3, 4 in slot 0 in subframe 0, symbols 4, 5, 6 in slot 1, and symbols in DwPTS in subframe 1. 3, 4, 5, symbols 3, 4 in slot 10 in subframe 5, symbols 0, 1, 4, 5, 6 in slot 11, and symbols 3, 4, 5 in DwPTS of subframe 6. A total of 18 symbols on the other REs except the CRS port 0-3 occupied RE.
  • the DwPTS in the subframe 1 and the subframe 6 no longer maps the PBCH.
  • the first network side device in the system for transmitting a PBCH in the embodiment of the present invention includes:
  • the first determining module 810 is configured to determine, in the at least one radio frame, a resource that maps the enhanced PBCH;
  • the sending module 820 is configured to transmit the coverage enhanced PBCH on the determined resource.
  • the first determining module 810 is specifically configured to:
  • the following resources in at least one radio frame are used as mappings to cover the resources of the enhanced PBCH:
  • the sub-frame 5 In some or all of the sub-frame 0, the sub-frame 5, and the sub-frame 9, some or all of the symbols other than the symbols occupied by the conventional PBCH, SSS, and PDCCH, except for the CRS ports 0 to 3. Some or all of the REs other than the RE; and/or
  • some or all of the symbols other than the symbols occupied by the PSS and the PDCCH in the DwPTS of the subframe some or all of the REs other than the RE in which the CRS ports 0 to 3 are located; and/or
  • the specific symbol is the same symbol in the subframe 6 as the symbol number used in the PBCH for transmitting the coverage enhancement in the DwPTS of the subframe 1.
  • the first determining module 810 is specifically configured to:
  • the following resources in at least one radio frame are used as mappings to cover the resources of the enhanced PBCH:
  • the sub-frame 5 in addition to the conventional PBCH, SSS, and some or all of the symbols other than the symbols occupied by the PDCCH, except for the reserved CSI-RS
  • some or all of the symbols other than the symbols occupied by the PSS and the PDCCH in the DwPTS of the subframe some or all of the REs other than the RE in which the CRS ports 0 to 3 are located; and/or
  • the specific symbol is the same symbol in the subframe 6 as the symbol number used in the PBCH for transmitting the coverage enhancement in the DwPTS of the subframe 1.
  • the first determining module 810 is specifically configured to:
  • the following resources in at least one radio frame are used as mappings to cover the resources of the enhanced PBCH:
  • the sub-frame 5 in part or all of the symbols other than the symbols of the conventional PBCH and the PDCCH, the part of the symbol in which the CRS port is located or Some or all of the REs except the RE where the CRS ports 0 to 3 are located in all symbols; and/or
  • the specific symbol is the same symbol in the subframe 6 as the symbol number used in the PBCH for transmitting the coverage enhancement in the DwPTS of the subframe 1.
  • the first determining module 810 is specifically configured to:
  • the following resources in at least one radio frame are used as mappings to cover the resources of the enhanced PBCH:
  • the sub-frame 5 In some or all of the sub-frame 0, the sub-frame 5, and the sub-frame 9, except for some or all of the symbols other than the symbols occupied by the conventional PBCH, SSS, and CSI-RS, except for the CRS port 0 to 3 part or all of the REs other than the RE in which it resides; and/or
  • the specific symbol is the same symbol in the subframe 6 as the symbol number used in the PBCH for transmitting the coverage enhancement in the DwPTS of the subframe 1.
  • the resources of the at least one radio frame that map the enhanced PBCH are located on N subcarriers in the center of the system bandwidth of the radio frame, where N is a positive integer.
  • the first type of user equipment in the system for transmitting a PBCH in the embodiment of the present invention includes:
  • a second determining module 910 configured to determine, in the at least one radio frame, a resource that covers the enhanced PBCH
  • the receiving module 920 is configured to receive the coverage enhanced PBCH on the determined resource.
  • the second determining module 910 is specifically configured to:
  • the following resources in at least one radio frame are used as mappings to cover the resources of the enhanced PBCH:
  • the sub-frame 5 In some or all of the sub-frame 0, the sub-frame 5, and the sub-frame 9, some or all of the symbols other than the symbols occupied by the conventional PBCH, SSS, and PDCCH, except for the CRS ports 0 to 3. Some or all of the REs other than the RE; and/or
  • some or all of the symbols other than the symbols occupied by the PSS and the PDCCH in the DwPTS of the subframe some or all of the REs other than the RE in which the CRS ports 0 to 3 are located; and/or
  • the specific symbol is the same symbol in the subframe 6 as the symbol number used in the PBCH for transmitting the coverage enhancement in the DwPTS of the subframe 1.
  • the second determining module 910 is specifically configured to:
  • the following resources in at least one radio frame are used as mappings to cover the resources of the enhanced PBCH:
  • the sub-frame 5 in addition to the conventional PBCH, SSS, and some or all of the symbols other than the symbols occupied by the PDCCH, except for the reserved CSI-RS
  • some or all of the symbols other than the symbols occupied by the PSS and the PDCCH in the DwPTS of the subframe some or all of the REs other than the RE in which the CRS ports 0 to 3 are located; and/or
  • the specific symbol is the same symbol in the subframe 6 as the symbol number used in the PBCH for transmitting the coverage enhancement in the DwPTS of the subframe 1.
  • the second determining module 910 is specifically configured to:
  • the following resources in at least one radio frame are used as mappings to cover the resources of the enhanced PBCH:
  • the sub-frame 5 in part or all of the symbols other than the symbols of the conventional PBCH and the PDCCH, the part of the symbol in which the CRS port is located or Some or all of the REs except the RE where the CRS ports 0 to 3 are located in all symbols; and/or
  • the specific symbol is the same symbol in the subframe 6 as the symbol number used in the PBCH for transmitting the coverage enhancement in the DwPTS of the subframe 1.
  • the second determining module 910 is specifically configured to:
  • the following resources in at least one radio frame are used as mappings to cover the resources of the enhanced PBCH:
  • the sub-frame 5 In some or all of the sub-frame 0, the sub-frame 5, and the sub-frame 9, except for some or all of the symbols other than the symbols occupied by the conventional PBCH, SSS, and CSI-RS, except for the CRS port 0 to 3 part or all of the REs other than the RE in which it resides; and/or
  • the specific symbol is the same symbol in the subframe 6 as the symbol number used in the PBCH for transmitting the coverage enhancement in the DwPTS of the subframe 1.
  • the resources of the at least one radio frame that map the enhanced PBCH are located on N subcarriers in the center of the system bandwidth of the radio frame, where N is a positive integer.
  • the second network side device in the system for transmitting the PBCH in the embodiment of the present invention includes:
  • the processor 1000 is configured to determine, in the at least one radio frame, the resource that covers the enhanced PBCH, and transmit, by the transceiver 1010, the coverage enhanced PBCH on the determined resource;
  • the transceiver 1010 is configured to send and receive data under the control of the processor 1000.
  • the processor 1000 is specifically configured to:
  • the following resources in at least one radio frame are used as mappings to cover the resources of the enhanced PBCH:
  • the sub-frame 5 In some or all of the sub-frame 0, the sub-frame 5, and the sub-frame 9, some or all of the symbols other than the symbols occupied by the conventional PBCH, SSS, and PDCCH, except for the CRS ports 0 to 3. Some or all of the REs other than the RE; and/or
  • some or all of the symbols other than the symbols occupied by the PSS and the PDCCH in the DwPTS of the subframe some or all of the REs other than the RE in which the CRS ports 0 to 3 are located; and/or
  • the specific symbol is the same symbol in the subframe 6 as the symbol number used in the PBCH for transmitting the coverage enhancement in the DwPTS of the subframe 1.
  • the processor 1000 is specifically configured to:
  • the following resources in at least one radio frame are used as mappings to cover the resources of the enhanced PBCH:
  • the sub-frame 5 in addition to the conventional PBCH, SSS, and some or all of the symbols other than the symbols occupied by the PDCCH, except for the reserved CSI-RS
  • some or all of the symbols other than the symbols occupied by the PSS and the PDCCH in the DwPTS of the subframe some or all of the REs other than the RE in which the CRS ports 0 to 3 are located; and/or
  • the specific symbol is the same symbol in the subframe 6 as the symbol number used in the PBCH for transmitting the coverage enhancement in the DwPTS of the subframe 1.
  • the processor 1000 is specifically configured to:
  • the following resources in at least one radio frame are used as mappings to cover the resources of the enhanced PBCH:
  • the sub-frame 5 in part or all of the symbols other than the symbols of the conventional PBCH and the PDCCH, the part of the symbol in which the CRS port is located or Some or all of the REs except the RE where the CRS ports 0 to 3 are located in all symbols; and/or
  • the specific symbol is the same symbol in the subframe 6 as the symbol number used in the PBCH for transmitting the coverage enhancement in the DwPTS of the subframe 1.
  • the processor 1000 is specifically configured to:
  • the following resources in at least one radio frame are used as mappings to cover the resources of the enhanced PBCH:
  • the sub-frame 5 In some or all of the sub-frame 0, the sub-frame 5, and the sub-frame 9, except for some or all of the symbols other than the symbols occupied by the conventional PBCH, SSS, and CSI-RS, except for the CRS port 0 to 3 part or all of the REs other than the RE in which it resides; and/or
  • the specific symbol is the same symbol in the subframe 6 as the symbol number used in the PBCH for transmitting the coverage enhancement in the DwPTS of the subframe 1.
  • the resources of the at least one radio frame that map the enhanced PBCH are located on N subcarriers in the center of the system bandwidth of the radio frame, where N is a positive integer.
  • the bus architecture may include any number of interconnected buses and bridges, specifically linked by one or more processors represented by processor 1000 and various circuits of memory represented by memory 1020.
  • the bus architecture can also link various other circuits such as peripherals, voltage regulators, and power management circuits, which are well known in the art and, therefore, will not be further described herein.
  • the bus interface provides an interface.
  • the transceiver 1010 can be a plurality of components, including a transmitter and a receiver, providing means for communicating with various other devices on a transmission medium.
  • the processor 1000 is responsible for managing the bus architecture and the usual processing, and the memory 1020 can store the processor 1000. The data used when performing the operation.
  • the processor 1000 is responsible for managing the bus architecture and general processing, and the memory 1020 can store data used by the processor 1000 in performing operations.
  • FIG. 11 is a schematic structural diagram of a second user equipment in a system for transmitting a PBCH according to an embodiment of the present invention.
  • the processor 1100 is configured to determine, in the at least one radio frame, the resource that covers the enhanced PBCH, and receive, by the transceiver 1110, the coverage enhanced PBCH on the determined resource;
  • the transceiver 1110 is configured to send and receive data under the control of the processor 1100.
  • the processor 1100 is specifically configured to:
  • the following resources in at least one radio frame are used as mappings to cover the resources of the enhanced PBCH:
  • the sub-frame 5 In some or all of the sub-frame 0, the sub-frame 5, and the sub-frame 9, some or all of the symbols other than the symbols occupied by the conventional PBCH, SSS, and PDCCH, except for the CRS ports 0 to 3. Some or all of the REs other than the RE; and/or
  • some or all of the symbols other than the symbols occupied by the PSS and the PDCCH in the DwPTS of the subframe some or all of the REs other than the RE in which the CRS ports 0 to 3 are located; and/or
  • the specific symbol is the same symbol in the subframe 6 as the symbol number used in the PBCH for transmitting the coverage enhancement in the DwPTS of the subframe 1.
  • the processor 1100 is specifically configured to:
  • the following resources in at least one radio frame are used as mappings to cover the resources of the enhanced PBCH:
  • the sub-frame 5 in addition to the conventional PBCH, SSS, and some or all of the symbols other than the symbols occupied by the PDCCH, except for the reserved CSI-RS
  • some or all of the symbols other than the symbols occupied by the PSS and the PDCCH in the DwPTS of the subframe some or all of the REs other than the RE in which the CRS ports 0 to 3 are located; and/or
  • the specific symbol is the same symbol in the subframe 6 as the symbol number used in the PBCH for transmitting the coverage enhancement in the DwPTS of the subframe 1.
  • the processor 1100 is specifically configured to:
  • the following resources in at least one radio frame are used as mappings to cover the resources of the enhanced PBCH:
  • the sub-frame 5 in part or all of the symbols other than the symbols of the conventional PBCH and the PDCCH, the part of the symbol in which the CRS port is located or Some or all of the REs except the RE where the CRS ports 0 to 3 are located in all symbols; and/or
  • the specific symbol is the same symbol in the subframe 6 as the symbol number used in the PBCH for transmitting the coverage enhancement in the DwPTS of the subframe 1.
  • the processor 1100 is specifically configured to:
  • the following resources in at least one radio frame are used as mappings to cover the resources of the enhanced PBCH:
  • the sub-frame 5 In some or all of the sub-frame 0, the sub-frame 5, and the sub-frame 9, except for some or all of the symbols other than the symbols occupied by the conventional PBCH, SSS, and CSI-RS, except for the CRS port 0 to 3 part or all of the REs other than the RE in which it resides; and/or
  • the specific symbol is the same symbol in the subframe 6 as the symbol number used in the PBCH for transmitting the coverage enhancement in the DwPTS of the subframe 1.
  • the resources of the at least one radio frame that map the enhanced PBCH are located on N subcarriers in the center of the system bandwidth of the radio frame, where N is a positive integer.
  • the bus architecture can include any number of interconnected buses and bridges, specifically linked by one or more processors represented by processor 1100 and various circuits of memory represented by memory 1120.
  • the bus architecture can also link various other circuits such as peripherals, voltage regulators, and power management circuits, which are well known in the art and, therefore, will not be further described herein.
  • the bus interface provides an interface.
  • the transceiver 1110 can be a plurality of components, including a transmitter and a receiver, providing means for communicating with various other devices on a transmission medium.
  • the user interface 1130 may also be an interface capable of externally connecting the required devices, including but not limited to a keypad, a display, a speaker, a microphone, a joystick, and the like.
  • the processor 1100 is responsible for managing the bus architecture and general processing, and the memory 1120 can store data used by the processor 1100 in performing operations.
  • the embodiment of the present invention further provides a method for a network side device to transmit a PBCH and a method for a user equipment to receive a PBCH, and the device corresponding to the method is a device in a system for transmitting a PBCH according to an embodiment of the present invention, and the method is solved.
  • the principle of the problem is similar to the system, so the implementation of the method can be seen in the implementation of the system, and the repetition will not be repeated.
  • the method for transmitting a PBCH by a network side device includes the following steps:
  • Step 1201 The network side device determines, in the at least one radio frame, the resource that covers the enhanced PBCH.
  • Step 1202 The network side device transmits the coverage enhanced PBCH on the determined resource.
  • the network side device determines, in the at least one radio frame, the resource that covers the enhanced PBCH, including:
  • the network side device uses the following resources in at least one radio frame as a resource for mapping the enhanced PBCH:
  • the sub-frame 5 In some or all of the sub-frame 0, the sub-frame 5, and the sub-frame 9, some or all of the symbols other than the symbols occupied by the conventional PBCH, SSS, and PDCCH, except for the CRS ports 0 to 3. Some or all of the REs other than the RE; and/or
  • some or all of the symbols other than the symbols occupied by the PSS and the PDCCH in the DwPTS of the subframe some or all of the REs other than the RE in which the CRS ports 0 to 3 are located; and/or
  • the specific symbol is the same symbol in the subframe 6 as the symbol number used in the PBCH for transmitting the coverage enhancement in the DwPTS of the subframe 1.
  • the network side device determines, in the at least one radio frame, the resource that covers the enhanced PBCH, including:
  • the network side device uses the following resources in at least one radio frame as a resource for mapping the enhanced PBCH:
  • the sub-frame 5 in addition to the conventional PBCH, SSS, and some or all of the symbols other than the symbols occupied by the PDCCH, except for the reserved CSI-RS
  • some or all of the symbols other than the symbols occupied by the PSS and the PDCCH in the DwPTS of the subframe some or all of the REs other than the RE in which the CRS ports 0 to 3 are located; and/or
  • the specific symbol is the same symbol in the subframe 6 as the symbol number used in the PBCH for transmitting the coverage enhancement in the DwPTS of the subframe 1.
  • the network side device determines, in the at least one radio frame, the resource that covers the enhanced PBCH, including:
  • the network side device uses the following resources in at least one radio frame as a resource for mapping the enhanced PBCH:
  • the sub-frame 5 in part or all of the symbols other than the symbols of the conventional PBCH and the PDCCH, the part of the symbol in which the CRS port is located or Some or all of the REs except the RE where the CRS ports 0 to 3 are located in all symbols; and/or
  • the specific symbol is the same symbol in the subframe 6 as the symbol number used in the PBCH for transmitting the coverage enhancement in the DwPTS of the subframe 1.
  • the network side device determines, in the at least one radio frame, the resource that covers the enhanced PBCH, including:
  • the network side device uses the following resources in at least one radio frame as a resource for mapping the enhanced PBCH:
  • the sub-frame 5 In some or all of the sub-frame 0, the sub-frame 5, and the sub-frame 9, except for some or all of the symbols other than the symbols occupied by the conventional PBCH, SSS, and CSI-RS, except for the CRS port 0 to 3 other than the RE where it is located Some or all of the REs in his RE; and/or
  • the specific symbol is the same symbol in the subframe 6 as the symbol number used in the PBCH for transmitting the coverage enhancement in the DwPTS of the subframe 1.
  • the resources of the at least one radio frame that map the enhanced PBCH are located on N subcarriers in the center of the system bandwidth of the radio frame, where N is a positive integer.
  • N is 72.
  • the method for receiving a PBCH by a user equipment includes the following steps:
  • Step 1301 The user equipment determines, in the at least one radio frame, the resource that covers the enhanced PBCH.
  • Step 1302 The user equipment receives the coverage enhanced PBCH on the determined resource.
  • the user equipment determines, in the at least one radio frame, the resource that covers the enhanced PBCH, including:
  • the user equipment uses the following resources in at least one radio frame as a resource for mapping the enhanced PBCH:
  • the sub-frame 5 In some or all of the sub-frame 0, the sub-frame 5, and the sub-frame 9, some or all of the symbols other than the symbols occupied by the conventional PBCH, SSS, and PDCCH, except for the CRS ports 0 to 3. Some or all of the REs other than the RE; and/or
  • some or all of the symbols other than the symbols occupied by the PSS and the PDCCH in the DwPTS of the subframe some or all of the REs other than the RE in which the CRS ports 0 to 3 are located; and/or
  • the specific symbol is the same symbol in the subframe 6 as the symbol number used in the PBCH for transmitting the coverage enhancement in the DwPTS of the subframe 1.
  • the user equipment determines, in the at least one radio frame, the resource that covers the enhanced PBCH, including:
  • the user equipment uses the following resources in at least one radio frame as a resource for mapping the enhanced PBCH:
  • the sub-frame 5 in addition to the conventional PBCH, SSS, and some or all of the symbols other than the symbols occupied by the PDCCH, except for the reserved CSI-RS
  • some or all of the symbols other than the symbols occupied by the PSS and the PDCCH in the DwPTS of the subframe some or all of the REs other than the RE in which the CRS ports 0 to 3 are located; and/or
  • the specific symbol is the same symbol in the subframe 6 as the symbol number used in the PBCH for transmitting the coverage enhancement in the DwPTS of the subframe 1.
  • the user equipment determines, in the at least one radio frame, the resource that covers the enhanced PBCH, including:
  • the user equipment uses the following resources in at least one radio frame as a resource for mapping the enhanced PBCH:
  • the sub-frame 5 in part or all of the symbols other than the symbols of the conventional PBCH and the PDCCH, the part of the symbol in which the CRS port is located or Some or all of the REs except the RE where the CRS ports 0 to 3 are located in all symbols; and/or
  • the specific symbol is the same symbol in the subframe 6 as the symbol number used in the PBCH for transmitting the coverage enhancement in the DwPTS of the subframe 1.
  • the user equipment determines, in the at least one radio frame, the resource that covers the enhanced PBCH, including:
  • the user equipment uses the following resources in at least one radio frame as a resource for mapping the enhanced PBCH:
  • the sub-frame 5 In some or all of the sub-frame 0, the sub-frame 5, and the sub-frame 9, except for some or all of the symbols other than the symbols occupied by the conventional PBCH, SSS, and CSI-RS, except for the CRS port 0 to 3 part or all of the REs other than the RE in which it resides; and/or
  • the specific symbol is the same symbol in the subframe 6 as the symbol number used in the PBCH for transmitting the coverage enhancement in the DwPTS of the subframe 1.
  • the resources of the at least one radio frame that map the enhanced PBCH are located on N subcarriers in the center of the system bandwidth of the radio frame, where N is a positive integer.
  • N is 72.
  • embodiments of the present invention can be provided as a method, system, or computer program product. Accordingly, the present invention may take the form of an entirely hardware embodiment, an entirely software embodiment, or a combination of software and hardware. Moreover, the invention can take the form of a computer program product embodied on one or more computer-usable storage media (including but not limited to disk storage, CD-ROM, optical storage, etc.) including computer usable program code.
  • computer-usable storage media including but not limited to disk storage, CD-ROM, optical storage, etc.
  • 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

本申请涉及无线通信技术领域,特别涉及一种传输PBCH的方法、系统和设备,用于传输覆盖增强的PBCH。本申请的方法包括:网络侧设备确定至少一个无线帧中映射覆盖增强的PBCH的资源;所述网络侧设备在确定的资源上传输覆盖增强的PBCH。本申请中,网络侧设备确定至少一个无线帧中映射覆盖增强的PBCH的资源,并在确定的资源上传输覆盖增强的PBCH,由于能够确定承载覆盖增强的PBCH的资源,从而实现了传输覆盖增强的PBCH,提高了系统性能。

Description

一种传输PBCH的方法、系统和设备
本申请要求在2013年9月27日提交中国专利局、申请号为201310452085.2、发明名称为“一种传输PBCH的方法、系统和设备”的中国专利申请的优先权,其全部内容通过引用结合在本申请中。
技术领域
本发明涉及无线通信技术领域,特别涉及一种传输PBCH的方法、系统和设备。
背景技术
在第三代移动通信系统以及长期演进系统(Long Term Evolution,LTE)中需要支持机器型通信(Machine Type Communications,MTC)功能。一台MTC设备(MTC终端)可能具有多种机器与机器(Machine to Machine,M2M)通信特性之中的部分特性,如低移动性、传输数据量小、对通信时延不敏感、要求极低功耗等特征。
在现有的基于全球移动通信系统(Global System for Mobile Communications,GSM)技术的M2M网络中,运营商发现在有些场景下工作的终端,比如工作于地下室、商场或者建筑角落的终端,由于无线信号被严重遮挡,信号受到很大的衰减,上述终端无法与网络进行通信,而针对这些场景下进行网络的深度覆盖会大大增加网络的建网成本。运营商经过测试,认为需要对GSM的现有覆盖增强15dB才可满足上述场景的覆盖需求。后续LTE技术会替代GSM用于M2M传输,由于LTE与GSM覆盖基本相当,因此,LTE技术也需要增强15dB的覆盖来满足上述场景下的M2M传输要求。
为达到15dB的覆盖增强,一种可行的方法是对LTE系统现有信道采用重复传输或速率匹配等降低码率的传输技术。对于广播信道(Physical Broadcast Channel,PBCH)而言,可能重复近100次甚至更多才可以满足15dB的覆盖增强。
但是目前还没有一种针对覆盖增强的PBCH的传输。
发明内容
本发明实施例提供的一种传输PBCH的方法、系统和设备,用于传输覆盖增强的PBCH。
本发明实施例提供的一种传输PBCH的方法,包括:
网络侧设备确定至少一个无线帧中映射覆盖增强的PBCH的资源;
所述网络侧设备在确定的资源上传输覆盖增强的PBCH。
本发明实施例网络侧设备确定至少一个无线帧中映射覆盖增强的PBCH的资源,并在 确定的资源上传输覆盖增强的PBCH。由于能够确定承载覆盖增强的PBCH的资源,从而实现了传输覆盖增强的PBCH,提高了系统性能。
较佳地,所述网络侧设备确定至少一个无线帧中映射覆盖增强的PBCH的资源,包括:
所述网络侧设备将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH、SSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧1的DwPTS中除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
其中,所述特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
较佳地,所述网络侧设备确定至少一个无线帧中映射覆盖增强的PBCH的资源,包括:
所述网络侧设备将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH、SSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除预留的CSI-RS信号占用的RE以及CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧1的DwPTS中除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
其中,所述特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
较佳地,所述网络侧设备确定至少一个无线帧中映射覆盖增强的PBCH的资源,包括:
所述网络侧设备将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,CRS端口所在的符号中的部分或全部符号中除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧1的DwPTS中,除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
其中,所述特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
较佳地,所述网络侧设备确定至少一个无线帧中映射覆盖增强的PBCH的资源,包括:
所述网络侧设备将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH、SSS以及CSI-RS所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧1的DwPTS中,除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
其中,所述特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
较佳地,所述至少一个无线帧中映射覆盖增强的PBCH的资源位于无线帧的系统带宽中央的N个子载波上,其中N正整数。
较佳地,所述N为72。
本发明实施例提供的另一种传输PBCH的方法,包括:
用户设备确定至少一个无线帧中映射覆盖增强的PBCH的资源;
所述用户设备在确定的资源上接收覆盖增强的PBCH。
较佳地,所述用户设备确定至少一个无线帧中映射覆盖增强的PBCH的资源,包括:
所述用户设备将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH、SSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧1的DwPTS中除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
其中,所述特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
较佳地,所述用户设备确定至少一个无线帧中映射覆盖增强的PBCH的资源,包括:
所述用户设备将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH、SSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除预留的CSI-RS信号占用的RE以及CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧1的DwPTS中除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
其中,所述特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
较佳地,所述用户设备确定至少一个无线帧中映射覆盖增强的PBCH的资源,包括:
所述用户设备将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,CRS端口所在的符号中的部分或全部符号中除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧1的DwPTS中,除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
其中,所述特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
较佳地,所述用户设备确定至少一个无线帧中映射覆盖增强的PBCH的资源,包括:
所述用户设备将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH、SSS以及CSI-RS所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧1的DwPTS中,除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
其中,所述特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
较佳地,所述至少一个无线帧中映射覆盖增强的PBCH的资源位于无线帧的系统带宽中央的N个子载波上,其中N正整数。
较佳地,所述N为72。
本发明实施例提供的一种传输PBCH的网络侧设备,包括:
第一确定模块,用于确定至少一个无线帧中映射覆盖增强的PBCH的资源;
发送模块,用于在确定的资源上传输覆盖增强的PBCH。
本发明实施例网络侧设备确定至少一个无线帧中映射覆盖增强的PBCH的资源,并在确定的资源上传输覆盖增强的PBCH。由于能够确定承载覆盖增强的PBCH的资源,从而实现了传输覆盖增强的PBCH,提高了系统性能。
较佳地,所述第一确定模块具体用于:
将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH、SSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧1的DwPTS中除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
其中,所述特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
较佳地,所述第一确定模块具体用于:
将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH、SSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除预留的CSI-RS信号占用的RE以及CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧1的DwPTS中除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
其中,所述特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
较佳地,所述第一确定模块具体用于:
将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,CRS端口所在的符号中的部分或全部符号中除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧1的DwPTS中,除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
其中,所述特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
较佳地,所述第一确定模块具体用于:
将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH、SSS以及CSI-RS所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧1的DwPTS中,除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
其中,所述特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
较佳地,所述至少一个无线帧中映射覆盖增强的PBCH的资源位于无线帧的系统带宽中央的N个子载波上,其中N正整数。
本发明实施例提供的另一种网络侧设备包括:
处理器,用于确定至少一个无线帧中映射覆盖增强的PBCH的资源,通过收发机在确定的资源上传输覆盖增强的PBCH;
收发机,用于在所述处理器的控制下收发数据。
较佳地,所述处理器具体用于:
将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH、SSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧1的DwPTS中除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
其中,特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
较佳地,所述处理器具体用于:
将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH、SSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除预留的CSI-RS信号占用的RE以及CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧1的DwPTS中除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
其中,特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
较佳地,所述处理器具体用于:
将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,CRS端口所在的符号中的部分或全部符号中除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧1的DwPTS中,除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
其中,特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
较佳地,所述处理器具体用于:
将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH、SSS以及CSI-RS所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧1的DwPTS中,除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
其中,特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
较佳地,至少一个无线帧中映射覆盖增强的PBCH的资源位于无线帧的系统带宽中央的N个子载波上,其中N正整数。
本发明实施例提供的一种传输PBCH的用户设备,包括:
第二确定模块,用于确定至少一个无线帧中映射覆盖增强的PBCH的资源;
接收模块,用于在确定的资源上接收覆盖增强的PBCH。
较佳地,所述第二确定模块具体用于:
将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH、SSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧1的DwPTS中除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
其中,所述特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
较佳地,所述第二确定模块具体用于:
将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH、SSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除预留的CSI-RS信号占用的RE以及CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧1的DwPTS中除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
其中,所述特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
较佳地,所述第二确定模块具体用于:
将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,CRS端口所在的符号中的部分或全部符号中除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧1的DwPTS中,除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
其中,所述特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
较佳地,所述第二确定模块具体用于:
将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH、SSS以及CSI-RS所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧1的DwPTS中,除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
其中,所述特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
较佳地,所述至少一个无线帧中映射覆盖增强的PBCH的资源位于无线帧的系统带宽中央的N个子载波上,其中N正整数。
本发明实施例提供的另一种传输PBCH的用户设备,包括:
处理器,用于确定至少一个无线帧中映射覆盖增强的PBCH的资源,通过收发机在确定的资源上接收覆盖增强的PBCH;
收发机,用于在所述处理器的控制下收发数据。
较佳地,所述处理器具体用于:
将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH、SSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧1的DwPTS中除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
其中,特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
较佳地,所述处理器具体用于:
将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH、SSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除预留的CSI-RS信号占用的RE以及CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧1的DwPTS中除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
其中,特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
较佳地,所述处理器具体用于:
将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,CRS端口所在的符号中的部分或全部符号中除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧1的DwPTS中,除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
其中,特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
较佳地,所述处理器具体用于:
将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH、SSS以及CSI-RS所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧1的DwPTS中,除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
其中,特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
较佳地,至少一个无线帧中映射覆盖增强的PBCH的资源位于无线帧的系统带宽中央的N个子载波上,其中N正整数。
本发明实施例提供的一种传输PBCH的系统,包括:
网络侧设备,用于确定至少一个无线帧中映射覆盖增强的PBCH的资源;在确定的资源上传输覆盖增强的PBCH;
用户设备,用于确定至少一个无线帧中映射覆盖增强的PBCH的资源;在确定的资源上接收覆盖增强的PBCH。
本发明实施例网络侧设备确定至少一个无线帧中映射覆盖增强的PBCH的资源,并在确定的资源上传输覆盖增强的PBCH。由于能够确定承载覆盖增强的PBCH的资源,从而实现了传输覆盖增强的PBCH,提高了系统性能。
附图说明
图1为本发明实施例传输PBCH的系统结构示意图;
图2为本发明实施例第一种资源映射示意图;
图3为本发明实施例第二种资源映射示意图;
图4为本发明实施例第三种资源映射示意图;
图5为本发明实施例第四种资源映射示意图;
图6为本发明实施例第五种资源映射示意图;
图7为本发明实施例第六种资源映射示意图;
图8为本发明实施例传输PBCH的系统中第一种网络侧设备的结构示意图;
图9为本发明实施例传输PBCH的系统中第一种用户设备的结构示意图;
图10为本发明实施例传输PBCH的系统中第二种网络侧设备的结构示意图;
图11为本发明实施例传输PBCH的系统中第二种用户设备的结构示意图;
图12为本发明实施例网络侧设备传输PBCH的方法流程示意图;
图13为本发明实施例用户设备接收PBCH的方法流程示意图。
具体实施方式
本发明实施例网络侧设备确定至少一个无线帧中映射覆盖增强的PBCH的资源,并在确定的资源上传输覆盖增强的PBCH。由于能够确定承载覆盖增强的PBCH的资源,从而实现了传输覆盖增强的PBCH,提高了系统性能。
下面结合说明书附图对本发明实施例作进一步详细描述。
如图1所示,本发明实施例传输PBCH的系统包括:
网络侧设备10,用于确定至少一个无线帧中映射覆盖增强的PBCH的资源;在确定的资源上传输覆盖增强的PBCH。
用户设备20,用于确定至少一个无线帧中映射覆盖增强的PBCH的资源;在确定的资源上接收覆盖增强的PBCH。
在实施中,具体有多少无线帧中映射覆盖增强的PBCH的资源,可以根据需要在协议中规定,或由高层通知基站和用户设备,或基站确定后通知用户设备。
比如含有映射覆盖增强的PBCH的资源的无线帧的数量可以是4、8、12等。如果有多个无线帧,则这些无线帧可以是全部连续,也可以是部分连续,也可以是全不连续。
较佳地,至少一个无线帧中映射覆盖增强的PBCH的资源位于无线帧的系统带宽中央的N个子载波上,其中N正整数。
由于目前PBCH信道所占用的子载波个数为72个,即1.4MHz带宽系统具有的最多的子载波个数,所以在实施中,较佳地N可以是72个。当然也可以是其他个数。
针对一个无线帧,能够作为映射覆盖增强的PBCH的资源可以有很多,下面列举几种。
情况一、子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH、辅同步信号(Secondary Synchronization Signal,SSS)以及物理下行控制信道(Physical Downlink Control Channel,PDCCH)所占用的符号外的其他符号中的部分或全部符号中,除小区专属导频信号(Cell-specific reference signals,CRS)端口0~3所在的资源单元(Resource Element,RE)之外的其他RE中的部分或全部RE;和/或
子帧1的下行导频时隙(DwPTS)中除主同步信号(Primary Synchronization Signal,PSS)以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
其中,特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
情况二、子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH、SSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除预留的信道状态信息测量参考信号(Channel State Information Reference Signal,CSI-RS)占用的RE之外的其他RE中的部分或全部RE以及除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧1的DwPTS中除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
其中,特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
情况三、子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,CRS端口所在的符号中的部分或全部符号中除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧1的DwPTS中,除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
其中,特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
情况四、子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH、SSS以及CSI-RS所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧1的DwPTS中,除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
其中,特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
情况一~情况四中,传统的PBCH为3GPP TS36.211Release 8(版本8)规定的PBCH。本发明实施例的覆盖增强的PBCH为对传统的PBCH进行覆盖增强的PBCH。覆盖增强的PBCH相比传统的PBCH占用的资源较多。覆盖增强PBCH信号的产生步骤为:覆盖增强PBCH信号携带的源信息比特经过添加循环冗余(Cyclic Redundancy Check,CRC)、卷积编码、速率匹配、加扰、四相相移键控(Quaternary Phase Shift Keying,QPSK)调制、预编码和层映射等步骤后,得到覆盖增强的PBCH复值信号序列。
在实施中,具体采用哪些子帧可以在协议中规定。
比如规定在子帧0和子帧5中传输,则网络侧设备可以在子帧0和子帧5中传输;用户设备基于协议的规定,需要在子帧0和子帧5中进行检测覆盖增强的PBCH检测。具体的,用户设备可以仅基于子帧0、或仅基于子帧5、或基于子帧0和子帧5中接收的信号并依据PBCH资源的具体映射方式分别尝试覆盖增强的PBCH资源检测,在其中任一种方式检测正确即可。其中,单独采用子帧0进行检测,只要是检测正确,不需要对其他子帧进行检测。如果单独采用子帧0检测不正确,可以结合子帧5中的部分进一步检测,直至检测正确。
又比如规定在子帧0、子帧5、子帧1和子帧6中传输,则网络侧设备可以只在子帧0、子帧5和/或子帧1和子帧6中传输;特别地,当特殊子帧配置为特殊子帧配置0和特殊子帧配置5时,由于DwPTS内的符号数为3个时,没有额外的符号传递覆盖增强的PBCH,所以若在上述特殊子帧配置下,覆盖增强的PBCH在DwPTS中映射符号编号在该特殊子帧配置中不存在(也就是说,没有额外的符号传递覆盖增强的PBCH),则即使规定在DwPTS中传输覆盖增强的PBCH,网络侧设备也不在DwPTS中传输覆盖增强的PBCH。此时终端由于还不知道网络侧特殊子帧的具体配置,所以不知道在子帧1、6中是否有映射PBCH,因此需要分别尝试假设覆盖增强的PBCH仅在子帧0、子帧5中传输的情况以及覆盖增强的PBCH同时在子帧0、子帧5以及子帧1、6中传输的情况的两种情况下覆盖增强的PBCH的资源映射方式进行检测,在其中任何一种假设情况下检测正确即可。其中,单独采用子帧0进行检测,只要是检测正确,不需要对其他子帧进行检测。如果单独采用子帧0检测不正确,可以结合子帧5中的部分进一步检测;再次,如果子帧0、5均不正确,可以尝试进一步结合子帧1和子帧6中的部分进行检测,直至检测正确。
具体每个子帧中映射覆盖增强的PBCH的资源是哪些可以在协议中规定,这样保证网络侧设备和用户设备保持一致。
由于DwPTS内的符号数为3个时,没有额外的符号传递覆盖增强的PBCH,所以若在某种特殊子帧配置下,覆盖增强的PBCH在DwPTS中映射符号编号在该特殊子帧配置中不存在(也就是说,没有额外的符号传递覆盖增强的PBCH),则即时规定在DwPTS中传输覆盖增强的PBCH,网络侧设备也不在DwPTS中传输覆盖增强的PBCH。
上述例子中,本发明实施例通过预留的CSI-RS RE或符号承载覆盖增强的PBCH,降低了PBCH重复传输时与CSI-RS的冲突概率,具有良好兼容传统UE(legacy UE)的优点。
下面列举几种无线帧中能够作为映射覆盖增强的PBCH的资源的例子。
如下以常规CP为例给出本方法的实施例说明,扩展CP与常规CP类似,在此不再赘述。限于篇幅以及类似的原理,仅列出采用子帧0、1、5、6中传输PBCH的例子,采用子帧9传输覆盖增强的PBCH不再举出实施例。
例一、覆盖增强的PBCH映射于子帧0、5中除传统的PBCH、SSS以及PDCCH所占符号外的其他符号中除CRS端口0-3所在RE的其他RE上。
如图2所示,覆盖增强的PBCH映射于子帧0中时隙0中的符号3、4、5、6、时隙1中的符号4、5、子帧5中时隙10中的符号3、4、5、6以及时隙11中的符号0、1、2、3、4、5共16个符号上的除CRS端口0-3所占RE的其他RE上。
例二、覆盖增强的PBCH映射于子帧0、1、5、6除现有PBCH、PSS、SSS、PDCCH所占符号外的其他符号中除CRS端口0-3所在RE的其他RE上。
由于DwPTS内的符号数为3个时,没有额外的符号传递覆盖增强的PBCH,所以较佳地,在支持DwPTS内的符号数大于等于6的特殊子帧配置中应用本例会达到更好的效果。
如图3所示,该例中,覆盖增强的PBCH映射于子帧0中时隙0中的符号3、4、5、6、时隙1中的符号4、5,子帧1中DwPTS中的符号3、4、5,子帧5中时隙10中的符号3、4、5、6,时隙11中的符号0、1、2、3、4、5以及子帧6的DwPTS中的符号3、4、5共22个符号上的除CRS端口0-3所占RE的其他RE上。
在实施中,在特殊子帧配置0和5下,因为DwPTS内的符号数为3个,所以子帧1和子帧6中的DwPTS不再映射PBCH。
例三、覆盖增强的PBCH映射于子帧0、5中除现有PBCH、SSS、PDCCH所占符号外的其他符号中除CRS端口0-3以及预留的CSI-RS端口所在RE的其他RE上。
如图4所示,覆盖增强的PBCH映射于子帧0中时隙0中的符号3、4、5、6、时隙1中的符号4、5、子帧5中时隙10中的符号3、4、5、6以及时隙11中的符号0、1、2、3、4、5共16个符号上的除CRS端口0-3以及预留的CSI-RS端口所占RE的其他RE上。
例四、覆盖增强的PBCH映射于子帧0、1、5、6除现有PBCH、PSS、SSS、PDCCH所占符号外的其他符号中除CRS端口0-3以及预留的CSI-RS端口所在RE的其他RE上。
由于DwPTS内的符号数为3个时,没有额外的符号传递覆盖增强的PBCH,所以较佳地,在支持DwPTS内的符号数大于等于6的特殊子帧配置中应用本例会达到更好的效果。
如图5所示,该例中,覆盖增强的PBCH映射于子帧0中时隙0中的符号3、4、5、6、时隙1中的符号4、5,子帧1中DwPTS中的符号3、4、5,子帧5中时隙10中的符号3、4、5、6,时隙11中的符号0、1、2、3、4、5以及子帧6的DwPTS中的符号3、4、5共22个符号上的除CRS端口0-3以及预留的CSI-RS端口所占RE的其他RE上。
在实施中,在特殊子帧配置0和5下,因为DwPTS内的符号数为3个,所以子帧1和子帧6中的DwPTS不再映射PBCH。
例五、覆盖增强的PBCH映射于子帧0、5中除现有PBCH、PDCCH所占的符号外的 其他符号中的CRS端口所在的全部符号以及子帧1、6上除PSS、PDCCH所占的符号外的其他符号中的部分或全部符号中除CRS端口0-3所在的RE外的其他RE上。
由于DwPTS内的符号数为3个时,没有额外的符号传递覆盖增强的PBCH,所以较佳地,在支持DwPTS内的符号数大于等于6的特殊子帧配置中应用本例会达到更好的效果。
如图6所示,该例中,覆盖增强的PBCH映射于子帧0中时隙0中的符号4,时隙1中的符号4、5,子帧1中DwPTS中的符号3、4、5,子帧5中时隙10中的符号4,时隙11中的符号0、1、4、以及子帧6的DwPTS中的符号3、4、5共12个符号上的除CRS端口0-3所占RE的其他RE上。
在实施中,在特殊子帧配置0和5下,因为DwPTS内的符号数为3个,所以子帧1和子帧6中的DwPTS不再映射PBCH。
例六、覆盖增强的PBCH映射于子帧0、5中除现有PBCH、PDCCH、SSS、CSI-RS所占的符号外的其他全部符号以及子帧1、6上除PSS、PDCCH所占的符号外的其他符号中的部分或全部符号中除CRS端口0-3所在的RE外的其他RE上。
由于DwPTS内的符号数为3个时,没有额外的符号传递覆盖增强的PBCH,所以较佳地,在支持DwPTS内的符号数大于等于6的特殊子帧配置中应用本例会达到更好的效果。
如图7所示,该例中,覆盖增强的PBCH映射于子帧0中时隙0中的符号3、4,时隙1中的符号4、5、6,子帧1中DwPTS中的符号3、4、5,子帧5中时隙10中的符号3、4,时隙11中的符号0、1、4、5、6,以及子帧6的DwPTS中的符号3、4、5共18个符号上的除CRS端口0-3所占RE的其他RE上。
在实施中,在特殊子帧配置0和5下,因为DwPTS内的符号数为3个,所以子帧1和子帧6中的DwPTS不再映射PBCH。
如图8所示,本发明实施例传输PBCH的系统中第一种网络侧设备包括:
第一确定模块810,用于确定至少一个无线帧中映射覆盖增强的PBCH的资源;
发送模块820,用于在确定的资源上传输覆盖增强的PBCH。
较佳地,第一确定模块810具体用于:
将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH、SSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧1的DwPTS中除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
其中,特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
较佳地,第一确定模块810具体用于:
将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH、SSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除预留的CSI-RS信号占用的RE以及CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧1的DwPTS中除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
其中,特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
较佳地,第一确定模块810具体用于:
将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,CRS端口所在的符号中的部分或全部符号中除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧1的DwPTS中,除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
其中,特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
较佳地,第一确定模块810具体用于:
将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH、SSS以及CSI-RS所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧1的DwPTS中,除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
其中,特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
较佳地,至少一个无线帧中映射覆盖增强的PBCH的资源位于无线帧的系统带宽中央的N个子载波上,其中N正整数。
如图9所示,本发明实施例传输PBCH的系统中第一种用户设备包括:
第二确定模块910,用于确定至少一个无线帧中映射覆盖增强的PBCH的资源;
接收模块920,用于在确定的资源上接收覆盖增强的PBCH。
较佳地,第二确定模块910具体用于:
将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH、SSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧1的DwPTS中除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
其中,特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
较佳地,第二确定模块910具体用于:
将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH、SSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除预留的CSI-RS信号占用的RE以及CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧1的DwPTS中除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
其中,特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
较佳地,第二确定模块910具体用于:
将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,CRS端口所在的符号中的部分或全部符号中除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧1的DwPTS中,除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
其中,特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
较佳地,第二确定模块910具体用于:
将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH、SSS以及CSI-RS所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧1的DwPTS中,除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
其中,特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
较佳地,至少一个无线帧中映射覆盖增强的PBCH的资源位于无线帧的系统带宽中央的N个子载波上,其中N正整数。
如图10所示,本发明实施例传输PBCH的系统中第二种网络侧设备包括:
处理器1000,用于确定至少一个无线帧中映射覆盖增强的PBCH的资源,通过收发机1010在确定的资源上传输覆盖增强的PBCH;
收发机1010,用于在处理器1000的控制下收发数据。
较佳地,处理器1000具体用于:
将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH、SSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧1的DwPTS中除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
其中,特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
较佳地,处理器1000具体用于:
将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH、SSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除预留的CSI-RS信号占用的RE以及CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧1的DwPTS中除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
其中,特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
较佳地,处理器1000具体用于:
将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,CRS端口所在的符号中的部分或全部符号中除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧1的DwPTS中,除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
其中,特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
较佳地,处理器1000具体用于:
将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH、SSS以及CSI-RS所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧1的DwPTS中,除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
其中,特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
较佳地,至少一个无线帧中映射覆盖增强的PBCH的资源位于无线帧的系统带宽中央的N个子载波上,其中N正整数。
其中,在图10中,总线架构可以包括任意数量的互联的总线和桥,具体由处理器1000代表的一个或多个处理器和存储器1020代表的存储器的各种电路链接在一起。总线架构还可以将诸如外围设备、稳压器和功率管理电路等之类的各种其他电路链接在一起,这些都是本领域所公知的,因此,本文不再对其进行进一步描述。总线接口提供接口。收发机1010可以是多个元件,即包括发送机和接收机,提供用于在传输介质上与各种其他装置通信的单元。处理器1000负责管理总线架构和通常的处理,存储器1020可以存储处理器1000 在执行操作时所使用的数据。
处理器1000负责管理总线架构和通常的处理,存储器1020可以存储处理器1000在执行操作时所使用的数据。
图11为本发明实施例传输PBCH的系统中第二种用户设备的结构示意图;
处理器1100,用于确定至少一个无线帧中映射覆盖增强的PBCH的资源,通过收发机1110在确定的资源上接收覆盖增强的PBCH;
收发机1110,用于在处理器1100的控制下收发数据。
较佳地,处理器1100具体用于:
将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH、SSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧1的DwPTS中除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
其中,特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
较佳地,处理器1100具体用于:
将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH、SSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除预留的CSI-RS信号占用的RE以及CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧1的DwPTS中除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
其中,特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
较佳地,处理器1100具体用于:
将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,CRS端口所在的符号中的部分或全部符号中除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧1的DwPTS中,除PSS以及PDCCH所占用的符号外的其他符号中的部分或全 部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
其中,特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
较佳地,处理器1100具体用于:
将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH、SSS以及CSI-RS所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧1的DwPTS中,除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
其中,特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
较佳地,至少一个无线帧中映射覆盖增强的PBCH的资源位于无线帧的系统带宽中央的N个子载波上,其中N正整数。
其中,在图11中,总线架构可以包括任意数量的互联的总线和桥,具体由处理器1100代表的一个或多个处理器和存储器1120代表的存储器的各种电路链接在一起。总线架构还可以将诸如外围设备、稳压器和功率管理电路等之类的各种其他电路链接在一起,这些都是本领域所公知的,因此,本文不再对其进行进一步描述。总线接口提供接口。收发机1110可以是多个元件,即包括发送机和接收机,提供用于在传输介质上与各种其他装置通信的单元。针对不同的用户设备,用户接口1130还可以是能够外接内接需要设备的接口,连接的设备包括但不限于小键盘、显示器、扬声器、麦克风、操纵杆等。
处理器1100负责管理总线架构和通常的处理,存储器1120可以存储处理器1100在执行操作时所使用的数据。
基于同一发明构思,本发明实施例中还提供了网络侧设备传输PBCH的方法和用户设备接收PBCH的方法,由于这些方法对应的设备是本发明实施例传输PBCH的系统中的设备,并且方法解决问题的原理与系统相似,因此该方法的实施可以参见系统的实施,重复之处不再赘述。
如图12所示,本发明实施例网络侧设备传输PBCH的方法包括下列步骤:
步骤1201、网络侧设备确定至少一个无线帧中映射覆盖增强的PBCH的资源;
步骤1202、网络侧设备在确定的资源上传输覆盖增强的PBCH。
较佳地,网络侧设备确定至少一个无线帧中映射覆盖增强的PBCH的资源,包括:
网络侧设备将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH、SSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧1的DwPTS中除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
其中,特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
较佳地,网络侧设备确定至少一个无线帧中映射覆盖增强的PBCH的资源,包括:
网络侧设备将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH、SSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除预留的CSI-RS信号占用的RE以及CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧1的DwPTS中除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
其中,特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
较佳地,网络侧设备确定至少一个无线帧中映射覆盖增强的PBCH的资源,包括:
网络侧设备将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,CRS端口所在的符号中的部分或全部符号中除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧1的DwPTS中,除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
其中,特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
较佳地,网络侧设备确定至少一个无线帧中映射覆盖增强的PBCH的资源,包括:
网络侧设备将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH、SSS以及CSI-RS所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其 他RE中的部分或全部RE;和/或
子帧1的DwPTS中,除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
其中,特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
较佳地,至少一个无线帧中映射覆盖增强的PBCH的资源位于无线帧的系统带宽中央的N个子载波上,其中N正整数。
较佳地,N为72。
如图13所示,本发明实施例用户设备接收PBCH的方法包括下列步骤:
步骤1301、用户设备确定至少一个无线帧中映射覆盖增强的PBCH的资源;
步骤1302、用户设备在确定的资源上接收覆盖增强的PBCH。
较佳地,用户设备确定至少一个无线帧中映射覆盖增强的PBCH的资源,包括:
用户设备将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH、SSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧1的DwPTS中除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
其中,特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
较佳地,用户设备确定至少一个无线帧中映射覆盖增强的PBCH的资源,包括:
用户设备将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH、SSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除预留的CSI-RS信号占用的RE以及CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧1的DwPTS中除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
其中,特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
较佳地,用户设备确定至少一个无线帧中映射覆盖增强的PBCH的资源,包括:
用户设备将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,CRS端口所在的符号中的部分或全部符号中除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧1的DwPTS中,除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
其中,特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
较佳地,用户设备确定至少一个无线帧中映射覆盖增强的PBCH的资源,包括:
用户设备将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH、SSS以及CSI-RS所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧1的DwPTS中,除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
其中,特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
较佳地,至少一个无线帧中映射覆盖增强的PBCH的资源位于无线帧的系统带宽中央的N个子载波上,其中N正整数。
较佳地,N为72。
本领域内的技术人员应明白,本发明的实施例可提供为方法、系统、或计算机程序产品。因此,本发明可采用完全硬件实施例、完全软件实施例、或结合软件和硬件方面的实施例的形式。而且,本发明可采用在一个或多个其中包含有计算机可用程序代码的计算机可用存储介质(包括但不限于磁盘存储器、CD-ROM、光学存储器等)上实施的计算机程序产品的形式。
本发明是参照根据本发明实施例的方法、设备(系统)、和计算机程序产品的流程图和/或方框图来描述的。应理解可由计算机程序指令实现流程图和/或方框图中的每一流程和/或方框、以及流程图和/或方框图中的流程和/或方框的结合。可提供这些计算机程序指令到通用计算机、专用计算机、嵌入式处理机或其他可编程数据处理设备的处理器以产生一个机器,使得通过计算机或其他可编程数据处理设备的处理器执行的指令产生用于实现在流程图一个流程或多个流程和/或方框图一个方框或多个方框中指定的功能的 装置。
这些计算机程序指令也可存储在能引导计算机或其他可编程数据处理设备以特定方式工作的计算机可读存储器中,使得存储在该计算机可读存储器中的指令产生包括指令装置的制造品,该指令装置实现在流程图一个流程或多个流程和/或方框图一个方框或多个方框中指定的功能。
这些计算机程序指令也可装载到计算机或其他可编程数据处理设备上,使得在计算机或其他可编程设备上执行一系列操作步骤以产生计算机实现的处理,从而在计算机或其他可编程设备上执行的指令提供用于实现在流程图一个流程或多个流程和/或方框图一个方框或多个方框中指定的功能的步骤。
尽管已描述了本发明的优选实施例,但本领域内的技术人员一旦得知了基本创造性概念,则可对这些实施例作出另外的变更和修改。所以,所附权利要求意欲解释为包括优选实施例以及落入本发明范围的所有变更和修改。
显然,本领域的技术人员可以对本发明进行各种改动和变型而不脱离本发明的精神和范围。这样,倘若本发明的这些修改和变型属于本发明权利要求及其等同技术的范围之内,则本发明也意图包含这些改动和变型在内。

Claims (27)

  1. 一种传输广播信道PBCH的方法,其特征在于,该方法包括:
    网络侧设备确定至少一个无线帧中映射覆盖增强的PBCH的资源;
    所述网络侧设备在确定的资源上传输覆盖增强的PBCH。
  2. 如权利要求1所述的方法,其特征在于,所述网络侧设备确定至少一个无线帧中映射覆盖增强的PBCH的资源,包括:
    所述网络侧设备将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
    子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH、辅同步信号SSS以及物理下行控制信道PDCCH所占用的符号外的其他符号中的部分或全部符号中,除小区专属导频信号CRS端口0~3所在的资源单元RE之外的其他RE中的部分或全部RE;和/或
    子帧1的下行导频时隙DwPTS中除主同步信号PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
    子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
    其中,所述特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
  3. 如权利要求1所述的方法,其特征在于,所述网络侧设备确定至少一个无线帧中映射覆盖增强的PBCH的资源,包括:
    所述网络侧设备将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
    子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH、SSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除预留的信道状态信息测量参考信号CSI-RS信号占用的RE以及CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
    子帧1的DwPTS中除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
    子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
    其中,所述特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
  4. 如权利要求1所述的方法,其特征在于,所述网络侧设备确定至少一个无线帧中映射覆盖增强的PBCH的资源,包括:
    所述网络侧设备将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
    子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,CRS端口所在的符号中的部分或全部符号中除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
    子帧1的DwPTS中,除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
    子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
    其中,所述特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
  5. 如权利要求1所述的方法,其特征在于,所述网络侧设备确定至少一个无线帧中映射覆盖增强的PBCH的资源,包括:
    所述网络侧设备将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
    子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH、SSS以及CSI-RS所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
    子帧1的DwPTS中,除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
    子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
    其中,所述特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
  6. 如权利要求1~5任一所述的方法,其特征在于,所述至少一个无线帧中映射覆盖增强的PBCH的资源位于无线帧的系统带宽中央的N个子载波上,其中N正整数。
  7. 如权利要求6所述的方法,其特征在于,所述N为72。
  8. 一种传输广播信道PBCH的方法,其特征在于,该方法包括:
    用户设备确定至少一个无线帧中映射覆盖增强的PBCH的资源;
    所述用户设备在确定的资源上接收覆盖增强的PBCH。
  9. 如权利要求8所述的方法,其特征在于,所述用户设备确定至少一个无线帧中映射覆盖增强的PBCH的资源,包括:
    所述用户设备将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
    子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH、辅同步信号SSS以及物理下行控制信道PDCCH所占用的符号外的其他符号中的部分或全部符号中,除小区专属导频信号CRS端口0~3所在的资源单元RE之外的其他RE中的部分或全部RE;和/或
    子帧1的下行导频时隙DwPTS中除主同步信号PSS以及PDCCH所占用的符号外的 其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
    子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
    其中,所述特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
  10. 如权利要求8所述的方法,其特征在于,所述用户设备确定至少一个无线帧中映射覆盖增强的PBCH的资源,包括:
    所述用户设备将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
    子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH、SSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除预留的信道状态信息测量参考信号CSI-RS信号占用的RE以及CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
    子帧1的DwPTS中除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
    子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
    其中,所述特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
  11. 如权利要求8所述的方法,其特征在于,所述用户设备确定至少一个无线帧中映射覆盖增强的PBCH的资源,包括:
    所述用户设备将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
    子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,CRS端口所在的符号中的部分或全部符号中除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
    子帧1的DwPTS中,除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
    子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
    其中,所述特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
  12. 如权利要求8所述的方法,其特征在于,所述用户设备确定至少一个无线帧中映射覆盖增强的PBCH的资源,包括:
    所述用户设备将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
    子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH、SSS以及CSI-RS所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其 他RE中的部分或全部RE;和/或
    子帧1的DwPTS中,除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
    子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
    其中,所述特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
  13. 如权利要求8~12任一所述的方法,其特征在于,所述至少一个无线帧中映射覆盖增强的PBCH的资源位于无线帧的系统带宽中央的N个子载波上,其中N正整数。
  14. 如权利要求13所述的方法,其特征在于,所述N为72。
  15. 一种传输广播信道PBCH的网络侧设备,其特征在于,该网络侧设备包括:
    第一确定模块,用于确定至少一个无线帧中映射覆盖增强的PBCH的资源;
    发送模块,用于在确定的资源上传输覆盖增强的PBCH。
  16. 如权利要求15所述的网络侧设备,其特征在于,所述第一确定模块具体用于:
    将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
    子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH、辅同步信号SSS以及物理下行控制信道PDCCH所占用的符号外的其他符号中的部分或全部符号中,除小区专属导频信号CRS端口0~3所在的资源单元RE之外的其他RE中的部分或全部RE;和/或
    子帧1的下行导频时隙DwPTS中除主同步信号PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
    子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
    其中,所述特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
  17. 如权利要求15所述的网络侧设备,其特征在于,所述第一确定模块具体用于:
    将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
    子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH、SSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除预留的信道状态信息测量参考信号CSI-RS信号占用的RE以及CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
    子帧1的DwPTS中除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
    子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
    其中,所述特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
  18. 如权利要求15所述的网络侧设备,其特征在于,所述第一确定模块具体用于:
    将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
    子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,CRS端口所在的符号中的部分或全部符号中除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
    子帧1的DwPTS中,除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
    子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
    其中,所述特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
  19. 如权利要求15所述的网络侧设备,其特征在于,所述第一确定模块具体用于:
    将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
    子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH、SSS以及CSI-RS所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
    子帧1的DwPTS中,除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
    子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
    其中,所述特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
  20. 如权利要求15~19任一所述的网络侧设备,其特征在于,所述至少一个无线帧中映射覆盖增强的PBCH的资源位于无线帧的系统带宽中央的N个子载波上,其中N正整数。
  21. 一种传输广播信道PBCH的用户设备,其特征在于,该用户设备包括:
    第二确定模块,用于确定至少一个无线帧中映射覆盖增强的PBCH的资源;
    接收模块,用于在确定的资源上接收覆盖增强的PBCH。
  22. 如权利要求21所述的用户设备,其特征在于,所述第二确定模块具体用于:
    将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
    子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH、辅同步信号SSS以及物理下行控制信道PDCCH所占用的符号外的其他符号中的部分或全部符号中,除小区专属导频信号CRS端口0~3所在的资源单元RE之外的其他RE中的部分或全部RE; 和/或
    子帧1的下行导频时隙DwPTS中除主同步信号PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
    子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
    其中,所述特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
  23. 如权利要求21所述的用户设备,其特征在于,所述第二确定模块具体用于:
    将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
    子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH、SSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除预留的信道状态信息测量参考信号CSI-RS信号占用的RE以及CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
    子帧1的DwPTS中除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
    子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
    其中,所述特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
  24. 如权利要求21所述的用户设备,其特征在于,所述第二确定模块具体用于:
    将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
    子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,CRS端口所在的符号中的部分或全部符号中除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
    子帧1的DwPTS中,除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
    子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
    其中,所述特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
  25. 如权利要求21所述的用户设备,其特征在于,所述第二确定模块具体用于:
    将至少一个无线帧中的下列资源作为映射覆盖增强的PBCH的资源:
    子帧0、子帧5和子帧9中的部分或全部子帧中,除传统的PBCH、SSS以及CSI-RS所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
    子帧1的DwPTS中,除PSS以及PDCCH所占用的符号外的其他符号中的部分或全部符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;和/或
    子帧6的特定符号中,除CRS端口0~3所在的RE之外的其他RE中的部分或全部RE;
    其中,所述特定符号是子帧6中与子帧1的DwPTS中传输覆盖增强的PBCH所采用的符号编号相同的符号。
  26. 如权利要求21~25任一所述的用户设备,其特征在于,所述至少一个无线帧中映射覆盖增强的PBCH的资源位于无线帧的系统带宽中央的N个子载波上,其中N正整数。
  27. 一种传输广播信道PBCH的系统,其特征在于,该系统包括:
    网络侧设备,用于确定至少一个无线帧中映射覆盖增强的PBCH的资源;在确定的资源上传输覆盖增强的PBCH;
    用户设备,用于确定至少一个无线帧中映射覆盖增强的PBCH的资源;在确定的资源上接收覆盖增强的PBCH。
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