WO2014190897A1 - 用于传输下行控制信息dci的方法及其装置 - Google Patents

用于传输下行控制信息dci的方法及其装置 Download PDF

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Publication number
WO2014190897A1
WO2014190897A1 PCT/CN2014/078550 CN2014078550W WO2014190897A1 WO 2014190897 A1 WO2014190897 A1 WO 2014190897A1 CN 2014078550 W CN2014078550 W CN 2014078550W WO 2014190897 A1 WO2014190897 A1 WO 2014190897A1
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Prior art keywords
information
base station
dci
auxiliary
determining
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PCT/CN2014/078550
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English (en)
French (fr)
Inventor
李强
薛丽霞
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华为技术有限公司
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Publication of WO2014190897A1 publication Critical patent/WO2014190897A1/zh

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W48/00Access restriction; Network selection; Access point selection
    • H04W48/16Discovering, processing access restriction or access information

Definitions

  • Embodiments of the present invention relate to the field of communications, and more particularly, to a method and apparatus for transmitting downlink control information DCI.
  • a base station transmits data to a user equipment (User Equipment, simply referred to as "UE") through downlink transmission.
  • UE User Equipment
  • the UE is generally divided into two steps: First, the UE is in the Physical Downlink Control Channel ("PDCCH") or the Enhanced Physical Downlink Control Channel (" The ePDCCH " ) receives Downlink Control Information (DCI), and the DCI instructs the UE to perform a series of actions, including indicating how the UE receives downlink data, how to send uplink data, how to perform transmit power adjustment, etc.
  • DCI Downlink Control Information
  • the UE receives the real downlink data in the Physical Downlink Shared Channel (PDSCH) according to the indication received from the DCI.
  • PDSCH Physical Downlink Shared Channel
  • the DCI in the Long Term Evolution (LTE) system is divided into many DCI formats and uses different types of wireless network temporary identifiers (Radio Network Temporary). Identifier, abbreviated as "RNTI”, performs check digit generation.
  • RNTI Radio Network Temporary
  • the UE can determine the DCI usage by determining which DCI format and RNTI are used by the received DCI.
  • the base station may configure one or two ePDCCH sets for transmitting DCI in the ePDCCH, and each ePDCCH set occupies a plurality of physical resource blocks ("PRB") pairs.
  • PRB physical resource blocks
  • the resource configuration information of the ePDCCH is not clear.
  • the DCI needs to be sent to the UE on the PDCCH, and the PDSCH is scheduled by the delivered DCI.
  • the base station informs the UE of the resource configuration information of the ePDCCH by using the high layer signaling on the PDSCH, where the resource configuration information may include: the ePDCCH includes several ePDCCH sets, and the location and number of PRB pairs occupied by each set, each set The sequence initialization parameters used in the transmitted DCI and the sequence initialization parameters of the Demodulation Reference Signal ("DMRS") transmitted in each set.
  • DMRS Demodulation Reference Signal
  • the UE can blindly detect the DCI in the ePDCCH.
  • the PDCCH may be cancelled or only used for very limited use.
  • the UE cannot obtain the DCI from the PDCCH and further acquire the corresponding high-layer signaling, so the UE can only obtain the DCL from the ePDCCH after the initial access.
  • the UE since there is no CSS in the ePDCCH, the UE is initially connected. After the entry, the resource configuration information of the ePDCCH cannot be obtained, and the DCI transmitted in the ePDCCH is further acquired.
  • the present invention provides a technical solution for designing an enhanced common search space (eCSS) in an ePDCCH.
  • the UE may acquire resource configuration information of the eCSS after initially accessing the base station. Therefore, downlink data and high layer signaling can be obtained through the DCI sent in the eCSS.
  • eCSS enhanced common search space
  • the embodiment of the invention provides a method for transmitting DCI and a device thereof, which can enable a UE to acquire resource configuration information of an ePDCCH after accessing a base station.
  • the first aspect provides a method for transmitting downlink control information DCI, including: acquiring system information of a base station; determining, according to the system information, resource configuration information of a primary set included in an enhanced common search space eCSS, where the eCSS is located In the enhanced physical downlink control channel ePDCCH, the The primary set is an ePDCCH set; and according to the resource configuration information of the primary set, the DCI sent by the base station is blindly detected in the primary set.
  • the system information includes at least one of the following: system bandwidth information, cell identity information of the base station, and system subframe number information.
  • the acquiring the system information of the base station includes: acquiring the system information from the synchronization signal sent by the base station; And/or obtaining the system information from a broadcast channel signal transmitted by the base station.
  • the resource configuration information of the primary set included in the eCSS is determined according to the system information, including Determining, according to the system information, quantity and location information of the PRB pair occupied by the primary set; determining, according to the cell identity information included in the system information, sequence initialization parameter information and demodulation reference signal DMRS of the DCI transmitted in the primary set The sequence initialization parameter information.
  • determining, according to the system information, the quantity and location information of the PRB pair occupied by the primary set including: according to the system information, Determining the number of PRB pairs occupied by the primary set is N, N is an integer greater than zero; determining reference position information of N PRB pairs occupied by the primary set; determining that the N PRB pairs are respectively in the frequency domain with the reference position
  • the spacing information is determined according to the reference location information and the spacing information between the N PRB pairs and the reference location in the frequency domain, and the location information of each of the N PRB pairs.
  • the method further includes: receiving, sending, by the base station
  • the first indication information is used to indicate a DCI format of the DCI transmitted by the base station to the UE in the primary set. According to the first indication information, the DCI sent by the base station is blindly detected in the primary set.
  • the method further includes: receiving, by the base station, second indication information, where the second indication information is used to indicate that the base station transmits to the UE in the primary set The type of the RNTI of the DCI; according to the second indication information, the DCI sent by the base station is blindly detected in the primary set.
  • the method further includes: receiving, sending, sending, by the base station a third indication information, where the third indication information is used to indicate resource configuration information of the at least one auxiliary set included in the eCSS, where the at least one auxiliary set is an ePDCCH set; according to the third indication information, in the at least one auxiliary set
  • the DCI sent by the base station is blindly detected.
  • the resource configuration information of the at least one auxiliary set includes: quantity and location information of the PRB pairs occupied by the at least one auxiliary set, Sequence initialization parameter information of the DCI transmitted in the at least one auxiliary set and sequence initialization parameter information of the DMRS transmitted in the at least one auxiliary set, and sequence initialization parameters of the DCI and DMRS transmitted in the at least one auxiliary set are greater than or equal to zero Any integer.
  • the method further includes: receiving, by the base station, fourth indication information, where the fourth indication information is used to indicate a DCI format of the DCI transmitted by the base station to the user equipment UE in the first auxiliary set, the at least one auxiliary set including the first auxiliary set; the blind detection of the base station in the at least one auxiliary set according to the third indication information
  • the transmitted DCI includes: blindly detecting the DCI sent by the base station in the at least one auxiliary set according to the third indication information and the fourth indication information.
  • the method further includes: receiving, by the base station, fifth indication information, where the fifth indication The information is used to indicate the type of the RNTI used by the DCI transmitted by the base station to the UE in the second auxiliary set, where the at least one auxiliary set includes the second auxiliary set, and according to the third indication information,
  • the blind detection of the DCI sent by the base station in the at least one auxiliary set includes: blindly detecting the DCI sent by the base station in the at least one auxiliary set according to the third indication information and the fifth indication information.
  • a method for transmitting downlink control information DCI including: determining, according to system information of a base station, resource configuration information of a primary set included in an enhanced common search space eCSS, where the eCSS is located in an enhanced physical downlink In the control channel ePDCCH, the primary set is an ePDCCH set; and according to the resource configuration information of the primary set, the DCI is sent to the user equipment UE in the primary set.
  • the system information includes at least one of the following information: system bandwidth information, cell identity information of the base station, and system subframe number information.
  • determining, according to the system information, resource configuration information of the primary set included by the eCSS including: according to the system Determining the number and location information of the PRB pairs occupied by the primary set; determining, according to the cell identity information included in the system information, sequence initialization parameter information of the DCI transmitted in the primary set and sequence initialization parameters of the demodulation reference signal DMRS information.
  • determining, according to the system information, the quantity and location information of the PRB pair occupied by the primary set including: according to the system information, Determining the number of PRB pairs occupied by the primary set is N, N is an integer greater than zero; determining reference position information of N PRB pairs occupied by the primary set; determining that the N PRB pairs are respectively in the frequency domain with the reference position
  • the spacing information is determined according to the reference location information and the spacing information between the N PRB pairs and the reference location in the frequency domain, and the location information of each of the N PRB pairs.
  • the method further includes: sending, by the UE, the first indication information,
  • the first indication information is used to indicate a DCI format of the DCI transmitted by the base station to the UE in the primary set, so that the UE blindly detects the DCI in the primary set according to the first indication information.
  • the method further includes: sending, to the UE, second indication information, where the second indication information is used to indicate that the base station transmits to the UE in the primary set The type of the RNTI of the DCI, so that the UE blindly detects the DCI in the primary set according to the second indication information.
  • the method further includes: determining that the eCSS includes The resource configuration information of the at least one auxiliary set, the at least one auxiliary set is an ePDCCH set, and the third indication information is sent to the UE, where the third indication information is used to indicate resource configuration information of the at least one auxiliary set.
  • the resource configuration information of the at least one auxiliary set includes: the quantity and location information of the PRB occupied by the at least one auxiliary set, The sequence initialization parameter information of the DCI transmitted by the at least one auxiliary set and the sequence initialization parameter information of the DMRS transmitted by the at least one auxiliary set, and the sequence initialization parameter of the DCI and DMRS transmitted in the at least one auxiliary set is an arbitrary integer greater than or equal to zero.
  • the method further includes: sending, to the UE, fourth indication information, where the fourth indication information is used to indicate A DCI format of a DCI transmitted to the UE in an auxiliary set, the at least one auxiliary set including the first auxiliary set.
  • the method further includes: sending, to the UE, fifth indication information, the fifth indication information And indicating a type of RNTI used by the DCI transmitted to the UE in the second auxiliary set, the at least one auxiliary set including the second auxiliary set.
  • the method further includes: from the primary set and the at least one auxiliary A first set for transmitting DCI is determined in the set; a DCI is sent to the UE in the first set.
  • a user equipment including: an acquiring module, configured to acquire system information of a base station; and a determining module, configured to determine, according to the system information acquired by the acquiring module, a main body included in the enhanced public search space eCSS
  • the set resource configuration information, the eCSS is located in the enhanced physical downlink control channel ePDCCH, the primary set is an ePDCCH set, and the blind detection module is configured to use, according to the resource configuration information of the primary set determined by the determining module, in the primary set.
  • the DCI sent by the base station is blindly detected.
  • the system information includes at least one of the following information: system bandwidth information, cell identity information of the base station, and system subframe number information.
  • the acquiring module is specifically configured to obtain the system information from the synchronization signal sent by the base station; and/or And acquiring the system information from a broadcast channel signal sent by the base station.
  • the determining module includes: a first determining unit, configured to determine, according to the system information, a quantity and location information of the PRB pair occupied by the primary set; a second determining unit, configured to determine sequence initialization parameter information and a demodulation reference signal DMRS of the DCI transmitted in the primary set according to the cell identity information included in the system information The sequence initialization parameter information.
  • the first determining unit includes: a first determining subunit, configured to determine, according to the system information, a PRB occupied by the primary set The number of pairs is N, N is an integer greater than zero; the second determining subunit is configured to determine reference position information of N PRB pairs occupied by the primary set; and the third determining subunit is configured to determine the N PRB pairs The distance information of the reference position in the frequency domain, the fourth determining subunit, the reference position information determined according to the third determining subunit, and the N PRB pairs determined by the third determining subunit respectively The spacing information of the reference location in the frequency domain determines the location information of each of the N PRB pairs occupied by the primary set.
  • the UE further includes: a first receiving module, configured to receive first indication information sent by the base station, where the first indication information is used to indicate that the base station is a DCI format of the DCI transmitted to the UE in the primary set; the blind detection module is further configured to blindly detect the DCI sent by the base station in the primary set according to the first indication information received by the first receiving module.
  • the UE further includes: a second receiving module And for receiving and receiving the second indication information sent by the base station, where the second indication information is used to indicate a type of the RNTI of the DCI that the base station transmits to the UE in the primary set; the blind detection module is further configured to use, according to the second And receiving, by the receiving module, the second indication information, and blindly detecting the DCI sent by the base station in the primary set.
  • the UE further includes: a third receiving module And receiving, by the base station, the third indication information, where the third indication information is used to indicate resource configuration information of the at least one auxiliary set included in the eCSS, where the at least one auxiliary set is an ePDCCH set; the blind detection module is further used to: And according to the third indication information received by the third receiving module, the DCI sent by the base station is blindly detected in the at least one auxiliary set.
  • the resource configuration information of the at least one auxiliary set includes: the quantity and location information of the PRB pairs occupied by the at least one auxiliary set, Sequence initialization parameter information of the DCI transmitted in the at least one auxiliary set and sequence initialization parameter information of the DMRS transmitted in the at least one auxiliary set, and sequence initialization parameters of the DCI and DMRS transmitted in the at least one auxiliary set are greater than or equal to zero Any integer.
  • the third receiving module is further configured to receive fourth indication information that is sent by the base station, where the fourth indication information is a DCI format for indicating DCI transmitted by the base station to the UE in the first auxiliary set, the The one auxiliary set includes the first auxiliary set; the blind detecting module is configured to: blindly detect, sent by the base station in the at least one auxiliary set according to the third indication information and the fourth indication information received by the third receiving module DCI.
  • the third receiving module is further configured to receive the fifth indication information that is sent by the base station, where The fifth indication information is used to indicate the type of the RNTI used by the DCI transmitted by the base station to the UE in the second auxiliary set, and the at least one auxiliary set includes the second auxiliary set; the blind detection module is specifically configured to use the The third indication information and the fifth indication information received by the third receiving module blindly detect the DCI sent by the base station in the at least one auxiliary set.
  • a base station including: a determining module, configured to determine, according to system information of a base station, resource configuration information of a primary set included in an enhanced common search space eCSS, where the eCSS is located in an enhanced physical downlink control channel ePDCCH
  • the primary set is an ePDCCH set
  • the sending module is configured to send, according to the resource configuration information of the primary set determined by the determining module, the DCI to the user equipment UE in the primary set.
  • the system information includes at least one of the following: system bandwidth information, cell identity information of the base station, and system subframe number information.
  • the determining module includes: a first determining unit, configured to determine, according to the system information, the primary set occupation The number and location information of the PRB pair; the second determining unit, configured to determine, according to the cell identity information included in the system information, sequence initialization parameter information of the DCI transmitted in the primary set and sequence initialization parameters of the demodulation reference signal DMRS information.
  • the first determining unit includes: a first determining subunit, configured to determine, according to the system information, a PRB occupied by the primary set The number of pairs is N, N is an integer greater than zero; the second determining subunit is configured to determine reference position information of N PRB pairs occupied by the primary set; and a third determining subunit, configured to determine the N The spacing information of the PRB pair and the reference position in the frequency domain respectively; the fourth determining subunit, the reference position information determined according to the third determining subunit and the N PRB pairs determined by the third determining subunit Position information of each of the N PRB pairs is determined by the spacing information between the reference position and the frequency domain.
  • the sending module is further configured to send the first indication information to the UE.
  • the first indication information is used to indicate a DCI format of the DCI transmitted by the base station to the UE in the primary set, so that the UE blindly detects the DCI in the primary set according to the first indication information.
  • the sending module is further configured to use the UE Sending the second indication information, where the second indication information is used to indicate the type of the RNTI of the DCI transmitted by the base station to the UE in the primary set, so that the UE blindly detects the DCI in the primary set according to the second indication information.
  • the determining module is further configured to determine the eCSS The at least one auxiliary set of resource configuration information, the at least one auxiliary set is an ePDCCH set, and the sending module is further configured to send third indication information to the UE, where the third indication information is used to indicate the at least determined by the determining module Resource configuration information for a secondary collection.
  • the resource configuration information of the at least one auxiliary set includes: a quantity and location information of the PRB occupied by the at least one auxiliary set, sequence initialization parameter information of the DCI transmitted by the at least one auxiliary set, and sequence initialization parameter information of the DMRS transmitted by the at least one auxiliary set, the at least one auxiliary set
  • the sequence initialization parameters of the transmitted DCI and DMRS are any integer greater than or equal to zero.
  • the sending module is further configured to send, to the UE, fourth indication information, where the fourth indication information is used to indicate a DCI format of a DCI transmitted to the UE in the first auxiliary set, where the at least one auxiliary set includes the first Auxiliary collection.
  • the sending module is further configured to send, to the UE, third indication information, the third indication The information is used to indicate the type of RNTI used by the DCI transmitted to the UE in the second auxiliary set, and the at least one auxiliary set includes the second auxiliary set.
  • the determining module is further configured to use the primary set and the at least one Determining, in the auxiliary set, a first set for transmitting the DCI; the sending module is further configured to send the DCI to the UE in the first set determined by the determining module.
  • the method for transmitting DCI and the apparatus thereof are provided.
  • the eCSS is designed in the ePDCCH, and the primary set is included in the eCSS.
  • the UE After accessing the base station, the UE determines the resource configuration information of the primary set according to the system information of the base station.
  • the UE can obtain the DCI sent by the base station in the primary set included in the eCSS, and further obtain the downlink data and the high layer signaling sent by the base station by using the DCI, so that the UE and the base station can perform normal communication in the future wireless network system. , enhance the practical feasibility of the system.
  • FIG. 1 is a schematic flow chart of a method for transmitting downlink control information DCI according to an embodiment of the present invention.
  • FIG. 2 is another schematic flowchart of a method for transmitting DCI according to an embodiment of the present invention.
  • FIG. 3 is still another schematic flowchart of a method for transmitting DCI according to an embodiment of the present invention.
  • 4 is still another schematic flowchart of a method for transmitting DCI according to an embodiment of the present invention.
  • FIG. 5 is still another schematic flowchart of a method for transmitting DCI according to an embodiment of the present invention.
  • FIG. 6 is still another schematic flowchart of a method for transmitting DCI according to an embodiment of the present invention.
  • FIG. 7 is a schematic flowchart of a method for transmitting DCI according to another embodiment of the present invention.
  • FIG. 8 is another schematic flowchart of a method for transmitting DCI according to another embodiment of the present invention.
  • FIG. 9 is still another schematic flowchart of a method for transmitting a DCI according to another embodiment of the present invention.
  • FIG. 10 is a schematic block diagram of a user equipment according to an embodiment of the present invention.
  • FIG. 11 is a schematic block diagram of a determining module of a user equipment according to an embodiment of the present invention.
  • Figure 12 is a schematic block diagram of a first determining subunit of a determining module of a user equipment in accordance with an embodiment of the present invention.
  • FIG. 13 is another schematic block diagram of a user equipment according to an embodiment of the present invention.
  • FIG. 14 is a schematic block diagram of a base station according to an embodiment of the present invention.
  • FIG. 15 is a schematic block diagram of a user equipment according to another embodiment of the present invention.
  • FIG. 16 is a schematic block diagram of a base station according to another embodiment of the present invention.
  • GSM Global System of Mobile communication
  • CDMA Code Division Multiple Access
  • WCDMA Wideband Code Division Multiple Access
  • GPRS General Packet Radio Service
  • LTE Long Term Evolution
  • FDD Frequency Division Duplex
  • TDD Time Division Duplex
  • UMTS Universal Mobile Telecommunication System
  • WiMAX Worldwide Interoperability for Microwave Access
  • the user equipment may be referred to as a terminal (Mobile), a mobile station (Mobile Station, referred to as "MS”), and a mobile terminal (Mobile Terminal).
  • the user equipment can communicate with one or more core networks via a Radio Access Network (“RAN"), for example, the user equipment can be a mobile phone (or “cellular” phone)
  • RAN Radio Access Network
  • the user equipment can be a mobile phone (or "cellular” phone)
  • Computers with mobile terminals, etc. for example, the user devices can also be portable, pocket-sized, handheld, computer-integrated or in-vehicle mobile devices that exchange voice and/or data with the wireless access network.
  • the base station may be a base station (Base Transceiver Station, abbreviated as "BTS”) in GSM or CDMA, or may be a base station (NodeB) in WCDMA, or may be in LTE.
  • BTS Base Transceiver Station
  • NodeB base station
  • An evolved base station (evolved Node B, referred to as “eNB” or “e-NodeB”) is not limited in this disclosure.
  • FIG. 1 is a schematic flowchart of a method 100 for transmitting downlink control information DCI according to an embodiment of the present invention.
  • the method 100 may be performed by a base station. As shown in FIG. 1, the method 100 includes: S110, acquiring System information of the base station;
  • S120 determining, according to the system information, resource configuration information of a primary set included in the enhanced common search space eCSS, where the eCSS is located in an enhanced physical downlink control channel ePDCCH, where the primary set is an ePDCCH set; S130.
  • the DCI sent by the base station is blindly detected in the primary set according to resource configuration information of the primary set.
  • the method for transmitting the DCI in the embodiment of the present invention by designing the eCSS in the ePDCCH, and including the primary set in the eCSS, the UE determines the resource configuration information of the primary set according to the system information of the base station after accessing the base station, so that The UE can obtain the DCI sent by the base station in the primary set included in the eCSS, and further obtain the downlink data and the high layer signaling sent by the base station by using the DCI, so that the UE and the base station can perform normal communication in the future wireless network system.
  • the actual feasibility of the system is enhanced.
  • the eCSS includes at least one ePDCCH set, where the ePDCCH set occupies at least one PRB pair, and the base station transmits the DCI to the UE on the at least one PRB pair.
  • the base station selects an ePDCCH set from the at least one ePDCCH set to transmit the DCI, and does not split the DCI into multiple ePDCCH sets for transmission.
  • one ePDCCH set of the at least one ePDCCH set included in the eCSS may be used as a primary set, and the primary set may be an ePDCCH set whose resource configuration information may be determined according to system information of the base station after the UE accesses the base station;
  • the eCSS includes at least two ePDCCH sets
  • the ePDCCH set of the at least two ePDCCH sets except the main set may be used as a secondary set, and the auxiliary set is used by the UE to obtain the resource configuration information by using the high layer signaling sent by the base station.
  • ePDCCH set is used as a primary set, and the primary set may be an ePDCCH set whose resource configuration information may be determined according to system information of the base station after the UE accesses the base station;
  • the eCSS includes at least two ePDCCH sets
  • the ePDCCH set of the at least two ePDCCH sets except the main set may be used
  • the at least one ePDCCH set included in the eCSS may also have multiple ePDCCH sets as a primary set, and the remaining ePDCCH sets serve as a secondary set, but the embodiment of the present invention is not limited thereto.
  • the system information comprises at least one of the following information: system bandwidth information, cell identity information of the base station, and system subframe number information.
  • the system information may further include other information than the foregoing information, and the embodiment of the present invention is not limited thereto.
  • the UE may acquire system information of the base station when initially accessing the base station, and optionally, the UE may obtain the system information from the broadcast channel signal sent by the base station, for example, the UE may By demodulating the Physical Broadcast Channel (PBCH) of the base station, the Enhanced Physical Broadcast Channel (ePBCH), or any Master Information Block (Master Information Block).
  • PBCH Physical Broadcast Channel
  • ePBCH Enhanced Physical Broadcast Channel
  • Master Information Block Master Information Block
  • the channel referred to as "MIB" is used to obtain the system subframe number information and the system bandwidth information of the base station.
  • the UE may also obtain the system information from the synchronization signal sent by the base station, for example, the UE detects the The primary synchronization signal (Primary Synchronization Signal, referred to as "PSS") and the secondary synchronization signal (SSS) are obtained by the base station to obtain the cell identity information of the base station, but the embodiment of the present invention is not limited thereto.
  • PSS Primary Synchronization Signal
  • SSS secondary synchronization signal
  • S120 according to the system information, determining resource configuration information of the primary set included in the eCSS, including:
  • 5122 Determine, according to the cell identity information included in the system information, sequence initialization parameter information of the DCI transmitted in the primary set and sequence initialization parameter information of the demodulation reference signal DMRS.
  • the primary set may occupy at least one PRB pair, and the location information of the PRB pair occupied by the primary set may include location information of each PRB pair in all PRB pairs occupied by the primary set, and the DCI transmitted in the primary set
  • the sequence initialization parameter indicates a sequence initialization parameter of the scrambling code sequence of the DCI transmitted in the primary set, but the embodiment of the present invention is not limited thereto.
  • the embodiment of the present invention does not limit the execution order of S121 and S122, and S121 and S122 may be performed at the same time, or in any order, but the embodiment of the present invention is not limited thereto.
  • the UE may preset a correspondence between the system information and the pattern of the PRB pair occupied by the primary set, for example, a correspondence between the system bandwidth or the cell identifier and the pattern of the PRB pair occupied by the primary set, And determining the number of the PRB pairs occupied by the primary set according to the system information of the base station, and determining the number and location information of the PRB pairs occupied by the primary set, but the embodiment of the present invention is not limited thereto.
  • S121 according to the system information, determining the number and location information of the PRB pairs occupied by the primary set, including: S121a, determining, according to the system information, that the number of PRB pairs occupied by the primary set is N, and N is an integer greater than zero;
  • S121c determining, in the frequency domain, the distance information between the N PRB pairs and the reference position in the frequency domain;
  • S121d determining the N according to the reference position information and the spacing information between the N PRB pairs and the reference position in the frequency domain. Location information for each PRB pair in a PRB pair.
  • the execution sequence of the steps S121a, S121b, and S121c is not limited in the embodiment of the present invention.
  • the steps S121a, S121b, and S121c may be performed simultaneously, or may be performed in any order.
  • the UE may determine the number of PRB pairs occupied by the primary set in multiple manners.
  • the UE may determine the number of PRB pairs occupied by the primary set according to system bandwidth information, The implementation is as follows: Assume that the system bandwidth is NRB DL (that is, the number of PRBs in the bandwidth).
  • the primary set occupies a PRB pair; otherwise, the primary set occupies N 2 PRB pairs, where M can Is an arbitrary integer that is greater than or equal to 1. For example, if the system bandwidth exceeds 6 PRB pairs, the primary set occupies 4 PRB pairs; otherwise, the primary set occupies 2 PRB pairs, but the embodiment of the present invention is not limited thereto.
  • the reference location may be a PRB pair located at any position in the PRB pair occupied by the primary set, for example, the position occupied by the PRB pair with the lowest position of the intermediate frequency domain of all PRB pairs occupied by the primary set, and the occupied by the primary set
  • the location of the PRB pair in the middle of the PRB pair or the PRB pair in the middle frequency domain where all the PRB pairs occupy the primary set may also be pre-agreed positions on the base station side and the UE side, for example, the lowest frequency of the system bandwidth.
  • embodiments of the invention are not limited thereto.
  • the UE may determine the reference location in a plurality of manners, where the reference location is the PRB pair with the lowest frequency position in all the PRB pairs occupied by the primary set.
  • the PRB pair with the lowest frequency domain location is hereinafter referred to as Benchmark PRB pair.
  • the UE may determine the location of the reference PRB pair according to a preset condition, for example, pre-specifying the location of the reference PRB pair of the primary set of eCSSs of all base stations to be 0; the UE may also obtain the reference PRB pair from the broadcast channel.
  • the broadcast channel can The PBCH, the ePBCH, or any channel that transmits the MIB; the UE may further determine the location of the reference PRB pair according to the obtained system information.
  • An optional specific implementation manner is: the UE is determined according to the cell identifier of the base station.
  • the location of the reference PRB pair for example, the location of the reference PRB pair can be determined by:
  • N ID ee11 is the cell identifier of the base station
  • V is configurable any integer greater than or equal to zero
  • NRB DL is the system bandwidth, but the embodiment of the present invention is not limited thereto.
  • the location information of the reference PRB pair is the same in all the subframes. Therefore, determining location information of the reference PRB pair may specifically determine location information of the reference PRB pair in the frequency domain.
  • the location information of the reference PRB pair may further depend on the current subframe number, and correspondingly, determining location information of the reference PRB pair may specifically determine location information of the reference PRB pair in the frequency domain in the current subframe.
  • the position of the reference PRB pair is offset according to the current subframe number, and the position of the reference PRB pair can be determined by:
  • N ID ee11 is the cell identity of the base station
  • V is configurable any integer greater than or equal to zero
  • NRB DL is the system bandwidth
  • N SFN is the system subframe number
  • c is the offset step size
  • embodiments of the invention are not limited thereto.
  • the UE may determine, by using multiple manners, a spacing between the N PRB pairs occupied by the primary set and the reference location, and when the reference location is the location of the reference PRB pair in the foregoing embodiment, The spacing between the reference PRB pair and the reference position is zero. Specifically, the UE may determine, according to a preset condition, a PRB with the lowest frequency position of the N PRBs in the primary set. The UE may determine the spacing information between the N PRB pairs and the reference PRB pair according to a preset condition. For example, the distance between the PRB pairs occupied by the primary set in the eCSS of all base stations is 1 or N, and N is an arbitrary integer greater than 1.
  • the UE may also access the base station when initially accessing the base station.
  • Obtaining the spacing information between the N PRB pairs and the reference position in the broadcast channel for example, PBCH, The ePBCH or any channel for transmitting the MIB; optionally, the UE may further determine a spacing between the N PRB pairs and the reference position according to the system information of the base station, where a preferred implementation manner is: in the eCSS
  • the N PRB pairs occupied by the included primary set divide the system bandwidth equally, and the N PRB pairs are evenly distributed on the system bandwidth.
  • d NRB DL /N, where d represents the adjacent PRB pair in the primary set.
  • NRB DL represents the system bandwidth
  • N represents the number of PRB pairs occupied by the primary set. Since the system bandwidth may not be divisible by N, it is necessary to calculate the spacing between the pairs of PRBs, or to use the rounding method. For example, round up and down the decimals obtained by the above formula. Or rounding off, etc., embodiments of the present invention are not limited thereto.
  • the UE may determine the location of each PRB pair of the N PRB pairs occupied by the primary set according to the location information of the reference PRB pair and the spacing information between the N PRB pairs and the reference PRB pair. For example, the location of each PRB pair occupied by the primary set can be determined by: k ⁇ ko + ix LNRB DL /NJ (3)
  • 13 ⁇ 4 is the position of the i-th PRB pair
  • ko is the position of the reference PRB pair
  • NRB DL is the system bandwidth
  • the manner in which the UE determines the sequence initialization parameter of the DCI according to the cell identity information of the base station is not limited to one type.
  • the sequence initialization parameter of the DCI transmitted in the primary set may be determined by:
  • c mit DGI is the sequence initialization parameter of the DCI
  • n s is the number of the current time slot
  • N ID eeU is the cell identity of the base station.
  • the UE may further determine a sequence initialization parameter of the DCI transmitted in the primary set according to the cell identity information and the system subframe number information of the base station, for example, the sequence initialization parameter of the DCI transmitted in the primary set may be The following formula determines:
  • the mit DGI is the sequence initialization parameter of the DCI, where n s is the number of the current time slot, the N ID eeU is the cell identifier of the base station, and N sfn is the system subframe number, but the embodiment of the present invention is not limited thereto.
  • the manner in which the UE determines the sequence initialization parameter of the DMRS transmitted in the primary set according to the cell identity information of the base station is not limited to one.
  • the sequence initialization parameter of the DMRS transmitted in the primary set may be determined by:
  • n s is the number of the current time slot
  • N ID eeU is the cell identity of the base station
  • n SCID is a configurable integer greater than or equal to zero.
  • the UE may further determine a sequence initialization parameter of the DMRS transmitted in the primary set according to the cell identity information and the system subframe number information of the base station, for example, the sequence initialization parameter of the DMRS transmitted in the primary set may be The following formula determines:
  • c imt DMRS (L3 ⁇ 4/ 2J + 1) ⁇ (2 ⁇ (N ro ce11 + N sfn ) + 1) ⁇ 2 16 + n SCID ( 7 )
  • c mit DMRS is the sequence initialization parameter of DMRS, which is current The number of the slot
  • N ID eeU is the cell identifier of the base station
  • N sfn is the system subframe number
  • n SCID is a configurable integer greater than or equal to zero, but the embodiment of the present invention is not limited thereto.
  • the UE may further determine a sequence initialization parameter of the DCI and the DMRS transmitted in the primary set according to other information included in the system information of the base station, where the embodiment of the present invention is not limited thereto.
  • the UE determines the resource configuration information of the primary set included in the eCSS, and can use the DCI format 0, the DCI format 1A, the DCI format 3, and the DCI format in the primary set according to the resource configuration information of the primary set.
  • 3 A and DCI format 1C and use different RNTI types such as C-RNTI, TPC-RNTI and SI-RNTI to blindly detect the DCI sent by the base station, and then receive the downlink data sent by the base station according to the blindly detected DCI.
  • the UE may initialize a parameter according to the sequence of the DMRS, detect a DMRS transmitted in the primary set, and perform channel estimation on the ePDCCH according to the received DMRS.
  • the UE may perform the channel estimation according to the result of the channel estimation and the primary set.
  • the sequence initialization parameters of the transmitted DCI using the possible DCI format and the type of the RNTI, blindly detecting the DCI in the primary set, but the embodiment of the present invention is not limited thereto.
  • the base station may transmit DCI of the DCI format 0, DCI format 1A, DCI format 3, DCI format 3A, and DCI format 1C in the DCI format to the UE in the primary set, and/or the base station may And transmitting, in the primary set, a DCI of a partial RNTI type in an RNTI type, such as a C-RNTI, a TPC-RNTI, and an SI-RNTI, to the UE, and the base station may indicate the base station to the UE by using physical layer signaling or high layer signaling.
  • the DCI format of the DCI transmitted to the UE in the primary set, and/or the base station may indicate to the UE, by physical layer signaling or higher layer signaling, the RNTI of the DCI transmitted by the base station to the UE in the primary set.
  • Type which improves detection efficiency and reduces detection complexity.
  • the base station may separately notify the UE of the DCI format and the type of the RNTI by using different physical layer signaling or higher layer signaling, where the base station may also use the DCI format in one physical layer signaling or higher layer signaling.
  • the UE is notified of the type of the RNTI, but the embodiment of the present invention is not limited thereto.
  • the UE when the UE receives the indication information of the DCI format and/or the type of the RNTI that is sent by the base station to indicate the DCI transmitted by the base station to the UE in the primary set, the UE may be configured according to the indication information.
  • the DCI transmitted by the base station is blindly detected in the primary set, but the embodiment of the present invention is not limited thereto.
  • the eCSS may further include at least one auxiliary set, and the UE may send high-level signaling or physical through the base station. Layer signaling, acquiring resource configuration information of each of the at least one auxiliary set.
  • the method 100 further includes:
  • S140 Receive first indication information that is sent by the base station, where the first indication information is used to indicate resource configuration information of the at least one auxiliary set included in the eCSS, where the at least one auxiliary set is an ePDCCH.
  • the DCI sent by the base station is blindly detected in the at least one auxiliary set according to the first indication information.
  • Each of the at least one auxiliary set is an ePDCCH set
  • the resource configuration information of the at least one auxiliary set may include each of the at least one auxiliary set
  • the resource configuration information may also include resource configuration information of one or more auxiliary sets in the at least one auxiliary set.
  • the UE may obtain high layer signaling or physical layer signaling sent by the base station in the PDSCH according to the DCI detected by the primary set, and the high layer signaling or physical layer signaling indicates the at least one auxiliary set.
  • the UE may also obtain high-level signaling or physical layer signaling sent by the base station in the PDSCH according to the DCI detected blindly in the primary set, the high-layer signaling or physical Layer signaling is used to indicate resource configuration information of one or more auxiliary sets in the at least one auxiliary set included in the eCSS, and then the UE may blindly detect DCI in the primary set and the one or more auxiliary sets, and according to The blindly detected DCI acquires the high layer signaling or the physical layer signaling that is further sent by the base station in the PDSCH, and obtains the resources of the other auxiliary set in the at least one auxiliary set by using the further sent high layer signaling or physical layer signaling.
  • Configuration information but the embodiment of the present invention is not limited thereto.
  • the resource configuration information of the at least one auxiliary set includes: a quantity and location information of the PRB pair occupied by the at least one auxiliary set, sequence initialization parameter information of the DCI transmitted in the at least one auxiliary set, and the at least one auxiliary Sequence initialization parameter information of the DMRS transmitted in the set, and the sequence initialization parameters of the DCI and DMRS transmitted in the at least one auxiliary set are any integer greater than or equal to zero.
  • sequence initialization parameter of the DCI transmitted in the at least one auxiliary set and the sequence initialization parameter of the DMRS transmitted in the at least one auxiliary set may depend on the cell identity information of the base station, and may also be independent of the cell identity information of the base station.
  • embodiments of the invention are not limited thereto.
  • the base station may occupy the at least one auxiliary set in the first indication information.
  • the quantity and location information of the PRB pair directly notify the UE, and may also notify the UE of the number of PRB pairs occupied by the at least one auxiliary set and the information on which the location information depends, and the UE may pass the dependent information and a pre-agreed manner. Determine the number and location information of the PRB pair.
  • the base station may directly notify the UE of the sequence initialization parameters of the DCI and the DMRS transmitted to the UE in the at least one auxiliary set in the first indication information, or may sequence the DCI and the DMRS.
  • the UE may determine the sequence initialization parameters of the DCI and the DMRS by using the dependent information and a pre-agreed manner, for example, the UE and the base station side agree that the base station is in the at least one auxiliary set.
  • the N ID is notified to the UE in the information, and the UE may determine the sequence initialization constant c mit Da of the DCI according to the N ID and the above formula, but the embodiment of the present invention is not limited thereto.
  • the DCI when the UE blindly detects the DCI in the at least one auxiliary set, the DCI may be blindly detected by using the same DCI format and the RNTI type as the primary set.
  • the base station may also send indication information to the UE, indicating The UE needs to detect the DCI format in one or more auxiliary sets in the at least one auxiliary set, thereby improving detection efficiency and reducing detection complexity.
  • the method 100 further includes:
  • S160 Receive second indication information that is sent by the base station, where the second indication information is used to indicate a DCI format of the DCI that is transmitted by the UE in the first auxiliary set by using the UE, where the at least one auxiliary set includes the first auxiliary set.
  • S150 blindly detecting, in the at least one auxiliary set, the DCI sent by the base station, including:
  • the DCI sent by the base station is blindly detected in the at least one auxiliary set according to the first indication information and the second indication information.
  • the first auxiliary set may include one or more auxiliary sets.
  • the second indication information may respectively indicate that the base station separately sends the UE to the UE in the multiple auxiliary sets.
  • the DCI format of the transmitted DCI may also uniformly indicate the DCI format of the DCI transmitted to the UE in the multiple auxiliary sets.
  • the base station may explicitly or implicitly indicate, in the second indication information, a DCI format of the DCI transmitted to the UE in the first auxiliary set, for example, the base station may be in the second indication information.
  • Determining a DCI format used by the DCI transmitted to the UE in the first auxiliary set, or the base station may indicate the first in the second indication information by
  • the DCI format that is not used by the DCI transmitted to the UE in the auxiliary set implicitly indicates the DCI format of the DCI transmitted to the UE in the first auxiliary set, and correspondingly, the UE may be in the first auxiliary set
  • the DCI format that the UE needs to detect is indicated in the second indication information, but the embodiment of the present invention is not limited thereto.
  • the base station may further indicate a type of the RNTI that the UE needs to detect blindly when the DCI is blindly detected in the one or more auxiliary sets in the at least one auxiliary set, thereby improving detection efficiency and reducing detection complexity.
  • the method 100 further includes:
  • S170 Receive third indication information that is sent by the base station, where the third indication information is used to indicate a type of RNTI used by the DCI transmitted by the base station to the UE in the second auxiliary set, where the at least one auxiliary set includes the second Auxiliary collection
  • the blind detection of the DCI sent by the base station in the at least one auxiliary set according to the first indication information includes:
  • the DCI sent by the base station is blindly detected in the at least one auxiliary set according to the first indication information and the third indication information.
  • the second auxiliary set may include one or more auxiliary sets, and the second auxiliary set may be the same auxiliary set as the first auxiliary set, or a partial auxiliary set of the second auxiliary set and the first The auxiliary set is the same, or the second auxiliary set is the same as the partial auxiliary set in the first auxiliary set, or the second auxiliary set is a completely different auxiliary set from the first auxiliary set.
  • the third indication information may indicate a type of the RNTI used by the DCIs transmitted to the UE in the multiple auxiliary sets, and may also uniformly indicate the multiple auxiliary sets. The type of RNTI used by the DCI transmitted to the UE.
  • the base station may explicitly or implicitly indicate, in the third indication information, a type of the RNTI used by the DCI transmitted to the UE in the second auxiliary set, for example, the base station may be in the third Directly indicating, in the indication information, a type of RNTI used by the DCI transmitted to the UE in the second auxiliary set, or the base station may indicate, in the third indication information, a DCI transmitted to the UE in the second auxiliary set.
  • the type of the RNTI implicitly indicates the type of the RNTI used by the DCI transmitted to the UE in the second auxiliary set, and correspondingly, the UE may blindly detect the indication in the third indication information in the second auxiliary set.
  • the UE needs a type of RNTI that is blindly detected, but the embodiment of the present invention is not limited thereto.
  • the base station may also send the second indication information and the third indication information to the UE simultaneously or separately, so that the UE may be configured according to the first indication information, the second indication information, and the third indication information.
  • the DCI is blindly detected in the at least one auxiliary set, but the embodiment of the present invention is not limited thereto.
  • the method for transmitting the DCI in the embodiment of the present invention by designing the eCSS in the ePDCCH, and including the primary set in the eCSS, the UE determines the resource configuration information of the primary set according to the system information of the base station after accessing the base station, so that The UE can obtain the DCI sent by the base station in the primary set included in the eCSS, and further obtain the downlink data and the high layer signaling sent by the base station by using the DCI, so that the UE and the base station can perform normal communication in the future wireless network system.
  • the actual feasibility of the system is enhanced.
  • a method for transmitting DCI according to an embodiment of the present invention is described in detail from the perspective of a user equipment UE. The following is a detailed description of the implementation according to the present invention from the perspective of a base station in conjunction with FIG. 7 to FIG. An example of a method for transmitting DCI.
  • FIG. 7 is a schematic flowchart of a method 200 for transmitting downlink control information DCI according to an embodiment of the present invention.
  • the method may be performed by a base station. As shown in FIG. 7, the method 200 includes:
  • S210 determining, according to system information of the base station, resource configuration information of the primary set included in the enhanced common search space eCSS, where the eCSS is located in an enhanced physical downlink control channel ePDCCH, where the primary set is an ePDCCH set;
  • the method for transmitting the DCI in the embodiment of the present invention by designing the eCSS in the ePDCCH, and including the primary set in the eCSS, the UE determines the resource configuration information of the primary set according to the system information of the base station after accessing the base station, so that The UE can acquire the base station to send in the primary set included in the eCSS.
  • the system information comprises at least one of the following information: system bandwidth information, cell identity information of the base station, and system subframe number information.
  • the determining, by the S210, the resource configuration information of the primary set included in the eCSS, according to the system information including:
  • S211 determining, according to the system information, the quantity and location information of the PRB pairs occupied by the primary set, including:
  • S211c determining, in the frequency domain, the distance information between the N PRB pairs and the reference position in the frequency domain;
  • S211d determining the N according to the reference position information and the spacing information between the N PRB pairs and the reference position in the frequency domain. Location information for each PRB pair in a PRB pair.
  • the reference location information may be the same in all the subframes. Therefore, the determining, by the base station, the reference location information may be specifically determining information of the reference location in the frequency domain; optionally, the reference location information may also depend on Correspondingly, the base station determines that the reference location information may be specifically determining information in the frequency domain of the reference location in the current subframe. For specific determination methods, reference may be made to the above embodiments, and for brevity, details are not described herein again.
  • the method 200 further includes: S230. Determine resource configuration information of at least one auxiliary set included in the eCSS, where the at least one auxiliary set is an ePDCCH set.
  • the first indication information is sent to the UE, where the first indication information is used to indicate resource configuration information of the at least one auxiliary set.
  • the resource configuration information of the at least one auxiliary set includes: a quantity and location information of the PRB occupied by the at least one auxiliary set, sequence initialization parameter information of the DCI transmitted by the at least one auxiliary set, and the at least one auxiliary set transmission Sequence initialization parameter information of the DMRS, the sequence initialization parameters of the DCI and DMRS transmitted in the at least one auxiliary set are any integer greater than or equal to zero.
  • the base station may determine the resource configuration information of the at least one auxiliary set according to the cell identity information of the base station.
  • the base station may further determine the at least one integer greater than or equal to zero except the cell identifier.
  • a resource configuration information of a secondary set but the embodiment of the present invention is not limited thereto.
  • the base station may further send the second indication information to the UE, indicating that the UE needs to detect the DCI format or the DCI format that does not need to be detected in one or more auxiliary sets in the at least one auxiliary set, thereby improving detection efficiency. , reduce the complexity of detection.
  • the method 200 further includes:
  • the base station may further send third indication information to the UE, indicating, by the UE, a type of the RNTI that needs to be detected in the one or more auxiliary sets of the at least one auxiliary set or a type of the RNTI that does not need to be detected, thereby improving Detection efficiency reduces the complexity of detection.
  • the method 200 further includes:
  • S260 Send third indication information to the UE, where the third indication information is used to indicate the second auxiliary set.
  • the base station may determine an ePDCCH from the primary set and the at least one secondary set each time a DCI needs to be sent to the UE.
  • the method of transmitting the DCI to the UE in the ePDCCH set and correspondingly, as another embodiment, as shown in FIG. 9, the method 200 further includes:
  • S270 Determine a first set for sending a DCI from the primary set and the at least one auxiliary set.
  • the method for transmitting the DCI in the embodiment of the present invention by designing the eCSS in the ePDCCH, and including the primary set in the eCSS, the UE determines the resource configuration information of the primary set according to the system information of the base station after accessing the base station, so that The UE can obtain the DCI sent by the base station in the primary set included in the eCSS, and further obtain the downlink data and the high layer signaling sent by the base station by using the DCI, so that the UE and the base station can perform normal communication in the future wireless network system.
  • the actual feasibility of the system is enhanced.
  • a method for transmitting DCI according to an embodiment of the present invention is described in detail above with reference to FIG. 1 to FIG. 9, and a user equipment UE for transmitting DCI and according to an embodiment of the present invention will be described in detail below with reference to FIGS. 10 to 20.
  • Base station A method for transmitting DCI according to an embodiment of the present invention is described in detail above with reference to FIG. 1 to FIG. 9, and a user equipment UE for transmitting DCI and according to an embodiment of the present invention will be described in detail below with reference to FIGS. 10 to 20.
  • Base station Base station.
  • FIG. 10 is a schematic block diagram of a user equipment 300 according to an embodiment of the present invention, including: an obtaining module 310, configured to acquire system information of a base station;
  • the determining module 320 is configured to determine, according to the system information acquired by the acquiring module 310, resource configuration information of a primary set included in the enhanced common search space eCSS, where the eCSS is located in an enhanced physical downlink control channel ePDCCH, where the primary set is ePDCCH Collection
  • the blind detection module 330 is configured to blindly detect the DCI sent by the base station in the primary set according to the resource configuration information of the primary set determined by the determining module 320. Therefore, the user equipment in the embodiment of the present invention, by designing the eCSS in the ePDCCH, and including the primary set in the eCSS, the UE determines the resource configuration information of the primary set according to the system information of the base station after accessing the base station, so that the UE can The DCI sent by the base station is obtained from the primary set included in the eCSS, and the downlink data and the high layer signaling sent by the base station are further obtained through the DCI, so that the UE and the base station can perform normal communication in the future wireless network system, and the system is enhanced. Actual feasibility.
  • the system information comprises at least one of the following information: system bandwidth information, cell identity information of the base station, and system subframe number information.
  • the obtaining module 310 is specifically configured to obtain the system information from a synchronization signal sent by the base station; and/or
  • the determining module 320 includes:
  • a first determining unit 321 configured to determine, according to the system information, quantity and location information of PRB pairs occupied by the primary set;
  • the second determining unit 322 is configured to determine, according to the cell identity information included in the system information, sequence initialization parameter information of the DCI transmitted in the primary set and sequence initialization parameter information of the demodulation reference signal DMRS.
  • the first determining unit 321 includes: a first determining sub-unit 321a, configured to determine, according to the system information, that the number of PRB pairs occupied by the primary set is N. , N is an integer greater than zero;
  • a second determining subunit 321b configured to determine reference location information in the N PRB pairs occupied by the primary set
  • a third determining sub-unit 321c configured to determine, in the frequency domain, the distance information between the N PRB pairs and the reference position
  • a fourth determining subunit 321d configured to determine the reference bit according to the second determining subunit 321b
  • the information and the spacing information of the N PRB pairs determined by the third determining sub-unit 321c and the reference position in the frequency domain respectively determine location information of each of the N PRB pairs.
  • the UE 300 further includes:
  • the receiving module 340 is configured to receive first indication information that is sent by the base station, where the first indication information is used to indicate resource configuration information of the at least one auxiliary set included in the eCSS, where the at least one auxiliary set is an ePDCCH set.
  • the blind detection module 330 is further configured to blindly detect the DCI sent by the base station in the at least one auxiliary set according to the first indication information received by the receiving module 340.
  • the resource configuration information of the at least one auxiliary set includes: a quantity and location information of the PRB pair occupied by the at least one auxiliary set, sequence initialization parameter information of the DCI transmitted in the at least one auxiliary set, and the at least one auxiliary Sequence initialization parameter information of the DMRS transmitted in the set, and the sequence initialization parameters of the DCI and DMRS transmitted in the at least one auxiliary set are any integer greater than or equal to zero.
  • the receiving module 340 is further configured to receive second indication information that is sent by the base station, where the second indication information is used to indicate that the base station transmits the DCI to the UE in the first auxiliary set.
  • the second indication information is used to indicate that the base station transmits the DCI to the UE in the first auxiliary set.
  • a DCI format the at least one auxiliary set including the first auxiliary set;
  • the blind detection module 330 is configured to blindly detect the DCI sent by the base station in the at least one auxiliary set according to the first indication information and the second indication information received by the receiving module 340.
  • the receiving module 340 is further configured to receive third indication information that is sent by the base station, where the third indication information is used to indicate that the base station transmits the DCI to the UE in the second auxiliary set.
  • the at least one auxiliary set includes the second auxiliary set; the blind detecting module 330 is specifically configured to: according to the first indication information and the third indication information received by the receiving module 340, at the at least one The DCI sent by the base station is blindly detected in the auxiliary set.
  • the user equipment 300 may correspond to the user equipment for transmitting the DCI in the embodiment of the present invention, and the foregoing modules of the user equipment 300 and The operations and/or functions are respectively implemented in order to implement the corresponding processes of the respective methods in FIG. 1 to FIG. 6. For brevity, no further details are provided herein.
  • the user equipment in the embodiment of the present invention by designing the eCSS in the ePDCCH, and including the primary set in the eCSS, the UE determines the resource configuration information of the primary set according to the system information of the base station after accessing the base station, so that the UE can
  • the DCI sent by the base station is obtained from the primary set included in the eCSS, and the downlink data and the high layer signaling sent by the base station are further obtained through the DCI, so that the UE and the base station can perform normal communication in the future wireless network system, and the system is enhanced. Actual feasibility.
  • FIG. 14 shows a schematic flowchart of a base station 400 according to an embodiment of the present invention.
  • the base station 400 includes:
  • the determining module 410 is configured to determine, according to the system information of the base station, the resource configuration information of the primary set included in the enhanced common search space eCSS, where the eCSS is located in the enhanced physical downlink control channel ePDCCH, where the primary set is an ePDCCH set;
  • the sending module 420 is configured to send, according to the resource configuration information of the primary set determined by the determining module 410, a DCI to the user equipment UE in the primary set.
  • the base station of the embodiment of the present invention by designing the eCSS in the ePDCCH, and including the primary set in the eCSS, the UE determines the resource configuration information of the primary set according to the system information of the base station after accessing the base station, so that the UE can be in the eCSS. Obtaining the DCI sent by the base station in the included primary set, and further acquiring the downlink data and the high layer signaling sent by the base station by using the DCI, so that the UE and the base station can perform normal communication in a future wireless network system, thereby enhancing the actual system. feasibility.
  • the system information comprises at least one of the following information: system bandwidth information, cell identity information of the base station, and system subframe number information.
  • the determining module 410 includes:
  • a first determining unit 411 configured to determine, according to the system information, a quantity and location information of a PRB pair occupied by the primary set;
  • the second determining unit 412 is configured to determine sequence initialization parameter information of the DCI and sequence initialization parameter information of the demodulation reference signal DMRS transmitted in the primary set according to the cell identity information included in the system information.
  • the first determining unit 411 includes:
  • a first determining subunit 411a configured to determine, according to the system information, that the number of PRB pairs occupied by the primary set is N, and N is an integer greater than zero;
  • a second determining subunit 411b configured to determine reference location information in the N PRB pairs occupied by the primary set
  • a third determining subunit 411c configured to determine distance information between the N PRB pairs and the reference position in the frequency domain
  • a fourth determining subunit 411d configured to determine, according to the reference location information determined by the second determining subunit 411b, the spacing between the N PRB pairs determined by the third determining subunit 411c and the reference location in the frequency domain Information, determining location information of each of the N PRB pairs.
  • the determining module 410 is further configured to determine resource configuration information of the at least one auxiliary set included in the eCSS, where the at least one auxiliary set is an ePDCCH set; the sending module 420 is further configured to use the UE Sending the first indication information, where the first indication information is used to indicate the resource configuration information of the at least one auxiliary set determined by the determining module 410.
  • the resource configuration information of the at least one auxiliary set includes: a quantity and location information of the PRB occupied by the at least one auxiliary set, sequence initialization parameter information of the DCI transmitted by the at least one auxiliary set, and The sequence initialization parameter information of the DMRS transmitted by the at least one auxiliary set, and the sequence initialization parameters of the DCI and DMRS transmitted in the at least one auxiliary set are any integer greater than or equal to zero.
  • the sending module 420 is further configured to send, to the UE, second indication information, where the second indication information is used to indicate a DCI format of a DCI transmitted to the UE in the first auxiliary set, where At least one auxiliary set includes the first auxiliary set.
  • the sending module 420 is further configured to send third indication information to the UE, where the third indication information is used to indicate an RNTI used by the DCI transmitted to the UE in the second auxiliary set.
  • the type, the at least one auxiliary set includes the second auxiliary set.
  • the determining module 410 is further configured to determine, from the primary set and the at least one auxiliary set, a first set for sending a DCI;
  • the sending module 420 is further configured to send a DCI to the UE in the first set determined by the determining module 410.
  • the base station 400 may correspond to a base station for transmitting a DCI in the embodiment of the present invention, and the foregoing and other operations and/or functions of the respective modules in the base station 400 are respectively implemented to implement FIG.
  • the corresponding processes of the respective methods in FIG. 9 are not described herein again for the sake of brevity.
  • the base station of the embodiment of the present invention by designing the eCSS in the ePDCCH, and including the primary set in the eCSS, the UE determines the resource configuration information of the primary set according to the system information of the base station after accessing the base station, so that the UE can be in the eCSS. Obtaining the DCI sent by the base station in the included primary set, and further acquiring the downlink data and the high layer signaling sent by the base station by using the DCI, so that the UE and the base station can perform normal communication in a future wireless network system, thereby enhancing the actual system. feasibility.
  • FIG. 15 shows a schematic block diagram of a user equipment 500 including a processor 510, a memory 520, and a bus system 530, in accordance with another embodiment of the present invention.
  • the processor 510 and the memory 520 are connected by a bus system 530.
  • the memory 520 is used to store instructions.
  • the processor 510 calls the instruction stored in the memory 520 through the bus system 530, and is configured to: acquire system information of the base station.
  • the DCI sent by the base station is blindly detected in the primary set.
  • the user equipment in the embodiment of the present invention designs the eCSS in the ePDCCH, and in the eCSS
  • the primary set is included, and the UE determines the resource configuration information of the primary set according to the system information of the base station after accessing the base station, so that the UE can obtain the DCI sent by the base station in the primary set included in the eCSS, and further acquire the DCI by using the DCI.
  • the downlink data and the high layer signaling sent by the base station enable the UE and the base station to perform normal communication in the future wireless network system, thereby enhancing the practical feasibility of the system.
  • the processor 510 may be a central processing unit ("CPU"), and the processor 510 may also be other general-purpose processors, digital signal processors (DSPs). , Application Specific Integrated Circuits (ASICs), off-the-shelf programmable gate arrays (FPGAs) or other programmable logic devices, discrete gates or transistor logic devices, discrete hardware components, and more.
  • the general purpose processor may be a microprocessor or the processor or any conventional processor or the like.
  • the memory 520 can include read only memory and random access memory and provides instructions and data to the processor 510. A portion of memory 520 may also include non-volatile random access memory. For example, the memory 520 can also store information of the device type.
  • the bus system 530 can include, in addition to the data bus, a power bus, a control bus, and a status signal bus. However, for clarity of description, various buses are labeled as bus system 530 in the figure.
  • the steps of the above method may be performed by an integrated logic circuit of hardware in the processor 510 or an instruction in the form of software.
  • the steps of the method disclosed in the embodiments of the present invention may be directly implemented as hardware processor execution completion or performed by a combination of hardware and software modules in the processor.
  • the software module can be located in a conventional storage medium such as random access memory, flash memory, read only memory, programmable read only memory or electrically erasable programmable memory, registers, and the like.
  • the storage medium is located in the memory 520, and the processor 510 reads the information in the memory 520 and completes the steps of the above method in combination with hardware. To avoid repetition, it will not be described in detail here.
  • the system information includes at least one of the following information: system bandwidth information, cell identity information of the base station, and system subframe number information.
  • the processor 510 is specifically configured to obtain the system information from a synchronization signal sent by the base station; and/or
  • the processor 510 is further configured to determine, according to the system information, the quantity and location information of the PRB pair occupied by the primary set; and determine the DCI transmitted in the primary set according to the cell identity information included in the system information.
  • the sequence initialization parameter information and the sequence initialization parameter information of the demodulation reference signal DMRS are further configured to determine, according to the system information, the quantity and location information of the PRB pair occupied by the primary set; and determine the DCI transmitted in the primary set according to the cell identity information included in the system information.
  • the processor 510 is specifically configured to determine, according to the system information, that the number of PRB pairs occupied by the primary set is N, and N is an integer greater than zero; determining N occupied by the primary set.
  • the reference position information of the PRB pair; determining the distance information of the N PRB pairs and the reference position in the frequency domain; and the spacing between the reference position information and the N PRB pairs and the reference position in the frequency domain respectively Information, determining location information of each of the N PRB pairs.
  • the UE 500 further includes:
  • the receiver 540 is configured to receive first indication information that is sent by the base station, where the first indication information is used to indicate resource configuration information of the at least one auxiliary set included in the eCSS, where the at least one auxiliary set is an ePDCCH set.
  • the processor 510 is further configured to blindly detect the DCI sent by the base station in the at least one auxiliary set according to the first indication information received by the receiver 540.
  • the resource configuration information of the at least one auxiliary set includes: a quantity and location information of the PRB pair occupied by the at least one auxiliary set, sequence initialization parameter information of the DCI transmitted in the at least one auxiliary set, and the at least one auxiliary Sequence initialization parameter information of the DMRS transmitted in the set, and the sequence initialization parameters of the DCI and DMRS transmitted in the at least one auxiliary set are any integer greater than or equal to zero.
  • the receiver 540 is further configured to receive second indication information sent by the base station, where the second indication information is used to indicate that the base station transmits to the UE in the first auxiliary set.
  • the second indication information is used to indicate that the base station transmits to the UE in the first auxiliary set.
  • the processor 510 is specifically configured to blindly detect the DCI sent by the base station in the at least one auxiliary set according to the first indication information and the second indication information received by the receiver 540.
  • the receiver 540 is further configured to receive third indication information that is sent by the base station, where the third indication information is used to indicate that the base station transmits the DCI to the UE in the second auxiliary set.
  • the third indication information is used to indicate that the base station transmits the DCI to the UE in the second auxiliary set.
  • a type of RNTI that is used, the at least one auxiliary set including the second auxiliary set;
  • the processor 510 is specifically configured to blindly detect the DCI sent by the base station in the at least one auxiliary set according to the first indication information and the third indication information received by the receiver 540.
  • the user equipment 500 may correspond to the user equipment for the method for transmitting DCI and the user equipment 300 in the embodiment of the present invention, and the foregoing and other operations of the respective modules in the user equipment 500 and/or
  • the functions of the respective methods in FIG. 1 to FIG. 6 are respectively omitted.
  • the user equipment in the embodiment of the present invention by designing the eCSS in the ePDCCH, and including the primary set in the eCSS, the UE determines the resource configuration information of the primary set according to the system information of the base station after accessing the base station, so that the UE can
  • the DCI sent by the base station is obtained from the primary set included in the eCSS, and the downlink data and the high layer signaling sent by the base station are further obtained through the DCI, so that the UE and the base station can perform normal communication in the future wireless network system, and the system is enhanced. Actual feasibility.
  • FIG. 16 shows a schematic flow chart of a base station 600 including a processor 610, a memory 620, a bus system 630, and a transmitter 640, in accordance with another embodiment of the present invention.
  • the processor 610, the memory 620, and the transmitter 640 are connected by a bus system 630.
  • the memory 620 is configured to store an instruction.
  • the processor 610 calls the instruction stored in the memory 620 through the bus system 630, and is configured to: The system information of the base station, the resource configuration information of the primary set included in the enhanced common search space eCSS, where the eCSS is located in the enhanced physical downlink control channel ePDCCH, the primary set is an ePDCCH set; the transmitter 640 is configured to use the processor 610 determines the primary collection The resource configuration information, in which the DCI is sent to the user equipment UE.
  • the base station of the embodiment of the present invention by designing the eCSS in the ePDCCH, and including the primary set in the eCSS, the UE determines the resource configuration information of the primary set according to the system information of the base station after accessing the base station, so that the UE can be in the eCSS. Obtaining the DCI sent by the base station in the included primary set, and further acquiring the downlink data and the high layer signaling sent by the base station by using the DCI, so that the UE and the base station can perform normal communication in a future wireless network system, thereby enhancing the actual system. feasibility.
  • the processor 610 may be a central processing unit ("CPU"), and the processor 610 may also be other general-purpose processors, digital signal processors (DSPs). , Application Specific Integrated Circuits (ASICs), off-the-shelf programmable gate arrays (FPGAs) or other programmable logic devices, discrete gates or transistor logic devices, discrete hardware components, and more.
  • the general purpose processor may be a microprocessor or the processor or any conventional processor or the like.
  • the memory 620 can include read only memory and random access memory and provides instructions and data to the processor 610. A portion of memory 620 may also include non-volatile random access memory. For example, the memory 620 can also store information of the device type.
  • the bus system 630 can include, in addition to the data bus, a power bus, a control bus, and a status signal bus. However, for clarity of description, various buses are labeled as bus system 630 in the figure.
  • the steps of the above method may be performed by an integrated logic circuit of hardware in the processor 610 or an instruction in the form of software.
  • the steps of the method disclosed in the embodiments of the present invention may be directly implemented as hardware processor execution completion or performed by a combination of hardware and software modules in the processor.
  • the software module can be located in a conventional storage medium such as random access memory, flash memory, read only memory, programmable read only memory or electrically erasable programmable memory, registers, and the like.
  • the storage medium is located in the memory 620, and the processor 610 reads the information in the memory 620 and performs the steps of the above method in combination with the hardware. To avoid repetition, it will not be described in detail here.
  • the system information includes at least one of the following information: system bandwidth information, the base station Cell identification information and system subframe number information.
  • the processor 610 is further configured to determine, according to the system information, a quantity and location information of a PRB pair occupied by the primary set; and determine, according to the cell identity information included in the system information, The sequence initialization parameter information of the DCI transmitted in the primary set and the sequence initialization parameter information of the demodulation reference signal DMRS.
  • the processor 610 is specifically configured to determine, according to the system information, that the number of PRB pairs occupied by the primary set is N, and N is an integer greater than zero; determining N PRBs occupied by the primary set.
  • the reference position information of the pair determining the distance information between the N PRB pairs and the reference position in the frequency domain; and the spacing information between the N position and the N-th PRB pair and the reference position in the frequency domain , determining location information of each of the N PRB pairs.
  • the processor 610 is further configured to determine resource configuration information of the at least one auxiliary set included in the eCSS, where the at least one auxiliary set is an ePDCCH set;
  • the transmitter 640 is further configured to send the first indication information to the UE, where the first indication information is used to indicate resource configuration information of the at least one auxiliary set determined by the processor 610.
  • the resource configuration information of the at least one auxiliary set includes: a quantity and location information of the PRB occupied by the at least one auxiliary set, sequence initialization parameter information of the DCI transmitted by the at least one auxiliary set, and The sequence initialization parameter information of the DMRS transmitted by the at least one auxiliary set, and the sequence initialization parameters of the DCI and DMRS transmitted in the at least one auxiliary set are any integer greater than or equal to zero.
  • the transmitter 640 is further configured to send, to the UE, second indication information, where the second indication information is used to indicate a DCI format of a DCI transmitted to the UE in the first auxiliary set, where At least one auxiliary set includes the first auxiliary set.
  • the transmitter 640 is further configured to send, to the UE, third indication information, where the third indication information is used to indicate an RNTI used by the DCI transmitted to the UE in the second auxiliary set.
  • the type, the at least one auxiliary set includes the second auxiliary set.
  • the processor 610 is further configured to determine, from the primary set and the at least one auxiliary set, a first set for sending a DCI;
  • the transmitter 640 is further configured to send a DCI to the UE in the first set determined by the processor 610.
  • the base station 600 may correspond to the base station and the base station 400 for transmitting the DCI in the embodiment of the present invention, and the foregoing and other operations and/or functions of the respective modules in the base station 600 are respectively
  • the corresponding processes of the respective methods in FIG. 7 to FIG. 9 are implemented, and for brevity, details are not described herein again.
  • the base station of the embodiment of the present invention by designing the eCSS in the ePDCCH, and including the primary set in the eCSS, the UE determines the resource configuration information of the primary set according to the system information of the base station after accessing the base station, so that the UE can be in the eCSS. Obtaining the DCI sent by the base station in the included primary set, and further acquiring the downlink data and the high layer signaling sent by the base station by using the DCI, so that the UE and the base station can perform normal communication in a future wireless network system, thereby enhancing the actual system. feasibility.
  • the term "and/or” is merely an association relationship describing an associated object, indicating that there may be three relationships.
  • a and / or B can mean: A exists separately, there are A and B, and there are three cases of B alone.
  • the character " /,, in this article, generally means that the contextual object is an "or" relationship.
  • the disclosed systems, devices, and methods may be implemented in other ways.
  • the device embodiments described above are merely illustrative.
  • the division of the unit is only a logical function division.
  • there may be another division manner for example, multiple units or components may be combined or Can be integrated into another system, or some features can be ignored, or not executed.
  • the mutual coupling or direct coupling or communication connection shown or discussed may be an indirect coupling or communication connection through some interface, device or unit, or an electrical, mechanical or other form of connection.
  • the components displayed by the unit may or may not be physical units, that is, may be located in one place, or may be distributed to multiple network units. Some or all of the units may be selected according to actual needs to achieve the objectives of the embodiments of the present invention.
  • each functional unit in each embodiment of the present invention may be integrated into one processing unit, or each unit may exist physically separately, or two or more units may be integrated into one unit.
  • the above integrated unit can be implemented in the form of hardware or in the form of a software functional unit.
  • the integrated unit if implemented in the form of a software functional unit and sold or used as a standalone product, may be stored in a computer readable storage medium.
  • the technical solution of the present invention contributes in essence or to the prior art, or all or part of the technical solution may be embodied in the form of a software product stored in a storage medium.
  • a number of instructions are included to cause a computer device (which may be a personal computer, server, or network device, etc.) to perform all or part of the steps of the methods described in various embodiments of the present invention.
  • the foregoing storage medium includes: a USB flash drive, a mobile hard disk, a read-only memory (Read-Only Memory, abbreviated as "ROM,”), a random access memory (Random Access Memory (“RAM”), a disk. Or a variety of media such as optical discs that can store program code.
  • ROM Read-Only Memory
  • RAM Random Access Memory

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Abstract

本发明公开了一种用于传输下行控制信息DCI的方法及其装置,该方法包括:获取基站的系统信息;根据所述系统信息,确定eCSS包括的主集合的资源配置信息,所述eCSS位于ePDCCH中;根据所述主集合的资源配置信息,在所述主集合中盲检测所述基站发送的DCI。因此,本发明实施例的用于传输DCI的方法及其装置,通过在ePDCCH设计eCSS,且在eCSS中包括主集合,UE根据该基站的系统信息确定该主集合的资源配置信息,使得UE能够在该主集合中获取基站发送的DCI,并且进一步通过该DCI获取该基站发送的下行数据和高层信令,从而使得UE和基站可以在未来的无线网络系统中进行正常通信,增强了系统的实际可行性。

Description

用于传输下行控制信息 DCI的方法及其装置
本申请要求于 2013 年 5 月 27 日提交中国专利局、 申请号为
201310200421.4、 发明名称为"用于传输下行控制信息 DCI 的方法及其装置" 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
本发明实施例涉及通信领域, 并且更具体地, 涉及用于传输下行控制信息 DCI的方法及其装置。
背景技术
在无线网络通信系统中, 基站通过下行传输将数据传送给用户设备(User Equipment, 简称为 "UE" )。 UE在接收下行数据时, 大体分成两个步骤: 首 先, UE 在物理下行控制信道 ( Physical Downlink Control Channel, 简称为 "PDCCH" ) 或者增强型物理下行控制信道 ( Enhanced Physical Downlink Control Channel, 简称为 "ePDCCH" )中接收下行控制信令 ( Downlink Control Information, 简称为 "DCI" ), DCI指示 UE进行一系列的行为, 包括指示 UE 如何接收下行数据,怎样发送上行数据,如何进行发射功率调整,等等; 其次, UE在正确接收了 DCI之后,再根据从 DCI接收到的指示,在物理下行共享信 道(Physical Downlink Shared Channel, 简称为 "PDSCH" )中接收真正的下行 数据。为了帮助 UE判断出接收的 DCI的用途,长期演进( Long Term Evolution, 简称为 "LTE" ) 系统中的 DCI分成了很多种 DCI格式, 并釆用不同的类别的 无线网络临时标识( Radio Network Temporary Identifier, 简称为 "RNTI" )进 行校验位生成。 UE在接收 DCI的时候, 通过判断接收到的 DCI釆用了哪种 DCI格式和 RNTI , 就可以确定 DCI的用途。
在现有的 LTE系统中, 在 PDCCH中存在公共搜索空间 ( Common Search
Space, 简称为 "CSS" )和用户搜索空间 ( UE Search Space , 简称为 "USS" )。 而在 ePDCCH中仅存在 USS, 而没有 CSS。 基站可以在 ePDCCH中为 UE配 置一个或两个用于传输 DCI的 ePDCCH集合,每个 ePDCCH 集合占用若干个 物理资源块(Physical Resource Block, 简称为 "PRB" )对。 然而, UE初始 接入基站时, 并不清楚 ePDCCH的资源配置信息。基站在 UE接入之后, 需要 在 PDCCH上向该 UE发送 DCI, 并且通过该下发的 DCI调度 PDSCH。 然后, 基站在 PDSCH上通过高层信令将 ePDCCH的资源配置信息通知 UE, 该资源 配置信息可以包括: 该 ePDCCH中包括几个 ePDCCH集合, 每个集合占用的 PRB对的位置和数量, 每个集合中传输的 DCI所釆用的序列初始化参数和每 个集合中传输的解调参考信号 ( Demodulation Reference Signal , 简称为 "DMRS" ) 的序列初始化参数。 在高层信令配置完毕后, 该 UE 就可以在 ePDCCH中盲检测 DCI。
在未来的 LTE网络中, PDCCH可能会被取消, 或者只是进行极为有限的 使用。 在这样的情况下, UE无法从 PDCCH中获取 DCI以及进一步获取相应 的高层信令, 所以 UE只能在初始接入后从 ePDCCH中获取 DCL 然而, 由于 在 ePDCCH中不存在 CSS, UE在初始接入后无法获取 ePDCCH的资源配置 信息以及进一步获取 ePDCCH中传输的 DCI。 针对该问题, 本发明提供了一 种在 ePDCCH设计增强型公共搜索空间 ( enhanced Common Search Space , 简 称为 "eCSS" )的技术方案, UE可以在初始接入基站之后获取该 eCSS的资源 配置信息, 从而可以通过该 eCSS中发送的 DCI来获取下行数据和高层信令。
发明内容
本发明实施例提供了一种用于传输 DCI的方法及其装置,能够使 UE在接 入基站后获取 ePDCCH的资源配置信息。
第一方面, 提供了一种用于传输下行控制信息 DCI 的方法, 包括: 获取 基站的系统信息; 根据该系统信息, 确定增强型公共搜索空间 eCSS包括的主 集合的资源配置信息, 该 eCSS位于增强型物理下行控制信道 ePDCCH中, 该 主集合为 ePDCCH集合; 根据该主集合的资源配置信息, 在该主集合中盲检 测该基站发送的 DCI。
结合第一方面,在第一种可能的实现方式中, 该系统信息包括下列信息中 的至少一种: 系统带宽信息、 该基站的小区标识信息和系统子帧号信息。
结合第一方面或结合第一方面的第一种可能的实现方式,在第二种可能的 实现方式中, 该获取基站的系统信息, 包括: 从该基站发送的同步信号中获取 该系统信息; 和 /或从该基站发送的广播信道信号中获取该系统信息。
结合第一方面或结合第一方面的第一种或第二种可能的实现方式,在第三 种可能的实现方式中, 该根据该系统信息, 确定 eCSS包括的主集合的资源配 置信息, 包括: 根据该系统信息, 确定该主集合占用的 PRB对的数量和位置 信息; 根据该系统信息中包括的小区标识信息, 确定该主集合中传输的 DCI 的序列初始化参数信息和解调参考信号 DMRS的序列初始化参数信息。
结合第一方面的第三种可能的实现方式,在第四种可能的实现方式中, 该 根据该系统信息, 确定该主集合占用的 PRB对的数量和位置信息, 包括: 根 据该系统信息, 确定该主集合占用的 PRB对的数量为 N, N为大于零的整数; 确定该主集合占用的 N个 PRB对的基准位置信息; 确定该 N个 PRB对分别 与该基准位置在频域的间距信息; 根据该基准位置信息和该 N个 PRB对分别 与该基准位置在频域之间的间距信息 ,确定该 N个 PRB对中的每个 PRB对的 位置信息。
结合第一方面或结合第一方面的第一种至第四种可能的实现方式中的任 一种可能的实现方式, 在第五种可能的实现方式中, 该方法还包括: 接收该基 站发送的第一指示信息, 该第一指示信息用于指示该基站在该主集合中向 UE 传输的 DCI的 DCI格式; 根据该第一指示信息, 在该主集合中盲检测该基站 发送的 DCI。
结合第一方面或结合第一方面的第一种至第五种可能的实现方式中的任 一种可能的实现方式, 在第六种可能的实现方式中, 该方法还包括: 接收该基 站发送的第二指示信息, 该第二指示信息用于指示该基站在该主集合中向 UE 传输的 DCI的 RNTI的类型;根据该第二指示信息,在该主集合中盲检测该基 站发送的 DCI。
结合第一方面或结合第一方面的第一种至第六种可能的实现方式中的任 一种可能的实现方式, 在第七种可能的实现方式中, 该方法还包括: 接收该基 站发送的第三指示信息, 该第三指示信息用于指示该 eCSS包括的至少一个辅 助集合的资源配置信息, 该至少一个辅助集合为 ePDCCH集合; 根据该第三 指示信息, 在该至少一个辅助集合中盲检测该基站发送的 DCI。
结合第一方面的第七种可能的实现方式,在第八种可能的实现方式中, 该 至少一个辅助集合的资源配置信息, 包括: 该至少一个辅助集合占用的 PRB 对的数量和位置信息、 该至少一个辅助集合中传输的 DCI 的序列初始化参数 信息和该至少一个辅助集合中传输的 DMRS的序列初始化参数信息, 该至少 一个辅助集合中传输的 DCI和 DMRS的序列初始化参数为大于或等于零的任 意整数。
结合第一方面的第七种或第八种可能的实现方式,在第九种可能的实现方 式中, 该方法还包括: 接收该基站发送的第四指示信息, 该第四指示信息用于 指示该基站在第一辅助集合中向用户设备 UE传输的 DCI的 DCI格式, 该至 少一个辅助集合包括该第一辅助集合; 该根据该第三指示信息, 在该至少一个 辅助集合中盲检测该基站发送的 DCI, 包括: 根据该第三指示信息和该第四指 示信息, 在该至少一个辅助集合中盲检测该基站发送的 DCI。
结合第一方面的第七种或第八种或第九种可能的实现方式,在第十种可能 的实现方式中, 该方法还包括: 接收该基站发送的第五指示信息, 该第五指示 信息用于指示该基站在第二辅助集合中向 UE传输的 DCI所釆用的 RNTI的类 型, 该至少一个辅助集合包括该第二辅助集合; 该根据该第三指示信息, 在该 至少一个辅助集合中盲检测该基站发送的 DCI, 包括: 根据该第三指示信息和 该第五指示信息, 在该至少一个辅助集合中盲检测该基站发送的 DCI。
第二方面, 提供了另一种用于传输下行控制信息 DCI的方法, 包括: 根 据基站的系统信息, 确定增强型公共搜索空间 eCSS包括的主集合的资源配置 信息,该 eCSS位于增强型物理下行控制信道 ePDCCH中,该主集合为 ePDCCH 集合;根据该主集合的资源配置信息,在该主集合中向用户设备 UE发送 DCI。
结合第二方面,在第一种可能的实现方式中, 该系统信息包括下列信息中 的至少一种: 系统带宽信息、 该基站的小区标识信息和系统子帧号信息。
结合第二方面或结合第二方面的第一种可能的实现方式,在第二种可能的 实现方式中, 该根据该系统信息, 确定 eCSS包括的主集合的资源配置信息, 包括: 根据该系统信息, 确定该主集合占用的 PRB对的数量和位置信息; 根 据该系统信息中包括的小区标识信息, 确定该主集合中传输的 DCI的序列初 始化参数信息和解调参考信号 DMRS的序列初始化参数信息。
结合第二方面的第二种可能的实现方式,在第三种可能的实现方式中, 该 根据该系统信息, 确定该主集合占用的 PRB对的数量和位置信息, 包括: 根 据该系统信息, 确定该主集合占用的 PRB对的数量为 N, N为大于零的整数; 确定该主集合占用的 N个 PRB对的基准位置信息; 确定该 N个 PRB对分别 与该基准位置在频域的间距信息; 根据该基准位置信息和该 N个 PRB对分别 与该基准位置在频域之间的间距信息 ,确定该 N个 PRB对中的每个 PRB对的 位置信息。
结合第二方面或结合第二方面的第一种或第二种或第三种可能的实现方 式,在第四种可能的实现方式中,该方法还包括: 向该 UE发送第一指示信息, 该第一指示信息用于指示基站在该主集合中向该 UE传输的 DCI的 DCI格式, 以便该 UE根据该第一指示信息在该主集合中盲检测 DCI。
结合第二方面或结合第二方面的第一种至第四种可能的实现方式中的任 一种可能的实现方式, 在第五种可能的实现方式中, 该方法还包括: 向该 UE 发送第二指示信息,该第二指示信息用于指示基站在该主集合中向该 UE传输 的 DCI的 RNTI的类型,以便该 UE根据该第二指示信息在该主集合中盲检测 DCI。
结合第二方面或结合第二方面的第一种至第五种可能的实现方式中的任 一种可能的实现方式, 在第六种可能的实现方式中, 该方法还包括: 确定该 eCSS 包括的至少一个辅助集合的资源配置信息, 该至少一个辅助集合为 ePDCCH集合; 向该 UE发送第三指示信息, 该第三指示信息用于指示该至少 一个辅助集合的资源配置信息。
结合第二方面的第六种可能的实现方式,在第七种可能的实现方式中, 该 至少一个辅助集合的资源配置信息, 包括: 该至少一个辅助集合占用的 PRB 的数量和位置信息、 该至少一个辅助集合传输的 DCI的序列初始化参数信息 和该至少一个辅助集合传输的 DMRS的序列初始化参数信息, 该至少一个辅 助集合中传输的 DCI和 DMRS的序列初始化参数为大于或等于零的任意整数。
结合第二方面的第六种或第七种可能的实现方式,在第八种可能的实现方 式中, 该方法还包括: 向该 UE发送第四指示信息, 该第四指示信息用于指示 第一辅助集合中向该 UE传输的 DCI的 DCI格式, 该至少一个辅助集合包括 该第一辅助集合。
结合第二方面的第六种或第七种或第八种可能的实现方式,在第九种可能 的实现方式中, 该方法还包括: 向该 UE发送第五指示信息, 该第五指示信息 用于指示第二辅助集合中向该 UE传输的 DCI所釆用的 RNTI的类型,该至少 一个辅助集合包括该第二辅助集合。
结合第二方面的第六种至第九种可能的实现方式中的任一种可能的实现 方式, 在第十种可能的实现方式中, 该方法还包括: 从该主集合和该至少一个 辅助集合中确定用于发送 DCI的第一集合;在该第一集合中向该 UE发送 DCI。 第三方面, 提供了一种用户设备 UE, 包括: 获取模块, 用于获取基站的 系统信息; 确定模块, 用于根据该获取模块获取的该系统信息, 确定增强型公 共搜索空间 eCSS包括的主集合的资源配置信息, 该 eCSS位于增强型物理下 行控制信道 ePDCCH中, 该主集合为 ePDCCH集合; 盲检测模块, 用于根据 该确定模块确定的该主集合的资源配置信息,在该主集合中盲检测该基站发送 的 DCI。
结合第三方面,在第一种可能的实现方式中, 该系统信息包括下列信息中 的至少一种: 系统带宽信息、 该基站的小区标识信息和系统子帧号信息。
结合第三方面或结合第三方面的第一种可能的实现方式,在第二种可能的 实现方式中, 该获取模块具体用于从该基站发送的同步信号中获取该系统信 息; 和 /或用于从该基站发送的广播信道信号中获取该系统信息。
结合第三方面或结合第三方面的第一种或第二种可能的实现方式,在第三 种可能的实现方式中,该确定模块包括:第一确定单元,用于根据该系统信息, 确定该主集合占用的 PRB对的数量和位置信息; 第二确定单元, 用于根据该 系统信息中包括的小区标识信息, 确定该主集合中传输的 DCI的序列初始化 参数信息和解调参考信号 DMRS的序列初始化参数信息。
结合第三方面的第三种可能的实现方式,在第四种可能的实现方式中, 该 第一确定单元包括: 第一确定子单元, 用于根据该系统信息, 确定该主集合占 用的 PRB对的数量为 N, N为大于零的整数; 第二确定子单元, 用于确定该 主集合占用的 N个 PRB对的基准位置信息; 第三确定子单元, 用于确定该 N 个 PRB对分别与该基准位置在频域的间距信息; 第四确定子单元, 用于根据 该第三确定子单元确定的该基准位置信息和该第三确定子单元确定的该 N个 PRB对分别与该基准位置在频域之间的间距信息, 确定该主集合占用的 N个 PRB对中的每个 PRB对的位置信息。
结合第三方面或结合第三方面的第一种至第四种可能的实现方式中的任 一种可能的实现方式, 在第五种可能的实现方式中, 该 UE还包括: 第一接收 模块, 用于接收该基站发送的第一指示信息, 该第一指示信息用于指示该基站 在该主集合中向 UE传输的 DCI的 DCI格式; 该盲检测模块还用于根据该第 一接收模块接收的该第一指示信息, 在该主集合中盲检测该基站发送的 DCI。
结合第三方面或结合第三方面的第一种至第五种可能的实现方式中的任 一种可能的实现方式, 在第六种可能的实现方式中, 该 UE还包括: 第二接收 模块, 用于接收接收该基站发送的第二指示信息, 该第二指示信息用于指示该 基站在该主集合中向 UE传输的 DCI的 RNTI的类型;该盲检测模块还用于根 据该第二接收模块接收的该第二指示信息,在该主集合中盲检测该基站发送的 DCI。
结合第三方面或结合第三方面的第一种至第六种可能的实现方式中的任 一种可能的实现方式, 在第七种可能的实现方式中, 该 UE还包括: 第三接收 模块,用于接收该基站发送的第三指示信息,该第三指示信息用于指示该 eCSS 包括的至少一个辅助集合的资源配置信息, 该至少一个辅助集合为 ePDCCH 集合; 该盲检测模块还用于根据该第三接收模块接收的该第三指示信息,在该 至少一个辅助集合中盲检测该基站发送的 DCI。
结合第三方面的第七种可能的实现方式,在第八种可能的实现方式中, 该 至少一个辅助集合的资源配置信息, 包括: 该至少一个辅助集合占用的 PRB 对的数量和位置信息、 该至少一个辅助集合中传输的 DCI 的序列初始化参数 信息和该至少一个辅助集合中传输的 DMRS的序列初始化参数信息, 该至少 一个辅助集合中传输的 DCI和 DMRS的序列初始化参数为大于或等于零的任 意整数。
结合第三方面的第七种或第八种可能的实现方式,在第九种可能的实现方 式中, 该第三接收模块还用于接收该基站发送的第四指示信息, 该第四指示信 息用于指示该基站在第一辅助集合中向该 UE传输的 DCI的 DCI格式, 该至 少一个辅助集合包括该第一辅助集合;该盲检测模块具体用于根据该第三接收 模块接收的该第三指示信息和该第四指示信息,在该至少一个辅助集合中盲检 测该基站发送的 DCI。
结合第三方面的第七种或第八种或第九种可能的实现方式,在第十种可能 的实现方式中, 该第三接收模块还用于接收该基站发送的第五指示信息, 该第 五指示信息用于指示该基站在第二辅助集合中向该 UE传输的 DCI所釆用的 RNTI的类型, 该至少一个辅助集合包括该第二辅助集合; 该盲检测模块具体 用于根据该第三接收模块接收的该第三指示信息和该第五指示信息,在该至少 一个辅助集合中盲检测该基站发送的 DCI。
第四方面,提供了一种基站, 包括: 确定模块,用于根据基站的系统信息, 确定增强型公共搜索空间 eCSS包括的主集合的资源配置信息, 该 eCSS位于 增强型物理下行控制信道 ePDCCH中,该主集合为 ePDCCH集合; 发送模块, 用于根据该确定模块确定的该主集合的资源配置信息,在该主集合中向用户设 备 UE发送 DCI。
结合第四方面,在第一种可能的实现方式中, 该系统信息包括下列信息中 的至少一种: 系统带宽信息、 该基站的小区标识信息和系统子帧号信息。
结合第四方面或结合第四方面的第一种可能的实现方式,在第二种可能的 实现方式中, 该确定模块包括: 第一确定单元, 用于根据该系统信息, 确定该 主集合占用的 PRB对的数量和位置信息; 第二确定单元, 用于根据该系统信 息中包括的小区标识信息, 确定该主集合中传输的 DCI的序列初始化参数信 息和解调参考信号 DMRS的序列初始化参数信息。
结合第四方面的第二种可能的实现方式,在第三种可能的实现方式中, 该 第一确定单元包括: 第一确定子单元, 用于根据该系统信息, 确定该主集合占 用的 PRB对的数量为 N, N为大于零的整数; 第二确定子单元, 用于确定该 主集合占用的 N个 PRB对的基准位置信息; 第三确定子单元, 用于确定该 N 个 PRB对分别与该基准位置在频域的间距信息; 第四确定子单元, 用于根据 该第三确定子单元确定的该基准位置信息和该第三确定子单元确定的该 N个 PRB对分别与该基准位置在频域之间的间距信息, 确定该 N个 PRB对中的每 个 PRB对的位置信息。
结合第四方面或结合第四方面的第一种或第二种或第三种可能的实现方 式, 在第四种可能的实现方式中, 该发送模块还用于向该 UE发送第一指示信 息, 该第一指示信息用于指示基站在该主集合中向该 UE传输的 DCI的 DCI 格式, 以便该 UE根据该第一指示信息在该主集合中盲检测 DCI。
结合第四方面或结合第四方面的第一种至第四种可能的实现方式中的任 一种可能的实现方式, 在第五种可能的实现方式中, 该发送模块还用于向该 UE发送第二指示信息, 该第二指示信息用于指示基站在该主集合中向该 UE 传输的 DCI的 RNTI的类型,以便该 UE根据该第二指示信息在该主集合中盲 检测 DCI。
结合第四方面或结合第四方面的第一种至第五种可能的实现方式中的任 一种可能的实现方式,在第六种可能的实现方式中, 该确定模块还用于确定该 eCSS 包括的至少一个辅助集合的资源配置信息, 该至少一个辅助集合为 ePDCCH集合; 该发送模块还用于向该 UE发送第三指示信息, 该第三指示信 息用于指示该确定模块确定的该至少一个辅助集合的资源配置信息。
结合第四方面或结合第四方面的第一种至第四种可能的实现方式中的任 一种可能的实现方式,在第五种可能的实现方式中, 该至少一个辅助集合的资 源配置信息, 包括: 该至少一个辅助集合占用的 PRB的数量和位置信息、 该 至少一个辅助集合传输的 DCI的序列初始化参数信息和该至少一个辅助集合 传输的 DMRS的序列初始化参数信息, 该至少一个辅助集合中传输的 DCI和 DMRS的序列初始化参数为大于或等于零的任意整数。
结合第四方面的第六种或第七种可能的实现方式,在第八种可能的实现方 式中, 该发送模块还用于向该 UE发送第四指示信息, 该第四指示信息用于指 示第一辅助集合中向该 UE传输的 DCI的 DCI格式, 该至少一个辅助集合包 括该第一辅助集合。
结合第四方面的第六种或第七种或第八种可能的实现方式,在第九种可能 的实现方式中, 该发送模块还用于向该 UE发送第三指示信息, 该第三指示信 息用于指示第二辅助集合中向该 UE传输的 DCI所釆用的 RNTI的类型,该至 少一个辅助集合包括该第二辅助集合。
结合第四方面的第六种至第九种可能的实现方式中的任一种可能的实现 方式,在第十种可能的实现方式中, 该确定模块还用于从该主集合和该至少一 个辅助集合中确定用于发送 DCI 的第一集合; 该发送模块还用于在该确定模 块确定的该第一集合中向该 UE发送 DCI。
本发明实施例的用于传输 DCI 的方法及其装置, 通过在 ePDCCH设计 eCSS, 且在 eCSS中包括主集合, UE在接入基站后根据该基站的系统信息确 定该主集合的资源配置信息, 使得 UE能够在该 eCSS包括的主集合中获取基 站发送的 DCI, 并且进一步通过该 DCI获取该基站发送的下行数据和高层信 令, 从而使得 UE和基站可以在未来的无线网络系统中进行正常通信, 增强了 系统的实际可行性。
附图说明
为了更清楚地说明本发明实施例的技术方案,下面将对本发明实施例或现 有技术描述中所需要使用的附图作简单地介绍,显而易见地, 下面所描述的附 图仅仅是本发明的一些实施例,对于本领域普通技术人员来讲, 在不付出创造 性劳动的前提下, 还可以根据这些附图获得其他的附图。
图 1是根据本发明实施例的用于传输下行控制信息 DCI的方法的示意性 流程图。
图 2是根据本发明实施例的用于传输 DCI的方法的另一示意性流程图。 图 3是根据本发明实施例的用于传输 DCI的方法的再一示意性流程图。 图 4是根据本发明实施例的用于传输 DCI的方法的再一示意性流程图。 图 5是根据本发明实施例的用于传输 DCI的方法的再一示意性流程图。 图 6是根据本发明实施例的用于传输 DCI的方法的再一示意性流程图。 图 7是根据本发明另一实施例的用于传输 DCI的方法的示意性流程图。 图 8是根据本发明另一实施例的用于传输 DCI的方法的另一示意性流程 图。
图 9是根据本发明另一实施例的用于传输 DCI的方法的再一示意性流程 图。
图 10是根据本发明实施例的用户设备的示意性框图。
图 11是根据本发明实施例的用户设备的确定模块的示意性框图。
图 12是根据本发明实施例的用户设备的确定模块的第一确定子单元的示 意性框图。
图 13是根据本发明实施例的用户设备的另一示意性框图。
图 14是根据本发明实施例的基站的示意性框图。
图 15是根据本发明另一实施例的用户设备的示意性框图。
图 16是根据本发明另一实施例的基站的示意性框图。
具体实施方式
下面将结合本发明实施例中的附图 ,对本发明实施例中的技术方案进行清 楚、 完整地描述, 显然, 所描述的实施例是本发明的一部分实施例, 而不是全 部实施例。基于本发明中的实施例, 本领域普通技术人员在没有做出创造性劳 动的前提下所获得的所有其他实施例, 都应属于本发明保护的范围。
应理解, 本发明实施例的技术方案可以应用于各种通信系统, 例如: 全球 移动通讯(Global System of Mobile communication, 简称为 "GSM" ) 系统、 码分多址(Code Division Multiple Access, 简称为 "CDMA" )系统、 宽带码分 多址( Wideband Code Division Multiple Access, 简称为 "WCDMA" ) 系统、 通用分组无线业务(General Packet Radio Service, 简称为 "GPRS" )、 长期演 进(Long Term Evolution, 简称为 "LTE" ) 系统、 LTE频分双工 (Frequency Division Duplex, 简称为 "FDD" )系统、 LTE时分双工( Time Division Duplex, 简称为 "TDD" )、 通用移动通信系统 ( Universal Mobile Telecommunication System, 简称为 "UMTS" )、 全球互联微波接入( Worldwide Interoperability for Microwave Access, 简称为 "WiMAX" )通信系统等, 并且尤其适用于 LTE系 统。
还应理解,在本发明实施例中,用户设备( User Equipment, 简称为 "UE" ) 可称之为终端 (Terminal ), 移动台 ( Mobile Station, 简称为 "MS" )、 移动终 端( Mobile Terminal )等,该用户设备可以经无线接入网( Radio Access Network, 简称为 "RAN" )与一个或多个核心网进行通信, 例如, 用户设备可以是移动 电话 (或称为 "蜂窝" 电话)、 具有移动终端的计算机等, 例如, 用户设备还 可以是便携式、 袖珍式、 手持式、 计算机内置的或者车载的移动装置, 它们与 无线接入网交换语音和 /或数据。
还应理解, 在本发明实施例中, 基站, 可以是 GSM或 CDMA中的基站 ( Base Transceiver Station , 简称为 "BTS" ), 也可以是 WCDMA中的基站 ( NodeB ), 还可以是 LTE中的演进型基站(evolved Node B, 简称为 "eNB" 或 "e-NodeB" )„ 本发明对此并不作限定。
图 1示出了才艮据本发明实施例的用于传输下行控制信息 DCI的方法 100 的示意性流程图, 方法 100可以由基站执行, 如图 1所示, 该方法 100包括: S110, 获取基站的系统信息;
S120, 根据该系统信息, 确定增强型公共搜索空间 eCSS包括的主集合的 资源配置信息, 该 eCSS位于增强型物理下行控制信道 ePDCCH中, 该主集合 为 ePDCCH集合; S130,根据该主集合的资源配置信息,在该主集合中盲检测所述基站发送 的 DCI。
因此,本发明实施例的用于传输 DCI的方法,通过在 ePDCCH设计 eCSS, 且在 eCSS中包括主集合, UE在接入基站后根据该基站的系统信息确定该主 集合的资源配置信息, 使得 UE能够在该 eCSS包括的主集合中获取基站发送 的 DCI, 并且进一步通过该 DCI获取该基站发送的下行数据和高层信令, 从 而使得 UE和基站可以在未来的无线网络系统中进行正常通信,增强了系统的 实际可行性。
在本发明实施例中, eCSS包括至少一个 ePDCCH集合,该 ePDCCH集合 占用至少一个 PRB对, 基站在该至少一个 PRB对上向 UE传输 DCI。 当基站 需要向 UE传输 DCI 时, 该基站会从该至少一个 ePDCCH集合中选择一个 ePDCCH集合传输该 DCI,而不会将该 DCI切分到多个 ePDCCH集合中传输。 优选地, 该 eCSS包括的至少一个 ePDCCH集合中的一个 ePDCCH集合可以 作为主集合,主集合为 UE接入基站后可以根据该基站的系统信息确定其资源 配置信息的 ePDCCH集合; 可选地, 当该 eCSS包括至少两个 ePDCCH集合 时, 该至少两个 ePDCCH集合中的除该主集合之外的 ePDCCH集合可以作为 辅助集合,辅助集合为 UE通过该基站发送的高层信令获取其资源配置信息的 ePDCCH集合。可选地,该 eCSS包括的至少一个 ePDCCH集合中也可以有多 个 ePDCCH集合作为主集合, 其余 ePDCCH集合作为辅助集合, 但本发明实 施例不限于此。
可选地, 该系统信息包括下列信息中的至少一种: 系统带宽信息、 该基站 的小区标识信息和系统子帧号信息。
可选地, 该系统信息还可以包括上述信息之外的其它信息, 本发明实施例 不限于此。 该 UE可以在初始接入基站时获取该基站的系统信息, 可选地, 该 UE可以从该基站发送的广播信道信号中获取该系统信息, 例如, 该 UE可以 通过解调该基站的物理广播信道 ( Physical Broadcast Channel , 简称为 "PBCH" )、 增强型物理广播信道 ( enhanced Physical Broadcast Channel, 简称 为 "ePBCH" )、或任何承载主信息块(Master Information Block,简称为 "MIB" ) 的信道获取该基站的系统子帧号信息和系统带宽信息; 可选地, 该 UE也可以 从该基站发送的同步信号中获取该系统信息, 例如, 该 UE通过检测该基站发 送的主同步信号( Primary Synchronization Signal, 简称为 "PSS" )和辅同步信 号 ( Secondary Synchronization Signal, 简称为 "SSS" ), 获取该基站的小区标 识信息, 但本发明实施例不限于此。
可选地, 如图 2所示, S120, 根据该系统信息, 确定 eCSS包括的主集合 的资源配置信息, 包括:
5121 ,根据该系统信息, 确定该主集合占用的 PRB对的数量和位置信息;
5122, 根据该系统信息中包括的小区标识信息, 确定该主集合中传输的 DCI的序列初始化参数信息和解调参考信号 DMRS的序列初始化参数信息。
其中, 该主集合可以占用至少一个 PRB对, 该主集合占用的 PRB对的位 置信息可以包括该主集合占用的所有 PRB对中的每个 PRB对的位置信息, 该 主集合中传输的 DCI的序列初始化参数表示该主集合中传输的 DCI的扰码序 列的序列初始化参数,但本发明实施例不限于此。此外,本发明实施例对 S121 和 S122的执行顺序不作限定, S121和 S122可以同时执行, 或按任意先后顺 序分别执行, 但本发明实施例不限于此。
可选地, 在 S121中, 该 UE可以预设系统信息与该主集合占用的 PRB对 的图样的对应关系, 例如, 系统带宽或小区标识与该主集合占用的 PRB对的 图样的对应关系, 并根据该基站的系统信息确定该主集合占用的 PRB对的图 样, 从而确定该主集合占用的 PRB对的数量和位置信息, 但本发明实施例不 限于此。 可选地, 作为另一实施例, 如图 3所示, S121 , 才艮据该系统信息, 确 定该主集合占用的 PRB对的数量和位置信息, 包括: S121a, 根据该系统信息, 确定该主集合占用的 PRB对的数量为 N, N为 大于零的整数;
S121b, 确定该主集合占用的 N个 PRB对的基准位置信息;
S121c, 确定该 N个 PRB对分别与该基准位置在频域的间距信息; S121d, 根据该基准位置信息和该 N个 PRB对分别与该基准位置在频域 之间的间距信息, 确定该 N个 PRB对中的每个 PRB对的位置信息。
其中,本发明实施例对步骤 S121a、 S121b和 S121c的执行顺序不作限定, 该步骤 S121a、 S121b和 S121c可以同时执行, 也可以以任意先后顺序分别执 行。 具体地, 在 S121a中, 该 UE可以通过多种方式确定该主集合占用的 PRB 对的数量, 可选地, 该 UE可以根据系统带宽信息确定该主集合占用的 PRB 对的数量, 一种可能的实现方式为: 假设系统带宽为 NRBDL (即带宽的 PRB 数量), 如果 NRBDL > M, 则该主集合占用 个 PRB对; 否则, 该主集合占用 N2个 PRB对, 其中, M可以是预设的任意大于或等于 1的整数。 例如, 如果 系统带宽超过 6个 PRB对, 则该主集合占用 4个 PRB对; 否则, 该主集合占 用 2个 PRB对, 但本发明实施例不限于此。
在 S121b中, 该基准位置可以是该主集合占用的 PRB对中位于任意位置 的 PRB对, 例如, 该主集合占用的所有 PRB对中频域位置最低的 PRB对占 据的位置、该主集合占用的所有 PRB对中位于中间的 PRB对或该主集合占用 的所有 PRB对中频域位置最高的 PRB对占据的位置, 也可以是基站侧和 UE 侧预先约定的位置, 例如系统带宽的最低频点, 但本发明实施例不限于此。 该 UE可以通过多种方式确定该基准位置, 以该基准位置为该主集合占用的所有 PRB对中频域位置最低的 PRB对为例, 为了方便描述, 以下将该频域位置最 低的 PRB对称为基准 PRB对。 具体地, 该 UE可以根据预设条件确定该基准 PRB对的位置, 例如预先规定所有基站的 eCSS的主集合的基准 PRB对的位 置为 0; 该 UE也可以从广播信道中获取该基准 PRB对的位置, 该广播信道可 以是 PBCH、 ePBCH或任何传输 MIB的信道; 该 UE还可以根据获取的该系 统信息, 确定该基准 PRB对的位置, 一种可选的具体实施方式为: 该 UE根 据该基站的小区标识确定该基准 PRB对的位置, 例如, 该基准 PRB对的位置 可以由下式确定:
k0 = (V X NRO CE11) mod (NRBDL) ( 1 )
其中, k。是该基准 PRB对的位置, NID ee11是该基站的小区标识, V是可配 置的大于或等于零的任意整数, NRBDL是系统带宽,但本发明实施例不限于此。
在上述可选的实施方式中, 该基准 PRB对的位置信息在所有子帧中都是 相同的, 因此, 确定该基准 PRB对的位置信息可以具体为确定该基准 PRB对 在频域的位置信息; 可选地, 该基准 PRB对的位置信息还可以依赖于当前子 帧号, 相应地, 确定该基准 PRB对的位置信息可以具体为确定当前子帧中该 基准 PRB对在频域的位置信息, 例如, 该基准 PRB对的位置根据当前子帧号 进行偏置, 该基准 PRB对的位置可以由下式确定:
k0 = (V X NiDCe11 + c X NSFN) mod (NRBDL) ( 2 )
其中, k。是该基准 PRB对的位置, NID ee11是该基站的小区标识, V是可配 置的大于或等于零的任意整数, NRBDL是系统带宽, NSFN是系统子帧号, c是 偏置步长, 但本发明实施例不限于此。
在 S121c中, 该 UE也可以通过多种方式确定该主集合占用的 N个 PRB 对分别与该基准位置之间的间距, 当该基准位置为上述实施例中的基准 PRB 对的位置时, 该基准 PRB对与该基准位置之间的间距为零。 具体地, 该 UE 可以根据预设条件确定该主集合占用的 N个 PRB对中频域位置最低的 PRB对 该 UE可以根据预设条件确定该 N个 PRB对与该基准 PRB对之间的间距信息, 例如, 预先规定所有基站的 eCSS 中的主集合占用的 PRB对之间的间距为 1 或 N, N为大于 1的任意整数; 可选地, 该 UE也可以在初始接入该基站时从 广播信道中获取该 N个 PRB对与该基准位置之间的间距信息, 例如, PBCH、 ePBCH或任何传输 MIB的信道; 可选地, 该 UE还可以根据该基站的系统信 息, 确定该 N个 PRB对与该基准位置之间的间距, 其中的一种优选实施方式 为: 该 eCSS中包括的主集合所占用的 N个 PRB对将系统带宽进行平分, 该 N个 PRB对均匀分布在系统带宽上, 此时, d = NRBDL/N, 其中 d表示该主集 合中相邻 PRB对之间的间距, NRBDL表示系统带宽, N表示该主集合占用的 PRB对的数量。 由于系统带宽可能不可以被 N整除, 这样需要具体计算出各 个 PRB 对之间的间距, 或者釆用取整的方式, 例如, 将上述式子得到的小数 釆用向上取整、 向下取整或四舍五入等, 本发明实施例不限于此。
在 S121d中,该 UE可以根据该基准 PRB对的位置信息和该 N个 PRB对 与该基准 PRB对之间的间距信息,确定该主集合占用的 N个 PRB对中的每个 PRB对的位置, 例如, 该主集合占用的每个 PRB对的位置可以由下式确定: k^ko + i x LNRBDL/NJ (3 )
其中, 1¾是第 i个 PRB对的位置, ko是基准 PRB对的位置, NRBDL是系统 带宽, 但本发明实施例不限于此。
在 S122中, 该 UE根据该基站的小区标识信息确定 DCI的序列初始化参 数的方式不限于一种, 可选地, 该主集合中传输的 DCI的序列初始化参数可 以由下式确定:
cim?CI= [ s/2\ x 29 + ^m cen (4)
其中, cmit DGI是 DCI的序列初始化参数, ns是当前时隙的编号, NID eeU是 基站的小区标识。 可选地, 该 UE还可以根据该基站的小区标识信息和系统子 帧号信息, 确定该主集合中传输的 DCI的序列初始化参数, 例如, 该主集合 中传输的 DCI的序列初始化参数可以由下式确定:
dmtDd s/
Figure imgf000020_0001
+ Nsfn (5 )
其中, cmit DGI是 DCI的序列初始化参数, ns是当前时隙的编号, NID eeU是 基站的小区标识, Nsfn是系统子帧号, 但本发明实施例不限于此。 该 UE根据该基站的小区标识信息确定该主集合中传输的 DMRS的序列 初始化参数的方式也不限于一种。 可选地, 该主集合中传输的 DMRS的序列 初始化参数可以由下式确定:
cimtDMRS = (L / 2j + l) x (2 x Nro ce11 + 1) x 216 + nSciD ( 6 )
其中, cmit DMRS是 DMRS的序列初始化参数, ns是当前时隙的编号, NID eeU 是基站的小区标识, nSCID 为可配置的大于等于零的整数。 可选地, 该 UE还 可以根据该基站的小区标识信息和系统子帧号信息, 确定该主集合中传输的 DMRS的序列初始化参数, 例如, 该主集合中传输的 DMRS的序列初始化参 数可以由下式确定:
cimt DMRS = (L¾/ 2J + 1) χ (2 χ (Nro ce11 + Nsfn) + 1) χ 216 + nSCID ( 7 ) 其中, cmit DMRS是 DMRS的序列初始化参数, 是当前时隙的编号, NID eeU 是基站的小区标识, Nsfn是系统子帧号, nSCID为可配置的大于等于零的整数, 但本发明实施例不限于此。 可选地, 该 UE还可以根据该基站的系统信息中包 括的其它信息, 确定该主集合中传输的 DCI和 DMRS的序列初始化参数, 本 发明实施例不限于此。
这样, 该 UE确定了该 eCSS中包括的主集合的资源配置信息, 就可以根 据该主集合的资源配置信息, 在该主集合中可以使用 DCI格式 0、 DCI格式 1A、 DCI格式 3、 DCI格式 3 A和 DCI格式 1C,并分别釆用 C-RNTI、 TPC-RNTI 和 SI-RNTI等不同的 RNTI类型盲检测该基站发送的 DCI,进而根据盲检测到 的 DCI, 接收该基站发送的下行数据和高层信令。 具体地, 该 UE可以根据该 DMRS 的序列初始化参数, 检测该主集合中传输的 DMRS, 并根据接收到的 DMRS对 ePDCCH做信道估计; 然后, 该 UE可以根据信道估计的结果和该 主集合中传输的 DCI的序列初始化参数, 使用可能的 DCI的格式和 RNTI的 类型, 在主集合中盲检测 DCI, 但本发明实施例不限于此。
可选地, 当该 UE以上述方式盲检测到该基站在该主集合中向该 UE传输 的 DCI之后, 该基站可以在该主集合中向该 UE传输 DCI格式 0、 DCI格式 1A、 DCI格式 3、 DCI格式 3A和 DCI格式 1C中的部分 DCI格式的 DCI, 和 /或该基站可以在该主集合中向该 UE传输 C-RNTI、 TPC-RNTI和 SI-RNTI等 RNTI类型中的部分 RNTI类型的 DCI, 并且, 该基站可以通过物理层信令或 高层信令向该 UE指示该基站在该主集合中向该 UE发送的 DCI的 DCI格式, 和 /或该基站可以通过物理层信令或高层信令向该 UE指示该基站在该主集合 中向该 UE发送的 DCI的 RNTI的类型, 从而提高检测效率, 降低检测的复杂 度。 可选地, 该基站可以通过不同的物理层信令或高层信令分别将该 DCI格 式和 RNTI的类型通知该 UE, 该基站也可以在一个物理层信令或高层信令中 将该 DCI格式和 RNTI的类型通知该 UE,但本发明实施例不限于此。相应地, 当该 UE接收到该基站发送的用于指示该基站在该主集合中向该 UE传输的 DCI的 DCI格式和 /或 RNTI的类型的指示信息时, 该 UE可以根据该指示信 息, 在该主集合中盲检测该基站发送的 DCI, 但本发明实施例不限于此。
可选地, 当该 eCSS中作为主集合的 ePDCCH集合的数量小于该 eCSS包 括的 ePDCCH集合的数量时, 该 eCSS还可以包括至少一个辅助集合, 该 UE 可以通过该基站发送的高层信令或物理层信令,获取该至少一个辅助集合中的 每个辅助集合的资源配置信息。 可选地, 作为另一实施例, 如图 4所示, 该方 法 100还包括:
S140,接收该基站发送的第一指示信息,该第一指示信息用于指示该 eCSS 包括的至少一个辅助集合的资源配置信息, 该至少一个辅助集合为 ePDCCH
S150,根据该第一指示信息,在该至少一个辅助集合中盲检测该基站发送 的 DCI。
该至少一个辅助集合中的每个辅助集合为一个 ePDCCH集合, 该至少一 个辅助集合的资源配置信息可以包括该至少一个辅助集合中的每个辅助集合 的资源配置信息,也可以包括该至少一个辅助集合中的一个或多个辅助集合的 资源配置信息。 具体地, 该 UE可以根据在主集合盲检测到的 DCI, 获取该基 站在 PDSCH中发送的高层信令或物理层信令, 该高层信令或物理层信令指示 该至少一个辅助集合中的所有辅助集合的资源配置信息; 可选地, 该 UE还可 以根据在主集合中盲检测到的 DCI, 获取该基站在 PDSCH中发送的高层信令 或物理层信令, 该高层信令或物理层信令用于指示该 eCSS包括的至少一个辅 助集合中的一个或多个辅助集合的资源配置信息, 然后该 UE可以在该主集合 和该一个或多个辅助集合中盲检测 DCI, 并根据盲检测到的 DCI获取该基站 在 PDSCH中进一步发送的高层信令或物理层信令, 并通过该进一步发送的高 层信令或物理层信令获得该至少一个辅助集合中的其它辅助集合的资源配置 信息, 但本发明实施例不限于此。
可选地, 该至少一个辅助集合的资源配置信息, 包括: 该至少一个辅助集 合占用的 PRB对的数量和位置信息、 该至少一个辅助集合中传输的 DCI的序 列初始化参数信息和该至少一个辅助集合中传输的 DMRS的序列初始化参数 信息, 该至少一个辅助集合中传输的 DCI和 DMRS的序列初始化参数为大于 或等于零的任意整数。
具体地, 该至少一个辅助集合中传输的 DCI的序列初始化参数和该至少 一个辅助集合中传输的 DMRS的序列初始化参数可以依赖于该基站的小区标 识信息, 也可以与该基站的小区标识信息无关, 但本发明实施例不限于此。
可选地, 该基站可以在该第一指示信息中将该至少一个辅助集合占用的
PRB对的数量和位置信息直接通知该 UE,也可以将该至少一个辅助集合占用 的 PRB对的数量和位置信息所依赖的信息通知该 UE, 该 UE可以通过该依赖 的信息和预先约定的方式确定该 PRB对的数量和位置信息。 相应地, 该基站 可以在该第一指示信息中将该至少一个辅助集合中向该 UE传输的 DCI 和 DMRS的序列初始化参数直接通知该 UE, 也可以将该 DCI和 DMRS的序列 初始化参数所依赖的信息通知该 UE, 该 UE可以通过该依赖的信息和预先约 定的方式确定该 DCI和 DMRS的序列初始化参数, 例如, 该 UE和基站侧约 定该基站在该至少一个辅助集合中向该 UE传输的 DCI的序列初始化参数由下 式确定: cmit Da = Lns/ 2j X 29 + NID, 其中, 为当前时隙号, NID为常数, 该基 站可以在该第一指示信息中将该 NID通知该 UE,该 UE可以根据该 NID和上式 确定该 DCI的序列初始化常数 cmit Da, 但本发明实施例不限于此。
可选地,该 UE在该至少一个辅助集合中盲检测 DCI时,可以使用与主集 合相同的 DCI格式和 RNTI的类型盲检测 DCI, 可选地, 基站也可以向该 UE 发送指示信息,指示该 UE在该至少一个辅助集合中的一个或多个辅助集合中 需要检测的 DCI格式, 从而提高检测效率, 降低检测的复杂度。 相应地, 作 为另一实施例, 如图 5所示, 该方法 100还包括:
S160,接收该基站发送的第二指示信息,该第二指示信息用于指示该基站 在第一辅助集合中用 UE传输的 DCI的 DCI格式, 该至少一个辅助集合包括 该第一辅助集合;
相应地, S150, 根据该第一指示信息, 在该至少一个辅助集合中盲检测该 基站发送的 DCI, 包括:
S151 ,根据该第一指示信息和该第二指示信息,在该至少一个辅助集合中 盲检测该基站发送的 DCI。
其中, 该第一辅助集合可以包括一个或多个辅助集合, 当该第一辅助集合 包括多个辅助集合时,该第二指示信息可以分别指示该基站在该多个辅助集合 中向该 UE分别传输的 DCI的 DCI格式, 也可以统一指示该多个辅助集合中 向该 UE传输的 DCI的 DCI格式。 可选地, 该基站可以在该第二指示信息中 显性地或隐性地指示在该第一辅助集合中向该 UE传输的 DCI的 DCI格式, 例如, 该基站可以在第二指示信息中指示在第一辅助集合中向该 UE传输的 DCI所使用的 DCI格式, 或该基站可以在第二指示信息中通过指示在该第一 辅助集合中向该 UE传输的 DCI所不会使用的 DCI格式来隐性地指示在该第 一辅助集合中向该 UE传输的 DCI的 DCI格式,相应地,该 UE可以在该第一 辅助集合中盲检测该第二指示信息中指示的该 UE需要检测的 DCI格式,但本 发明实施例不限于此。
可选地,该基站还可以指示该 UE在该至少一个辅助集合中的一个或多个 辅助集合中盲检测 DCI时需要盲检测的 RNTI的类型,从而提高检测效率, 降 低检测的复杂度。相应地,作为另一实施例,如图 6所示,该方法 100还包括:
S170,接收该基站发送的第三指示信息,该第三指示信息用于指示该基站 在第二辅助集合中向 UE传输的 DCI所釆用的 RNTI的类型,该至少一个辅助 集合包括该第二辅助集合;
S150,根据该第一指示信息,在该至少一个辅助集合中盲检测该基站发送 的 DCI, 包括:
S152,根据该第一指示信息和该第三指示信息,在该至少一个辅助集合中 盲检测该基站发送的 DCI。
其中, 该第二辅助集合可以包括一个或多个辅助集合,且该第二辅助集合 可以与该第一辅助集合为相同的辅助集合,或该第二辅助集合中的部分辅助集 合与该第一辅助集合相同,或该第二辅助集合与该第一辅助集合中的部分辅助 集合相同, 或该第二辅助集合为与该第一辅助集合完全不同的辅助集合。 当该 第二辅助集合包括多个辅助集合时,该第三指示信息可以指示该多个辅助集合 中向该 UE传输的 DCI所分别釆用的 RNTI的类型,也可以统一指示该多个辅 助集合中向该 UE传输的 DCI所釆用的 RNTI的类型。 可选地, 该基站可以在 该第三指示信息中显性地或隐性地指示该第二辅助集合中向该 UE传输的 DCI 所釆用的 RNTI的类型, 例如, 该基站可以在第三指示信息中直接指示第二辅 助集合中向该 UE传输的 DCI所釆用的 RNTI的类型,或该基站可以在第三指 示信息中通过指示在该第二辅助集合中向该 UE传输的 DCI 所不会釆用的 RNTI的类型来隐性地指示该第二辅助集合中向该 UE传输的 DCI所釆用的 RNTI的类型, 相应地, 该 UE可以在该第二辅助集合中盲检测该第三指示信 息中指示的该 UE需要盲检测的 RNTI的类型, 但本发明实施例不限于此。
可选地,该基站还可以向该 UE同时或分别发送该第二指示信息和该第三 指示信息, 使得该 UE可以根据该第一指示信息、 该第二指示信息和第三指示 信息, 在该至少一个辅助集合中盲检测 DCI, 但本发明实施例不限于此。
因此,本发明实施例的用于传输 DCI的方法,通过在 ePDCCH设计 eCSS, 且在 eCSS中包括主集合, UE在接入基站后根据该基站的系统信息确定该主 集合的资源配置信息, 使得 UE能够在该 eCSS包括的主集合中获取基站发送 的 DCI, 并且进一步通过该 DCI获取该基站发送的下行数据和高层信令, 从 而使得 UE和基站可以在未来的无线网络系统中进行正常通信,增强了系统的 实际可行性。
上文中结合图 1至图 6, 从用户设备 UE的角度详细描述了根据本发明实 施例的用于传输 DCI的方法, 下面将结合图 7至图 8,从基站的角度详细描述 根据本发明实施例的用于传输 DCI的方法。
图 7示出了才艮据本发明实施例的用于传输下行控制信息 DCI的方法 200 的示意性流程图, 该方法可以由基站执行, 如图 7所示, 该方法 200包括:
S210, 根据基站的系统信息, 确定增强型公共搜索空间 eCSS包括的主集 合的资源配置信息, 该 eCSS位于增强型物理下行控制信道 ePDCCH中, 该主 集合为 ePDCCH集合;
S220, 根据该主集合的资源配置信息, 在该主集合中向用户设备 UE发送
DCI。
因此,本发明实施例的用于传输 DCI的方法,通过在 ePDCCH设计 eCSS, 且在 eCSS中包括主集合, UE在接入基站后根据该基站的系统信息确定该主 集合的资源配置信息, 使得 UE能够在该 eCSS包括的主集合中获取基站发送 的 DCI, 并且进一步通过该 DCI获取该基站发送的下行数据和高层信令, 从 而使得 UE和基站可以在未来的无线网络系统中进行正常通信,增强了系统的 实际可行性。
可选地, 该系统信息包括下列信息中的至少一种: 系统带宽信息、 该基站 的小区标识信息和系统子帧号信息。
可选地, S210, 根据该系统信息, 确定 eCSS包括的主集合的资源配置信 息, 包括:
5211 , 根据该系统信息, 确定该主集合占用的 PRB对的数量和位置信息;
5212, 根据该系统信息中包括的小区标识信息, 确定该主集合中传输的 DCI的序列初始化参数信息和解调参考信号 DMRS的序列初始化参数信息。
可选地, S211 , 根据该系统信息, 确定该主集合占用的 PRB对的数量和 位置信息, 包括:
S211a, 根据该系统信息, 确定该主集合占用的 PRB对的数量为 N, N为 大于零的整数;
S211b, 确定该主集合占用的 N个 PRB对的基准位置信息;
S211c, 确定该 N个 PRB对分别与该基准位置在频域的间距信息; S211d, 根据该基准位置信息和该 N个 PRB对分别与该基准位置在频域 之间的间距信息, 确定该 N个 PRB对中的每个 PRB对的位置信息。
其中, 该基准位置信息可以在所有子帧中都是相同的, 因此, 该基站确定 该基准位置信息可以具体为确定该基准位置在频域的信息; 可选地, 该基准位 置信息还可以依赖于当前子帧号,相应地, 该基站确定该基准位置信息可以具 体为确定当前子帧中该基准位置在频域的信息。具体确定方法可参照上述实施 例, 为了简洁, 这里不再赘述。
可选地,作为另一实施例, 当该 eCSS包括主集合和至少一个辅助集合时, 如图 8所示, 该方法 200还包括: S230, 确定该 eCSS包括的至少一个辅助集合的资源配置信息, 该至少一 个辅助集合为 ePDCCH集合;
S240, 向该 UE发送第一指示信息, 该第一指示信息用于指示该至少一个 辅助集合的资源配置信息。
可选地, 该至少一个辅助集合的资源配置信息, 包括: 该至少一个辅助集 合占用的 PRB的数量和位置信息、 该至少一个辅助集合传输的 DCI的序列初 始化参数信息和该至少一个辅助集合传输的 DMRS的序列初始化参数信息, 该至少一个辅助集合中传输的 DCI和 DMRS的序列初始化参数为大于或等于 零的任意整数。
其中, 该基站可以根据该基站的小区标识信息,确定该至少一个辅助集合 的资源配置信息; 可选地, 该基站还可以根据除该小区标识之外的任意大于或 等于零的整数,确定该至少一个辅助集合的资源配置信息,但本发明实施例不 限于此。
可选地, 基站还可以向该 UE发送第二指示信息, 指示该 UE在该至少一 个辅助集合中的一个或多个辅助集合中需要检测的 DCI格式或无需检测的 DCI格式,从而提高检测效率, 降低检测的复杂度。相应地,作为另一实施例, 该方法 200还包括:
S250, 向该 UE发送第二指示信息, 该第二指示信息用于指示第一辅助集 合中向该 UE传输的 DCI的 DCI格式, 该至少一个辅助集合包括该第一辅助 集合。
可选地, 基站还可以向该 UE发送第三指示信息, 指示该 UE在该至少一 个辅助集合中的一个或多个辅助集合中需要检测的 RNTI的类型或无需检测的 RNTI的类型, 从而提高检测效率, 降低检测的复杂度。 作为另一实施例, 该 方法 200还包括:
S260, 向该 UE发送第三指示信息, 该第三指示信息用于指示第二辅助集 合中向该 UE传输的 DCI所釆用的 RNTI的类型,该至少一个辅助集合包括该 第二辅助集合。
可选地, 当该基站将该至少一个辅助集合的配置信息通知该 UE后, 该基 站就可以在每次需要向该 UE发送 DCI时,从该主集合和该至少一个辅助集合 中确定一个 ePDCCH集合, 并在该 ePDCCH集合中向该 UE发送 DCI, 相应 地, 作为另一实施例, 如图 9所示, 该方法 200还包括:
S270, 从该主集合和该至少一个辅助集合中确定用于发送 DCI的第一集 合;
S280, 在该第一集合中向该 UE传输 DCI。
因此,本发明实施例的用于传输 DCI的方法,通过在 ePDCCH设计 eCSS, 且在 eCSS中包括主集合, UE在接入基站后根据该基站的系统信息确定该主 集合的资源配置信息, 使得 UE能够在该 eCSS包括的主集合中获取基站发送 的 DCI, 并且进一步通过该 DCI获取该基站发送的下行数据和高层信令, 从 而使得 UE和基站可以在未来的无线网络系统中进行正常通信,增强了系统的 实际可行性。
上文中结合图 1 至图 9, 详细描述了根据本发明实施例的用于传输 DCI 的方法, 下面将结合图 10至 20, 详细描述根据本发明实施例的用于传输 DCI 的用户设备 UE和基站。
图 10示出了根据本发明实施例的用户设备 300的示意性框图, 包括: 获取模块 310, 用于获取基站的系统信息;
确定模块 320, 用于根据该获取模块 310获取的该系统信息, 确定增强型 公共搜索空间 eCSS包括的主集合的资源配置信息, 该 eCSS位于增强型物理 下行控制信道 ePDCCH中, 该主集合为 ePDCCH集合;
盲检测模块 330, 用于根据该确定模块 320确定的该主集合的资源配置信 息, 在该主集合中盲检测该基站发送的 DCI。 因此,本发明实施例的用户设备,通过在 ePDCCH设计 eCSS,且在 eCSS 中包括主集合, UE在接入基站后根据该基站的系统信息确定该主集合的资源 配置信息, 使得 UE能够在该 eCSS包括的主集合中获取基站发送的 DCI, 并 且进一步通过该 DCI获取该基站发送的下行数据和高层信令, 从而使得 UE 和基站可以在未来的无线网络系统中进行正常通信, 增强了系统的实际可行 性。
可选地, 该系统信息包括下列信息中的至少一种: 系统带宽信息、 该基站 的小区标识信息和系统子帧号信息。
可选地,该获取模块 310具体用于从该基站发送的同步信号中获取该系统 信息; 和 /或
用于从该基站发送的广播信道信号中获取该系统信息。
可选地, 如图 11所示, 该确定模块 320包括:
第一确定单元 321 , 用于根据该系统信息, 确定该主集合占用的 PRB对 的数量和位置信息;
第二确定单元 322, 用于根据该系统信息中包括的小区标识信息, 确定该 主集合中传输的 DCI的序列初始化参数信息和解调参考信号 DMRS的序列初 始化参数信息。
可选地, 作为另一实施例, 如图 12所示, 该第一确定单元 321包括: 第一确定子单元 321a, 用于根据该系统信息, 确定该主集合占用的 PRB 对的数量为 N, N为大于零的整数;
第二确定子单元 321b,用于确定该主集合占用的 N个 PRB对中的基准位 置信息;
第三确定子单元 321c, 用于确定该 N个 PRB对分别与该基准位置在频域 的间距信息;
第四确定子单元 321d, 用于根据该第二确定子单元 321b确定的该基准位 置信息和该第三确定子单元 321c确定的该 N个 PRB对分别与该基准位置在频 域之间的间距信息, 确定该 N个 PRB对中的每个 PRB对的位置信息。
可选地, 作为另一实施例, 如图 13所示, 该 UE 300还包括:
接收模块 340, 用于接收该基站发送的第一指示信息, 该第一指示信息用 于指示该 eCSS包括的至少一个辅助集合的资源配置信息, 该至少一个辅助集 合为 ePDCCH集合;
该盲检测模块 330还用于根据该接收模块 340接收的该第一指示信息,在 该至少一个辅助集合中盲检测该基站发送的 DCI。
可选地, 该至少一个辅助集合的资源配置信息, 包括: 该至少一个辅助集 合占用的 PRB对的数量和位置信息、 该至少一个辅助集合中传输的 DCI的序 列初始化参数信息和该至少一个辅助集合中传输的 DMRS的序列初始化参数 信息, 该至少一个辅助集合中传输的 DCI和 DMRS的序列初始化参数为大于 或等于零的任意整数。
可选地,作为另一实施例, 该接收模块 340还用于接收该基站发送的第二 指示信息,该第二指示信息用于指示该基站在第一辅助集合中向该 UE传输的 DCI的 DCI格式, 该至少一个辅助集合包括该第一辅助集合;
该盲检测模块 330具体用于根据该接收模块 340接收的该第一指示信息和 该第二指示信息, 在该至少一个辅助集合中盲检测该基站发送的 DCI。
可选地,作为另一实施例, 该接收模块 340还用于接收该基站发送的第三 指示信息,该第三指示信息用于指示该基站在第二辅助集合中向该 UE传输的 DCI所釆用的 RNTI的类型, 该至少一个辅助集合包括该第二辅助集合; 该盲检测模块 330具体用于根据该接收模块 340接收的该第一指示信息和 该第三指示信息, 在该至少一个辅助集合中盲检测该基站发送的 DCI。
应理解,根据本发明实施例的用户设备 300可对应于本发明实施例中的用 于传输 DCI的方法的用户设备, 并且用户设备 300中的各个模块的上述和其 它操作和 /或功能分别为了实现图 1至图 6中的各个方法的相应流程, 为了简 洁, 在此不再赘述。
因此,本发明实施例的用户设备,通过在 ePDCCH设计 eCSS,且在 eCSS 中包括主集合, UE在接入基站后根据该基站的系统信息确定该主集合的资源 配置信息, 使得 UE能够在该 eCSS包括的主集合中获取基站发送的 DCI, 并 且进一步通过该 DCI获取该基站发送的下行数据和高层信令, 从而使得 UE 和基站可以在未来的无线网络系统中进行正常通信, 增强了系统的实际可行 性。
图 14示出了根据本发明实施例的基站 400的示意性流程图, 该基站 400 包括:
确定模块 410,用于根据基站的系统信息,确定增强型公共搜索空间 eCSS 包括的主集合的资源配置信息, 该 eCSS 位于增强型物理下行控制信道 ePDCCH中, 该主集合为 ePDCCH集合;
发送模块 420 ,用于根据该确定模块 410确定的该主集合的资源配置信息 , 在该主集合中向用户设备 UE发送 DCI。
因此, 本发明实施例的基站, 通过在 ePDCCH设计 eCSS, 且在 eCSS中 包括主集合, UE在接入基站后根据该基站的系统信息确定该主集合的资源配 置信息, 使得 UE能够在该 eCSS包括的主集合中获取基站发送的 DCI, 并且 进一步通过该 DCI获取该基站发送的下行数据和高层信令,从而使得 UE和基 站可以在未来的无线网络系统中进行正常通信, 增强了系统的实际可行性。
可选地, 该系统信息包括下列信息中的至少一种: 系统带宽信息、 该基站 的小区标识信息和系统子帧号信息。
可选地, 作为另一实施例, 该确定模块 410包括:
第一确定单元 411 ,用于根据该系统信息,确定该主集合占用的 PRB对的 数量和位置信息; 第二确定单元 412, 用于根据该系统信息中包括的小区标识信息, 确定该 主集合中传输的 DCI的序列初始化参数信息和解调参考信号 DMRS的序列初 始化参数信息。
可选地, 作为另一实施例, 该第一确定单元 411包括:
第一确定子单元 411a, 用于根据该系统信息, 确定该主集合占用的 PRB 对的数量为 N, N为大于零的整数;
第二确定子单元 411b, 用于确定该主集合占用的 N个 PRB对中的基准位 置信息;
第三确定子单元 411c, 用于确定该 N个 PRB对分别与该基准位置在频域 的间距信息;
第四确定子单元 411d, 用于根据该第二确定子单元 411b确定的该基准位 置信息和该第三确定子单元 411c确定的该 N个 PRB对分别与该基准位置在频 域之间的间距信息, 确定该 N个 PRB对中的每个 PRB对的位置信息。
可选地, 作为另一实施例, 该确定模块 410还用于确定该 eCSS包括的至 少一个辅助集合的资源配置信息, 该至少一个辅助集合为 ePDCCH集合; 该发送模块 420还用于向该 UE发送第一指示信息,该第一指示信息用于 指示该确定模块 410确定的该至少一个辅助集合的资源配置信息。
可选地, 作为另一实施例, 该至少一个辅助集合的资源配置信息, 包括: 该至少一个辅助集合占用的 PRB的数量和位置信息、 该至少一个辅助集合传 输的 DCI的序列初始化参数信息和该至少一个辅助集合传输的 DMRS的序列 初始化参数信息, 该至少一个辅助集合中传输的 DCI和 DMRS的序列初始化 参数为大于或等于零的任意整数。
可选地, 作为另一实施例, 该发送模块 420还用于向该 UE发送第二指示 信息, 该第二指示信息用于指示第一辅助集合中向该 UE传输的 DCI的 DCI 格式, 该至少一个辅助集合包括该第一辅助集合。 可选地, 作为另一实施例, 该发送模块 420还用于向该 UE发送第三指示 信息,该第三指示信息用于指示第二辅助集合中向该 UE传输的 DCI所釆用的 RNTI的类型, 该至少一个辅助集合包括该第二辅助集合。
可选地,作为另一实施例, 该确定模块 410还用于从该主集合和该至少一 个辅助集合中确定用于发送 DCI的第一集合;
该发送模块 420还用于在该确定模块 410确定的该第一集合中向该 UE发 送 DCI。
应理解,根据本发明实施例的基站 400可对应于本发明实施例中的用于传 输 DCI的方法的基站, 并且基站 400中的各个模块的上述和其它操作和 /或功 能分别为了实现图 7至图 9中的各个方法的相应流程, 为了简洁, 在此不再赘 述。
因此, 本发明实施例的基站, 通过在 ePDCCH设计 eCSS, 且在 eCSS中 包括主集合, UE在接入基站后根据该基站的系统信息确定该主集合的资源配 置信息, 使得 UE能够在该 eCSS包括的主集合中获取基站发送的 DCI, 并且 进一步通过该 DCI获取该基站发送的下行数据和高层信令,从而使得 UE和基 站可以在未来的无线网络系统中进行正常通信, 增强了系统的实际可行性。
图 15示出了根据本发明另一实施例的用户设备 500的示意性框图, 包括 处理器 510、 存储器 520和总线系统 530。 其中, 处理器 510和存储器 520通 过总线系统 530相连, 该存储器 520用于存储指令, 该处理器 510通过该总线 系统 530, 调用该存储器 520中存储的该指令, 用于: 获取基站的系统信息; 根据该系统信息, 确定增强型公共搜索空间 eCSS包括的主集合的资源配置信 息,该 eCSS位于增强型物理下行控制信道 ePDCCH中, 该主集合为 ePDCCH 集合; 以及根据该主集合的资源配置信息,在该主集合中盲检测该基站发送的 DCI。
因此,本发明实施例的用户设备,通过在 ePDCCH设计 eCSS,且在 eCSS 中包括主集合, UE在接入基站后根据该基站的系统信息确定该主集合的资源 配置信息, 使得 UE能够在该 eCSS包括的主集合中获取基站发送的 DCI, 并 且进一步通过该 DCI获取该基站发送的下行数据和高层信令, 从而使得 UE 和基站可以在未来的无线网络系统中进行正常通信, 增强了系统的实际可行 性。
应理解, 在本发明实施例中, 该处理器 510可以是中央处理单元( Central Processing Unit, 简称为 "CPU" ), 该处理器 510还可以是其他通用处理器、 数字信号处理器(DSP )、 专用集成电路(ASIC )、 现成可编程门阵列(FPGA ) 或者其他可编程逻辑器件、 分立门或者晶体管逻辑器件、 分立硬件组件等。 通 用处理器可以是微处理器或者该处理器也可以是任何常规的处理器等。
该存储器 520 可以包括只读存储器和随机存取存储器, 并向处理器 510 提供指令和数据。 存储器 520的一部分还可以包括非易失性随机存取存储器。 例如, 存储器 520还可以存储设备类型的信息。
该总线系统 530除包括数据总线之外,还可以包括电源总线、控制总线和 状态信号总线等。但是为了清楚说明起见,在图中将各种总线都标为总线系统 530。
在实现过程中,上述方法的各步骤可以通过处理器 510中的硬件的集成逻 辑电路或者软件形式的指令完成。结合本发明实施例所公开的方法的步骤可以 直接体现为硬件处理器执行完成,或者用处理器中的硬件及软件模块组合执行 完成。 软件模块可以位于随机存储器, 闪存、 只读存储器, 可编程只读存储器 或者电可擦写可编程存储器、寄存器等本领域成熟的存储介质中。该存储介质 位于存储器 520, 处理器 510读取存储器 520中的信息, 结合其硬件完成上述 方法的步骤。 为避免重复, 这里不再详细描述。
可选地, 该系统信息包括下列信息中的至少一种: 系统带宽信息、 该基站 的小区标识信息和系统子帧号信息。 可选地,该处理器 510具体用于从该基站发送的同步信号中获取该系统信 息; 和 /或
用于从该基站发送的广播信道信号中获取该系统信息。
可选地,该处理器 510还用于根据该系统信息,确定该主集合占用的 PRB 对的数量和位置信息; 以及根据该系统信息中包括的小区标识信息,确定该主 集合中传输的 DCI的序列初始化参数信息和解调参考信号 DMRS的序列初始 化参数信息。
可选地, 作为另一实施例, 该处理器 510具体用于根据该系统信息, 确定 该主集合占用的 PRB对的数量为 N, N为大于零的整数; 确定该主集合占用 的 N个 PRB对中的基准位置信息; 确定该 N个 PRB对分别与该基准位置在 频域的间距信息; 以及根据该基准位置信息和该 N个 PRB对分别与该基准位 置在频域之间的间距信息, 确定该 N个 PRB对中的每个 PRB对的位置信息。
可选地, 作为另一实施例, 该 UE 500还包括:
接收器 540, 用于接收该基站发送的第一指示信息, 该第一指示信息用于 指示该 eCSS包括的至少一个辅助集合的资源配置信息, 该至少一个辅助集合 为 ePDCCH集合;
相应地, 该处理器 510还用于根据该接收器 540接收的该第一指示信息, 在该至少一个辅助集合中盲检测该基站发送的 DCI。
可选地, 该至少一个辅助集合的资源配置信息, 包括: 该至少一个辅助集 合占用的 PRB对的数量和位置信息、 该至少一个辅助集合中传输的 DCI的序 列初始化参数信息和该至少一个辅助集合中传输的 DMRS的序列初始化参数 信息, 该至少一个辅助集合中传输的 DCI和 DMRS的序列初始化参数为大于 或等于零的任意整数。
可选地,作为另一实施例, 该接收器 540还用于接收该基站发送的第二指 示信息, 该第二指示信息用于指示该基站在第一辅助集合中向该 UE传输的 DCI的 DCI格式, 该至少一个辅助集合包括该第一辅助集合;
相应地,该处理器 510具体用于根据该接收器 540接收的该第一指示信息 和该第二指示信息, 在该至少一个辅助集合中盲检测该基站发送的 DCI。
可选地,作为另一实施例, 该接收器 540还用于接收该基站发送的第三指 示信息, 该第三指示信息用于指示该基站在第二辅助集合中向该 UE传输的 DCI所釆用的 RNTI的类型, 该至少一个辅助集合包括该第二辅助集合;
相应地,该处理器 510具体用于根据该接收器 540接收的该第一指示信息 和该第三指示信息, 在该至少一个辅助集合中盲检测该基站发送的 DCI。
应理解,根据本发明实施例的用户设备 500可对应于本发明实施例中的用 于传输 DCI的方法的用户设备以及用户设备 300,并且用户设备 500中的各个 模块的上述和其它操作和 /或功能分别为了实现图 1至图 6中的各个方法的相 应流程, 为了简洁, 在此不再赘述。
因此,本发明实施例的用户设备,通过在 ePDCCH设计 eCSS,且在 eCSS 中包括主集合, UE在接入基站后根据该基站的系统信息确定该主集合的资源 配置信息, 使得 UE能够在该 eCSS包括的主集合中获取基站发送的 DCI, 并 且进一步通过该 DCI获取该基站发送的下行数据和高层信令, 从而使得 UE 和基站可以在未来的无线网络系统中进行正常通信, 增强了系统的实际可行 性。
图 16示出了根据本发明另一实施例的基站 600的示意性流程图, 该基站 600包括处理器 610、 存储器 620、 总线系统 630和发送器 640。 其中, 处理器 610、 存储器 620和发送器 640通过总线系统 630相连, 该存储器 620用于存 储指令, 该处理器 610通过该总线系统 630, 调用该存储器 620中存储的该指 令, 用于: 根据基站的系统信息, 确定增强型公共搜索空间 eCSS包括的主集 合的资源配置信息, 该 eCSS位于增强型物理下行控制信道 ePDCCH中, 该主 集合为 ePDCCH集合; 该发送器 640用于根据该处理器 610确定的该主集合 的资源配置信息, 在该主集合中向用户设备 UE发送 DCI。
因此, 本发明实施例的基站, 通过在 ePDCCH设计 eCSS, 且在 eCSS中 包括主集合, UE在接入基站后根据该基站的系统信息确定该主集合的资源配 置信息, 使得 UE能够在该 eCSS包括的主集合中获取基站发送的 DCI, 并且 进一步通过该 DCI获取该基站发送的下行数据和高层信令,从而使得 UE和基 站可以在未来的无线网络系统中进行正常通信, 增强了系统的实际可行性。
应理解, 在本发明实施例中, 该处理器 610可以是中央处理单元( Central Processing Unit, 简称为 "CPU" ), 该处理器 610还可以是其他通用处理器、 数字信号处理器(DSP )、 专用集成电路(ASIC )、 现成可编程门阵列(FPGA ) 或者其他可编程逻辑器件、 分立门或者晶体管逻辑器件、 分立硬件组件等。 通 用处理器可以是微处理器或者该处理器也可以是任何常规的处理器等。
该存储器 620 可以包括只读存储器和随机存取存储器, 并向处理器 610 提供指令和数据。 存储器 620的一部分还可以包括非易失性随机存取存储器。 例如, 存储器 620还可以存储设备类型的信息。
该总线系统 630除包括数据总线之外,还可以包括电源总线、控制总线和 状态信号总线等。但是为了清楚说明起见,在图中将各种总线都标为总线系统 630。
在实现过程中,上述方法的各步骤可以通过处理器 610中的硬件的集成逻 辑电路或者软件形式的指令完成。结合本发明实施例所公开的方法的步骤可以 直接体现为硬件处理器执行完成,或者用处理器中的硬件及软件模块组合执行 完成。 软件模块可以位于随机存储器, 闪存、 只读存储器, 可编程只读存储器 或者电可擦写可编程存储器、寄存器等本领域成熟的存储介质中。该存储介质 位于存储器 620, 处理器 610读取存储器 620中的信息, 结合其硬件完成上述 方法的步骤。 为避免重复, 这里不再详细描述。
可选地, 该系统信息包括下列信息中的至少一种: 系统带宽信息、 该基站 的小区标识信息和系统子帧号信息。
可选地, 作为另一实施例, 该处理器 610还用于根据该系统信息, 确定该 主集合占用的 PRB对的数量和位置信息; 以及根据该系统信息中包括的小区 标识信息, 确定该主集合中传输的 DCI的序列初始化参数信息和解调参考信 号 DMRS的序列初始化参数信息。
可选地, 作为另一实施例, 处理器 610具体用于根据该系统信息, 确定该 主集合占用的 PRB对的数量为 N, N为大于零的整数; 确定该主集合占用的 N个 PRB对中的基准位置信息;确定该 N个 PRB对分别与该基准位置在频域 的间距信息; 以及根据该基准位置信息和该 N个 PRB对分别与该基准位置在 频域之间的间距信息, 确定该 N个 PRB对中的每个 PRB对的位置信息。
可选地, 作为另一实施例, 该处理器 610还用于确定该 eCSS包括的至少 一个辅助集合的资源配置信息, 该至少一个辅助集合为 ePDCCH集合;
相应地, 该发送器 640还用于向该 UE发送第一指示信息, 该第一指示信 息用于指示该处理器 610确定的该至少一个辅助集合的资源配置信息。
可选地, 作为另一实施例, 该至少一个辅助集合的资源配置信息, 包括: 该至少一个辅助集合占用的 PRB的数量和位置信息、 该至少一个辅助集合传 输的 DCI的序列初始化参数信息和该至少一个辅助集合传输的 DMRS的序列 初始化参数信息, 该至少一个辅助集合中传输的 DCI和 DMRS的序列初始化 参数为大于或等于零的任意整数。
可选地, 作为另一实施例, 该发送器 640还用于向该 UE发送第二指示信 息, 该第二指示信息用于指示第一辅助集合中向该 UE传输的 DCI的 DCI格 式, 该至少一个辅助集合包括该第一辅助集合。
可选地, 作为另一实施例, 该发送器 640还用于向该 UE发送第三指示信 息, 该第三指示信息用于指示第二辅助集合中向该 UE传输的 DCI所釆用的 RNTI的类型, 该至少一个辅助集合包括该第二辅助集合。 可选地,作为另一实施例, 该处理器 610还用于从该主集合和该至少一个 辅助集合中确定用于发送 DCI的第一集合;
相应地, 该发送器 640还用于在该处理器 610确定的该第一集合中向该 UE发送 DCI。
应理解,根据本发明实施例的基站 600可对应于本发明实施例中的用于传 输 DCI的方法的基站以及基站 400,并且基站 600中的各个模块的上述和其它 操作和 /或功能分别为了实现图 7至图 9中的各个方法的相应流程, 为了简洁, 在此不再赘述。
因此, 本发明实施例的基站, 通过在 ePDCCH设计 eCSS, 且在 eCSS中 包括主集合, UE在接入基站后根据该基站的系统信息确定该主集合的资源配 置信息, 使得 UE能够在该 eCSS包括的主集合中获取基站发送的 DCI, 并且 进一步通过该 DCI获取该基站发送的下行数据和高层信令,从而使得 UE和基 站可以在未来的无线网络系统中进行正常通信, 增强了系统的实际可行性。
应理解, 在本发明实施例中, 术语"和 /或"仅仅是一种描述关联对象的关 联关系, 表示可以存在三种关系。 例如, A和 /或 B, 可以表示: 单独存在 A, 同时存在 A和 B, 单独存在 B这三种情况。 另外, 本文中字符" /,,, 一般表示 前后关联对象是一种 "或"的关系。
本领域普通技术人员可以意识到,结合本文中所公开的实施例中描述的各 方法步骤和单元, 能够以电子硬件、 计算机软件或者二者的结合来实现, 为了 清楚地说明硬件和软件的可互换性,在上述说明中已经按照功能一般性地描述 了各实施例的步骤及组成。这些功能究竟以硬件还是软件方式来执行,取决于 技术方案的特定应用和设计约束条件。本领域普通技术人员可以对每个特定的 应用来使用不同方法来实现所描述的功能,但是这种实现不应认为超出本发明 的范围。
所属领域的技术人员可以清楚地了解到, 为了描述的方便和简洁, 上述描 述的系统、装置和单元的具体工作过程, 可以参考前述方法实施例中的对应过 程, 在此不再赘述。
在本申请所提供的几个实施例中, 应该理解到, 所揭露的系统、 装置和方 法, 可以通过其它的方式实现。 例如, 以上所描述的装置实施例仅仅是示意性 的, 例如, 所述单元的划分, 仅仅为一种逻辑功能划分, 实际实现时可以有另 外的划分方式, 例如多个单元或组件可以结合或者可以集成到另一个系统, 或 一些特征可以忽略, 或不执行。 另夕卜, 所显示或讨论的相互之间的耦合或直接 耦合或通信连接可以是通过一些接口、装置或单元的间接耦合或通信连接,也 可以是电的, 机械的或其它的形式连接。 单元显示的部件可以是或者也可以不是物理单元, 即可以位于一个地方, 或者 也可以分布到多个网络单元上。可以根据实际的需要选择其中的部分或者全部 单元来实现本发明实施例方案的目的。
另外, 在本发明各个实施例中的各功能单元可以集成在一个处理单元中, 也可以是各个单元单独物理存在,也可以是两个或两个以上单元集成在一个单 元中。上述集成的单元既可以釆用硬件的形式实现,也可以釆用软件功能单元 的形式实现。
所述集成的单元如果以软件功能单元的形式实现并作为独立的产品销售 或使用时, 可以存储在一个计算机可读取存储介质中。 基于这样的理解, 本发 明的技术方案本质上或者说对现有技术做出贡献的部分,或者该技术方案的全 部或部分可以以软件产品的形式体现出来,该计算机软件产品存储在一个存储 介质中, 包括若干指令用以使得一台计算机设备(可以是个人计算机,服务器, 或者网络设备等 )执行本发明各个实施例所述方法的全部或部分步骤。 而前述 的存储介质包括: U盘、 移动硬盘、 只读存储器(Read-Only Memory, 简称为 " ROM,,)、 随机存取存储器(Random Access Memory, 简称为 " RAM" )、 磁碟 或者光盘等各种可以存储程序代码的介质。
以上所述,仅为本发明的具体实施方式,但本发明的保护范围并不局限于 此,任何熟悉本技术领域的技术人员在本发明揭露的技术范围内, 可轻易想到 各种等效的修改或替换, 这些修改或替换都应涵盖在本发明的保护范围之内。 因此, 本发明的保护范围应以权利要求的保护范围为准。

Claims

权 利 要 求
1. 一种用于传输下行控制信息 DCI的方法, 其特征在于, 包括: 获取基站的系统信息;
根据所述系统信息, 确定增强型公共搜索空间 eCSS包括的主集合的资源 配置信息, 所述 eCSS位于增强型物理下行控制信道 ePDCCH中, 所述主集合 为 ePDCCH集合;
根据所述主集合的资源配置信息,在所述主集合中盲检测所述基站发送的
DCI。
2. 根据权利要求 1所述的方法, 其特征在于, 所述系统信息包括下列信 息中的至少一种:系统带宽信息、所述基站的小区标识信息和系统子帧号信息。
3. 根据权利要求 1或 2所述的方法, 其特征在于, 所述获取基站的系统 信息, 包括:
从所述基站发送的同步信号中获取所述系统信息; 和 /或
从所述基站发送的广播信道信号中获取所述系统信息。
4. 根据权利要求 1至 3中任一项所述的方法, 其特征在于, 所述根据所 述系统信息, 确定 eCSS包括的主集合的资源配置信息, 包括:
根据所述系统信息, 确定所述主集合占用的 PRB对的数量和位置信息; 根据所述系统信息中包括的小区标识信息,确定所述主集合中传输的 DCI 的序列初始化参数信息和解调参考信号 DMRS的序列初始化参数信息。
5. 根据权利要求 4所述的方法, 其特征在于, 所述根据所述系统信息, 确定所述主集合占用的 PRB对的数量和位置信息, 包括:
根据所述系统信息, 确定所述主集合占用的 PRB对的数量为 N, N为大 于零的整数;
确定所述主集合占用的 N个 PRB对的基准位置信息;
确定所述 N个 PRB对分别与所述基准位置在频域的间距信息; 根据所述基准位置信息和所述 N个 PRB对分别与所述基准位置在频域之 间的间距信息, 确定所述 N个 PRB对中的每个 PRB对的位置信息。
6. 根据权利要求 1至 5中任一项所述的方法, 其特征在于, 所述方法还 包括:
接收所述基站发送的第一指示信息, 所述第一指示信息用于指示所述 eCSS 包括的至少一个辅助集合的资源配置信息, 所述至少一个辅助集合为 ePDCCH集合;
根据所述第一指示信息 ,在所述至少一个辅助集合中盲检测所述基站发送 的 DCI。
7. 根据权利要求 6所述的方法, 其特征在于, 所述至少一个辅助集合的 资源配置信息, 包括:
所述至少一个辅助集合占用的 PRB对的数量和位置信息、 所述至少一个 辅助集合中传输的 DCI的序列初始化参数信息和所述至少一个辅助集合中传 输的 DMRS的序列初始化参数信息, 所述至少一个辅助集合中传输的 DCI和 DMRS的序列初始化参数为大于或等于零的任意整数。
8. 根据权利要求 6或 7所述的方法, 其特征在于, 所述方法还包括: 接收所述基站发送的第二指示信息,所述第一指示信息用于指示所述基站 在第一辅助集合中向用户设备 UE传输的 DCI的 DCI格式, 所述至少一个辅 助集合包括所述第一辅助集合;
所述根据所述第一指示信息,在所述至少一个辅助集合中盲检测所述基站 发送的 DCI, 包括:
根据所述第一指示信息和所述第二指示信息,在所述至少一个辅助集合中 盲检测所述基站发送的 DCI。
9. 根据权利要求 6至 8中任一项所述的方法, 其特征在于, 所述方法还 包括: 接收所述基站发送的第三指示信息,所述第三指示信息用于指示所述基站 在第二辅助集合中向 UE传输的 DCI所釆用的 RNTI的类型,所述至少一个辅 助集合包括所述第二辅助集合;
所述根据所述第一指示信息 ,在所述至少一个辅助集合中盲检测所述基站 发送的 DCI, 包括:
根据所述第一指示信息和所述第三指示信息,在所述至少一个辅助集合中 盲检测所述基站发送的 DCI。
10. 一种用于传输下行控制信息 DCI的方法, 其特征在于, 包括: 根据基站的系统信息, 确定增强型公共搜索空间 eCSS包括的主集合的资 源配置信息, 所述 eCSS位于增强型物理下行控制信道 ePDCCH中, 所述主集 合为 ePDCCH集合;
根据所述主集合的资源配置信息, 在所述主集合中向用户设备 UE发送
DCI。
11. 根据权利要求 10所述的方法, 其特征在于, 所述系统信息包括下列 信息中的至少一种: 系统带宽信息、所述基站的小区标识信息和系统子帧号信 息。
12. 根据权利要求 10或 11所述的方法, 其特征在于, 所述根据所述系统 信息, 确定 eCSS包括的主集合的资源配置信息, 包括:
根据所述系统信息, 确定所述主集合占用的 PRB对的数量和位置信息; 根据所述系统信息中包括的小区标识信息,确定所述主集合中传输的 DCI 的序列初始化参数信息和解调参考信号 DMRS的序列初始化参数信息。
13. 根据权利要求 12所述的方法, 其特征在于, 所述根据所述系统信息, 确定所述主集合占用的 PRB对的数量和位置信息, 包括:
根据所述系统信息, 确定所述主集合占用的 PRB对的数量为 N, N为大 于零的整数; 确定所述主集合占用的 N个 PRB对的基准位置信息;
确定所述 N个 PRB对分别与所述基准位置在频域的间距信息;
根据所述基准位置信息和所述 N个 PRB对分别与所述基准位置在频域之 间的间距信息, 确定所述 N个 PRB对中的每个 PRB对的位置信息。
14. 根据权利要求 10至 13中任一项所述的方法, 其特征在于, 所述方法 还包括:
确定所述 eCSS包括的至少一个辅助集合的资源配置信息, 所述至少一个 辅助集合为 ePDCCH集合;
向所述 UE发送第一指示信息,所述第一指示信息用于指示所述至少一个 辅助集合的资源配置信息。
15. 根据权利要求 14所述的方法, 其特征在于, 所述至少一个辅助集合 的资源配置信息, 包括:
所述至少一个辅助集合占用的 PRB的数量和位置信息、 所述至少一个辅 助集合传输的 DCI 的序列初始化参数信息和所述至少一个辅助集合传输的 DMRS的序列初始化参数信息,所述至少一个辅助集合中传输的 DCI和 DMRS 的序列初始化参数为大于或等于零的任意整数。
16. 根据权利要求 14或 15所述的方法, 其特征在于, 所述方法还包括: 向所述 UE发送第二指示信息,所述第二指示信息用于指示第一辅助集合 中向所述 UE传输的 DCI的 DCI格式, 所述至少一个辅助集合包括所述第一 辅助集合。
17. 根据权利要求 14至 16中任一项所述的方法, 其特征在于, 所述方法 还包括:
向所述 UE发送第三指示信息,所述第三指示信息用于指示第二辅助集合 中向所述 UE传输的 DCI所釆用的 RNTI的类型,所述至少一个辅助集合包括 所述第二辅助集合。
18. 根据权利要求 14至 17中任一项所述的方法, 其特征在于, 所述方法 还包括:
从所述主集合和所述至少一个辅助集合中确定用于发送 DCI的第一集合; 在所述第一集合中向所述 UE发送 DCI。
19. 一种用户设备 UE, 其特征在于, 包括:
获取模块, 用于获取基站的系统信息;
确定模块, 用于根据所述获取模块获取的所述系统信息, 确定增强型公共 搜索空间 eCSS包括的主集合的资源配置信息, 所述 eCSS位于增强型物理下 行控制信道 ePDCCH中, 所述主集合为 ePDCCH集合;
盲检测模块, 用于根据所述确定模块确定的所述主集合的资源配置信息, 在所述主集合中盲检测所述基站发送的 DCI。
20. 根据权利要求 19所述的 UE, 其特征在于, 所述系统信息包括下列信 息中的至少一种:系统带宽信息、所述基站的小区标识信息和系统子帧号信息。
21. 根据权利要求 19或 20所述的 UE, 其特征在于, 所述获取模块具体 用于从所述基站发送的同步信号中获取所述系统信息; 和 /或
用于从所述基站发送的广播信道信号中获取所述系统信息。
22. 根据权利要求 19至 21中任一项所述的 UE, 其特征在于, 所述确定 模块包括:
第一确定单元, 用于根据所述系统信息, 确定所述主集合占用的 PRB对 的数量和位置信息;
第二确定单元, 用于根据所述系统信息中包括的小区标识信息, 确定所述 主集合中传输的 DCI的序列初始化参数信息和解调参考信号 DMRS的序列初 始化参数信息。
23. 根据权利要求 22所述的 UE, 其特征在于, 所述第一确定单元包括: 第一确定子单元, 用于根据所述系统信息, 确定所述主集合占用的 PRB 对的数量为 N, N为大于零的整数;
第二确定子单元, 用于确定所述主集合占用的 N个 PRB对的基准位置信 息;
第三确定子单元, 用于确定所述 N个 PRB对分别与所述基准位置在频域 的间距信息;
第四确定子单元,用于根据所述第三确定子单元确定的所述基准位置信息 和所述第三确定子单元确定的所述 N个 PRB对分别与所述基准位置在频域之 间的间距信息,确定所述主集合占用的 N个 PRB对中的每个 PRB对的位置信 息。
24. 根据权利要求 19至 23中任一项所述的 UE, 其特征在于, 所述 UE 还包括:
接收模块, 用于接收所述基站发送的第一指示信息, 所述第一指示信息用 于指示所述 eCSS包括的至少一个辅助集合的资源配置信息, 所述至少一个辅 助集合为 ePDCCH集合;
所述盲检测模块还用于根据所述接收模块接收的所述第一指示信息,在所 述至少一个辅助集合中盲检测所述基站发送的 DCI。
25. 根据权利要求 24所述的 UE, 其特征在于, 所述至少一个辅助集合的 资源配置信息, 包括:
所述至少一个辅助集合占用的 PRB对的数量和位置信息、 所述至少一个 辅助集合中传输的 DCI的序列初始化参数信息和所述至少一个辅助集合中传 输的 DMRS的序列初始化参数信息, 所述至少一个辅助集合中传输的 DCI和 DMRS的序列初始化参数为大于或等于零的任意整数。
26. 根据权利要求 24或 25所述的 UE, 其特征在于, 所述接收模块还用 于接收所述基站发送的第二指示信息,所述第二指示信息用于指示所述基站在 第一辅助集合中向所述 UE传输的 DCI的 DCI格式, 所述至少一个辅助集合 包括所述第一辅助集合;
所述盲检测模块具体用于根据所述接收模块接收的所述第一指示信息和 所述第二指示信息, 在所述至少一个辅助集合中盲检测所述基站发送的 DCI。
27. 根据权利要求 24至 26中任一项所述的 UE, 其特征在于, 所述接收 模块还用于接收所述基站发送的第三指示信息,所述第三指示信息用于指示所 述基站在第二辅助集合中向所述 UE传输的 DCI所釆用的 RNTI的类型,所述 至少一个辅助集合包括所述第二辅助集合;
所述盲检测模块具体用于根据所述接收模块接收的所述第一指示信息和 所述第三指示信息, 在所述至少一个辅助集合中盲检测所述基站发送的 DCI。
28. 一种基站, 其特征在于, 包括:
确定模块, 用于根据基站的系统信息, 确定增强型公共搜索空间 eCSS包 括的主集合的资源配置信息, 所述 eCSS 位于增强型物理下行控制信道 ePDCCH中 , 所述主集合为 ePDCCH集合;
发送模块, 用于根据所述确定模块确定的所述主集合的资源配置信息, 在 所述主集合中向用户设备 UE发送 DCI。
29. 根据权利要求 28所述的基站, 其特征在于, 所述系统信息包括下列 信息中的至少一种: 系统带宽信息、所述基站的小区标识信息和系统子帧号信 息。
30.根据权利要求 28或 29所述的基站,其特征在于,所述确定模块包括: 第一确定单元, 用于根据所述系统信息, 确定所述主集合占用的 PRB对 的数量和位置信息;
第二确定单元, 用于根据所述系统信息中包括的小区标识信息, 确定所述 主集合中传输的 DCI的序列初始化参数信息和解调参考信号 DMRS的序列初 始化参数信息。
31. 根据权利要求 30所述的基站, 其特征在于, 所述第一确定单元包括: 第一确定子单元, 用于根据所述系统信息, 确定所述主集合占用的 PRB 对的数量为 N, N为大于零的整数;
第二确定子单元, 用于确定所述主集合占用的 N个 PRB对的基准位置信 息;
第三确定子单元, 用于确定所述 N个 PRB对分别与所述基准位置在频域 的间距信息;
第四确定子单元,用于根据所述第三确定子单元确定的所述基准位置信息 和所述第三确定子单元确定的所述 N个 PRB对分别与所述基准位置在频域之 间的间距信息, 确定所述 N个 PRB对中的每个 PRB对的位置信息。
32. 根据权利要求 28至 31中任一项所述的基站, 其特征在于, 所述确定 模块还用于确定所述 eCSS包括的至少一个辅助集合的资源配置信息, 所述至 少一个辅助集合为 ePDCCH集合;
所述发送模块还用于向所述 UE发送第一指示信息, 所述第一指示信息用 于指示所述确定模块确定的所述至少一个辅助集合的资源配置信息。
33. 根据权利要求 32所述的基站, 其特征在于, 所述至少一个辅助集合 的资源配置信息, 包括:
所述至少一个辅助集合占用的 PRB的数量和位置信息、 所述至少一个辅 助集合传输的 DCI 的序列初始化参数信息和所述至少一个辅助集合传输的 DMRS的序列初始化参数信息,所述至少一个辅助集合中传输的 DCI和 DMRS 的序列初始化参数为大于或等于零的任意整数。
34. 根据权利要求 32或 33所述的基站, 其特征在于, 所述发送模块还用 于向所述 UE发送第二指示信息, 所述第二指示信息用于指示第一辅助集合中 向所述 UE传输的 DCI的 DCI格式, 所述至少一个辅助集合包括所述第一辅 助集合。
35. 根据权利要求 32至 34中任一项所述的基站, 其特征在于, 所述发送 模块还用于向所述 UE发送第三指示信息,所述第三指示信息用于指示第二辅 助集合中向所述 UE传输的 DCI所釆用的 RNTI的类型,所述至少一个辅助集 合包括所述第二辅助集合。
36. 根据权利要求 32至 35中任一项所述的基站, 其特征在于, 所述确定 模块还用于从所述主集合和所述至少一个辅助集合中确定用于发送 DCI 的第 所述发送模块还用于在所述确定模块确定的所述第一集合中向所述 UE发 送 DCI。
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