WO2018127228A1 - 一种随机接入反馈、处理方法、基站及终端 - Google Patents

一种随机接入反馈、处理方法、基站及终端 Download PDF

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Publication number
WO2018127228A1
WO2018127228A1 PCT/CN2018/075576 CN2018075576W WO2018127228A1 WO 2018127228 A1 WO2018127228 A1 WO 2018127228A1 CN 2018075576 W CN2018075576 W CN 2018075576W WO 2018127228 A1 WO2018127228 A1 WO 2018127228A1
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Prior art keywords
message
random access
terminal
data
preamble
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PCT/CN2018/075576
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English (en)
French (fr)
Inventor
任斌
艾托尼
潘学明
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电信科学技术研究院
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Priority to US16/476,046 priority Critical patent/US10986670B2/en
Publication of WO2018127228A1 publication Critical patent/WO2018127228A1/zh

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W74/00Wireless channel access
    • H04W74/002Transmission of channel access control information
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W74/00Wireless channel access
    • H04W74/08Non-scheduled access, e.g. ALOHA
    • H04W74/0833Random access procedures, e.g. with 4-step access
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/12Wireless traffic scheduling
    • H04W72/1263Mapping of traffic onto schedule, e.g. scheduled allocation or multiplexing of flows
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/20Control channels or signalling for resource management
    • H04W72/23Control channels or signalling for resource management in the downlink direction of a wireless link, i.e. towards a terminal
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W74/00Wireless channel access
    • H04W74/002Transmission of channel access control information
    • H04W74/006Transmission of channel access control information in the downlink, i.e. towards the terminal
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W80/00Wireless network protocols or protocol adaptations to wireless operation
    • H04W80/02Data link layer protocols

Definitions

  • the present disclosure relates to the field of communications technologies, and in particular, to a random access feedback, a processing method, a base station, and a terminal.
  • LTE Long Term Evolutionary
  • Step 11 The terminal sends a random access preamble (Msg1 message) to the base station;
  • Step 12 The base station feeds back a random access response (RAR, Msg2 message) to the terminal;
  • RAR random access response
  • Step 13 The terminal sends a scheduled transmission message (Scheduled Transmission, ie, Msg3 message), where the Msg3 message includes layer 2/layer 3 (L2/L3) random access information;
  • step 14 the base station sends a Contention Resolution (Msg4 message) to the terminal.
  • Msg4 message Contention Resolution
  • Step 21 The terminal sends a random access preamble and data (Random Access Preamble+Data, ie, Msg1 message) to the base station, where the Msg1 message includes the identifier information (ie, UE ID) of the terminal, a small data packet, and the like;
  • a random access preamble and data Random Access Preamble+Data, ie, Msg1 message
  • Step 22 The base station feeds back a random access response (RAR, Msg2 message) to the terminal.
  • RAR random access response
  • the difference between the two-step random access mechanism of the NR and the traditional four-step random access mechanism of the LTE is that the Msg1 simultaneously transmits the preamble and data of the random access, wherein the content of the data bearer corresponds to four steps of random access.
  • the content of Msg3 in the access mechanism is that the Msg1 simultaneously transmits the preamble and data of the random access, wherein the content of the data bearer corresponds to four steps of random access.
  • the current two-step random access mechanism does not define a method for the terminal to know whether the base station successfully receives the preamble and data of the first message in the two-step random access mechanism, resulting in a two-step random access mechanism being incomplete, and the network cannot be guaranteed.
  • the reliability of communication does not define a method for the terminal to know whether the base station successfully receives the preamble and data of the first message in the two-step random access mechanism, resulting in a two-step random access mechanism being incomplete, and the network cannot be guaranteed. The reliability of communication.
  • the technical problem to be solved by the present disclosure is to provide a random access feedback, a processing method, a base station, and a terminal, to solve the problem in the related art that the terminal cannot know whether the base station successfully receives the first message in the two-step random access mechanism.
  • the preamble and data cause the two-step random access mechanism to be incomplete and have problems affecting the reliability of network communication.
  • the embodiment of the present disclosure provides a random access feedback method, including:
  • Detecting a preamble field and a data field of the first message to obtain whether a preamble exists in the first message and/or a detection result of whether data is successfully obtained in the first message;
  • the detection result is fed back to the terminal.
  • the detection result includes: a preamble exists in the first message, a preamble does not exist in the first message, data is successfully obtained in the first message, and the first message is unsuccessful Obtaining at least one of obtaining data, having a preamble in the first message, not successfully obtaining data in the first message, and having a preamble in the first message and successfully obtaining data in the first message By.
  • the step of feeding back the detection result to the terminal includes:
  • the random access response is not sent to the terminal.
  • the step of feeding back the detection result to the terminal includes:
  • the medium access control layer protocol data unit format of the second random access mechanism is used to feed back the random access response to the terminal, where the random access response carries the terminal detected in the data field of the first message. Identification information.
  • the step of feeding back the detection result to the terminal includes:
  • the random access response is not sent to the terminal.
  • An embodiment of the present disclosure provides a base station, including:
  • a first receiving module configured to receive a first message that is sent when the terminal performs random access, where the first message includes a preamble field and a data field;
  • a detecting module configured to detect a preamble field and a data field of the first message, to obtain whether a preamble exists in the first message, and/or a detection result of whether data is successfully obtained in the first message;
  • a feedback module configured to feed back the detection result to the terminal.
  • the detection result includes: a preamble exists in the first message, a preamble does not exist in the first message, data is successfully obtained in the first message, and the first message is unsuccessful Obtaining at least one of obtaining data, having a preamble in the first message, not successfully obtaining data in the first message, and having a preamble in the first message and successfully obtaining data in the first message By.
  • the feedback module is configured to:
  • the random access response is not sent to the terminal.
  • the feedback module is configured to:
  • the medium access control layer protocol data unit format of the second random access mechanism is used to feed back the random access response to the terminal, where the random access response carries the terminal detected in the data field of the first message. Identification information.
  • the feedback module is configured to:
  • the random access response is not sent to the terminal.
  • An embodiment of the present disclosure provides a random access processing method, including:
  • the detection result includes: a preamble exists in the first message, a preamble does not exist in the first message, data is successfully obtained in the first message, and the first message is unsuccessful Obtaining at least one of obtaining data, having a preamble in the first message, not successfully obtaining data in the first message, and having a preamble in the first message and successfully obtaining data in the first message By.
  • the receiving the detection result of the first message fed back by the base station includes:
  • the receiving the detection result of the first message fed back by the base station includes:
  • the step of performing a random access process corresponding to the detection result includes:
  • the receiving the detection result of the first message fed back by the base station includes:
  • the step of performing a random access process corresponding to the detection result includes:
  • Retransmitting data that is not successfully transmitted in the first message is performed based on an uplink grant in the random access response.
  • the step of receiving the detection result of the first message fed back by the base station include:
  • the step of performing a random access process corresponding to the detection result includes:
  • the receiving the step of detecting, by the base station, the detection result of the first message includes:
  • the random access response fed back by the base station is not received.
  • the step of performing a random access process corresponding to the detection result includes:
  • An embodiment of the present disclosure provides a terminal, including:
  • a sending module configured to send a first message including a preamble field and a data field to the base station when performing random access
  • a second receiving module configured to receive, by the base station, a detection result of the first message, where the detection result is whether a preamble exists in the first message and/or whether the first message is successful get data;
  • a processing module configured to perform random access processing corresponding to the detection result according to the detection result.
  • the detection result includes: a preamble exists in the first message, a preamble does not exist in the first message, data is successfully obtained in the first message, and the first message is unsuccessful Obtaining at least one of obtaining data, having a preamble in the first message, not successfully obtaining data in the first message, and having a preamble in the first message and successfully obtaining data in the first message By.
  • the second receiving module is configured to:
  • the second receiving module is configured to:
  • processing module is configured to:
  • the second receiving module is configured to:
  • processing module is configured to:
  • Retransmitting data that is not successfully transmitted in the first message is performed based on an uplink grant in the random access response.
  • the second receiving module is configured to:
  • processing module is configured to:
  • the second receiving The module is used to:
  • the random access response fed back by the base station is not received.
  • processing module is configured to:
  • An embodiment of the present disclosure provides a base station, including: a processor, a memory, and a transceiver, where:
  • the processor is configured to read a program in the memory and perform the following process:
  • Detecting a preamble field and a data field of the first message to obtain whether a preamble exists in the first message and/or whether a result of successfully obtaining data in the first message is obtained;
  • the detection result is fed back to the terminal by the transceiver,
  • the transceiver is for receiving and transmitting data
  • the memory is capable of storing data used by the processor in performing operations.
  • An embodiment of the present disclosure provides a terminal, including: a processor, a memory, and a transceiver, where:
  • the processor is configured to read a program in the memory and perform the following process:
  • the transceiver Receiving, by the transceiver, a detection result of the first message fed back by the base station, where the detection result is whether a preamble exists in the first message and/or whether data is successfully obtained in the first message ;
  • the transceiver is for receiving and transmitting data
  • the memory is capable of storing data used by the processor in performing operations.
  • the base station detects the first message of the random access of the received terminal, and feeds back the detection result to the terminal, so that the terminal can clearly know whether the base station successfully receives the first of the two-step random access mechanism.
  • the preamble and data of the message ensure the reliability of network communication.
  • FIG. 1 is a schematic diagram showing a communication process of a four-step random access mechanism
  • FIG. 2 is a schematic diagram showing a communication process of a two-step random access mechanism
  • FIG. 3 is a schematic flowchart diagram of a random access feedback method in some embodiments of the present disclosure
  • FIG. 4 is a block diagram showing a base station in some embodiments of the present disclosure.
  • FIG. 5 is a schematic structural diagram of a base station in some embodiments of the present disclosure.
  • FIG. 6 is a schematic flowchart diagram of a random access processing method in some embodiments of the present disclosure.
  • Figure 7 is a block diagram showing a terminal in some embodiments of the present disclosure.
  • FIG. 8 is a block diagram showing the structure of a terminal in some embodiments of the present disclosure.
  • the present disclosure is directed to the related art that the terminal cannot know whether the base station successfully receives the preamble and the data of the first message in the two-step random access mechanism, and the two-step random access mechanism is incomplete, and the network communication reliability is affected.
  • the problem is to provide a random access feedback, processing method, base station and terminal.
  • an embodiment of the present disclosure provides a random access feedback method, including:
  • Step 31 The first message sent by the terminal when performing random access, where the first message includes a preamble field and a data field.
  • the first message (ie, Msg1) is a random access message that is sent to the base station when the terminal adopts the two-step random access mechanism, and usually the preamble field and the data field are reserved in the first message.
  • the preamble and the data information sent by the terminal to the base station are filled in to the location indicated by the corresponding field.
  • Step 32 Detect a preamble field and a data field of the first message, and obtain a detection result of whether a preamble exists in the first message and/or whether data is successfully obtained in the first message.
  • the base station when receiving the random access message sent by the terminal, the base station needs to separately detect the preamble field and the data field in the random access message to determine whether the preamble and the data of the random access are received.
  • the preamble and the data sent by the terminal are encoded in different coding manners.
  • the detection result includes: a preamble exists in the first message, and the first There is no preamble in the message, data is successfully obtained in the first message, data is not successfully obtained in the first message, a preamble exists in the first message, and the first message is not successfully obtained. At least one of data, and a preamble in the first message and successfully obtained data in the first message.
  • Step 33 The detection result is fed back to the terminal.
  • the terminal After the detection of the first message sent by the terminal to the terminal is completed, the terminal needs to notify the terminal of the detection result, so that the terminal performs subsequent random access processing according to the detection result.
  • the following includes a preamble in the first message and the data is not successfully obtained in the first message, where the detection result includes a preamble in the first message and is in the first
  • the detection result includes a preamble in the first message and is in the first
  • the implementation of the step 33 is:
  • Manner 11 Send a random access response carrying a data transmission error message to the terminal;
  • the data transmission error information is directly carried in the random access response as an explicit feedback of the detection result.
  • the base station can be decoded.
  • the data information fails.
  • the terminal needs to resend the data that is not successfully sent in the first message to the base station.
  • the terminal can continue to transmit the third message (Msg3) in the four-step random access mechanism, and The data that was not successfully transmitted in the first message in the two-step random access mechanism is resent to the base station in the third message.
  • the method 12 Send a random access response carrying a Temporary Cell-RNTI (Radio Network Temporary Identifier) of the terminal to the terminal, where the temporary network identifier information of the terminal is not Equal to the identification information of the terminal (for example, UE ID);
  • a Temporary Cell-RNTI Radio Network Temporary Identifier
  • the temporary identifier information of the wireless network carrying the terminal in the random access response is an implicit feedback of the detection result, and the terminal identifies the identity information in the data when the terminal sends the random access message.
  • the information is sent to the base station.
  • the terminal obtains the wireless network temporary identification information of the terminal carried in the random access response and the identification information of the terminal itself is not equal, it indicates that the base station does not successfully detect the data in the random access message, that is, the indication
  • the base station decodes the data, and the base station needs to generate the temporary identifier information of the wireless network.
  • the temporary identifier information of the wireless network may be determined by the base station according to the time-frequency resource location occupied by the first message. get.
  • the terminal needs to resend the unsuccessfully transmitted data in the first message to the base station.
  • the terminal may continue to transmit the third message in the four-step random access mechanism, and The data that is not successfully sent in the first message in the step random access mechanism is resent to the base station in the third message.
  • Method 13 the medium access control (MAC) protocol data unit (PDU) format is used to feed back the random access response to the terminal;
  • MAC medium access control
  • PDU protocol data unit
  • the method also implicitly performs feedback of the detection result.
  • the first random access mechanism is a four-step random access mechanism, and the base station adopts a four-step random access mechanism to feed back the randomized MAC PDU format.
  • the base station decodes the data, and in this case, the terminal performs the unsuccessfully transmitted data in the first message based on the uplink grant (UL Grant) in the random access response.
  • the modulation and coding scheme (MCS) and the time-frequency position used are determined according to the uplink grant.
  • the base station does not detect the data in the first message, and may not perform the feedback of the random access response.
  • the terminal does not receive the random access response fed back by the base station in the random access response time window, It can be known that the random access is unsuccessful.
  • the terminal needs to increase the transmission power and re-perform random access until the maximum number of transmissions is reached.
  • the random access can adopt a four-step random access mechanism, or a two-step random connection.
  • the incoming mechanism performs a random access procedure.
  • step 33 When the detection result includes the preamble in the first message and the data is successfully obtained in the first message, the implementation of the step 33 is:
  • Manner 21 Send a random access response carrying data transmission success information to the terminal;
  • the data transmission success information directly carried in the random access response is an explicit feedback of the detection result.
  • the base station can be known to decode the base station.
  • the data information is successful, that is, the random access is successful.
  • the terminal determines that the random access process is completed, and performs a subsequent communication process.
  • the method 22 Send a random access response carrying the identifier information of the terminal to the terminal, where the identifier information is detected in a data field of the first message;
  • the identifier information of the terminal is implicitly used for feedback of the detection result. Because the terminal sends the random access message, the identity information of the terminal is sent together in the data information. When the base station obtains the random access response and the identifier information of the terminal is not equal, it indicates that the base station successfully detects the data in the random access message, that is, the base station decodes the data successfully, that is, the random access succeeds. At this point, the terminal determines that the random access procedure is completed, and performs a subsequent communication process.
  • the mode 23 the media access control layer protocol data unit format of the second random access mechanism is used to feed back the random access response to the terminal, where the random access response carries the detected information in the data field of the first message.
  • the identification information of the terminal is used to feed back the random access response to the terminal.
  • the second random access mechanism is a two-step random access mechanism.
  • the base station adopts a two-step random access mechanism
  • the MAC PDU format is fed back randomly.
  • the base station decodes the data successfully, that is, the random access is successful.
  • the terminal determines that the random access process is completed, and performs a subsequent communication process.
  • the implementation manner of the step 33 is:
  • the random access response is not sent to the terminal.
  • the base station does not detect the data in the first message, and may not perform the feedback of the random access response.
  • the terminal does not receive the random access response fed back by the base station in the random access response time window, It can be known that the random access is unsuccessful.
  • the terminal needs to increase the transmission power and re-perform random access until the maximum number of transmissions is reached.
  • the random access can adopt a four-step random access mechanism, or a two-step random connection.
  • the incoming mechanism performs a random access procedure.
  • the explicit indication mode is the pre-defined bit field feedback detection result in the random access response, that is, the mode 11 and the mode 12 described above; the implicit indication mode is further divided into two cases, one is for the two-step random access mechanism. And a four-step random access mechanism to design a unified random access response MAC PDU format.
  • the terminal determines whether the value of the field is the same as the identification information of the terminal itself, and obtains a feedback result of whether the base station detects the data successfully. That is, the foregoing mode 12 and mode 22; the other is to design different random access response MAC PDU formats for the two-step random access mechanism and the four-step random access mechanism, and perform two random accesses through different MAC PDU formats.
  • the mechanism is differentiated to distinguish whether the base station successfully decodes the data, that is, the mode 13 and the mode 23 described above.
  • the base station detects the preamble but does not successfully obtain the data, and uses the explicit method to feedback the detection result.
  • the base station When the base station detects the preamble but does not successfully acquire the data, the base station sets a bit field indicating that the current Msg1 data portion in the random access response is NACK (data transmission error identifying Msg1).
  • the terminal When receiving the NACK indication in the random access response, the terminal continues the Msg3 transmission in the four-step random access procedure, and sends the data in the Msg1 of the original two-step random access procedure in Msg3.
  • the base station detects the preamble but does not successfully obtain the data, and uses the implicit first method to feedback the detection result.
  • the base station When the base station detects the preamble in the two-step random access mechanism Msg1 but does not successfully acquire the data, the base station feeds back the T-RNTI in the random access response, and the T-RNTI can be determined by the time-frequency resource location occupied by the Msg1.
  • the terminal determines that the T-RNTI received in the random access response is not equal to the UE ID stored by the terminal itself, the Msg3 transmission in the four-step random access process is continued, and the Msg1 of the original two-step random access procedure is performed.
  • the data in is sent in Msg3.
  • the base station detects the preamble but does not successfully obtain the data, and uses the implicit second method to feedback the detection result.
  • the base station When the base station detects the preamble in the two-step random access mechanism Msg1 but fails to acquire data successfully, the base station uses the MAC PDU format applied to the four-step random access mechanism for feedback in the random access response.
  • the terminal When the terminal determines that the MAC PDU format applied to the four-step random access mechanism is received in the random access response, the terminal performs a retransmission based on the uplink grant in the random access response, and the retransmitted content is the data of the Msg1.
  • the modulation coding mode and the time-frequency location used are determined according to the uplink grant.
  • the base station detects the preamble but does not successfully obtain the data, and does not provide feedback on the detection result.
  • the base station When the base station detects the preamble in the two-step random access mechanism Msg1 but does not successfully obtain the data, the base station does not feed back any random access response; the terminal itself judges in the random access response time window, and repeats the random access procedure. (It can be two-step random access or four-step random access).
  • the terminal When the terminal does not receive the random access response in the corresponding random access response time window under the condition that the terminal transmits the preamble and data of the two-step random access, the terminal has two processing methods: first, promotion Transmit power and enter a new four-step random access procedure; second, boost the transmit power and re-enter the two-step random access procedure.
  • the base station detects the preamble and successfully obtains the data, and uses the explicit method to feedback the detection result.
  • the base station When the base station detects the preamble and successfully acquires the data, the base station sets a bit field indicating that the current Msg1 data part in the random access response is ACK (data transmission of the identifier Msg1 is successful).
  • the terminal When the terminal receives the ACK indication in the random access response, it determines that the two-step random access procedure ends.
  • the base station detects the preamble and successfully obtains the data, and uses the implicit second method to feedback the detection result.
  • the base station When the base station detects the preamble and successfully decodes the data, the base station parses the UE ID from the data part and fills in the relevant field in the random access response, and adopts the MAC PDU format of the two-step random access mechanism in the random access response. Give feedback.
  • the terminal receives the MAC PDU format of the two-step random access mechanism in the random access response, and determines that the two-step random access procedure ends when the terminal identification information related field in the random access response is equal to the UE ID stored by the terminal itself.
  • the embodiment of the present disclosure solves the problem that the terminal cannot know whether the preamble and the data part in the Msg1 received by the base station are correct in the two-step random access mechanism, and ensures the integrity of the scheme of the two-step random access mechanism, and simultaneously uses the two The step random access mechanism effectively reduces the control plane processing delay relative to the four-step random access mechanism.
  • an embodiment of the present disclosure provides a base station 40, including:
  • the first receiving module 41 is configured to receive a first message that is sent when the terminal performs random access, where the first message includes a preamble field and a data field;
  • the detecting module 42 is configured to detect a preamble field and a data field of the first message, to obtain whether a preamble exists in the first message, and/or whether a data is successfully obtained in the first message. ;
  • the feedback module 43 is configured to feed back the detection result to the terminal.
  • the detection result includes: a preamble exists in the first message, a preamble does not exist in the first message, data is successfully obtained in the first message, and the first message is unsuccessful Obtaining at least one of obtaining data, having a preamble in the first message, not successfully obtaining data in the first message, and having a preamble in the first message and successfully obtaining data in the first message By.
  • the feedback module 43 is configured to:
  • the random access response is not sent to the terminal.
  • the feedback module 43 is configured to:
  • the medium access control layer protocol data unit format of the second random access mechanism is used to feed back the random access response to the terminal, where the random access response carries the terminal detected in the data field of the first message. Identification information.
  • the feedback module 43 is configured to:
  • the random access response is not sent to the terminal.
  • the embodiment of the base station is a base station corresponding to the foregoing method embodiment. All the implementation manners in the foregoing method embodiments are applicable to the embodiment of the base station, and the same technical effects can be achieved.
  • an embodiment of the present disclosure provides a base station, including:
  • processor 51 a processor 51; and a memory 53 connected to the processor 51 via a bus interface 52, the memory 53 for storing programs and data used by the processor 51 when performing operations, when the processor 51 calls and When executing the programs and data stored in the memory 53, the following processes are performed:
  • the transceiver 54 Receiving, by the transceiver 54, a first message that is sent when the terminal performs random access, where the first message includes a preamble field and a data field;
  • Detecting a preamble field and a data field of the first message to obtain whether a preamble exists in the first message and/or a detection result of whether data is successfully obtained in the first message;
  • the detection result is fed back to the terminal through the transceiver 54.
  • processor 51 is also used to implement the functions of any other module of the foregoing base station.
  • transceiver 54 is connected to the bus interface 52 for receiving the first message and feeding back the detection result under the control of the processor 51.
  • the bus architecture may include any number of interconnected buses and bridges, specifically linked by one or more processors represented by processor 51 and various circuits of memory represented by memory 53.
  • the bus architecture can also link various other circuits such as peripherals, voltage regulators, and power management circuits.
  • the bus interface provides an interface.
  • Transceiver 54 can be a plurality of components, including a transmitter and a transceiver, providing means for communicating with various other devices on a transmission medium.
  • the processor 51 is responsible for managing the bus architecture and the usual processing, and the memory 53 can store data used by the processor 51 when performing operations.
  • the embodiment of the present disclosure provides a random access processing method, including:
  • Step 61 When performing random access, send a first message including a preamble field and a data field to the base station;
  • Step 62 Receive a detection result of the first message fed back by the base station, where the detection result is whether a preamble exists in the first message and/or whether data is successfully obtained in the first message;
  • Step 63 Perform random access processing corresponding to the detection result according to the detection result.
  • the detection result includes: a preamble exists in the first message, a preamble does not exist in the first message, data is successfully obtained in the first message, and the first message is unsuccessful Obtaining at least one of obtaining data, having a preamble in the first message, not successfully obtaining data in the first message, and having a preamble in the first message and successfully obtaining data in the first message By.
  • the specific implementation manner of the step 62 is:
  • step 63 resending data that is not successfully sent in the first message to the base station.
  • the specific implementation manner of the step 62 is:
  • step 63 the specific implementation of the step 63 is: performing retransmission of data that is not successfully sent in the first message, based on an uplink grant in the random access response.
  • the specific implementation manner of the step 62 is:
  • the specific implementation manner of the step 63 is: determining that the random access procedure of the terminal is completed, and performing a subsequent communication process.
  • the step 62 is performed.
  • the specific implementation is:
  • the random access response fed back by the base station is not received.
  • the specific implementation manner of the step 63 is: increasing the transmission power, and performing random access again until the maximum number of transmissions is reached.
  • an embodiment of the present disclosure provides a terminal 70, including:
  • the sending module 71 is configured to send, when performing random access, a first message including a preamble field and a data field to the base station;
  • the second receiving module 72 is configured to receive a detection result of the first message that is sent by the base station, where the detection result is whether a preamble exists in the first message and/or whether it is in the first message. Successfully obtained data;
  • the processing module 73 is configured to perform random access processing corresponding to the detection result according to the detection result.
  • the detection result includes: a preamble exists in the first message, a preamble does not exist in the first message, data is successfully obtained in the first message, and the first message is unsuccessful Obtaining at least one of obtaining data, having a preamble in the first message, not successfully obtaining data in the first message, and having a preamble in the first message and successfully obtaining data in the first message By.
  • the second receiving module 72 is configured to:
  • the second receiving module 72 is configured to:
  • processing module 73 is configured to:
  • the second receiving module 72 is configured to:
  • processing module 73 is configured to:
  • Retransmitting data that is not successfully transmitted in the first message is performed based on an uplink grant in the random access response.
  • the second receiving module 72 is configured to:
  • processing module 73 is configured to:
  • the second The receiving module 72 is configured to:
  • the random access response fed back by the base station is not received.
  • processing module 73 is configured to:
  • the embodiment of the terminal is a terminal corresponding to the foregoing method embodiment. All the implementation manners in the foregoing method embodiments are applicable to the embodiment of the terminal, and the same technical effects can be achieved.
  • an embodiment of the present disclosure provides a terminal, including:
  • a processor 81 a processor 81; and a memory 83 connected to the processor 81 via a bus interface 82, the memory 83 for storing programs and data used by the processor 81 when performing operations, when the processor 81 calls and When executing the programs and data stored in the memory 83, the following process is performed:
  • the first message including the preamble field and the data field is sent by the transceiver 84 to the base station;
  • the transceiver 84 Receiving, by the transceiver 84, a detection result of the first message fed back by the base station, where the detection result is whether a preamble exists in the first message and/or whether data is successfully obtained in the first message;
  • the transceiver 84 is connected to the bus interface 82 for transmitting the first message and obtaining the detection result under the control of the processor 81.
  • the bus architecture may include any number of interconnected buses and bridges, specifically linked by one or more processors represented by processor 81 and various circuits of memory represented by memory 83.
  • the bus architecture can also link various other circuits such as peripherals, voltage regulators, and power management circuits.
  • the bus interface provides an interface.
  • Transceiver 84 can be a plurality of components, including a transmitter and a transceiver, providing means for communicating with various other devices on a transmission medium.
  • the user interface 85 may also be an interface capable of externally connecting the required devices, including but not limited to a keypad, a display, a speaker, a microphone, a joystick, and the like.
  • the processor 81 is responsible for managing the bus architecture and general processing, and the memory 83 can store data used by the processor 81 when performing operations.

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Abstract

本公开提供了一种随机接入反馈、处理方法、基站及终端。该随机接入反馈方法,包括:接收终端进行随机接入时发送的第一消息,所述第一消息中包括前导码字段和数据字段;对所述第一消息的前导码字段和数据字段进行检测,得到所述第一消息中是否存在前导码和/或是否在所述第一消息中成功获得数据的检测结果;将所述检测结果反馈给终端。

Description

一种随机接入反馈、处理方法、基站及终端
相关申请的交叉引用
本申请主张在2017年1月6日在中国提交的中国专利申请No.201710012053.9的优先权,其全部内容通过引用包含于此。
技术领域
本公开涉及通信技术领域,特别涉及一种随机接入反馈、处理方法、基站及终端。
背景技术
现有长期演进(Long Term Evolutionary,LTE)协议采用四步随机接入机制,如图1所示,四步随机接入机制的主要实现过程为:
步骤11,终端发送随机接入前导码(Random Access Preamble,即Msg1消息)给基站;
步骤12,基站反馈随机接入响应(Random Access Response,RAR,即Msg2消息)给终端;
步骤13,终端发送基于调度的传输消息(Scheduled Transmission,即Msg3消息),该Msg3消息中包含层2/层3(L2/L3)随机接入信息;
步骤14,基站发送竞争解决消息(Contention Resolution,即Msg4消息)给终端。
对于第5代移动通信系统(5G)新空口(New Radio,NR)中的上行多波束(multi-beam)物理随机接入信道(Physical Random Access Channel,PRACH)传输存在控制面时延较大的问题,无法满足针对低时延高可靠(Ultra-Reliable and Low Latency Communications,URLLC)场景定义的低时延的性能指标。为了有效降低控制面处理时延的处理方法,NR目前正在讨论两步随机接入机制。如图2所示,两步随机接入机制的主要实现过程为:
步骤21,终端发送随机接入前导码以及数据(Random Access Preamble+Data,即Msg1消息)给基站,该Msg1消息中包括终端的标识信息(即UE ID)、 小数据包等;
步骤22,基站反馈随机接入响应(Random Access Response,RAR,即Msg2消息)给终端。
需要说明的是,NR的两步随机接入机制与传统LTE的四步随机接入机制的差异在于Msg1同时发送了随机接入的前导码和数据,其中,数据承载的内容对应于四步随机接入机制中的Msg3的内容。
但是目前两步随机接入机制并没有定义终端获知基站是否成功接收了两步随机接入机制中的第一消息的前导码和数据的方法,造成两步随机接入机制不完整,无法保证网络通信的可靠性。
发明内容
本公开要解决的技术问题是提供一种随机接入反馈、处理方法、基站及终端,用以解决相关技术中的终端无法得知基站是否成功接收了两步随机接入机制中的第一消息的前导码和数据,造成两步随机接入机制不完整,存在影响网络通信可靠性的问题。
为了解决上述技术问题,本公开实施例提供一种随机接入反馈方法,包括:
接收终端进行随机接入时发送的第一消息,所述第一消息中包括前导码字段和数据字段;
对所述第一消息的前导码字段和数据字段进行检测,得到所述第一消息中是否存在前导码和/或是否在所述第一消息中成功获得数据的检测结果;
将所述检测结果反馈给终端。
进一步地,所述检测结果包括:所述第一消息中存在前导码、所述第一消息中不存在前导码、在所述第一消息中成功获得数据、在所述第一消息中未成功获得数据、所述第一消息中存在前导码且在所述第一消息中未成功获得数据、和所述第一消息中存在前导码且在所述第一消息中成功获得数据中的至少一者。
进一步地,当所述检测结果包括所述第一消息中存在前导码且在所述第一消息中未成功获得数据时,所述将所述检测结果反馈给终端的步骤包括:
发送携带有数据传输错误信息的随机接入响应给终端;或者
发送携带有终端的无线网络临时标识信息的随机接入响应给终端,其中,所述终端的无线网络临时标识信息不等于所述终端的标识信息;或者
采用第一随机接入机制的介质访问控制层协议数据单元格式反馈随机接入响应给终端;或者
不发送随机接入响应给终端。
进一步地,当所述检测结果包括所述第一消息中存在前导码且在所述第一消息中成功获得数据时,所述将所述检测结果反馈给终端的步骤包括:
发送携带有数据传输成功信息的随机接入响应给终端;或者
发送携带有终端的标识信息的随机接入响应给终端,所述标识信息为在所述第一消息的数据字段中检测得到的;或者
采用第二随机接入机制的介质访问控制层协议数据单元格式反馈随机接入响应给终端,所述随机接入响应中携带有在所述第一消息的数据字段中检测得到的所述终端的标识信息。
进一步地,当所述检测结果包括所述第一消息中不存在前导码时,所述将所述检测结果反馈给终端的步骤包括:
不发送随机接入响应给终端。
本公开实施例提供一种基站,包括:
第一接收模块,用于接收终端进行随机接入时发送的第一消息,所述第一消息中包括前导码字段和数据字段;
检测模块,用于对所述第一消息的前导码字段和数据字段进行检测,得到所述第一消息中是否存在前导码和/或是否在所述第一消息中成功获得数据的检测结果;
反馈模块,用于将所述检测结果反馈给终端。
进一步地,所述检测结果包括:所述第一消息中存在前导码、所述第一消息中不存在前导码、在所述第一消息中成功获得数据、在所述第一消息中未成功获得数据、所述第一消息中存在前导码且在所述第一消息中未成功获得数据、和所述第一消息中存在前导码且在所述第一消息中成功获得数据中的至少一者。
进一步地,当所述检测结果包括所述第一消息中存在前导码且在所述第一消息中未成功获得数据时,所述反馈模块用于:
发送携带有数据传输错误信息的随机接入响应给终端;或者
发送携带有终端的无线网络临时标识信息的随机接入响应给终端,其中,所述终端的无线网络临时标识信息不等于所述终端的标识信息;或者
采用第一随机接入机制的介质访问控制层协议数据单元格式反馈随机接入响应给终端;或者
不发送随机接入响应给终端。
进一步地,当所述检测结果包括所述第一消息中存在前导码且在所述第一消息中成功获得数据时,所述反馈模块用于:
发送携带有数据传输成功信息的随机接入响应给终端;或者
发送携带有终端的标识信息的随机接入响应给终端,所述标识信息为在所述第一消息的数据字段中检测得到的;或者
采用第二随机接入机制的介质访问控制层协议数据单元格式反馈随机接入响应给终端,所述随机接入响应中携带有在所述第一消息的数据字段中检测得到的所述终端的标识信息。
进一步地,当所述检测结果包括所述第一消息中不存在前导码时,所述反馈模块用于:
不发送随机接入响应给终端。
本公开实施例提供一种随机接入处理方法,包括:
在进行随机接入时,发送包括前导码字段和数据字段的第一消息给基站;
接收所述基站反馈的对所述第一消息的检测结果,所述检测结果为所述第一消息中是否存在前导码和/或是否在所述第一消息中成功获得数据;
根据所述检测结果,进行与所述检测结果对应的随机接入处理。
进一步地,所述检测结果包括:所述第一消息中存在前导码、所述第一消息中不存在前导码、在所述第一消息中成功获得数据、在所述第一消息中未成功获得数据、所述第一消息中存在前导码且在所述第一消息中未成功获得数据、和所述第一消息中存在前导码且在所述第一消息中成功获得数据中的至少一者。
进一步地,当所述检测结果包括所述第一消息中存在前导码且在所述第一消息中未成功获得数据时,所述接收所述基站反馈的对所述第一消息的检测结果的步骤包括:
接收基站发送的携带有数据传输错误信息的随机接入响应。
进一步地,当所述检测结果包括所述第一消息中存在前导码且在所述第一消息中未成功获得数据时,所述接收所述基站反馈的对所述第一消息的检测结果的步骤包括:
接收基站发送的携带有终端的无线网络临时标识信息的随机接入响应,其中,所述终端的无线网络临时标识信息不等于所述终端的标识信息。
进一步地,所述进行与所述检测结果对应的随机接入处理的步骤包括:
将在所述第一消息中未成功发送的数据重新发送给所述基站。
进一步地,当所述检测结果包括所述第一消息中存在前导码且在所述第一消息中未成功获得数据时,所述接收所述基站反馈的对所述第一消息的检测结果的步骤包括:
接收所述基站采用第一随机接入机制的介质访问控制层协议数据单元格式反馈的随机接入响应。
进一步地,所述进行与所述检测结果对应的随机接入处理的步骤包括:
基于所述随机接入响应中的上行授权,进行所述第一消息中未成功发送的数据的重传。
进一步地,当所述检测结果包括所述第一消息中存在前导码且在所述第一消息中成功获得数据时,所述接收所述基站反馈的对所述第一消息的检测结果的步骤包括:
接收基站发送的携带有数据传输成功信息的随机接入响应;或者
接收基站发送的携带有终端的标识信息的随机接入响应,所述标识信息为在所述第一消息的数据字段中检测得到的;或者
接收基站采用第二随机接入机制的介质访问控制层协议数据单元格式反馈的随机接入响应,所述随机接入响应中携带有在所述第一消息的数据字段中检测得到的所述终端的标识信息。
进一步地,所述进行与所述检测结果对应的随机接入处理的步骤包括:
确定终端的随机接入过程完成,进行后续的通信过程。
进一步地,当所述检测结果包括所述第一消息中不存在前导码和/或所述第一消息中存在前导码且在所述第一消息中未成功获得数据时,所述接收所述基站反馈的对所述第一消息的检测结果的步骤包括:
在预定的随机接入响应时间窗口内,未接收到基站反馈的随机接入响应。
进一步地,所述进行与所述检测结果对应的随机接入处理的步骤包括:
提升发送功率,重新进行随机接入,直到达到最大传输次数。
本公开实施例提供一种终端,包括:
发送模块,用于在进行随机接入时,发送包括前导码字段和数据字段的第一消息给基站;
第二接收模块,用于接收所述基站反馈的对所述第一消息的检测结果,所述检测结果为所述第一消息中是否存在前导码和/或是否在所述第一消息中成功获得数据;
处理模块,用于根据所述检测结果,进行与所述检测结果对应的随机接入处理。
进一步地,所述检测结果包括:所述第一消息中存在前导码、所述第一消息中不存在前导码、在所述第一消息中成功获得数据、在所述第一消息中未成功获得数据、所述第一消息中存在前导码且在所述第一消息中未成功获得数据、和所述第一消息中存在前导码且在所述第一消息中成功获得数据中的至少一者。
进一步地,当所述检测结果包括所述第一消息中存在前导码且在所述第一消息中未成功获得数据时,所述第二接收模块用于:
接收基站发送的携带有数据传输错误信息的随机接入响应。
进一步地,当所述检测结果包括所述第一消息中存在前导码且在所述第一消息中未成功获得数据时,所述第二接收模块用于:
接收基站发送的携带有终端的无线网络临时标识信息的随机接入响应,其中,所述终端的无线网络临时标识信息不等于所述终端的标识信息。
进一步地,所述处理模块用于:
将在所述第一消息中未成功发送的数据重新发送给所述基站。
进一步地,当所述检测结果包括所述第一消息中存在前导码且在所述第一消息中未成功获得数据时,所述第二接收模块用于:
接收所述基站采用第一随机接入机制的介质访问控制层协议数据单元格式反馈的随机接入响应。
进一步地,所述处理模块用于:
基于所述随机接入响应中的上行授权,进行所述第一消息中未成功发送的数据的重传。
进一步地,当所述检测结果包括所述第一消息中存在前导码且在所述第一消息中成功获得数据时,所述第二接收模块用于:
接收基站发送的携带有数据传输成功信息的随机接入响应;或者
接收基站发送的携带有终端的标识信息的随机接入响应,所述标识信息为在所述第一消息的数据字段中检测得到的;或者
接收基站采用第二随机接入机制的介质访问控制层协议数据单元格式反馈的随机接入响应,所述随机接入响应中携带有在所述第一消息的数据字段中检测得到的所述终端的标识信息。
进一步地,所述处理模块用于:
确定终端的随机接入过程完成,进行后续的通信过程。
进一步地,当所述检测结果包括所述第一消息中不存在前导码和/或所述第一消息中存在前导码且在所述第一消息中未成功获得数据时,所述第二接收模块用于:
在预定的随机接入响应时间窗口内,未接收到基站反馈的随机接入响应。
进一步地,所述处理模块用于:
提升发送功率,重新进行随机接入,直到达到最大传输次数。
本公开实施例提供一种基站,包括:处理器、存储器和收发机,其中:
所述处理器用于读取存储器中的程序,执行下列过程:
通过所述收发机接收终端进行随机接入时发送的第一消息,所述第一消息中包括前导码字段和数据字段;
对所述第一消息的前导码字段和数据字段进行检测,得到所述第一消息中是否存在前导码和/或是否在所述第一消息中成功获得数据的检测结 果;
通过所述收发机将所述检测结果反馈给终端,
所述收发机用于接收和发送数据,所述存储器能够存储处理器在执行操作时所使用的数据。
本公开实施例提供一种终端,包括:处理器、存储器和收发机,其中:
所述处理器用于读取存储器中的程序,执行下列过程:
在进行随机接入时,通过所述收发机发送包括前导码字段和数据字段的第一消息给基站;
通过所述收发机接收所述基站反馈的对所述第一消息的检测结果,所述检测结果为所述第一消息中是否存在前导码和/或是否在所述第一消息中成功获得数据;
根据所述检测结果,进行与所述检测结果对应的随机接入处理,
所述收发机用于接收和发送数据,所述存储器能够存储处理器在执行操作时所使用的数据。
本公开的有益效果是:
上述方案,基站通过对接收的终端的随机接入的第一消息进行检测,并将检测结果反馈给终端,使得终端可清楚的得知基站是否成功接收了两步随机接入机制中的第一消息的前导码和数据,此种方式,保证了网络通信的可靠性。
附图说明
为了更清楚地说明本公开实施例的技术方案,下面将对实施例描述中所需要使用的附图作简单地介绍,显而易见地,下面描述中的附图仅仅是本公开中记载的一些实施例,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。以下附图并未刻意按实际尺寸等比例缩放绘制,重点在于示出本公开的主旨。
图1表示四步随机接入机制的通信过程示意图;
图2表示两步随机接入机制的通信过程示意图;
图3表示本公开一些实施例中的随机接入反馈方法的流程示意图;
图4表示本公开一些实施例中的基站的模块示意图;
图5表示本公开一些实施例中的基站的结构示意图;
图6表示本公开一些实施例中的随机接入处理方法的流程示意图;
图7表示本公开一些实施例中的终端的模块示意图;
图8表示本公开一些实施例中的终端的结构示意图。
具体实施方式
下面将结合本公开实施例中的附图,对本公开实施例中的技术方案进行清楚、完整地描述,显然,所描述的实施例仅仅是本公开一部分实施例,而不是全部的实施例。基于本公开中的实施例,本领域普通技术人员在没有做出创造性劳动前提下所获得的所有其他实施例,都属于本公开保护的范围。
本公开针对相关技术中的终端无法得知基站是否成功接收了两步随机接入机制中的第一消息的前导码和数据,造成两步随机接入机制不完整,存在影响网络通信可靠性的问题,提供一种随机接入反馈、处理方法、基站及终端。
如图3所示,本公开实施例提供一种随机接入反馈方法,包括:
步骤31,接收终端进行随机接入时发送的第一消息,所述第一消息中包括前导码字段和数据字段;
需要说明的是,该第一消息(即Msg1)为终端采用两步随机接入机制时,发送给基站的随机接入消息,通常该第一消息中应预留有前导码字段和数据字段,以使终端在进行随机接入时将前导码以及终端发送给基站的数据信息填入到相应字段指示的位置上。
步骤32,对所述第一消息的前导码字段和数据字段进行检测,得到所述第一消息中是否存在前导码和/或是否在所述第一消息中成功获得数据的检测结果;
需要说明的是,基站在接收到终端发送的随机接入消息时,需要分别对该随机接入消息中的前导码字段和数据字段进行检测,以判断是否接收到随机接入的前导码和数据(需要说明的是,通常情况下,终端发送的前导码和数据采用不同的编码方式进行编码),可选地,所述检测结果包括:所述第一 消息中存在前导码、所述第一消息中不存在前导码、在所述第一消息中成功获得数据、在所述第一消息中未成功获得数据、所述第一消息中存在前导码且在所述第一消息中未成功获得数据、和所述第一消息中存在前导码且在所述第一消息中成功获得数据中的至少一者。
步骤33,将所述检测结果反馈给终端。
在基站对终端发送的第一消息检测完成后,需要将检测结果通知给终端,以使得终端依据该检测结果进行后续的随机接入处理。
下面分别从所述检测结果包括所述第一消息中存在前导码且在所述第一消息中未成功获得数据、所述检测结果包括所述第一消息中存在前导码且在所述第一消息中成功获得数据以及所述检测结果包括所述第一消息中不存在前导码的情况对上述步骤31进行说明如下。
1、当所述检测结果包括所述第一消息中存在前导码且在所述第一消息中未成功获得数据时,所述步骤33的实现方式为:
方式11、发送携带有数据传输错误信息的随机接入响应给终端;
需要说明的是,在随机接入响应中直接携带数据传输错误信息为显式的进行检测结果的反馈,当终端接收到携带有数据传输错误信息的随机接入响应时,便可以知道基站译码数据信息失败,此时终端需要将第一消息中未成功发送的数据重新发送给基站,此种情况下,终端可以继续进行四步随机接入机制中的第三消息(Msg3)的传输,并将在两步随机接入机制中在所述第一消息中未成功发送的数据放在第三消息中重新发送给基站。
方式12、发送携带有终端的无线网络临时标识信息(Temp C-RNTI,Temporary Cell-RNTI(Radio Network Temporary Identifier))的随机接入响应给终端,其中,所述终端的无线网络临时标识信息不等于所述终端的标识信息(例如,UE ID);
需要说明的是,在随机接入响应中携带终端的无线网络临时标识信息为隐式的进行检测结果的反馈,因终端在进行随机接入消息的发送时,会将自身的标识信息一同在数据信息中发送给基站,当终端得到随机接入响应中携带的终端的无线网络临时标识信息与终端自身的标识信息不相等时,则表明基站未成功检测出随机接入消息中的数据,即表示基站译码数据失败;需要 说明的是,当基站未成功译码得到数据时,需要生成终端的无线网络临时标识信息,该无线网络临时标识信息可由基站根据第一消息占用的时频资源位置确定得到。在此种方式下,终端需要将第一消息中未成功发送的数据重新发送给基站,此种情况下,终端可以继续进行四步随机接入机制中的第三消息的传输,并将在两步随机接入机制中在所述第一消息中未成功发送的数据放在第三消息中重新发送给基站。
方式13、采用第一随机接入机制的介质访问控制层(Medium Access Control,MAC)协议数据单元(Protocol Data Unit,PDU)格式反馈随机接入响应给终端;
需要说明的是,此种方式也为隐式的进行检测结果的反馈,该第一随机接入机制即为四步随机接入机制,当基站采用四步随机接入机制的MAC PDU格式反馈随机接入响应时,即表明基站译码数据失败,在此种情况下,终端会基于所述随机接入响应中的上行授权(UL Grant),进行所述第一消息中未成功发送的数据的重传,同时终端在进行重传时,所采用的调制编码方式(Modulation and Coding Scheme,MCS)和时频位置都根据该上行授权确定。
方式14、不发送随机接入响应给终端。
此种方式下,因基站未检测出第一消息中的数据,可以不进行随机接入响应的反馈,当终端在随机接入响应时间窗口内没有接收到基站反馈的随机接入响应时,便可知道随机接入未成功,终端此时需要提升发送功率,重新进行随机接入,直到达到最大传输次数,此时的随机接入可以采用四步随机接入机制,也可以采用两步随机接入机制进行随机接入过程。
2、当所述检测结果包括所述第一消息中存在前导码且在所述第一消息中成功获得数据时,所述步骤33的实现方式为:
方式21、发送携带有数据传输成功信息的随机接入响应给终端;
需要说明的是,在随机接入响应中直接携带数据传输成功信息为显式的进行检测结果的反馈,当终端接收到携带有数据传输成功信息的随机接入响应时,便可以知道基站译码数据信息成功,也就是随机接入成功,此时终端确定随机接入过程完成,进行后续的通信过程。
方式22、发送携带有终端的标识信息的随机接入响应给终端,所述标识 信息为在所述第一消息的数据字段中检测得到的;
需要说明的是,在随机接入响应中携带终端的标识信息为隐式的进行检测结果的反馈,因终端在进行随机接入消息的发送时,会将自身的标识信息一同在数据信息中发送给基站,当终端得到随机接入响应中携带有自身的标识信息不相等时,则表明基站成功检测出随机接入消息中的数据,即表示基站译码数据成功,也就是随机接入成功,此时终端确定随机接入过程完成,进行后续的通信过程。
方式23、采用第二随机接入机制的介质访问控制层协议数据单元格式反馈随机接入响应给终端,所述随机接入响应中携带有在所述第一消息的数据字段中检测得到的所述终端的标识信息。
需要说明的是,此种方式也为隐式的进行检测结果的反馈,该第二随机接入机制即为两步随机接入机制,当基站采用两步随机接入机制的MAC PDU格式反馈随机接入响应时,即表明基站译码数据成功,也就是随机接入成功,此时终端确定随机接入过程完成,进行后续的通信过程。
3、当所述检测结果包括所述第一消息中不存在前导码时,所述步骤33的实现方式为:
不发送随机接入响应给终端。
此种方式下,因基站未检测出第一消息中的数据,可以不进行随机接入响应的反馈,当终端在随机接入响应时间窗口内没有接收到基站反馈的随机接入响应时,便可知道随机接入未成功,终端此时需要提升发送功率,重新进行随机接入,直到达到最大传输次数,此时的随机接入可以采用四步随机接入机制,也可以采用两步随机接入机制进行随机接入过程。
需要说明的是,本公开实施例中主要提供了两种检测结果反馈的方式,即显式指示方式和隐式指示方式。
显式指示方式即在随机接入响应中预先定义的比特字段反馈检测结果,即上述的方式11和方式12;隐式指示方式又分为两种情况,一种是针对两步随机接入机制和四步随机接入机制设计统一的随机接入响应MAC PDU格式,在该格式中,终端通过判断该字段的取值是否与终端自身的标识信息相同,得到基站是否检测数据成功的反馈结果,即上述的方式12和方式22; 另一种是针对两步随机接入机制和四步随机接入机制设计不同的随机接入响应MAC PDU格式,通过不同的MAC PDU格式进行两种随机接入机制的区分,以此区分基站是否成功译码出数据,即上述的方式13和方式23。
下面在实际应用中,对本公开实施例的上述实现方式举例说明如下。
a、基站检测到前导码但没有成功获得数据,采用显式方式进行检测结果的反馈
当基站检测到前导码但没有成功获取数据时,基站设置随机接入响应中指示当前Msg1数据部分的比特字段为NACK(标识Msg1的数据传输错误)。
终端收到随机接入响应中NACK指示时,继续进行四步随机接入过程中的Msg3的传输,并且把原来两步随机接入过程的Msg1中的数据放在Msg3中发送。
b、基站检测到前导码但没有成功获得数据,采用隐式的第一种方式进行检测结果的反馈
当基站检测到两步随机接入机制Msg1中的前导码但没有成功获取数据时,基站在随机接入响应中反馈T-RNTI,该T-RNTI可以由Msg1占用的时频资源位置决定。
当终端判断在随机接入响应中接收到的T-RNTI不等于终端自身存储的UE ID时,继续进行四步随机接入过程中的Msg3的传输,并且把原来两步随机接入过程的Msg1中的数据放在Msg3中发送。
c、基站检测到前导码但没有成功获得数据,采用隐式的第二种方式进行检测结果的反馈
当基站检测到两步随机接入机制Msg1中的前导码但没有成功获取数据时,基站在随机接入响应中采用应用于四步随机接入机制的MAC PDU格式进行反馈。
当终端判断在随机接入响应中接收到应用于四步随机接入机制的MAC PDU格式时,终端会基于随机接入响应中的上行授权进行一次重传,重传的内容是Msg1的数据,采用的调制编码方式和时频位置都根据该上行授权确定。
d、基站检测到前导码但没有成功获得数据,不进行检测结果的反馈
当基站检测到两步随机接入机制Msg1中的前导码但没有成功获得数据时,基站不反馈任何随机接入响应;由终端自己在随机接入响应时间窗口内判断,并且重复随机接入过程(可以是两步随机接入或者四步随机接入)。
终端在发送了两步随机接入的前导码和数据的Msg1条件下,在对应的随机接入响应时间窗口内没有接收到随机接入响应时,则终端有两种处理方法:第一,提升发送功率,并进入新的四步随机接入过程;第二,提升发送功率,并重新进入两步随机接入过程。
e、基站检测到前导码且成功获得数据,采用显式方式进行检测结果的反馈
当基站检测到前导码且成功获取数据时,基站设置随机接入响应中指示当前Msg1数据部分的比特字段为ACK(标识Msg1的数据传输成功)。
终端收到随机接入响应中ACK指示时,判断两步随机接入过程结束。
f、基站检测到前导码且成功获得数据,采用隐式的第二种方式进行检测结果的反馈
当基站检测到前导码且成功译码数据,基站从数据部分解析出UE ID并且填入到随机接入响应中的有关字段,在随机接入响应中采用两步随机接入机制的MAC PDU格式进行反馈。
终端在随机接入响应中接收到两步随机接入机制的MAC PDU格式,并且随机接入响应中的终端标识信息有关字段等于终端自身存储的UE ID时,判断两步随机接入过程结束。
本公开实施例解决了两步随机接入机制中终端无法获知基站接收的Msg1中的前导码和数据部分是否正确的问题,保证了两步随机接入机制的方案完整性,同时,使用该两步随机接入机制相对于四步随机接入机制而言,有效地降低了控制面处理时延。
如图4所示,本公开实施例提供一种基站40,包括:
第一接收模块41,用于接收终端进行随机接入时发送的第一消息,所述第一消息中包括前导码字段和数据字段;
检测模块42,用于对所述第一消息的前导码字段和数据字段进行检测,得到所述第一消息中是否存在前导码和/或是否在所述第一消息中成功获得 数据的检测结果;
反馈模块43,用于将所述检测结果反馈给终端。
具体地,所述检测结果包括:所述第一消息中存在前导码、所述第一消息中不存在前导码、在所述第一消息中成功获得数据、在所述第一消息中未成功获得数据、所述第一消息中存在前导码且在所述第一消息中未成功获得数据、和所述第一消息中存在前导码且在所述第一消息中成功获得数据中的至少一者。
可选地,当所述检测结果包括所述第一消息中存在前导码且在所述第一消息中未成功获得数据时,所述反馈模块43用于:
发送携带有数据传输错误信息的随机接入响应给终端;或者
发送携带有终端的无线网络临时标识信息的随机接入响应给终端,其中,所述终端的无线网络临时标识信息不等于所述终端的标识信息;或者
采用第一随机接入机制的介质访问控制层协议数据单元格式反馈随机接入响应给终端;或者
不发送随机接入响应给终端。
可选地,当所述检测结果包括所述第一消息中存在前导码且在所述第一消息中成功获得数据时,所述反馈模块43用于:
发送携带有数据传输成功信息的随机接入响应给终端;或者
发送携带有终端的标识信息的随机接入响应给终端,所述标识信息为在所述第一消息的数据字段中检测得到的;或者
采用第二随机接入机制的介质访问控制层协议数据单元格式反馈随机接入响应给终端,所述随机接入响应中携带有在所述第一消息的数据字段中检测得到的所述终端的标识信息。
可选地,当所述检测结果包括所述第一消息中不存在前导码时,所述反馈模块43用于:
不发送随机接入响应给终端。
需要说明的是,该基站的实施例是与上述的方法实施例一一对应的基站,上述方法实施例中所有实现方式均适用于该基站的实施例中,也能达到相同的技术效果。
如图5所示,本公开实施例提供一种基站,包括:
处理器51;以及通过总线接口52与所述处理器51相连接的存储器53,所述存储器53用于存储所述处理器51在执行操作时所使用的程序和数据,当处理器51调用并执行所述存储器53中所存储的程序和数据时,执行下列过程:
通过收发机54接收终端进行随机接入时发送的第一消息,所述第一消息中包括前导码字段和数据字段;
对所述第一消息的前导码字段和数据字段进行检测,得到所述第一消息中是否存在前导码和/或是否在所述第一消息中成功获得数据的检测结果;
通过收发机54将所述检测结果反馈给终端。
需要说明的是,该处理器51还用于实现上述基站的其它任意一个模块的功能。
需要说明的是,收发机54与总线接口52连接,用于在处理器51的控制下接收第一消息以及反馈检测结果。
需要说明的是,在图5中,总线架构可以包括任意数量的互联的总线和桥,具体由处理器51代表的一个或多个处理器和存储器53代表的存储器的各种电路链接在一起。总线架构还可以将诸如外围设备、稳压器和功率管理电路等之类的各种其他电路链接在一起。总线接口提供接口。收发机54可以是多个元件,即包括发送机和收发机,提供用于在传输介质上与各种其他装置通信的单元。处理器51负责管理总线架构和通常的处理,存储器53可以存储处理器51在执行操作时所使用的数据。
本领域技术人员可以理解,实现上述实施例的全部或者部分步骤可以通过硬件来完成,也可以通过计算机程序来指示相关的硬件来完成,所述计算机程序包括执行上述方法的部分或者全部步骤的指令;且该计算机程序可以存储于一可读存储介质中,存储介质可以是任何形式的存储介质。
如图6所示,本公开实施例提供一种随机接入处理方法,包括:
步骤61,在进行随机接入时,发送包括前导码字段和数据字段的第一消息给基站;
步骤62,接收所述基站反馈的对所述第一消息的检测结果,所述检测结 果为所述第一消息中是否存在前导码和/或是否在所述第一消息中成功获得数据;
步骤63,根据所述检测结果,进行与所述检测结果对应的随机接入处理。
具体地,所述检测结果包括:所述第一消息中存在前导码、所述第一消息中不存在前导码、在所述第一消息中成功获得数据、在所述第一消息中未成功获得数据、所述第一消息中存在前导码且在所述第一消息中未成功获得数据、和所述第一消息中存在前导码且在所述第一消息中成功获得数据中的至少一者。
可选地,当所述检测结果包括所述第一消息中存在前导码且在所述第一消息中未成功获得数据时,所述步骤62的具体实现方式为:
接收基站发送的携带有数据传输错误信息的随机接入响应;
或者
接收基站发送的携带有终端的无线网络临时标识信息的随机接入响应,其中,所述终端的无线网络临时标识信息不等于所述终端的标识信息。
相应地,所述步骤63的具体实现方式为:将在所述第一消息中未成功发送的数据重新发送给所述基站。
可选地,当所述检测结果包括所述第一消息中存在前导码且在所述第一消息中未成功获得数据时,所述步骤62的具体实现方式为:
接收所述基站采用第一随机接入机制的介质访问控制层协议数据单元格式反馈的随机接入响应。
相应地,所述步骤63的具体实现方式为:基于所述随机接入响应中的上行授权,进行所述第一消息中未成功发送的数据的重传。
可选地,当所述检测结果包括所述第一消息中存在前导码且在所述第一消息中成功获得数据时,所述步骤62的具体实现方式为:
接收基站发送的携带有数据传输成功信息的随机接入响应;或者
接收基站发送的携带有终端的标识信息的随机接入响应,所述标识信息为在所述第一消息的数据字段中检测得到的;或者
接收基站采用第二随机接入机制的介质访问控制层协议数据单元格式反馈的随机接入响应,所述随机接入响应中携带有在所述第一消息的数据字段 中检测得到的所述终端的标识信息。
相应地,所述步骤63的具体实现方式为:确定终端的随机接入过程完成,进行后续的通信过程。
可选地,当所述检测结果包括所述第一消息中不存在前导码和/或所述第一消息中存在前导码且在所述第一消息中未成功获得数据时,所述步骤62的具体实现方式为:
在预定的随机接入响应时间窗口内,未接收到基站反馈的随机接入响应。
相应地,所述步骤63的具体实现方式为:提升发送功率,重新进行随机接入,直到达到最大传输次数。
其中,上述参照图3描述的实施例中,所有关于终端侧的描述,均适用于该应用于终端的随机接入处理方法的实施例中,也能达到与其相同的技术效果。
如图7所示,本公开实施例提供一种终端70,包括:
发送模块71,用于在进行随机接入时,发送包括前导码字段和数据字段的第一消息给基站;
第二接收模块72,用于接收所述基站反馈的对所述第一消息的检测结果,所述检测结果为所述第一消息中是否存在前导码和/或是否在所述第一消息中成功获得数据;
处理模块73,用于根据所述检测结果,进行与所述检测结果对应的随机接入处理。
具体地,所述检测结果包括:所述第一消息中存在前导码、所述第一消息中不存在前导码、在所述第一消息中成功获得数据、在所述第一消息中未成功获得数据、所述第一消息中存在前导码且在所述第一消息中未成功获得数据、和所述第一消息中存在前导码且在所述第一消息中成功获得数据中的至少一者。
可选地,当所述检测结果包括所述第一消息中存在前导码且在所述第一消息中未成功获得数据时,所述第二接收模块72用于:
接收基站发送的携带有数据传输错误信息的随机接入响应。
可选地,当所述检测结果包括所述第一消息中存在前导码且在所述第一 消息中未成功获得数据时,所述第二接收模块72用于:
接收基站发送的携带有终端的无线网络临时标识信息的随机接入响应,其中,所述终端的无线网络临时标识信息不等于所述终端的标识信息。
相应地,所述处理模块73用于:
将在所述第一消息中未成功发送的数据重新发送给所述基站。
可选地,当所述检测结果包括所述第一消息中存在前导码且在所述第一消息中未成功获得数据时,所述第二接收模块72用于:
接收所述基站采用第一随机接入机制的介质访问控制层协议数据单元格式反馈的随机接入响应。
相应地,所述处理模块73用于:
基于所述随机接入响应中的上行授权,进行所述第一消息中未成功发送的数据的重传。
可选地,当所述检测结果包括所述第一消息中存在前导码且在所述第一消息中成功获得数据时,所述第二接收模块72用于:
接收基站发送的携带有数据传输成功信息的随机接入响应;或者
接收基站发送的携带有终端的标识信息的随机接入响应,所述标识信息为在所述第一消息的数据字段中检测得到的;或者
接收基站采用第二随机接入机制的介质访问控制层协议数据单元格式反馈的随机接入响应,所述随机接入响应中携带有在所述第一消息的数据字段中检测得到的所述终端的标识信息。
相应地,所述处理模块73用于:
确定终端的随机接入过程完成,进行后续的通信过程。
可选地,当所述检测结果包括所述第一消息中不存在前导码和/或所述第一消息中存在前导码且在所述第一消息中未成功获得数据时,所述第二接收模块72用于:
在预定的随机接入响应时间窗口内,未接收到基站反馈的随机接入响应。
响应地,所述处理模块73用于:
提升发送功率,重新进行随机接入,直到达到最大传输次数。
需要说明的是,该终端的实施例是与上述的方法实施例一一对应的终端, 上述方法实施例中所有实现方式均适用于该终端的实施例中,也能达到相同的技术效果。
如图8所示,本公开实施例提供一种终端,包括:
处理器81;以及通过总线接口82与所述处理器81相连接的存储器83,所述存储器83用于存储所述处理器81在执行操作时所使用的程序和数据,当处理器81调用并执行所述存储器83中所存储的程序和数据时,执行下列过程:
在进行随机接入时,通过收发机84发送包括前导码字段和数据字段的第一消息给基站;
通过收发机84接收所述基站反馈的对所述第一消息的检测结果,所述检测结果为所述第一消息中是否存在前导码和/或是否在所述第一消息中成功获得数据;
根据所述检测结果,进行与所述检测结果对应的随机接入处理。
其中,收发机84与总线接口82连接,用于在处理器81的控制下发送第一消息和获取检测结果。
需要说明的是,在图8中,总线架构可以包括任意数量的互联的总线和桥,具体由处理器81代表的一个或多个处理器和存储器83代表的存储器的各种电路链接在一起。总线架构还可以将诸如外围设备、稳压器和功率管理电路等之类的各种其他电路链接在一起。总线接口提供接口。收发机84可以是多个元件,即包括发送机和收发机,提供用于在传输介质上与各种其他装置通信的单元。针对不同的终端,用户接口85还可以是能够外接内接需要设备的接口,连接的设备包括但不限于小键盘、显示器、扬声器、麦克风、操纵杆等。处理器81负责管理总线架构和通常的处理,存储器83可以存储处理器81在执行操作时所使用的数据。
本领域技术人员可以理解,实现上述实施例的全部或者部分步骤可以通过硬件来完成,也可以通过计算机程序来指示相关的硬件来完成,所述计算机程序包括执行上述方法的部分或者全部步骤的指令;且该计算机程序可以存储于一可读存储介质中,存储介质可以是任何形式的存储介质。
以上所述的是本公开的优选实施方式,应当指出对于本技术领域的普通 人员来说,在不脱离本公开所述的原理前提下还可以作出若干改进和润饰,这些改进和润饰也在本公开的保护范围内。

Claims (34)

  1. 一种随机接入反馈方法,包括:
    接收终端进行随机接入时发送的第一消息,所述第一消息中包括前导码字段和数据字段;
    对所述第一消息的前导码字段和数据字段进行检测,得到所述第一消息中是否存在前导码和/或是否在所述第一消息中成功获得数据的检测结果;
    将所述检测结果反馈给终端。
  2. 根据权利要求1所述的随机接入反馈方法,其中,所述检测结果包括:所述第一消息中存在前导码、所述第一消息中不存在前导码、在所述第一消息中成功获得数据、在所述第一消息中未成功获得数据、所述第一消息中存在前导码且在所述第一消息中未成功获得数据、和所述第一消息中存在前导码且在所述第一消息中成功获得数据中的至少一者。
  3. 根据权利要求2所述的随机接入反馈方法,其中,当所述检测结果包括所述第一消息中存在前导码且在所述第一消息中未成功获得数据时,所述将所述检测结果反馈给终端的步骤包括:
    发送携带有数据传输错误信息的随机接入响应给终端;或者
    发送携带有终端的无线网络临时标识信息的随机接入响应给终端,其中,所述终端的无线网络临时标识信息不等于所述终端的标识信息;或者
    采用第一随机接入机制的介质访问控制层协议数据单元格式反馈随机接入响应给终端;或者
    不发送随机接入响应给终端。
  4. 根据权利要求2所述的随机接入反馈方法,其中,当所述检测结果包括所述第一消息中存在前导码且在所述第一消息中成功获得数据时,所述将所述检测结果反馈给终端的步骤包括:
    发送携带有数据传输成功信息的随机接入响应给终端;或者
    发送携带有终端的标识信息的随机接入响应给终端,所述标识信息为在所述第一消息的数据字段中检测得到的;或者
    采用第二随机接入机制的介质访问控制层协议数据单元格式反馈随机接 入响应给终端,所述随机接入响应中携带有在所述第一消息的数据字段中检测得到的所述终端的标识信息。
  5. 根据权利要求2所述的随机接入反馈方法,其中,当所述检测结果包括所述第一消息中不存在前导码时,所述将所述检测结果反馈给终端的步骤包括:
    不发送随机接入响应给终端。
  6. 一种基站,包括:
    第一接收模块,用于接收终端进行随机接入时发送的第一消息,所述第一消息中包括前导码字段和数据字段;
    检测模块,用于对所述第一消息的前导码字段和数据字段进行检测,得到所述第一消息中是否存在前导码和/或是否在所述第一消息中成功获得数据的检测结果;
    反馈模块,用于将所述检测结果反馈给终端。
  7. 根据权利要求6所述的基站,其中,所述检测结果包括:所述第一消息中存在前导码、所述第一消息中不存在前导码、在所述第一消息中成功获得数据、在所述第一消息中未成功获得数据、所述第一消息中存在前导码且在所述第一消息中未成功获得数据、和所述第一消息中存在前导码且在所述第一消息中成功获得数据中的至少一者。
  8. 根据权利要求7所述的基站,其中,当所述检测结果包括所述第一消息中存在前导码且在所述第一消息中未成功获得数据时,所述反馈模块用于:
    发送携带有数据传输错误信息的随机接入响应给终端;或者
    发送携带有终端的无线网络临时标识信息的随机接入响应给终端,其中,所述终端的无线网络临时标识信息不等于所述终端的标识信息;或者
    采用第一随机接入机制的介质访问控制层协议数据单元格式反馈随机接入响应给终端;或者
    不发送随机接入响应给终端。
  9. 根据权利要求7所述的基站,其中,当所述检测结果包括所述第一消息中存在前导码且在所述第一消息中成功获得数据时,所述反馈模块用于:
    发送携带有数据传输成功信息的随机接入响应给终端;或者
    发送携带有终端的标识信息的随机接入响应给终端,所述标识信息为在所述第一消息的数据字段中检测得到的;或者
    采用第二随机接入机制的介质访问控制层协议数据单元格式反馈随机接入响应给终端,所述随机接入响应中携带有在所述第一消息的数据字段中检测得到的所述终端的标识信息。
  10. 根据权利要求7所述的基站,其中,当所述检测结果包括所述第一消息中不存在前导码时,所述反馈模块用于:
    不发送随机接入响应给终端。
  11. 一种随机接入处理方法,其中,包括:
    在进行随机接入时,发送包括前导码字段和数据字段的第一消息给基站;
    接收所述基站反馈的对所述第一消息的检测结果,所述检测结果为所述第一消息中是否存在前导码和/或是否在所述第一消息中成功获得数据;
    根据所述检测结果,进行与所述检测结果对应的随机接入处理。
  12. 根据权利要求11所述的随机接入处理方法,其中,所述检测结果包括:所述第一消息中存在前导码、所述第一消息中不存在前导码、在所述第一消息中成功获得数据、在所述第一消息中未成功获得数据、所述第一消息中存在前导码且在所述第一消息中未成功获得数据、和所述第一消息中存在前导码且在所述第一消息中成功获得数据中的至少一者。
  13. 根据权利要求12所述的随机接入处理方法,其中,当所述检测结果包括所述第一消息中存在前导码且在所述第一消息中未成功获得数据时,所述接收所述基站反馈的对所述第一消息的检测结果的步骤包括:
    接收基站发送的携带有数据传输错误信息的随机接入响应。
  14. 根据权利要求12所述的随机接入处理方法,其中,当所述检测结果包括所述第一消息中存在前导码且在所述第一消息中未成功获得数据时,所述接收所述基站反馈的对所述第一消息的检测结果的步骤包括:
    接收基站发送的携带有终端的无线网络临时标识信息的随机接入响应,其中,所述终端的无线网络临时标识信息不等于所述终端的标识信息。
  15. 根据权利要求13或14所述的随机接入处理方法,其中,所述进行与所述检测结果对应的随机接入处理的步骤包括:
    将在所述第一消息中未成功发送的数据重新发送给所述基站。
  16. 根据权利要求12所述的随机接入处理方法,其中,当所述检测结果包括所述第一消息中存在前导码且在所述第一消息中未成功获得数据时,所述接收所述基站反馈的对所述第一消息的检测结果的步骤包括:
    接收所述基站采用第一随机接入机制的介质访问控制层协议数据单元格式反馈的随机接入响应。
  17. 根据权利要求16所述的随机接入处理方法,其中,所述进行与所述检测结果对应的随机接入处理的步骤包括:
    基于所述随机接入响应中的上行授权,进行所述第一消息中未成功发送的数据的重传。
  18. 根据权利要求12所述的随机接入处理方法,其中,当所述检测结果包括所述第一消息中存在前导码且在所述第一消息中成功获得数据时,所述接收所述基站反馈的对所述第一消息的检测结果的步骤包括:
    接收基站发送的携带有数据传输成功信息的随机接入响应;或者
    接收基站发送的携带有终端的标识信息的随机接入响应,所述标识信息为在所述第一消息的数据字段中检测得到的;或者
    接收基站采用第二随机接入机制的介质访问控制层协议数据单元格式反馈的随机接入响应,所述随机接入响应中携带有在所述第一消息的数据字段中检测得到的所述终端的标识信息。
  19. 根据权利要求18所述的随机接入处理方法,其中,所述进行与所述检测结果对应的随机接入处理的步骤包括:
    确定终端的随机接入过程完成,进行后续的通信过程。
  20. 根据权利要求12所述的随机接入处理方法,其中,当所述检测结果包括所述第一消息中不存在前导码和/或所述第一消息中存在前导码且在所述第一消息中未成功获得数据时,所述接收所述基站反馈的对所述第一消息的检测结果的步骤包括:
    在预定的随机接入响应时间窗口内,未接收到基站反馈的随机接入响应。
  21. 根据权利要求20所述的随机接入处理方法,其中,所述进行与所述检测结果对应的随机接入处理的步骤包括:
    提升发送功率,重新进行随机接入,直到达到最大传输次数。
  22. 一种终端,包括:
    发送模块,用于在进行随机接入时,发送包括前导码字段和数据字段的第一消息给基站;
    第二接收模块,用于接收所述基站反馈的对所述第一消息的检测结果,所述检测结果为所述第一消息中是否存在前导码和/或是否在所述第一消息中成功获得数据;
    处理模块,用于根据所述检测结果,进行与所述检测结果对应的随机接入处理。
  23. 根据权利要求22所述的终端,其中,所述检测结果包括:所述第一消息中存在前导码、所述第一消息中不存在前导码、在所述第一消息中成功获得数据、在所述第一消息中未成功获得数据、所述第一消息中存在前导码且在所述第一消息中未成功获得数据、和所述第一消息中存在前导码且在所述第一消息中成功获得数据中的至少一者。
  24. 根据权利要求23所述的终端,其中,当所述检测结果包括所述第一消息中存在前导码且在所述第一消息中未成功获得数据时,所述第二接收模块用于:
    接收基站发送的携带有数据传输错误信息的随机接入响应。
  25. 根据权利要求23所述的终端,其中,当所述检测结果包括所述第一消息中存在前导码且在所述第一消息中未成功获得数据时,所述第二接收模块用于:
    接收基站发送的携带有终端的无线网络临时标识信息的随机接入响应,其中,所述终端的无线网络临时标识信息不等于所述终端的标识信息。
  26. 根据权利要求24或25所述的终端,其中,所述处理模块用于:
    将在所述第一消息中未成功发送的数据重新发送给所述基站。
  27. 根据权利要求23所述的终端,其中,当所述检测结果包括所述第一消息中存在前导码且在所述第一消息中未成功获得数据时,所述第二接收模块用于:
    接收所述基站采用第一随机接入机制的介质访问控制层协议数据单元格 式反馈的随机接入响应。
  28. 根据权利要求27所述的终端,其中,所述处理模块用于:
    基于所述随机接入响应中的上行授权,进行所述第一消息中未成功发送的数据的重传。
  29. 根据权利要求23所述的终端,其中,当所述检测结果包括所述第一消息中存在前导码且在所述第一消息中成功获得数据时,所述第二接收模块用于:
    接收基站发送的携带有数据传输成功信息的随机接入响应;或者
    接收基站发送的携带有终端的标识信息的随机接入响应,所述标识信息为在所述第一消息的数据字段中检测得到的;或者
    接收基站采用第二随机接入机制的介质访问控制层协议数据单元格式反馈的随机接入响应,所述随机接入响应中携带有在所述第一消息的数据字段中检测得到的所述终端的标识信息。
  30. 根据权利要求29所述的终端,其中,所述处理模块用于:
    确定终端的随机接入过程完成,进行后续的通信过程。
  31. 根据权利要求23所述的终端,其中,当所述检测结果包括所述第一消息中不存在前导码和/或所述第一消息中存在前导码且在所述第一消息中未成功获得数据时,所述第二接收模块用于:
    在预定的随机接入响应时间窗口内,未接收到基站反馈的随机接入响应。
  32. 根据权利要求31所述的终端,其中,所述处理模块用于:
    提升发送功率,重新进行随机接入,直到达到最大传输次数。
  33. 一种基站,包括:处理器、存储器和收发机,其中:
    所述处理器用于读取存储器中的程序,执行下列过程:
    通过所述收发机接收终端进行随机接入时发送的第一消息,所述第一消息中包括前导码字段和数据字段;
    对所述第一消息的前导码字段和数据字段进行检测,得到所述第一消息中是否存在前导码和/或是否在所述第一消息中成功获得数据的检测结果;
    通过所述收发机将所述检测结果反馈给终端,
    所述收发机用于接收和发送数据,所述存储器能够存储处理器在执行操作时所使用的数据。
  34. 一种终端,包括:处理器、存储器和收发机,其中:
    所述处理器用于读取存储器中的程序,执行下列过程:
    在进行随机接入时,通过所述收发机发送包括前导码字段和数据字段的第一消息给基站;
    通过所述收发机接收所述基站反馈的对所述第一消息的检测结果,所述检测结果为所述第一消息中是否存在前导码和/或是否在所述第一消息中成功获得数据;
    根据所述检测结果,进行与所述检测结果对应的随机接入处理,
    所述收发机用于接收和发送数据,所述存储器能够存储处理器在执行操作时所使用的数据。
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