WO2022089608A1 - 多卡并收方法和装置 - Google Patents
多卡并收方法和装置 Download PDFInfo
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- WO2022089608A1 WO2022089608A1 PCT/CN2021/127621 CN2021127621W WO2022089608A1 WO 2022089608 A1 WO2022089608 A1 WO 2022089608A1 CN 2021127621 W CN2021127621 W CN 2021127621W WO 2022089608 A1 WO2022089608 A1 WO 2022089608A1
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- resource
- mobile phone
- phone card
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W8/00—Network data management
- H04W8/18—Processing of user or subscriber data, e.g. subscribed services, user preferences or user profiles; Transfer of user or subscriber data
- H04W8/183—Processing at user equipment or user record carrier
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W88/00—Devices specially adapted for wireless communication networks, e.g. terminals, base stations or access point devices
- H04W88/02—Terminal devices
- H04W88/06—Terminal devices adapted for operation in multiple networks or having at least two operational modes, e.g. multi-mode terminals
Definitions
- the present application relates to the field of communications, and in particular, to a method and device for concurrently receiving multiple cards.
- a multi-card terminal refers to a terminal that supports the simultaneous insertion of multiple mobile phone cards. At present, the most common one is the dual-card terminal.
- the two SIM cards on the dual-SIM terminal may be in the connected state at the same time, or in the idle state at the same time, or one may be in the connected state and the other in the idle state.
- the terminal has 5 shared RF channels.
- Card 1 is in the connected state and card 2 is in the idle state.
- Four RF channels can be allocated to card 1 and 1 to card 2. radio frequency channel.
- the splitting of the antenna leads to a decrease in the receiving performance, and in a weak or poor signal environment, the data reception of both cards is affected; for the second scheme, the card 2 in the idle state receives data The duration is short, resulting in a low utilization rate of the radio frequency channel allocated to the card 2 .
- the application provides a multi-card concurrent receiving method and device for improving channel resource utilization.
- the present application provides a multi-card merging method, comprising: after receiving an event event resource allocation request sent by the second mobile phone card, according to the event event resource allocation request and the resources currently used by the first mobile phone card The number of channels, to determine the total number of resource channels currently required by the first mobile phone card and the second mobile phone card; if the total number of resource channels currently required is greater than the number of resource channels supported by the terminal device, the current Determine the target resource channel in the resource channel used; send a first message to the first mobile phone card, the first message carries the information of the target resource channel, and the first message is used to indicate that the target resource channel is used by the second mobile phone The card is occupied, and is also used to instruct the first mobile phone card to receive the corresponding semi-static SPR type data using the resource channels other than the target resource channel in the resource channels supported by the terminal device; send a second message to the second mobile phone card , the second message carries the information of the target resource channel, or, when there are at least two target resource channels, the second
- determining the target resource channel from the resource channel currently used by the first mobile phone card includes: if the resource channel occupied by a secondary carrier in the resource channel currently used by the first mobile phone card is occupied by the second mobile phone card When the event type data and the semi-static SPR type data can be received concurrently, the resource channel occupied by the secondary carrier is determined as the target resource channel.
- determining the target resource channel from the resource channel currently used by the first mobile phone card includes: if the resource channel occupied by any secondary carrier in the resource channel currently used by the first mobile phone card is occupied by the second mobile phone card When occupied, the event event type data and the semi-static SPR type data cannot be received simultaneously, then it is judged that the resource channel occupied by at least two secondary carriers in the resource channel currently used by the first mobile phone card is occupied by the second mobile phone card , whether the event type data and the semi-static SPR type data can be received simultaneously, and if so, determine the resource channel occupied by the at least two secondary carriers as the target resource channel.
- determining the target resource channel from the resource channel currently used by the first mobile phone card includes: if the resource channel occupied by the at least two secondary carriers is occupied by the second mobile phone card, the event event data and The semi-static SPR type data cannot be received concurrently, then it is judged that the resource channel occupied by the main carrier in the resource channel currently used by the first mobile phone card is occupied by the second mobile phone card, the event type data and the semi-static SPR type data Whether the simultaneous reception is possible, if yes, determine the resource channel occupied by the primary carrier as the target resource channel.
- determining the target resource channel from the resource channel currently used by the first mobile phone card includes: if the resource channel occupied by the primary carrier is occupied by the second mobile phone card, the event event data and the semi-static SPR type data cannot be received concurrently, then it is judged that the resource channel occupied by at least one main carrier and at least one secondary carrier in the resource channel currently used by the first mobile phone card is simultaneously occupied by the second mobile phone card, the event type data and the Whether the semi-static SPR type data can be received concurrently, if so, determine the resource channel occupied by the at least one primary carrier and the at least one secondary carrier as the target resource channel.
- the method further includes: if the total number of resource channels currently required is less than or equal to the number of resource channels supported by the terminal device, taking an idle resource channel in the resource channels supported by the terminal device as the target resource channel , the idle resource channel is a resource channel other than the resource channel currently used by the first mobile phone card among the resource channels supported by the terminal device.
- determining the total number of resource channels currently required by the first mobile phone card and the second mobile phone card according to the event resource allocation request and the number of resource channels currently used by the first mobile phone card including: Add one to the number of resource channels currently used by a mobile phone card to obtain the total number of resource channels currently required.
- the present application provides a method for concurrently receiving multiple cards, which is applied to a second mobile phone card.
- the method includes: sending an event resource allocation request to a resource allocation module, where the event resource allocation request is used for the resource allocation
- the module determines the total number of resource channels currently required by the first mobile phone card and the second mobile phone card according to the event resource allocation request and the number of resource channels currently used by the first mobile phone card; if the total number of resource channels currently required is greater than the number of resource channels supported by the terminal device, then determine the target resource channel from the resource channels currently used by the first mobile phone card; receive a second message sent by the resource allocation module, where the second message carries the information of the target resource channel , or, when there are at least two target resource channels, the second message carries the information of the resource channel required by the second mobile phone card in the target resource channel.
- the present application provides a method for concurrently receiving multiple cards, which is applied to a first mobile phone card.
- the method includes: receiving a first message sent by a resource allocation module, where the first message is that the resource allocation module receives a second mobile phone card After sending the event event resource allocation request, determine the total number of resource channels currently required by the first mobile phone card and the second mobile phone card according to the event event resource allocation request and the number of resource channels currently used by the first mobile phone card; If the total number of resource channels currently required is greater than the number of resource channels supported by the terminal device, the first message is sent after determining the target resource channel from the resource channels currently used by the first mobile phone card, and the first message carries the target resource channel The first message is used to indicate that the target resource channel is occupied by the second mobile phone card, and is also used to instruct the first mobile phone card to use resource channels other than the target resource channel among the resource channels supported by the terminal device.
- Receive the corresponding semi-static SPR type data use the resource channels other than the target resource channel in the resource
- the present application provides a resource allocation device, comprising: a determination module configured to, after receiving an event-type resource allocation request sent by a second mobile phone card, according to the event-type resource allocation request and the current mobile phone card The number of resource channels used, to determine the total number of resource channels currently required by the first mobile phone card and the second mobile phone card; if the total number of resource channels currently required is greater than the number of resource channels supported by the terminal device, the first The target resource channel is determined from the resource channel currently used by the mobile phone card; the sending module is configured to send a first message to the first mobile phone card, where the first message carries the information of the target resource channel, and the first message is used to indicate The target resource channel is occupied by the second mobile phone card, and is also used to instruct the first mobile phone card to receive the corresponding semi-static SPR type data using resource channels other than the target resource channel in the resource channels supported by the terminal device; and It is used to send a second message to the second mobile phone card, where the second message carries the information of
- the present application provides a mobile phone card, comprising: a sending module for sending an event resource allocation request to a resource allocation module, and the event resource allocation request is used by the resource allocation module according to the event event resource allocation request. Allocate the request and the number of resource channels currently used by the first mobile phone card, and determine the total number of resource channels currently required by the first mobile phone card and the second mobile phone card; if the total number of resource channels currently required is greater than the resources supported by the terminal device The number of channels, then the target resource channel is determined from the resource channels currently used by the first mobile phone card; the receiving module is configured to receive the second message sent by the resource allocation module, where the second message carries the information of the target resource channel, or , when there are at least two target resource channels, the second message carries the information of the resource channel required by the second mobile phone card in the target resource channel.
- the processing module is configured to receive the corresponding event event data by using the target resource channel or the resource channel required by the second mobile phone card.
- the present application provides a mobile phone card, comprising: a receiving module configured to receive a first message sent by a resource allocation module, where the first message is an event-type resource allocation that the resource allocation module receives and sent by a second mobile phone card After the request, according to the event resource allocation request and the number of resource channels currently used by the first mobile phone card, determine the total number of resource channels currently required by the first mobile phone card and the second mobile phone card; If the total number is greater than the number of resource channels supported by the terminal device, it is sent after determining the target resource channel from the resource channels currently used by the first mobile phone card, and the first message carries the information of the target resource channel.
- a processing module configured to receive corresponding semi-static SPR type data using resource channels other than the target resource channel in the resource channels supported by the terminal device.
- the present application provides a resource allocation device, comprising: a processor; and a memory for storing executable instructions of the processor; wherein the processor is configured to implement the first aspect by executing the executable instructions Methods.
- the present application provides a mobile phone card, comprising: a processor; and a memory for storing executable instructions of the processor; wherein the processor is configured to implement the second aspect by executing the executable instructions method.
- the present application provides a mobile phone card, comprising: a processor; and a memory for storing executable instructions of the processor; wherein the processor is configured to implement the third aspect by executing the executable instructions method.
- the present application provides a terminal device, including the resource allocation device of the seventh aspect, the mobile phone card of the eighth aspect, and the mobile phone card of the ninth aspect.
- the resource allocation module can match the appropriate channel for the card 2 among the resource channels used by the card 1 in the connected state , so that the card 2 can complete the reception of data on one or more resource channels used by the card 1. After the reception is completed, the one or more resource channels continue to be used for the reception of the data of the card 1. Compared with the prior art, The resource utilization rate is improved, and the receiving performance is guaranteed at the same time.
- 1 is a frame diagram of a terminal device provided by this application.
- FIG. 2 is a schematic signaling flow diagram of Embodiment 1 of the multi-card concurrent receiving method provided by the present application;
- FIG. 3 is a schematic diagram of three resource channels used by the card 1 provided by the present application.
- FIG. 4 is a schematic diagram of using the resource channel occupied by the NR SCC2 as a target resource channel provided by the present application;
- Fig. 5 provides the schematic diagram of the resource channel occupied by NR SCC1 as the target resource channel provided by this application;
- FIG. 6 is a schematic diagram of using the resource channels occupied by NR SCC1 and NR SCC2 as target resource channels provided by the present application;
- FIG. 7 is a schematic diagram of using the resource channel occupied by the NR PCC as a target resource channel provided by the present application;
- FIG. 8 is a schematic diagram of using the resource channel occupied by NR PCC and NR SCC1 as a target resource channel provided by the present application;
- FIG. 9 is a schematic diagram of using the resource channel occupied by NR PCC and NR SCC2 as a target resource channel provided by the present application;
- Embodiment 10 is a schematic diagram of the signaling flow of Embodiment 2 of the multi-card concurrent receiving method provided by the present application;
- 11 is a schematic diagram of using an idle resource channel as a target resource channel provided by the present application.
- FIG. 12 is a schematic structural diagram of the resource allocation device 12 provided by the present application.
- FIG. 13 is a schematic structural diagram of a mobile phone card 13 provided by the application.
- FIG. 14 is a schematic structural diagram of the mobile phone card 14 provided by the application.
- FIG. 15 is a schematic diagram of the hardware structure of the resource allocation device 15 provided by the present application.
- FIG. 16 is a schematic diagram of the hardware structure of the mobile phone card 16 provided by the application.
- FIG. 17 is a schematic diagram of the hardware structure of the mobile phone card 17 provided by the application.
- FIG. 18 is a schematic structural diagram of a terminal device provided by this application.
- first and second are used for descriptive purposes only, and cannot be understood as indicating or implying relative importance.
- at least one means one or more
- plural means two or more.
- the character “y” generally indicates that the related object is an "or” relationship.
- At least one of the following or its similar expression refers to any combination of these items, including a single item (a) or a plurality of items (a) any combination.
- at least one (a) of a, b, or c can represent: a single a, a single b, a single c, a combination of a and b, a combination of a and c, b and A combination of c, or a combination of a, b, and c, where a, b, and c can be single or multiple.
- a multi-card terminal refers to a terminal that supports the simultaneous insertion of multiple mobile phone cards.
- the number of mobile phone cards may be two or more, and the present application uses two cards as an example to illustrate the method of combining and receiving provided by the present application.
- the mobile phone card mentioned in this application may be a Subscriber Identity Module (SIM card for short) or a User Identity Model (UIM card for short), which is not limited in this application.
- FIG. 1 is a frame diagram of a terminal device provided by the present application.
- the terminal device shown in FIG. 1 includes a first mobile phone card, a second mobile phone card and a resource allocation module.
- the names of the first mobile phone card and the second mobile phone card do not limit that the first mobile phone card must be the card 1 of the terminal device, and the second mobile phone card must be the card 2 of the terminal device. That is to say, the first mobile phone card can be card 1 and the second mobile phone card can be card 2; or the first mobile phone card can be card 2 and the second mobile phone card can be card 1.
- the present application takes the first mobile phone card as card 1 and the second mobile phone card as card 2 as an example to illustrate the solution of the present application.
- the first mobile phone card as card 2 and the second mobile phone card as card 2 The solution in the case of card 1 is also within the protection scope of the present application.
- the above-mentioned terminal device may be an existing smart phone, or may be a device of any form that can support multi-card communication in the future.
- both cards are in a connected state; both cards are in an idle state; one card is in a connected state and one card is in an idle state.
- What this application implements is the concurrency of data in the third scenario.
- the card 1 is in the connected state, and the card 2 is in the idle state. This assumption does not constitute a limitation on this application.
- the solution in this case is also within the protection scope of this application.
- Scheme 1 The antennas are split, and the split two groups of antennas are used to receive the data of the two cards respectively.
- Option 2 Split the shared RF channels. For example, if the terminal has 5 shared RF channels, you can assign 4 RF channels to card 1 and 1 RF channel to card 2.
- the splitting of the antenna leads to a decrease in the reception performance, and in a weak or poor signal environment, the reception of the data of the two cards will be affected.
- the duration of receiving data by the card 2 in the idle state is short, resulting in a low utilization rate of the radio frequency channel allocated to the card 2 .
- this application proposes that when the card 2 has event resource requirements, the resource allocation module can match the appropriate channel for the card 2 among the resource channels used by the card 1, so that the card 2 can Data is received on one or more resource channels used by the card 1. After the reception is completed, the one or more resource channels continue to be used for the data reception of the card 1.
- a dedicated resource is allocated to the card 1. Compared with the RF channel, the resource utilization is improved. Compared with the method of splitting the antenna in the first solution above, the receiving performance is improved.
- FIG. 2 is a schematic diagram of a signaling flow of Embodiment 1 of the method for concurrently receiving multiple cards provided by the present application.
- the method for concurrently receiving multiple cards provided by this embodiment includes:
- the card 2 sends an event resource allocation request to the resource allocation module.
- the card 2 when the card 2 determines that an event-type resource is required, it sends an event-type resource allocation request to the resource allocation module.
- the card 2 in the idle state When the card 2 in the idle state has data to receive, it indicates that an event-type resource is required, and at this time, an event-type resource allocation request can be sent to the resource allocation module.
- the card 2 in the idle state can determine that it has data to receive in the following situations: starting to search for a network, searching for a cell, receiving network system messages, receiving network paging, cell measurement and other protocol requirements.
- the resource allocation module determines the total number of resource channels currently required by the card 1 and the card 2 according to the event resource allocation request and the number of resource channels currently used by the card 1.
- the event type refers to the method of applying for a short-term occupation of resources, such as the synchronization command SYNC, the measurement MEAS, and the reception of the paging PAGING, all of which apply for shared resources in the event type.
- the semi-static SPR type refers to the method of applying for a fixed period of time to occupy resources. For example, when a new radio interface (New Radio, NR for short) enters the connected state and the related handover process, the semi-static SPR type applies for shared resources.
- a new radio interface New Radio, NR for short
- NR New Radio
- the resource applied by the mobile phone card through the event type is called the event type resource
- the resource applied through the semi-static SPR type is called the semi-static SPR type resource.
- the event type resource is used to receive event type data
- the semi-static SPR type resource is used to receive semi-static SPR type data.
- the mobile phone card in the connected state may need to receive event-type data and semi-static SPR-type data at the same time, and the mobile phone card in the idle state only needs to receive event-type data.
- the resource allocation module can add one to the number of resource channels currently used by the card 1 to obtain the total number of resource channels currently required. It should be noted that: the above-mentioned method of adding one is only an implementation method proposed in this application, and the above-mentioned total number of resource channels may also be determined according to other existing methods.
- the resource allocation module compares the total number of resource channels currently required with the number of resource channels supported by the terminal device, if the total number of resource channels currently required is greater than the total number of resource channels currently required by the terminal device.
- the number of supported resource channels go to S203.
- the resource channel occupied by the secondary carrier in the resource channel currently used by the card 1 first try to occupy the resource channel occupied by the secondary carrier in the resource channel currently used by the card 1, if the resource channel occupied by a secondary carrier in the resource channel currently used by the card 1 is occupied by the card 2, If the event type data corresponding to the card 2 and the semi-static SPR type data corresponding to the card 1 can be formed and received simultaneously, the resource channel occupied by the above-mentioned secondary carrier is determined as the target resource channel.
- the resource channel occupied by any secondary carrier in the resource channel currently used by card 1 cannot be formed, then the resource channel occupied by at least two secondary carriers in the resource channel currently used by card 1 is tried to be occupied. 1 When the resource channels occupied by at least two secondary carriers in the currently used resource channels are occupied by card 2, the event-type data corresponding to card 2 and the semi-static SPR-type data corresponding to card 1 can be formed and received simultaneously, then the above at least two The resource channel occupied by the secondary carriers is determined as the target resource channel.
- the resource channel occupied by at least two secondary carriers in the resource channel currently used by card 1 cannot be formed, then the resource channel occupied by the primary carrier in the resource channel currently used by card 1 will be tried to be occupied.
- the resource channel occupied by the main carrier in the used resource channel is occupied by the card 2
- the event type data corresponding to the card 2 and the semi-static SPR type data corresponding to the card 1 can be formed and received, then the resource channel occupied by the above main carrier is determined. is the target resource channel.
- the resource channel occupied by the primary carrier in the resource channel currently used by the card 1 cannot be formed, then try to simultaneously occupy the resources occupied by at least one primary carrier and at least one secondary carrier in the resource channel currently used by the card 1 channel, if the resource channel occupied by the at least one primary carrier and the at least one secondary carrier is occupied by the card 2, the event-type data corresponding to the card 2 and the semi-static SPR-type data corresponding to the card 1 can be formed and received, then the The resource channel occupied by at least one primary carrier and at least one secondary carrier is determined as the target resource channel.
- the card 1 is in a New Radio (New Radio, NR for short) mode
- the card 2 is in a Long Term Evolution (Long Term Evolution, LTE for short) mode.
- the number of resource channels currently used by card 1 is 3, as shown in Figure 3, one of them is occupied by the main carrier, which is represented by NR PCC in Figure 3, and the other two are occupied by secondary carriers.
- NR SCC1 and NR SCC2 schematic.
- the card 2 has a demand for event-type resources, it sends an event-type resource allocation request to the resource allocation module.
- the number is 3, and the resource allocation module determines the target resource channel in the resource channel currently used by the card 1.
- the event-type resource requested by the card 2 to be allocated is the LTE Paging resource.
- the resource channel occupied by the NR SCC2 is used as the target resource channel. If it cannot be concurrently received, as shown in Figure 5, try to occupy the resource channel occupied by the NR SCC1.
- the resource channel occupied by the NR SCC1 is used as the target resource channel.
- the resource channel occupied by NR SCC2 if the LTE Paging data of card 2 and the semi-static SPR type data on the NR PCC can be received simultaneously, the resource channel occupied by the NR SCC1 and NR SCC2 is used as the target resource channel. Referring to Figure 7, try to occupy the resource channel occupied by the NR PCC.
- the resource channel occupied by the NR PCC is used as the Target resource channel.
- the simultaneous reception is still not possible, see Figure 8 and Figure 9, continue to try to occupy the resource channels occupied by NR PCC and NR SCC1, and the resource channels occupied by NR PCC and NR SCC2.
- the event-type data and semi-static SPR-type data mentioned in this application can be formed and received together refers to whether the resource channel used by the event-type data and the resource channel used by the semi-static SPR-type data is not. Whether the resource channel used by the event type data and the resource channel used by the semi-static SPR type data can be combined is related to whether the hardware of the terminal device supports it.
- the resource channel used by the event type data and the resource channel used by the semi-static SPR type data may be a downlink path for receiving data in a certain radio frequency band, such as an antenna, a radio frequency path and/or a baseband path.
- the resource allocation module sends the first message to the card 1 .
- the first message carries the information of the target resource channel, and the first message is used to indicate that the target resource channel is occupied by the card 2, and is also used to instruct the card 1 to use the resources other than the target resource channel in the resource channels supported by the terminal device.
- the channel receives the corresponding semi-static SPR type data.
- the resource allocation module sends the second message to the card 2 .
- the second message carries the information of the target resource channel, and the second message is used to instruct the card 2 to use the target resource channel to receive the corresponding event event data.
- the resource allocation module can send a first message to card 1, the first message indicates that the resource channel occupied by NR SCC2 is occupied by card 2, and card 1 can use the resource channel occupied by NR SCC1 and NR PCC to receive the corresponding semi-static SPR type data.
- the resource allocation module can also send a second message to the card 2, where the second message can be used to indicate that the card 2 can receive the corresponding event event data on the resource channel occupied by the NR SCC2.
- the card 1 when the resource channel occupied by the NR SCC2 is used as the target resource channel, during the period when the card 2 receives the corresponding event event data on the resource channel occupied by the NR SCC2, the card 1 is on the resource channel occupied by the NR SCC2. After receiving the data, card 1 can continue to receive semi-static SPR data on the resource channel occupied by the NR SCC2. The card 1 can determine whether the card 2 has received the data through the occupied length of the card 2 sent by the resource allocation module, and the occupied length can be carried in the first message, or can be sent by the resource allocation module after the card 2 receives the notification message. Make sure that card 2 has finished receiving data. Compared with the prior art in which a radio frequency channel is specially allocated to the card 2 and the radio frequency channel is only used by the card 2, the method of the present application improves the resource utilization rate.
- the information of the at least two target resource channels is carried in the second message and sent to the card 2, and the card 2 selects the corresponding resource channel from them. Receive the corresponding event event data.
- the resource allocation module only carries the information of the resource channel required by the card 2 in the target resource channel in the second message and sends it to the card 2, and the card 2 directly uses the resource channel to receive the corresponding event event data.
- the resource allocation module can match the appropriate channel for the card 2 among the resource channels used by the card 1, so that the card 2 can be used in the card 1.
- the data reception is completed on one or more resource channels used, and after the reception is completed, the one or more resource channels continue to be used for the reception of data on the card 1, and the second solution in the above-mentioned prior art is allocated for the card 1
- resource utilization is improved.
- the receiving performance is improved.
- FIG. 10 is a schematic diagram of the signaling flow of Embodiment 2 of the multi-card concurrent receiving method provided by the present application.
- This embodiment introduces a concurrent receiving solution when the total number of resource channels currently required is less than or equal to the number of resource channels supported by the terminal device.
- the method for concurrently receiving multiple cards provided by this embodiment includes:
- the card 2 sends an event resource allocation request to the resource allocation module.
- the resource allocation module determines the total number of resource channels currently required by the card 1 and the card 2 according to the event resource allocation request and the number of resource channels currently used by the card 1 .
- the resource allocation module compares the total number of resource channels currently required with the number of resource channels supported by the terminal device, if the total number of resource channels currently required is less than or equal to the terminal device. For the number of resource channels supported by the device, go to S1003.
- the number of resource channels currently used by card 1 is 3.
- card 2 When card 2 has a demand for event-type resources, it sends an event-type resource allocation request to the resource allocation module, and the resource allocation module calculates the currently required resource allocation request.
- the resource allocation module sends a first message to the card 1 .
- the first message may be used to indicate that the idle resource channel is occupied by the card 2, and/or the first message may be used to indicate that the event data corresponding to the card 2 and the semi-static SPR data corresponding to the card 1 are concurrently received.
- the resource allocation module sends the second message to the card 2 .
- the second message is used to instruct the card 2 to receive the corresponding event event data in the above-mentioned idle resource channel.
- S1004 and S1005 may be performed simultaneously, or S1004 may be performed first, and then S1005 may be performed, or S1005 may be performed first, and then S1004, which is not limited in this application.
- the resource allocation module before sending the first message and the second message, can determine whether the event event data corresponding to card 2 and the semi-static SPR data corresponding to card 1 after the idle resource channel is occupied. It is possible to form a combined reception, and if so, send the first message and the second message, and if not, execute S203-S205 in the first embodiment.
- the multi-card concurrent receiving method provided in this embodiment introduces the concurrent receiving solution when the total number of resource channels currently required is less than or equal to the number of resource channels supported by the terminal device, and the existing second solution described above is: Compared with card 1 allocating a dedicated radio frequency channel, resource utilization can be improved. Compared with the method of splitting the antenna in the existing first solution described above, the receiving performance can be improved.
- the above-mentioned embodiment is also applicable to a single card.
- the card determines that an event-type resource is required, it sends an event-type resource allocation request to the resource allocation module, and the resource allocation module is further based on the event-type resource allocation request and the event-type resource allocation request.
- the number of resource channels currently used by the card to determine the total number of resource channels currently required by the card. If the total number of resource channels currently required is greater than the number of resource channels supported by the terminal device, select the target resource from the resource channels currently used by the card channel, and send a second message to the card to instruct the card to receive the corresponding event event data on the target resource channel.
- FIG. 12 is a schematic structural diagram of the resource allocation apparatus 12 provided by the present application. As shown in FIG. 12, the resource allocation device 12 provided by this application includes:
- the determining module 121 is configured to, after receiving the event resource allocation request sent by the second mobile phone card, determine the first mobile phone card according to the event resource allocation request and the number of resource channels currently used by the first mobile phone card and the total number of resource channels currently required by the second mobile phone card; if the total number of resource channels currently required is greater than the number of resource channels supported by the terminal device, then determine from the resource channels currently used by the first mobile phone card target resource channel;
- the sending module 122 is configured to send a first message to the first mobile phone card, where the first message carries the information of the target resource channel, and the first message is used to indicate that the target resource channel is to be used by the second mobile phone card.
- the mobile phone card is occupied, and is also used to instruct the first mobile phone card to receive corresponding semi-static SPR type data using resource channels other than the target resource channel in the resource channels supported by the terminal device;
- the card sends a second message, where the second message carries the information of the target resource channel, or, when there are at least two target resource channels, the second message carries the second message in the target resource channel Information about the resource channel required by the mobile phone card.
- the determining module 121 is specifically used for:
- the event type data and the semi-static SPR type data can be received simultaneously, then the The resource channel occupied by the secondary carrier is determined as the target resource channel.
- the determining module 121 is specifically used for:
- the event event type data and the semi-static SPR type data cannot be received simultaneously, Then judge whether the event type data and the semi-static SPR type data can be combined when the resource channels occupied by at least two secondary carriers in the resource channel currently used by the first mobile phone card are occupied by the second mobile phone card. receiving, and if possible, determining the resource channel occupied by the at least two secondary carriers as the target resource channel.
- the determining module 121 is specifically used for:
- the resource channel occupied by the at least two secondary carriers is occupied by the second mobile phone card, and the event type data and the semi-static SPR type data cannot be received simultaneously, it is determined that the first mobile phone card is currently used
- the resource channel occupied by the main carrier is occupied by the second mobile phone card in the resource channel of The resource channel is determined as the target resource channel.
- the determining module 121 is specifically used for:
- the resource channel occupied by the main carrier is occupied by the second mobile phone card, the event event data and the semi-static SPR data cannot be received simultaneously, then determine the resource channel currently used by the first mobile phone card When the resource channel occupied by at least one primary carrier and at least one secondary carrier is simultaneously occupied by the second mobile phone card, whether the event event data and the semi-static SPR data can be received simultaneously, if so, The resource channel occupied by the at least one primary carrier and the at least one secondary carrier is determined as the target resource channel.
- the determining module 121 is further configured to:
- an idle resource channel in the resource channels supported by the terminal device is used as the target resource channel, and the idle resource channel is used as the target resource channel. It is a resource channel other than the resource channel currently used by the first mobile phone card among the resource channels supported by the terminal device.
- the determining module 121 is further configured to:
- the resource allocation apparatus provided by the present application can be used to execute the steps of the resource allocation module in any of the above method embodiments, and the implementation principles and technical effects thereof are similar, and are not repeated here.
- FIG. 13 is a schematic structural diagram of the mobile phone card 13 provided by the application. As shown in FIG. 13 , the mobile phone card 13 provided by the application includes:
- the sending module 131 is configured to send an event resource allocation request to the resource allocation module, where the event resource allocation request is used by the resource allocation module according to the event event resource allocation request and the first mobile phone card currently used.
- the number of resource channels to determine the total number of resource channels currently required by the first mobile phone card and the second mobile phone card; if the total number of resource channels currently required is greater than the number of resource channels supported by the terminal device, the Determine the target resource channel among the resource channels currently used by the first mobile phone card;
- a receiving module 132 configured to receive a second message sent by the resource allocation module, where the second message carries the information of the target resource channel, or, when there are at least two target resource channels, the second message The message carries the information of the resource channel required by the second mobile phone card in the target resource channel.
- the processing module 133 is configured to receive the corresponding event event data by using the target resource channel or the resource channel required by the second mobile phone card.
- the resource allocation apparatus provided by the present application can be used to execute the steps of the card 2 in any of the above method embodiments, and the implementation principle and technical effect thereof are similar, and are not repeated here.
- FIG. 14 is a schematic structural diagram of the mobile phone card 14 provided by the application. As shown in FIG. 14 , the mobile phone card 14 provided by the application includes:
- the receiving module 141 is configured to receive the first message sent by the resource allocation module.
- the first message is that after the resource allocation module receives the event resource allocation request sent by the second mobile phone card, the resource allocation request is based on the event resource allocation request. and the number of resource channels currently used by the first mobile phone card, determine the total number of resource channels currently required by the first mobile phone card and the second mobile phone card; if the total number of resource channels currently required is greater than the number of resource channels supported by the terminal device number of resource channels, it is sent after determining the target resource channel from the resource channels currently used by the first mobile phone card, the first message carries the information of the target resource channel, and the first message is used to indicate the The target resource channel is occupied by the second mobile phone card, and is further used to instruct the first mobile phone card to use the resource channels other than the target resource channel in the resource channels supported by the terminal device to receive the corresponding semi-static SPR type data;
- the processing module 142 is configured to receive corresponding semi-static SPR type data by using resource channels other than the target resource channel among the resource channels supported by the terminal device.
- the resource allocation apparatus provided by the present application can be used to execute the steps of the card 1 in any of the above method embodiments, and the implementation principle and technical effect thereof are similar, and are not repeated here.
- FIG. 15 is a schematic diagram of the hardware structure of the resource allocation apparatus 15 provided by the present application.
- the resource allocation apparatus 15 of the present application may include:
- the memory 1501 is used to store program instructions.
- the processor 1502 is configured to implement the steps of the resource allocation module in any of the foregoing embodiments when the program instructions are executed, and the implementation principles and technical effects thereof are similar, and are not repeated here.
- FIG. 16 is a schematic diagram of the hardware structure of the mobile phone card 16 provided by the application.
- the mobile phone card 16 of the present application may include:
- the memory 1601 is used to store program instructions.
- the processor 1602 is configured to implement the steps of the card 2 in any of the above embodiments when the program instructions are executed, and the implementation principle and technical effect thereof are similar, which will not be repeated here.
- FIG. 17 is a schematic diagram of the hardware structure of the mobile phone card 17 provided by the application. As shown in Figure 17, the mobile phone card 17 of the present application may include:
- the memory 1701 is used to store program instructions.
- the processor 1702 is configured to implement the steps of the card 1 in any of the above embodiments when the program instructions are executed, and the implementation principle and technical effect thereof are similar, which will not be repeated here.
- the present application provides a computer-readable storage medium on which a computer program is stored.
- the steps of the resource allocation module in any of the above-mentioned embodiments are implemented.
- the implementation principle and technical effect are similar. This will not be repeated here.
- the present application provides a computer-readable storage medium on which a computer program is stored.
- the steps of the card 1 in any of the above-mentioned embodiments are implemented.
- the implementation principles and technical effects thereof are similar. No longer.
- the present application provides a computer-readable storage medium on which a computer program is stored.
- the steps of the card 2 in any of the above-mentioned embodiments are realized.
- the realization principle and technical effect thereof are similar. No longer.
- FIG. 18 is a schematic structural diagram of a terminal device provided by this application.
- the terminal equipment provided by the present application includes the resource allocation apparatus 15 shown in FIG. 15 , the mobile phone card 16 shown in FIG. 16 , and the mobile phone card 17 shown in FIG. 17 .
- the disclosed apparatus and method may be implemented in other manners.
- the apparatus embodiments described above are only illustrative.
- the division of the units is only a logical function division. In actual implementation, there may be other division methods.
- multiple units or components may be combined or Can be integrated into another system, or some features can be ignored, or not implemented.
- the shown or discussed mutual coupling or direct coupling or communication connection may be through some interfaces, indirect coupling or communication connection of devices or units, and may be in electrical, mechanical or other forms.
- the units described as separate components may or may not be physically separated, and components displayed as units 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 purpose of the solution in this embodiment.
- each functional unit in each embodiment of the present application may be integrated into one processing unit, or each unit may exist physically alone, or two or more units may be integrated into one unit.
- the above-mentioned integrated unit may be implemented in the form of hardware, or may be implemented in the form of hardware plus software functional units.
- the above-mentioned integrated units implemented in the form of software functional units can be stored in a computer-readable storage medium.
- the above-mentioned software function unit is stored in a storage medium, and includes several instructions to make a computer device (which may be a personal computer, a server, or a network device, etc.) or a processor (English: processor) to execute the various embodiments of the present application. part of the method.
- the aforementioned storage medium includes: U disk, mobile hard disk, read-only memory (English: Read-Only Memory, referred to as: ROM), random access memory (English: Random Access Memory, referred to as: RAM), magnetic disk or optical disk, etc.
- ROM Read-Only Memory
- RAM Random Access Memory
- magnetic disk or optical disk etc.
- processors described in this application may be a central processing unit (English: Central Processing Unit, referred to as: CPU), or other general-purpose processors, digital signal processors (English: Digital Signal Processor, referred to as: DSP) , Application Specific Integrated Circuit (English: Application Specific Integrated Circuit, referred to as: ASIC) and so on.
- a general purpose processor may be a microprocessor or the processor may be any conventional processor or the like. The steps in combination with the method disclosed in the present application can be directly embodied as executed by a hardware processor, or executed by a combination of hardware and software modules in the processor.
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Abstract
本申请提供一种多卡并收方法和装置,该方法包括:若当前需要的资源通道总数量大于终端设备所支持的资源通道数量,则从所述第一手机卡当前使用的资源通道中确定目标资源通道;向所述第一手机卡发送第一消息,所述第一消息用于指示所述目标资源通道被所述第二手机卡占用,还用于指示所述第一手机卡使用终端设备所支持的资源通道中除所述目标资源通道以外的资源通道接收对应的半静态SPR型数据;向所述第二手机卡发送第二消息,所述第二消息用于指示所述第二手机卡使用所述目标资源通道接收对应的事件event型数据。和现有技术相比,提升了资源利用率,同时保证了接收性能。
Description
本申请要求于2020年10月29日提交中国专利局、申请号为202011176139.3、申请名称为“多卡并收方法和装置”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。
本申请涉及通信领域,尤其涉及一种多卡并收方法和装置。
多卡终端指支持同时插入多张手机卡的终端。目前最常见的是双卡终端。双卡终端上的两张手机卡可能同时处于连接态,可能同时处于空闲态,也可能一张处于连接态,一张处于空闲态。
针对一张处于连接态,一张处于空闲态的场景,现有技术中,通过如下两种方案实现数据的并收,第一种方案是将天线进行拆分,拆分后的两组天线分别用于两张卡数据的接收。第二种方案是将共享射频通道进行拆分,比如终端的共享射频通道有5个,卡1处于连接态,卡2处于空闲态,可给卡1分配4个射频通道,给卡2分配1个射频通道。
然而,对于第一种方案,天线的拆分导致接收性能下降,在弱信号或差信号环境下,两张卡数据的接收都受到影响;对于第二种方案,处于空闲态的卡2接收数据时长是短暂的,造成给该卡2分配的射频通道利用率不高。
发明内容
申请提供一种多卡并收方法和装置,用于提升通道资源利用率。
第一方面,本申请提供一种多卡并收方法,包括:接收到第二手机卡发送的事件event型资源分配请求后,根据该事件event型资源分配请求和第一手机卡当前使用的资源通道数量,确定该第一手机卡和该第二手机卡当前需要的资源通道总数量;若该当前需要的资源通道总数量大于终端设备所支持的资源通道数量,则从该第一手机卡当前使用的资源通道中确 定目标资源通道;向该第一手机卡发送第一消息,该第一消息携带所述目标资源通道的信息,该第一消息用于指示该目标资源通道被该第二手机卡占用,还用于指示该第一手机卡使用该终端设备所支持的资源通道中除该目标资源通道以外的资源通道接收对应的半静态SPR型数据;向该第二手机卡发送第二消息,该第二消息携带该目标资源通道的信息,或者,当该目标资源通道有至少两个时,该第二消息携带该目标资源通道中该第二手机卡需要的资源通道的信息。
可选的,该从该第一手机卡当前使用的资源通道中确定目标资源通道,包括:若该第一手机卡当前使用的资源通道中一辅载波占用的资源通道被该第二手机卡占用时,该事件event型数据和该半静态SPR型数据能够并收,则将该辅载波占用的资源通道确定为该目标资源通道。
可选的,该从该第一手机卡当前使用的资源通道中确定目标资源通道,包括:若该第一手机卡当前使用的资源通道中任一辅载波占用的资源通道被该第二手机卡占用时,该事件event型数据和该半静态SPR型数据均不能并收,则判断该第一手机卡当前使用的资源通道中至少两个辅载波占用的资源通道被该第二手机卡占用时,该事件event型数据和该半静态SPR型数据是否能够并收,若能,则将该至少两个辅载波占用的资源通道确定为该目标资源通道。
可选的,该从该第一手机卡当前使用的资源通道中确定目标资源通道,包括:若该至少两个辅载波占用的资源通道被该第二手机卡占用时,该事件event型数据和该半静态SPR型数据不能并收,则判断该第一手机卡当前使用的资源通道中主载波占用的资源通道被该第二手机卡占用时,该事件event型数据和该半静态SPR型数据是否能够并收,若能,则将该主载波占用的资源通道确定为该目标资源通道。
可选的,该从该第一手机卡当前使用的资源通道中确定目标资源通道,包括:若该主载波占用的资源通道被该第二手机卡占用时,该事件event型数据和该半静态SPR型数据不能并收,则判断该第一手机卡当前使用的资源通道中至少一个主载波和至少一个辅载波占用的资源通道同时被该第二手机卡占用时,该事件event型数据和该半静态SPR型数据是否能够并收,若能,则将该至少一个主载波和该至少一个辅载波占用的资源通道 确定为该目标资源通道。
可选的,该方法还包括:若该当前需要的资源通道总数量小于或者等于终端设备所支持的资源通道数量,则将该终端设备所支持的资源通道中的空闲资源通道作为该目标资源通道,该空闲资源通道为该终端设备所支持的资源通道中除该第一手机卡当前使用的资源通道以外的资源通道。
可选的,该根据该事件event型资源分配请求和第一手机卡当前使用的资源通道数量,确定该第一手机卡和该第二手机卡当前需要的资源通道总数量,包括:将该第一手机卡当前使用的资源通道数量加一,得到该当前需要的资源通道总数量。
第二方面,本申请提供一种多卡并收方法,应用于第二手机卡,该方法包括:向资源分配模块发送事件event型资源分配请求,该事件event型资源分配请求用于该资源分配模块根据该事件event型资源分配请求和第一手机卡当前使用的资源通道数量,确定该第一手机卡和该第二手机卡当前需要的资源通道总数量;若该当前需要的资源通道总数量大于终端设备所支持的资源通道数量,则从该第一手机卡当前使用的资源通道中确定目标资源通道;接收该资源分配模块发送的第二消息,该第二消息携带该目标资源通道的信息,或者,当该目标资源通道有至少两个时,该第二消息携带该目标资源通道中该第二手机卡需要的资源通道的信息。
第三方面,本申请提供一种多卡并收方法,应用于第一手机卡,该方法包括:接收资源分配模块发送的第一消息,该第一消息是资源分配模块接收到第二手机卡发送的事件event型资源分配请求后,根据该事件event型资源分配请求和第一手机卡当前使用的资源通道数量,确定该第一手机卡和该第二手机卡当前需要的资源通道总数量;若该当前需要的资源通道总数量大于终端设备所支持的资源通道数量,则从该第一手机卡当前使用的资源通道中确定目标资源通道后发送的,该第一消息携带所述目标资源通道的信息,该第一消息用于指示该目标资源通道被该第二手机卡占用,还用于指示该第一手机卡使用该终端设备所支持的资源通道中除该目标资源通道以外的资源通道接收对应的半静态SPR型数据;使用该终端设备所支持的资源通道中除该目标资源通道以外的资源通道接收对应的半静态SPR型数据。
第四方面,本申请提供一种资源分配装置,包括:确定模块,用于接收到第二手机卡发送的事件event型资源分配请求后,根据该事件event型资源分配请求和第一手机卡当前使用的资源通道数量,确定该第一手机卡和该第二手机卡当前需要的资源通道总数量;若该当前需要的资源通道总数量大于终端设备所支持的资源通道数量,则从该第一手机卡当前使用的资源通道中确定目标资源通道;发送模块,用于向该第一手机卡发送第一消息,所述第一消息携带所述目标资源通道的信息,该第一消息用于指示该目标资源通道被该第二手机卡占用,还用于指示该第一手机卡使用该终端设备所支持的资源通道中除该目标资源通道以外的资源通道接收对应的半静态SPR型数据;还用于向该第二手机卡发送第二消息,该第二消息携带该目标资源通道的信息,或者,当该目标资源通道有至少两个时,该第二消息携带该目标资源通道中该第二手机卡需要的资源通道的信息。
第五方面,本申请提供一种手机卡,包括:发送模块,用于向资源分配模块发送事件event型资源分配请求,该事件event型资源分配请求用于该资源分配模块根据该事件event型资源分配请求和第一手机卡当前使用的资源通道数量,确定该第一手机卡和该第二手机卡当前需要的资源通道总数量;若该当前需要的资源通道总数量大于终端设备所支持的资源通道数量,则从该第一手机卡当前使用的资源通道中确定目标资源通道;接收模块,用于接收该资源分配模块发送的第二消息,该第二消息携带该目标资源通道的信息,或者,当该目标资源通道有至少两个时,该第二消息携带该目标资源通道中该第二手机卡需要的资源通道的信息。处理模块,用于使用所述目标资源通道或者所述第二手机卡需要的资源通道接收对应的事件event型数据。
第六方面,本申请提供一种手机卡,包括:接收模块,用于接收资源分配模块发送的第一消息,该第一消息是资源分配模块接收到第二手机卡发送的事件event型资源分配请求后,根据该事件event型资源分配请求和第一手机卡当前使用的资源通道数量,确定该第一手机卡和该第二手机卡当前需要的资源通道总数量;若该当前需要的资源通道总数量大于终端设备所支持的资源通道数量,则从该第一手机卡当前使用的资源通道中确定目标资源通道后发送的,该第一消息携带所述目标资源通道的信息,该 第一消息用于指示该目标资源通道被该第二手机卡占用,还用于指示该第一手机卡使用该终端设备所支持的资源通道中除该目标资源通道以外的资源通道接收对应的半静态SPR型数据;处理模块,用于使用该终端设备所支持的资源通道中除该目标资源通道以外的资源通道接收对应的半静态SPR型数据。
第七方面,本申请提供一种资源分配装置,包括:处理器;以及存储器,用于存储该处理器的可执行指令;其中,该处理器配置为经由执行该可执行指令来实现第一方面的方法。
第八方面,本申请提供一种手机卡,包括:处理器;以及存储器,用于存储该处理器的可执行指令;其中,该处理器配置为经由执行该可执行指令来实现第二方面的方法。
第九方面,本申请提供一种手机卡,包括:处理器;以及存储器,用于存储该处理器的可执行指令;其中,该处理器配置为经由执行该可执行指令来实现第三方面的方法。
第十方面,本申请提供一种终端设备,包括第七方面的资源分配装置、第八方面的手机卡以及第九方面的手机卡。
本申请提供的多卡并收方法和装置,处于空闲态的卡2有事件event型资源需求时,资源分配模块可在处于连接态的卡1所使用的资源通道中为卡2匹配适用的通道,从而使卡2能够在卡1使用的一个或者多个资源通道上完成数据的接收,接收完成后,该一个或者多个资源通道继续用于卡1数据的接收,和现有技术相比,提升了资源利用率,同时保证了接收性能。
图1为本申请提供的终端设备的框架图;
图2为本申请提供的多卡并收方法的实施例一的信令流程示意图;
图3为本申请提供的卡1使用的3个资源通道的示意图;
图4为本申请提供的将NR SCC2占用的资源通道作为目标资源通道的示意图;
图5为本申请提供的将NR SCC1占用的资源通道作为目标资源通道 的示意图;
图6为本申请提供的将NR SCC1和NR SCC2占用的资源通道作为目标资源通道的示意图;
图7为本申请提供的将NR PCC占用的资源通道作为目标资源通道的示意图;
图8为本申请提供的将NR PCC和NR SCC1占用的资源通道作为目标资源通道的示意图;
图9为本申请提供的将NR PCC和NR SCC2占用的资源通道作为目标资源通道的示意图;
图10为本申请提供的多卡并收方法的实施例二的信令流程示意图;
图11为本申请提供的将空闲资源通道作为目标资源通道的示意图;
图12为本申请提供的资源分配装置12的结构示意图;
图13为本申请提供的手机卡13的结构示意图;
图14为本申请提供的手机卡14的结构示意图;
图15为本申请提供的资源分配装置15的硬件结构示意图;
图16为本申请提供的手机卡16的硬件结构示意图;
图17为本申请提供的手机卡17的硬件结构示意图;
图18为本申请提供的终端设备的结构示意图。
为使本申请的目的,技术方案和优点更加清楚,下面将结合本申请中的附图,对本申请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申请一部分实施例,而不是全部的实施例。基于本申请中的实施例,本领域普通技术人员在没有作出创造性劳动前提下所获得的所有其他实施例,都属于本申请保护的范围。
在本申请中,需要解释的是,术语“第一”,“第二”仅用于描述目的,而不能理解为指示或暗示相对重要性。此外,“至少一个”是指一个或者多个,“多个”是指两个或两个以上。“和/或”,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的情况,其中A,B可以是单数或者复数。字符“以是一般表示前后关联对象是一种“或”的关系。“以下至少一项(个)”或其类似表达,是指的这些项中的任意组合,包括单项(个)或复数项(个)的任意组合。例如,a,b,或c中的至少一项(个),可以表示:单独a,单独b,单独c,a和b的组合,a和c的组合,b和c的组合,或a,b以及c的组合,其中a,b,c可以是单个,也可以是多个。
多卡终端指支持同时插入多张手机卡的终端。手机卡的数量可以为两张或者更多,本申请以两张为例阐述本申请提供的并收方法。本申请提到的手机卡可以为用户识别卡(Subscriber Identity Module,简称SIM卡),也可为用户识别模块(User Identity Model,简称UIM卡),本申请对此不作限制。
图1为本申请提供的终端设备的框架图。图1所示终端设备包括第一手机卡,第二手机卡以及资源分配模块。其中,第一手机卡和第二手机卡的称呼并不限制第一手机卡必须为终端设备的卡1,第二手机卡必须为终端设备的卡2。也就是说,可以是,第一手机卡为卡1,第二手机卡为卡2;也可以是,第一手机卡为卡2,第二手机卡为卡1。示例性的,参见图1所示,本申请以第一手机卡为卡1,第二手机卡为卡2为例来阐述本申请的方案,至于第一手机卡为卡2,第二手机卡为卡1的情况下的方案同样在本申请的保护范围内。
需要说明的是:上述终端设备可以为现有的智能手机,也可以为未来能够支持多卡通信的任意形式的设备。
用户在使用终端设备的过程中,两张卡的状态存在如下三种场景:两张卡均处于连接态;两张卡均处于空闲态;一张卡处于连接态,一张卡处于空闲态。本申请实现的是第三种场景下数据的并收。为方便描述,示例性的,假设处于连接态的为卡1,处于空闲态的为卡2,这种假设不构成对本申请的限制,本申请的方案也适用卡1处于空闲态,卡2处于连接态的情况,这种情况下的方案同样在本申请的保护范围内。
针对第三种场景,现有技术中,通过如下两种方案实现两张卡数据的并收:方案一:将天线进行拆分,拆分后的两组天线分别用于两张卡数据的接收。方案二:将共享射频通道进行拆分,比如终端的共享射频通道有 5个,可给卡1分配4个射频通道,给卡2分配1个射频通道。
然而,对于第一种方案,天线的拆分导致接收性能下降,在弱信号或差信号环境下,两张卡数据的接收都会受到影响。对于第二种方案,处于空闲态的卡2接收数据时长是短暂的,造成给该卡2分配的射频通道利用率不高。
考虑到现有技术存在的上述问题,本申请提出,卡2有事件event型资源需求时,资源分配模块可在卡1所使用的资源通道中为卡2匹配适用的通道,从而使卡2能够在卡1使用的一个或者多个资源通道上完成数据的接收,接收完成后,该一个或者多个资源通道继续用于卡1数据的接收,和上述第二种方案中为卡1分配专用的射频通道相比,提升了资源利用率。和上述第一种方案中拆分天线的方式相比,提升了接收性能。
下面以具体地实施例对本申请的技术方案以及本申请的技术方案如何解决上述技术问题进行详细说明。下面这几个具体的实施例可以相互结合,对于相同或相似的概念或过程可能在某些实施例中不再赘述。下面将结合附图,对本申请的实施例进行描述。
实施例一
图2为本申请提供的多卡并收方法的实施例一的信令流程示意图。参见图2所示,本实施例提供的多卡并收方法,包括:
S201、卡2向资源分配模块发送事件event型资源分配请求。
一种可能的实现方式中,卡2确定需要事件event型资源时,向资源分配模块发送事件event型资源分配请求。处于空闲态的卡2有数据要接收时,说明需要事件event型资源,这时可以向资源分配模块发送事件event型资源分配请求。处于空闲态的卡2在如下几种情形下可确定有数据要接收:开机找网、搜索小区、收网络的系统消息、收网络的寻呼、小区测量等协议要求的接收情形。
S202、资源分配模块根据事件event型资源分配请求和卡1当前使用的资源通道数量,确定卡1和卡2当前需要的资源通道总数量。
本申请提到的事件event型和半静态(Semi-Persistent resource,简称SPR)型指的是两种申请资源的方式:
事件event型是指申请短时间占用资源的方式,如同步命令SYNC、 测量MEAS、寻呼PAGING的接收均是以事件event型申请共享资源的。
半静态SPR型是指申请固定一段时间占用资源的方式,如新空口(New Radio,简称NR)进入连接态以及相关切换流程均是以半静态SPR型申请共享资源的。
本申请中,手机卡通过事件event型申请的资源称为事件event型资源,通过半静态SPR型申请的资源称为半静态SPR型资源。事件event型资源用于接收事件event型数据,半静态SPR型资源用于接收半静态SPR型数据。处于连接态的手机卡可能需要同时接收事件event型数据和半静态SPR型数据,处于空闲态的手机卡只需要接收事件event型数据。
具体的,资源分配模块在接收到事件event型资源分配请求后,可在卡1当前使用的资源通道数量的基础上加一,便可得到当前需要的资源通道总数量。需要说明的是:上述加一的方式仅是本申请提出的一种实现方式,还可按照现有的其他方式来确定上述资源通道总数量。
进一步的,资源分配模块在确定当前需要的资源通道总数量后,将该当前需要的资源通道总数量和终端设备所支持的资源通道数量就行比较,如果当前需要的资源通道总数量大于终端设备所支持的资源通道数量,执行S203。
S203、从卡1当前使用的资源通道中确定目标资源通道。
一种可能的实现方式中,首先尝试占用卡1当前使用的资源通道中的辅载波占用的资源通道,若卡1当前使用的资源通道中某一辅载波占用的资源通道被卡2占用时,卡2对应的事件event型数据和卡1对应的半静态SPR型数据能够形成并收,则将上述辅载波占用的资源通道确定为目标资源通道。
若占用卡1当前使用的资源通道中的任一辅载波占用的资源通道时,均不能形成并收,则尝试占用卡1当前使用的资源通道中至少两个辅载波占用的资源通道,若卡1当前使用的资源通道中至少两个辅载波占用的资源通道被卡2占用时,卡2对应的事件event型数据和卡1对应的半静态SPR型数据能够形成并收,则将上述至少两个辅载波占用的资源通道确定为目标资源通道。
若占用卡1当前使用的资源通道中的至少两个辅载波占用的资源通道 时,不能形成并收,则尝试占用卡1当前使用的资源通道中的主载波占用的资源通道,若卡1当前使用的资源通道中主载波占用的资源通道被卡2占用时,卡2对应的事件event型数据和卡1对应的半静态SPR型数据能够形成并收,则将上述主载波占用的资源通道确定为目标资源通道。
若占用卡1当前使用的资源通道中的主载波占用的资源通道时,不能形成并收,则尝试同时占用卡1当前使用的资源通道中的至少一个主载波和至少一个辅载波所占用的资源通道,若该至少一个主载波和至少一个辅载波所占用的资源通道被卡2占用时,卡2对应的事件event型数据和卡1对应的半静态SPR型数据能够形成并收,则将该至少一个主载波和至少一个辅载波所占用的资源通道确定为目标资源通道。
下面对S201-S203的过程举例说明:
假设卡1处于新空口(New Radio,简称NR)模式,卡2处于长期演进(Long Term Evolution,简称LTE)模式。假设卡1当前使用的资源通道数量为3个,参见图3所示,其中1个被主载波占用,图3中用NR PCC示意,另外两个被辅载波占用,图3中用NR SCC1和NR SCC2示意。当卡2有事件型资源的需求时,向资源分配模块发送事件event型资源分配请求,资源分配模块计算当前需要的资源通道总数量为3+1=4个,假设终端设备所支持的资源通道数量为3个,资源分配模块则在卡1当前使用的资源通道中确定目标资源通道。具体的,参见图4所示,假设卡2请求分配的事件event型资源为LTE Paging资源,首先,尝试占用NR SCC2占用的资源通道,如果卡2的LTE Paging数据和NR SCC1、NR PCC上的半静态SPR型数据能够并收,则将该NR SCC2占用的资源通道作为目标资源通道,若不能并收,参见图5所示,则尝试占用NR SCC1占用的资源通道,如果卡2的LTE Paging数据和NR SCC2、NR PCC上的半静态SPR型数据能够并收,则将该NR SCC1占用的资源通道作为目标资源通道,若不能并收,参见图6所示,则尝试同时占用NR SCC1和NR SCC2占用的资源通道,如果卡2的LTE Paging数据和NR PCC上的半静态SPR型数据能够并收,则将该NR SCC1和NR SCC2占用的资源通道作为目标资源通道,若不能并收,参见图7所示,则尝试占用NR PCC占用的资源通道,如果卡2的LTE Paging数据和NR SCC1、NR SCC2上的半静态SPR 型数据能够并收,则将该NR PCC占用的资源通道作为目标资源通道。以此类推,若还是不能并收,参见图8和图9所示,继续尝试占用NR PCC和NR SCC1占用的资源通道,以及NR PCC和NR SCC2占用的资源通道。
需要说明的是:本申请提到的事件event型数据和半静态SPR型数据是否能形成并收,指的是事件event型数据所使用的资源通道和半静态SPR型数据所使用的资源通道是否能够并收,而事件event型数据所使用的资源通道和半静态SPR型数据所使用的资源通道是否能够并收和终端设备硬件是否支持有关。上述事件event型数据所使用的资源通道和半静态SPR型数据所使用的资源通道可以是接收某个无线频段数据的下行通路,比如:天线、射频通路和/或基带通路。
S204、资源分配模块向卡1发送第一消息。
其中,第一消息携带目标资源通道的信息,第一消息用于指示目标资源通道被卡2占用,还用于指示卡1使用终端设备所支持的资源通道中除所述目标资源通道以外的资源通道接收对应的半静态SPR型数据。
S205、资源分配模块向卡2发送第二消息。
一种可能的实现方式中,第二消息携带目标资源通道的信息,该第二消息用于指示卡2使用该目标资源通道接收对应的事件event型数据。
举例来说:
参见图4所示,尝试占用NR SCC2占用的资源通道时,卡2的LTE Paging数据和NR SCC1、NR PCC上的半静态SPR型数据能够并收,则将该NR SCC2占用的资源通道作为目标资源通道,资源分配模块可向卡1发送第一消息,该第一消息指示NR SCC2占用的资源通道被卡2占用,卡1可以使用NR SCC1和NR PCC占用的资源通道接收对应的半静态SPR型数据。资源分配模块还可向卡2发送第二消息,该第二消息可用于指示卡2可以在NR SCC2占用的资源通道上接收对应的事件event型数据。
需要说明的是:将NR SCC2占用的资源通道作为目标资源通道的情况下,卡2在NR SCC2占用的资源通道上接收对应的事件event型数据期间,卡1在该NR SCC2占用的资源通道上的接收被中止,卡1可以在卡2接收完数据后,继续在该NR SCC2占用的资源通道上接收半静态SPR型数据。卡1可以通过资源分配模块发送的卡2占用长度来确定卡2是否接 收完数据,该占用长度可携带在第一消息中,也可以通过资源分配模块在卡2接收完成后发送的通知消息来确定卡2已接收完数据。和现有技术中专门为卡2分配一个射频通道,该射频通道仅限于卡2使用的方式相比,本申请的方法提升了资源利用率。
另一种可能的实现方式中,当目标资源通道有至少两个时,将该至少两个目标资源通道的信息均携带在第二消息中发送给卡2,由卡2从中选择相应的资源通道接收对应的事件event型数据。或者,资源分配模块仅将目标资源通道中卡2需要的资源通道的信息携带在第二消息中发送给卡2,卡2直接使用该资源通道接收对应的事件event型数据。
本实施例提供的多卡并收方法,卡2有事件event型资源需求时,资源分配模块可在卡1所使用的资源通道中为卡2匹配适用的通道,从而使卡2能够在卡1使用的一个或者多个资源通道上完成数据的接收,接收完成后,该一个或者多个资源通道继续用于卡1数据的接收,和上述现有技术中的第二种方案中为卡1分配专用的射频通道相比,提升了资源利用率。和上述现有技术中的第一种方案中拆分天线的方式相比,提升了接收性能。
实施例二
图10为本申请提供的多卡并收方法的实施例二的信令流程示意图。本实施例介绍了当前需要的资源通道总数量小于或者等于终端设备所支持的资源通道数量时的并收方案。参见图10所示,本实施例提供的多卡并收方法,包括:
S1001、卡2向资源分配模块发送事件event型资源分配请求。
S1002、资源分配模块根据事件event型资源分配请求和卡1当前使用的资源通道数量,确定卡1和卡2当前需要的资源通道总数量。
进一步的,资源分配模块在确定当前需要的资源通道总数量后,将该当前需要的资源通道总数量和终端设备所支持的资源通道数量就行比较,如果当前需要的资源通道总数量小于或者等于终端设备所支持的资源通道数量,执行S1003。
S1003、将终端设备所支持的资源通道中的空闲资源通道作为目标资源通道。
结合上述实施例的举例,卡1当前使用的资源通道数量为3个,当卡2有事件event型资源的需求时,向资源分配模块发送事件event型资源分配请求,资源分配模块计算当前需要的资源通道总数量为3+1=4个,假设终端设备所支持的资源通道数量为4个,即终端设备除了卡1当前使用的资源通道以外,还有1个空闲资源通道,参见图11所示,可将该空闲资源通道作为目标通道。
S1004、资源分配模块向卡1发送第一消息。
可选的,第一消息可用于指示空闲资源通道被卡2占用,和/或,第一消息可用于指示卡2对应的事件event型数据和卡1对应的半静态SPR型数据并收。
S1005、资源分配模块向卡2发送第二消息。
其中,第二消息用于指示卡2在上述空闲资源通道接收对应的事件event型数据。
S1004和S1005可以同时执行,也可以先执行S1004,后执行S1005,也可以先执行S1005,后执行S1004,本申请对此不作限制。
一种可能的实现方式中,资源分配模块在发送第一消息和第二消息之前,可判断空闲资源通道被占用后,卡2对应的事件event型数据和卡1对应的半静态SPR型数据是否能形成并收,若能,则发送第一消息和第二消息,若不能,则执行上述实施例一中的S203-S205。
本实施例提供的多卡并收方法,介绍了当前需要的资源通道总数量小于或者等于终端设备所支持的资源通道数量时并收方案,和上文描述的现有的第二种方案中为卡1分配专用的射频通道相比,可提升资源利用率。和上文描述的现有的第一种方案中拆分天线的方式相比,可提升接收性能。
需要说明的是:上述实施例也适用于单卡,该卡确定需要事件event型资源时,向资源分配模块发送事件event型资源分配请求,资源分配模块进一步根据该事件event型资源分配请求和该卡当前使用的资源通道数量,确定该卡当前需要的资源通道总数量,若当前需要的资源通道总数量大于终端设备所支持的资源通道数量,则从该卡当前使用的资源通道中选择目标资源通道,并向该卡发送第二消息,以指示该卡在该目标资源通道上接收对应的事件event型数据。
图12为本申请提供的资源分配装置12的结构示意图。如图12所示,本申请提供的资源分配装置12,包括:
确定模块121,用于接收到第二手机卡发送的事件event型资源分配请求后,根据所述事件event型资源分配请求和第一手机卡当前使用的资源通道数量,确定所述第一手机卡和所述第二手机卡当前需要的资源通道总数量;若所述当前需要的资源通道总数量大于终端设备所支持的资源通道数量,则从所述第一手机卡当前使用的资源通道中确定目标资源通道;
发送模块122,用于向所述第一手机卡发送第一消息,所述第一消息携带所述目标资源通道的信息,所述第一消息用于指示所述目标资源通道被所述第二手机卡占用,还用于指示所述第一手机卡使用所述终端设备所支持的资源通道中除所述目标资源通道以外的资源通道接收对应的半静态SPR型数据;向所述第二手机卡发送第二消息,所述第二消息携带所述目标资源通道的信息,或者,当所述目标资源通道有至少两个时,所述第二消息携带所述目标资源通道中所述第二手机卡需要的资源通道的信息。
可选的,确定模块121具体用于:
若所述第一手机卡当前使用的资源通道中一辅载波占用的资源通道被所述第二手机卡占用时,所述事件event型数据和所述半静态SPR型数据能够并收,则将所述辅载波占用的资源通道确定为所述目标资源通道。
可选的,确定模块121具体用于:
若所述第一手机卡当前使用的资源通道中任一辅载波占用的资源通道被所述第二手机卡占用时,所述事件event型数据和所述半静态SPR型数据均不能并收,则判断所述第一手机卡当前使用的资源通道中至少两个辅载波占用的资源通道被所述第二手机卡占用时,所述事件event型数据和所述半静态SPR型数据是否能够并收,若能,则将所述至少两个辅载波占用的资源通道确定为所述目标资源通道。
可选的,确定模块121具体用于:
若所述至少两个辅载波占用的资源通道被所述第二手机卡占用时,所述事件event型数据和所述半静态SPR型数据不能并收,则判断所述第一手机卡当前使用的资源通道中主载波占用的资源通道被所述第二手机卡占用时,所述事件event型数据和所述半静态SPR型数据是否能够并收, 若能,则将所述主载波占用的资源通道确定为所述目标资源通道。
可选的,确定模块121具体用于:
若所述主载波占用的资源通道被所述第二手机卡占用时,所述事件event型数据和所述半静态SPR型数据不能并收,则判断所述第一手机卡当前使用的资源通道中至少一个主载波和至少一个辅载波占用的资源通道同时被所述第二手机卡占用时,所述事件event型数据和所述半静态SPR型数据是否能够并收,若能,则将所述至少一个主载波和所述至少一个辅载波占用的资源通道确定为所述目标资源通道。
可选的,确定模块121还用于:
若所述当前需要的资源通道总数量小于或者等于终端设备所支持的资源通道数量,则将所述终端设备所支持的资源通道中的空闲资源通道作为所述目标资源通道,所述空闲资源通道为所述终端设备所支持的资源通道中除所述第一手机卡当前使用的资源通道以外的资源通道。
可选的,确定模块121还用于:
将所述第一手机卡当前使用的资源通道数量加一,得到所述当前需要的资源通道总数量。
本申请提供的资源分配装置,可用于执行上述任一方法实施例中资源分配模块的步骤,其实现原理和技术效果类似,在此不再赘述。
图13为本申请提供的手机卡13的结构示意图,如图13所示,本申请提供的手机卡13,包括:
发送模块131,用于向资源分配模块发送事件event型资源分配请求,所述事件event型资源分配请求用于所述资源分配模块根据所述事件event型资源分配请求和第一手机卡当前使用的资源通道数量,确定所述第一手机卡和所述第二手机卡当前需要的资源通道总数量;若所述当前需要的资源通道总数量大于终端设备所支持的资源通道数量,则从所述第一手机卡当前使用的资源通道中确定目标资源通道;
接收模块132,用于接收所述资源分配模块发送的第二消息,所述第二消息携带所述目标资源通道的信息,或者,当所述目标资源通道有至少两个时,所述第二消息携带所述目标资源通道中所述第二手机卡需要的资源通道的信息。
处理模块133,用于使用所述目标资源通道或者所述第二手机卡需要的资源通道接收对应的事件event型数据。
本申请提供的资源分配装置,可用于执行上述任一方法实施例中卡2的步骤,其实现原理和技术效果类似,在此不再赘述。
图14为本申请提供的手机卡14的结构示意图,如图14所示,本申请提供的手机卡14,包括:
接收模块141,用于接收资源分配模块发送的第一消息,所述第一消息是资源分配模块接收到第二手机卡发送的事件event型资源分配请求后,根据所述事件event型资源分配请求和第一手机卡当前使用的资源通道数量,确定所述第一手机卡和所述第二手机卡当前需要的资源通道总数量;若所述当前需要的资源通道总数量大于终端设备所支持的资源通道数量,则从所述第一手机卡当前使用的资源通道中确定目标资源通道后发送的,所述第一消息携带所述目标资源通道的信息,所述第一消息用于指示所述目标资源通道被所述第二手机卡占用,还用于指示所述第一手机卡使用所述终端设备所支持的资源通道中除所述目标资源通道以外的资源通道接收对应的半静态SPR型数据;
处理模块142,用于使用所述终端设备所支持的资源通道中除所述目标资源通道以外的资源通道接收对应的半静态SPR型数据。
本申请提供的资源分配装置,可用于执行上述任一方法实施例中卡1的步骤,其实现原理和技术效果类似,在此不再赘述。
图15为本申请提供的资源分配装置15的硬件结构示意图。如图15所示,本申请的资源分配装置15可以包括:
存储器1501,用于存储程序指令。
处理器1502,用于在所述程序指令被执行时实现上述任一实施例中的资源分配模块的步骤,其实现原理和技术效果类似,在此不再赘述。
图16为本申请提供的手机卡16的硬件结构示意图。如图16所示,本申请的手机卡16可以包括:
存储器1601,用于存储程序指令。
处理器1602,用于在所述程序指令被执行时实现上述任一实施例中的卡2的步骤,其实现原理和技术效果类似,在此不再赘述。
图17为本申请提供的手机卡17的硬件结构示意图。如图17所示,本申请的手机卡17可以包括:
存储器1701,用于存储程序指令。
处理器1702,用于在所述程序指令被执行时实现上述任一实施例中的卡1的步骤,其实现原理和技术效果类似,在此不再赘述。
本申请提供一种计算机可读存储介质,其上存储有计算机程序,所述计算机程序被处理器执行时实现上述任一实施例中的资源分配模块的步骤,其实现原理和技术效果类似,在此不再赘述。
本申请提供一种计算机可读存储介质,其上存储有计算机程序,所述计算机程序被处理器执行时实现上述任一实施例中的卡1的步骤,其实现原理和技术效果类似,在此不再赘述。
本申请提供一种计算机可读存储介质,其上存储有计算机程序,所述计算机程序被处理器执行时实现上述任一实施例中的卡2的步骤,其实现原理和技术效果类似,在此不再赘述。
图18为本申请提供的终端设备的结构示意图。如图18所示,本申请提供的终端设备,包括图15所示的资源分配装置15、图16所示的手机卡16以及图17所示的手机卡17。
在本申请所提供的几个实施例中,应该理解到,所揭露的装置和方法,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。另一点,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,可以是电性,机械或其它的形式。
所述作为分离部件说明的单元可以是或者也可以不是物理上分开的,作为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实施例方案的目的。
另外,在本申请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采用硬件的形式实现,也可以采用硬件加软件功能单元的形式实现。
上述以软件功能单元的形式实现的集成的单元,可以存储在一个计算机可读取存储介质中。上述软件功能单元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)或处理器(英文:processor)执行本申请各个实施例所述方法的部分步骤。而前述的存储介质包括:U盘、移动硬盘、只读存储器(英文:Read-Only Memory,简称:ROM)、随机存取存储器(英文:Random Access Memory,简称:RAM)、磁碟或者光盘等各种可以存储程序代码的介质。
应理解,本申请所描述的处理器可以是中央处理单元(英文:Central Processing Unit,简称:CPU),还可以是其他通用处理器、数字信号处理器(英文:Digital Signal Processor,简称:DSP)、专用集成电路(英文:Application Specific Integrated Circuit,简称:ASIC)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。结合本申请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。
最后应说明的是:以上各实施例仅用以说明本申请的技术方案,而非对其限制;尽管参照前述各实施例对本申请进行了详细的说明,本领域的普通技术人员应当理解:其依然可以对前述各实施例所记载的技术方案进行修改,或者对其中部分或者全部技术特征进行等同替换;而这些修改或者替换,并不使相应技术方案的本质脱离本申请各实施例技术方案的范围。
Claims (16)
- 一种多卡并收方法,其特征在于,包括:接收到第二手机卡发送的事件event型资源分配请求后,根据所述事件event型资源分配请求和第一手机卡当前使用的资源通道数量,确定所述第一手机卡和所述第二手机卡当前需要的资源通道总数量;若所述当前需要的资源通道总数量大于终端设备所支持的资源通道数量,则从所述第一手机卡当前使用的资源通道中确定目标资源通道;向所述第一手机卡发送第一消息,所述第一消息携带所述目标资源通道的信息,所述第一消息用于指示所述目标资源通道被所述第二手机卡占用,还用于指示所述第一手机卡使用所述终端设备所支持的资源通道中除所述目标资源通道以外的资源通道接收对应的半静态SPR型数据;向所述第二手机卡发送第二消息,所述第二消息携带所述目标资源通道的信息,或者,当所述目标资源通道有至少两个时,所述第二消息携带所述目标资源通道中所述第二手机卡需要的资源通道的信息。
- 根据权利要求1所述的方法,其特征在于,所述从所述第一手机卡当前使用的资源通道中确定目标资源通道,包括:若所述第一手机卡当前使用的资源通道中一辅载波占用的资源通道被所述第二手机卡占用时,事件event型数据和所述半静态SPR型数据能够并收,则将所述辅载波占用的资源通道确定为所述目标资源通道。
- 根据权利要求2所述的方法,其特征在于,所述从所述第一手机卡当前使用的资源通道中确定目标资源通道,包括:若所述第一手机卡当前使用的资源通道中任一辅载波占用的资源通道被所述第二手机卡占用时,所述事件event型数据和所述半静态SPR型数据均不能并收,则判断所述第一手机卡当前使用的资源通道中至少两个辅载波占用的资源通道被所述第二手机卡占用时,所述事件event型数据和所述半静态SPR型数据是否能够并收,若能,则将所述至少两个辅载波占用的资源通道确定为所述目标资源通道。
- 根据权利要求3所述的方法,其特征在于,所述从所述第一手机卡当前使用的资源通道中确定目标资源通道,包括:若所述至少两个辅载波占用的资源通道被所述第二手机卡占用时,所 述事件event型数据和所述半静态SPR型数据不能并收,则判断所述第一手机卡当前使用的资源通道中主载波占用的资源通道被所述第二手机卡占用时,所述事件event型数据和所述半静态SPR型数据是否能够并收,若能,则将所述主载波占用的资源通道确定为所述目标资源通道。
- 根据权利要求4所述的方法,其特征在于,所述从所述第一手机卡当前使用的资源通道中确定目标资源通道,包括:若所述主载波占用的资源通道被所述第二手机卡占用时,所述事件event型数据和所述半静态SPR型数据不能并收,则判断所述第一手机卡当前使用的资源通道中至少一个主载波和至少一个辅载波占用的资源通道同时被所述第二手机卡占用时,所述事件event型数据和所述半静态SPR型数据是否能够并收,若能,则将所述至少一个主载波和所述至少一个辅载波占用的资源通道确定为所述目标资源通道。
- 根据权利要求1-5任一项所述的方法,其特征在于,所述方法还包括:若所述当前需要的资源通道总数量小于或者等于终端设备所支持的资源通道数量,则将所述终端设备所支持的资源通道中的空闲资源通道作为所述目标资源通道,所述空闲资源通道为所述终端设备所支持的资源通道中除所述第一手机卡当前使用的资源通道以外的资源通道。
- 根据权利要求6所述的方法,其特征在于,所述根据所述事件event型资源分配请求和第一手机卡当前使用的资源通道数量,确定所述第一手机卡和所述第二手机卡当前需要的资源通道总数量,包括:将所述第一手机卡当前使用的资源通道数量加一,得到所述当前需要的资源通道总数量。
- 一种多卡并收方法,其特征在于,应用于第二手机卡,所述方法包括:向资源分配模块发送事件event型资源分配请求,所述事件event型资源分配请求用于所述资源分配模块根据所述事件event型资源分配请求和第一手机卡当前使用的资源通道数量,确定所述第一手机卡和所述第二手机卡当前需要的资源通道总数量;若所述当前需要的资源通道总数量大于终端设备所支持的资源通道数量,则从所述第一手机卡当前使用的资源 通道中确定目标资源通道;接收所述资源分配模块发送的第二消息,所述第二消息携带所述目标资源通道的信息,或者,当所述目标资源通道有至少两个时,所述第二消息携带所述目标资源通道中所述第二手机卡需要的资源通道的信息;使用所述目标资源通道或者所述第二手机卡需要的资源通道接收对应的事件event型数据。
- 一种多卡并收方法,其特征在于,应用于第一手机卡,所述方法包括:接收资源分配模块发送的第一消息,所述第一消息是资源分配模块接收到第二手机卡发送的事件event型资源分配请求后,根据所述事件event型资源分配请求和第一手机卡当前使用的资源通道数量,确定所述第一手机卡和所述第二手机卡当前需要的资源通道总数量;若所述当前需要的资源通道总数量大于终端设备所支持的资源通道数量,则从所述第一手机卡当前使用的资源通道中确定目标资源通道后发送的,所述第一消息携带所述目标资源通道的信息,所述第一消息用于指示所述目标资源通道被所述第二手机卡占用,还用于指示所述第一手机卡使用所述终端设备所支持的资源通道中除所述目标资源通道以外的资源通道接收对应的半静态SPR型数据;使用所述终端设备所支持的资源通道中除所述目标资源通道以外的资源通道接收对应的半静态SPR型数据。
- 一种资源分配装置,其特征在于,包括:确定模块,用于接收到第二手机卡发送的事件event型资源分配请求后,根据所述事件event型资源分配请求和第一手机卡当前使用的资源通道数量,确定所述第一手机卡和所述第二手机卡当前需要的资源通道总数量;若所述当前需要的资源通道总数量大于终端设备所支持的资源通道数量,则从所述第一手机卡当前使用的资源通道中确定目标资源通道;发送模块,用于向所述第一手机卡发送第一消息,所述第一消息携带所述目标资源通道的信息,所述第一消息用于指示所述目标资源通道被所述第二手机卡占用,还用于指示所述第一手机卡使用所述终端设备所支持的资源通道中除所述目标资源通道以外的资源通道接收对应的半静态 SPR型数据;还用于向所述第二手机卡发送第二消息,所述第二消息携带所述目标资源通道的信息,或者,当所述目标资源通道有至少两个时,所述第二消息携带所述目标资源通道中所述第二手机卡需要的资源通道的信息。
- 一种手机卡,其特征在于,包括:发送模块,用于向资源分配模块发送事件event型资源分配请求,所述事件event型资源分配请求用于所述资源分配模块根据所述事件event型资源分配请求和第一手机卡当前使用的资源通道数量,确定所述第一手机卡和所述第二手机卡当前需要的资源通道总数量;若所述当前需要的资源通道总数量大于终端设备所支持的资源通道数量,则从所述第一手机卡当前使用的资源通道中确定目标资源通道;接收模块,用于接收所述资源分配模块发送的第二消息,所述第二消息携带所述目标资源通道的信息,或者,当所述目标资源通道有至少两个时,所述第二消息携带所述目标资源通道中所述第二手机卡需要的资源通道的信息;处理模块,用于使用所述目标资源通道或者所述第二手机卡需要的资源通道接收对应的事件event型数据。
- 一种手机卡,其特征在于,包括:接收模块,用于接收资源分配模块发送的第一消息,所述第一消息是资源分配模块接收到第二手机卡发送的事件event型资源分配请求后,根据所述事件event型资源分配请求和第一手机卡当前使用的资源通道数量,确定所述第一手机卡和所述第二手机卡当前需要的资源通道总数量;若所述当前需要的资源通道总数量大于终端设备所支持的资源通道数量,则从所述第一手机卡当前使用的资源通道中确定目标资源通道后发送的,所述第一消息携带所述目标资源通道的信息,所述第一消息用于指示所述目标资源通道被所述第二手机卡占用,还用于指示所述第一手机卡使用所述终端设备所支持的资源通道中除所述目标资源通道以外的资源通道接收对应的半静态SPR型数据;处理模块,用于使用所述终端设备所支持的资源通道中除所述目标资源通道以外的资源通道接收对应的半静态SPR型数据。
- 一种资源分配装置,其特征在于,包括:处理器;以及存储器,用于存储所述处理器的可执行指令;其中,所述处理器配置为经由执行所述可执行指令来实现权利要求1-7任一项所述的方法。
- 一种手机卡,其特征在于,包括:处理器;以及存储器,用于存储所述处理器的可执行指令;其中,所述处理器配置为经由执行所述可执行指令来实现权利要求8所述的方法。
- 一种手机卡,其特征在于,包括:处理器;以及存储器,用于存储所述处理器的可执行指令;其中,所述处理器配置为经由执行所述可执行指令来实现权利要求9所述的方法。
- 一种终端设备,其特征在于,包括权利要求13所述的资源分配装置、权利要求14所述的手机卡以及权利要求15所述的手机卡。
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