WO2017128679A1 - 移动终端 - Google Patents
移动终端 Download PDFInfo
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- WO2017128679A1 WO2017128679A1 PCT/CN2016/093549 CN2016093549W WO2017128679A1 WO 2017128679 A1 WO2017128679 A1 WO 2017128679A1 CN 2016093549 W CN2016093549 W CN 2016093549W WO 2017128679 A1 WO2017128679 A1 WO 2017128679A1
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- modem
- module
- mobile terminal
- interface
- application processor
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W76/00—Connection management
- H04W76/10—Connection setup
Definitions
- the present invention relates to the field of communications technologies, and in particular, to a mobile terminal.
- Wi-Fi speed is crucial for the user experience, and there are many factors affecting Wi-Fi speed, such as the hardware carrying capacity of the wireless router and the same access.
- the present invention provides a mobile terminal, which is expected to increase the speed of the Internet.
- the present invention provides a mobile terminal, including an application processor, the mobile terminal further includes a first Wi-Fi module and a second Wi-Fi module, the first Wi-Fi module and the second road a baseband processing unit for modulating and demodulating data is separately integrated on the Wi-Fi module; the first Wi-Fi module and the second Wi-Fi module are respectively connected to the application processor;
- the application processor is configured to send the uploaded data to the first Wi-Fi module and/or the second Wi-Fi module for modulation and transmission; and further configured to receive by using the The data sent by the first Wi-Fi module and/or the second Wi-Fi module after being downloaded and demodulated; and also configured to be combined and downloaded and downloaded and demodulated by the two-way Wi-Fi module The data sent.
- the mobile terminal further includes a first road modem, and the application processor is The first way modem is integrated and connected; the first way Wi-Fi module and the second way Wi-Fi module respectively establish a connection with the application processor through the first way modem.
- the mobile terminal further includes a first road modem and a second path modem, where the application processor is integrally configured and connected with the first path modem; the first path modem and the second path modem connection;
- the first Wi-Fi module establishes a connection with the application processor through the first path modem, and the second way Wi-Fi module passes the second way modem, the first way modem and the The application processor establishes a connection.
- the first Wi-Fi module is connected to the first path modem by using a high speed interface; and the second Wi-Fi module is connected to the first path modem by using a high speed interface.
- the first Wi-Fi module is connected to the first path modem by using a high speed interface; the second Wi-Fi module is connected to the second path modem by using a high speed interface;
- the road modem is connected to the second way modem using a high speed interface.
- the high speed interface includes at least one of a PCI-E interface, a PCI-X interface, an HSIC interface, and a USB interface.
- the mobile terminal further includes a modem connected to the application processor;
- the modem is connected to the first Wi-Fi module and the second Wi-Fi module;
- the first Wi-Fi module, the modem, and the application processor form a first data channel, configured to perform a first data service transmission;
- the second Wi-Fi module, the modem, and the application processor form a second data channel for performing second data service transmission.
- the modem includes a first modem, a second modem connected to the first modem; the first modem is connected to the first Wi-Fi module; the second modem and the second A two-way Wi-Fi module is connected; the application processor is connected to the first modem or the second modem.
- the application processor is integrally connected with the modem; the first Wi-Fi module is connected to the modem by using an IQ interface; and the second Wi-Fi module adopts an IQ interface and the Modem connection.
- the first Wi-Fi module is connected to the first modem by using an IQ interface; the second Wi-Fi module is connected to the second modem by using an IQ interface; The second modem is connected using a high speed interface.
- the baseband processing unit is integrally disposed on the first Wi-Fi module or the second Wi-Fi module.
- the first Wi-Fi module is connected to the modem by using a high speed interface; the second channel Wi- The Fi module is connected to the modem using an IQ interface.
- the second Wi-Fi module is connected to the modem by using a high speed interface; the first road Wi- The Fi module is connected to the modem using an IQ interface.
- the modem includes a first modem, a second modem connected to the first modem; the first modem is connected to the first Wi-Fi module; the second modem and the second A two-way Wi-Fi module is connected; the application processor is connected to the first modem or the second modem.
- the first Wi-Fi module is connected to the first modem by using a high speed interface;
- the Wi-Fi module is coupled to the second modem using an IQ interface;
- the first modem is coupled to the second modem using a high speed interface.
- the first Wi-Fi module is connected to the first modem by using an IQ interface;
- the Wi-Fi module is connected to the second modem by using a high speed interface;
- the first modulation and demodulation And the second modem is connected by a high speed interface.
- the mobile terminal comprises a communication terminal.
- the communication terminal comprises a mobile phone, a tablet computer, and a wearable device.
- the embodiment of the present invention is specifically improved from the hardware structure of the mobile terminal, by adding a new Wi-Fi module and improving the two-way Wi-Fi module to integrate the baseband processing unit for modulating and demodulating data, thereby greatly Improve the preemption capability of the mobile terminal for hotspot resources, thereby improving the Wi-Fi speed of the mobile terminal when surfing the Internet, thereby improving the user experience.
- the Wi-Fi module since the Wi-Fi module has its own modem function, it does not need to occupy the modem of the mobile terminal itself.
- FIG. 1 is a schematic structural diagram of hardware of an optional mobile terminal embodying various embodiments of the present invention
- FIG. 2 is a schematic diagram of a communication system supporting communication between mobile terminals of the present invention
- FIG. 3 is a schematic structural diagram of a first mobile terminal according to an embodiment of the present disclosure.
- FIG. 4 is a schematic structural diagram of a second mobile terminal according to an embodiment of the present disclosure.
- FIG. 5 is a schematic structural diagram of a third mobile terminal according to an embodiment of the present disclosure.
- FIG. 6 is a schematic structural diagram of a fourth mobile terminal according to an embodiment of the present disclosure.
- FIG. 7 is a schematic structural diagram of a fifth mobile terminal according to an embodiment of the present disclosure.
- FIG. 8 is a schematic structural diagram of a sixth mobile terminal according to an embodiment of the present invention.
- the mobile terminal can be implemented in various forms.
- the terminal described in the present invention may include, for example, a mobile phone, a smart phone, a notebook computer, a digital broadcast receiver, a PDA (Personal Digital Assistant), a PAD (Tablet), a PMP (Portable Multimedia Player), a navigation device, etc.
- Mobile terminals and fixed terminals such as digital TVs, desktop computers, and the like.
- the terminal is a mobile terminal.
- those skilled in the art will appreciate that configurations in accordance with embodiments of the present invention can be applied to fixed type terminals in addition to components that are specifically for mobile purposes.
- FIG. 1 is a schematic structural diagram of hardware of an optional mobile terminal embodying various embodiments of the present invention.
- the mobile terminal 100 may include a user input unit 110, an output unit 120, a memory 130, a controller 140, a power supply unit 150, and the like.
- Figure 1 illustrates a mobile terminal having various components, but it should be understood that not all illustrated components are required to be implemented.
- Output unit 120 is configured to provide an output signal (eg, an audio signal, a video signal, an alarm signal, a vibration signal, etc.) in a visual, audio, and/or tactile manner.
- an output signal eg, an audio signal, a video signal, an alarm signal, a vibration signal, etc.
- the output unit 120 may include a display unit 121, an audio output module 122, and the like.
- the display unit 121 can display information processed in the mobile terminal 100. For example, when the mobile terminal 100 is in a phone call mode, the display unit 121 can display a user interface (UI) or a graphical user interface (GUI) related to a call or other communication (eg, text messaging, multimedia file download, etc.). When the mobile terminal 100 is in a video call mode or an image capturing mode, the display unit 121 may display a captured image and/or a received image, a UI or GUI showing a video or image and related functions, and the like.
- UI user interface
- GUI graphical user interface
- the display unit 121 can function as an input device and an output device.
- the display unit 121 may include liquid crystal At least one of a display (LCD), a thin film transistor LCD (TFT-LCD), an organic light emitting diode (OLED) display, a flexible display, a three-dimensional (3D) display, and the like.
- LCD liquid crystal At least one of a display
- TFT-LCD thin film transistor LCD
- OLED organic light emitting diode
- a flexible display a three-dimensional (3D) display, and the like.
- 3D three-dimensional
- Some of these displays may be configured to be transparent to allow a user to view from the outside, which may be referred to as a transparent display, and a typical transparent display may be, for example, a TOLED (Transparent Organic Light Emitting Diode) display or the like.
- TOLED Transparent Organic Light Emitting Diode
- the mobile terminal 100 may include two or more display units (or other display devices), for example, the mobile terminal may include an external display unit (not shown) and an internal display unit (not shown) .
- the touch screen can be used to detect touch input pressure as well as touch input position and touch input area.
- the memory 130 may store a software program or the like for processing and control operations performed by the controller 140, or may temporarily store data (for example, a phone book, a message, a still image, a video, etc.) that has been output or is to be output. Moreover, the memory 130 may store data regarding various manners of vibration and audio signals that are output when a touch is applied to the touch screen.
- the memory 130 may include at least one type of storage medium including a flash memory, a hard disk, a multimedia card, a card type memory (eg, SD or DX memory, etc.), a random access memory (RAM), a static random access memory ( SRAM), read only memory (ROM), electrically erasable programmable read only memory (EEPROM), programmable read only memory (PROM), magnetic memory, magnetic disk, optical disk, and the like.
- the mobile terminal 100 can cooperate with a network storage device that performs a storage function of the memory 130 through a network connection.
- Controller 140 typically controls the overall operation of the mobile terminal. For example, controller 140 performs the control and processing associated with voice calls, data communications, video calls, and the like. The controller 140 may perform a pattern recognition process to recognize a handwriting input or a picture drawing input performed on the touch screen as a character or an image.
- the power supply unit 150 receives external power or internal power under the control of the controller 140 and provides appropriate power required to operate the various components and components.
- the various embodiments described herein can be used, for example, in computer software, hardware, or any of them.
- the combined computer readable medium is implemented.
- the embodiments described herein may be through the use of application specific integrated circuits (ASICs), digital signal processors (DSPs), digital signal processing devices (DSPDs), programmable logic devices (PLDs), field programmable gate arrays (ASICs), digital signal processors (DSPs), digital signal processing devices (DSPDs), programmable logic devices (PLDs), field programmable gate arrays ( An FPGA, a processor, a controller, a microcontroller, a microprocessor, at least one of the electronic units designed to perform the functions described herein is implemented, in some cases such an embodiment may be at the controller 140 Implemented in the middle.
- implementations such as procedures or functions may be implemented with separate software modules that permit the execution of at least one function or operation.
- the software code can be implemented by a software application (or program) written in any suitable programming language, which can be stored in
- Such communication systems may use different air interfaces and/or physical layers.
- air interfaces used by communication systems include, for example, Frequency Division Multiple Access (FDMA), Time Division Multiple Access (TDMA), Code Division Multiple Access (CDMA), and Universal Mobile Telecommunications System (UMTS) (in particular, Long Term Evolution (LTE)). ), Global System for Mobile Communications (GSM), etc.
- FDMA Frequency Division Multiple Access
- TDMA Time Division Multiple Access
- CDMA Code Division Multiple Access
- UMTS Universal Mobile Telecommunications System
- LTE Long Term Evolution
- GSM Global System for Mobile Communications
- the following description relates to a CDMA communication system, but such teachings are equally applicable to other types of systems.
- a CDMA wireless communication system can include a plurality of mobile terminals 100, a plurality of base stations (BS) 270, a base station controller (BSC) 275, and a mobile switching center (MSC) 280.
- the MSC 280 is configured to interface with a public switched telephone network (PSTN) 290.
- PSTN public switched telephone network
- the MSC 280 is also configured to interface with a BSC 275 that can be coupled to the base station 270 via a backhaul line.
- the backhaul line can be constructed in accordance with any of a number of well known interfaces including, for example, E1/T1, ATM, IP, PPP, Frame Relay, HDSL, ADSL, or xDSL. It will be appreciated that the system as shown in FIG. 2 may include multiple BSC 2750s.
- Each BS 270 can serve one or more partitions (or regions), each of which is covered by a multi-directional antenna or an antenna directed to a particular direction radially away from the BS 270. Alternatively, each partition may be covered by two or more antennas for diversity reception.
- Each BS 270 can be configured to support multiple frequencies Allocated, and each frequency allocation has a specific spectrum (eg, 1.25 MHz, 5 MHz, etc.).
- BS 270 may also be referred to as a Base Transceiver Subsystem (BTS) or other equivalent terminology.
- BTS Base Transceiver Subsystem
- the term "base station” can be used to generally refer to a single BSC 275 and at least one BS 270.
- a base station can also be referred to as a "cell station.”
- each partition of a particular BS 270 may be referred to as a plurality of cellular stations.
- a broadcast transmitter (BT) 295 transmits a broadcast signal to the mobile terminal 100 operating within the system.
- a broadcast receiving module 111 as shown in FIG. 1 is provided at the mobile terminal 100 to receive a broadcast signal transmitted by the BT 295.
- GPS Global Positioning System
- the satellite 300 helps locate at least one of the plurality of mobile terminals 100.
- a plurality of satellites 300 are depicted, but it is understood that useful positioning information can be obtained using any number of satellites.
- the GPS module 115 as shown in Figure 1 is typically configured to cooperate with the satellite 300 to obtain desired positioning information. Instead of GPS tracking technology or in addition to GPS tracking technology, other techniques that can track the location of the mobile terminal can be used. Additionally, at least one GPS satellite 300 can selectively or additionally process satellite DMB transmissions.
- BS 270 receives reverse link signals from various mobile terminals 100.
- Mobile terminal 100 typically participates in calls, messaging, and other types of communications.
- Each reverse link signal received by a particular base station 270 is processed within a particular BS 270.
- the obtained data is forwarded to the relevant BSC 275.
- the BSC provides call resource allocation and coordinated mobility management functions including a soft handoff procedure between the BSs 270.
- the BSC 275 also routes the received data to the MSC 280, which provides additional routing services for interfacing with the PSTN 290.
- PSTN 290 interfaces with MSC 280, which forms an interface with BSC 275, and BSC 275 controls BS 270 accordingly to transmit forward link signals to mobile terminal 100.
- FIG. 3 is a schematic diagram of functional modules of an embodiment of a mobile terminal according to the present invention.
- the mobile terminal further includes an application processor (AP), a first Wi-Fi module 310, and a second Wi-Fi module 320, where the first Wi-Fi module 310 and the second channel
- the Wi-Fi module 320 is integrally provided with a baseband processing unit 300.
- the Wi-Fi modules (310 and 320) in this embodiment are basically the same as the existing Wi-Fi modules, that is, have the function of accessing the wifi device for wifi access.
- the baseband processing unit 300 is mainly configured to modulate data sent by the mobile terminal, send it to the wifi device (such as a wireless router) for uploading by the Wi-Fi module, and demodulate the Wi-Fi module to download data from the network.
- the application processor 200 is configured to process various instructions of each application in the mobile terminal, such as opening a webpage, watching an online video, and the like.
- the first Wi-Fi module 310 and the second Wi-Fi module 320 are respectively connected to the application processor 200.
- the application processor 200 sends the data that the application terminal needs to upload to the network server to The first Wi-Fi module 310 and/or the second Wi-Fi module 320 are then sent to the router via the modulation processing of the first Wi-Fi module 310 and/or the second Wi-Fi module 320. Upload a web server.
- the mobile terminal When the network server sends the download data to the mobile terminal via the router, the mobile terminal receives the download data through the first Wi-Fi module 310 and/or the second Wi-Fi module 320, and then performs demodulation processing, and After the demodulation is completed, it is sent to the application processor 200 for corresponding processing.
- the application processor 200 is further configured to merge the received data sent by the two-way Wi-Fi module after being downloaded and demodulated. For example, when the download data received by the first Wi-Fi module 310 and the second Wi-Fi module 320 is from the same network server, that is, the same application corresponding to the mobile terminal, the application processor 200 needs to be The two channels of data demodulated by the two Wi-Fi modules are integrated and processed.
- the hardware structure of the mobile terminal is specifically improved, and the Wi-Fi module is newly added, and the two Wi-Fi modules are improved to integrate the data for modulation and demodulation.
- the baseband processing unit greatly enhances the preemption capability of the mobile terminal for hotspot resources, thereby improving the Wi-Fi speed of the mobile terminal when surfing the Internet, thereby improving the user experience.
- the Wi-Fi module since the Wi-Fi module has its own modem function, it does not need to occupy the modem of the mobile terminal itself.
- the mobile terminal further includes a first road modem 410.
- the application processor 200 is integrally configured and connected to the first way modem 410, for example, integrated on the same chip.
- the first Wi-Fi module 310 and the second Wi-Fi module 320 establish a connection with the application processor 200 through the first path modem 410, respectively.
- the application processor 200 is integrated and connected with the first path modem 410, in order to facilitate the first Wi-Fi module 310 and the second Wi-Fi module 320.
- the interface implementation when the application processor 200 is connected is more convenient. Therefore, the first Wi-Fi module 310 and the second Wi-Fi module 320 can be indirectly connected to the application processor 200 by the first path modem 410.
- the mobile terminal further includes a first road modem 410 and a second path modem 420, such as a dual channel mobile terminal, such as a dual card dual standby mobile phone.
- the application processor 200 is integrally configured and connected to the first way modem 410; the first way modem 410 is connected to the second way modem 420.
- the first Wi-Fi module 310 establishes a connection with the application processor 200 through the first way modem 410, and the second way Wi-Fi module 320 passes the second way modem 420, the first way modulation solution 410 and the application processor 200. establish connection.
- the mobile terminal when the mobile terminal is a dual-channel mobile terminal, it is more convenient to implement an interface when the first Wi-Fi module 310 and the second Wi-Fi module 320 are connected to the application processor 200.
- the first Wi-Fi module 310 is connected to the application processor 200 through the first path modem 410
- the second Wi-Fi module 320 is passed through the second path modem 420.
- the first modulation solution 410 establishes a connection with the application processor 200. It should be noted that, in the hardware structure of the mobile terminal, if the first modulation solution 410 and the second modem 420 are not connected, the first modulation solution 410 and the second modem 420 need to be connected, so as to implement the second indirectly.
- the connection of the Wi-Fi module 320 to the application processor 200 if the first modulation solution 410 and the second modem 420 are not connected, the first modulation solution 410 and the second modem 420 need to be connected, so as to implement the second indirectly.
- the first Wi-Fi module 310 is connected by a high speed interface; the second way Wi-Fi module 320 is connected to the first way modem 410 by a high speed interface.
- the first Wi-Fi module 310 and the first path modem The 410 is connected by a high speed interface; the second Wi-Fi module 320 is connected to the second modem 420 by a high speed interface; the first modem 410 and the second modem 420 are connected by a high speed interface.
- the high speed interface includes at least one of a PCI-E interface, a PCI-X interface, an HSIC interface, and a USB interface.
- FIG. 6 is a schematic structural diagram of a frame of a first embodiment of a mobile terminal according to the present invention.
- the mobile terminal includes: a first Wi-Fi module 10, a second Wi-Fi module 20, a modem 30, and an application processor 40.
- the application processor 40 is connected to the modem 30, and the modem 30 is connected to the first Wi-Fi module 10 and the second Wi-Fi module 20, respectively.
- the first Wi-Fi module 10, the modem 30, and the application processor 40 form a first data channel, and the first data channel is used for performing the first data service transmission.
- the second Wi-Fi module 20, the modem 30, and the application processor 40 form a second data channel, and the second data channel is used for second data service transmission.
- an IQ interface is disposed on the first Wi-Fi module 10, the second Wi-Fi module 20, and the modem 30.
- the first Wi-Fi module 10 passes the IQ line and the modulation solution through the IQ interface.
- the modulator 30 is connected, and the second Wi-Fi module 20 is connected to the modem 30 via an IQ line via an IQ interface.
- the application processor 40 can be integrated with the modem 30 to set up a connection.
- the mobile terminal establishes a Wi-Fi connection with the Wi-Fi hotspot through the first Wi-Fi module 10 and the second Wi-Fi module 20, and performs service data communication, when the downloaded service data passes through the first road.
- the Wi-Fi module 10 and the second Wi-Fi module 20 are down-converted into baseband signals
- the first Wi-Fi module 10 and the second Wi-Fi module 20 respectively pass the respective processed baseband signals through the IQ line.
- the modem 30, the modem 30 demodulates the baseband signals respectively transmitted by the first Wi-Fi module 10 and the second Wi-Fi module 20, and then transmits the demodulated signals to the application processor 40 for processing by the application.
- the unit 40 integrates the demodulated signals for unified processing.
- the application processor 40 When the mobile terminal wants to upload the service data, the application processor 40 first allocates the service data to be uploaded to the modem 30, and the modem 30 performs modulation of the service data to be uploaded, and when the modulation is completed, the modulated data is The two paths are assigned to the first Wi-Fi module 10 and the second Wi-Fi module 20.
- the first Wi-Fi module 10 and the second Wi-Fi module 20 receive the modulated data
- the first Wi-Fi module 10 and the second Wi-Fi module 20 respectively detect the received modulation.
- the data is upconverted and the converted data is sent out.
- the mobile terminal includes a first Wi-Fi module 10, a second Wi-Fi module 20, a modem 30, and an application processor 40.
- the application processor 40 is connected to the modem 30, and the modem 30 is connected to the first Wi-Fi module 10 and the second Wi-Fi module 20, respectively.
- the first Wi-Fi module 10, the modem 30, and the application processor 40 form a first data channel, and the first data channel is used for performing the first data service transmission.
- the second Wi-Fi module 20, the modem 30, and the application processor 40 form a second data channel, and the second data channel is used for second data service transmission.
- the modem 30 includes a first modem 31 and a second modem 32.
- the first modem 31 is connected to the first Wi-Fi module 10
- the second modem 32 is connected to the second Wi-Fi module 20
- the application processor 40 is The first modem 31 or the second modem 32 is connected.
- the application processor 40 is connected to the first modem 31.
- the first modem 31 is connected to the second modem 32.
- an IQ interface is disposed on the first Wi-Fi module 10, the second Wi-Fi module 20, the first modem 31, and the second modem 32.
- the first Wi-Fi module 10 is connected to the first modem 31 via an IQ line via an IQ interface
- the second Wi-Fi module 20 is connected to the second modem 32 via an IQ line via an IQ interface.
- a high speed interface is further disposed on the first modem 31 and the second modem 32, and the first modem 31 and the second modem 32 are connected through a high speed interface.
- the mobile terminal establishes a Wi-Fi connection with the Wi-Fi hotspot through the first Wi-Fi module 10 and the second Wi-Fi module 20, and performs service data communication, when the downloaded service data passes through the first road.
- the first Wi-Fi module 10 and the second Wi-Fi module 20 are down-converted into baseband signals
- the first Wi-Fi module 10 transmits the processed first baseband signal to the first modem 31 via the IQ line
- the second Wi The -Fi module 20 passes the processed second baseband signal to the second modem 32 via the IQ line.
- the first modem 31 demodulates the first baseband signal incoming by the first Wi-Fi module 10, and then transmits the demodulated signal to the application processor 40; the second modem 32 pairs the second Wi-Fi module.
- the incoming second baseband signal is demodulated and the demodulated signal is passed to the application processor 40.
- the application processor 40 integrates the demodulated signals transmitted from the first modem 31 and the second modem 32 for unified processing.
- the application processor 40 When the mobile terminal wants to upload the service data, the application processor 40 first allocates the service data to be uploaded to the first modem 31 and the second modem 32, and the first modem 31 sends the first to be uploaded to the application processor 40.
- the service data is modulated, and when the modulation is completed, the modulated data is transmitted to the first Wi-Fi module 10; the second modem 32 modulates the second service data to be uploaded incoming by the application processor 40. And, when the modulation is completed, the modulated data is transmitted to the second Wi-Fi module 20.
- the first Wi-Fi module 10 and the second When the Wi-Fi module 20 receives the modulated data, the first Wi-Fi module 10 and the second Wi-Fi module 20 respectively up-convert the received modulated data, and then convert the converted data. Send it out.
- the modem 30 includes a first modem 31 and a second modem 32.
- the first modem 31 is connected to the first Wi-Fi module 10
- the second modem 32 is connected to the second Wi-Fi module 20
- the application processor 40 is connected to the first modem 31 or the second modem 32.
- the first modem 31 is connected to the second modem 32.
- the service data is modulated and demodulated by the first modem 31 and the second modem 32, respectively, which further improves the efficiency of data processing.
- a third embodiment of the mobile terminal of the present invention is proposed based on the first embodiment.
- the baseband processing unit 50 is integrally provided on the first Wi-Fi module 10 or the second Wi-Fi module 20.
- the application processor 40 is connected to the modem 30, and the modem 30 is connected to the first Wi-Fi module 10 and the second Wi-Fi module 20, respectively.
- the baseband processing unit 50 is integrally provided on the first Wi-Fi module 10.
- the baseband processing unit 50 When the baseband processing unit 50 is integrated on the first Wi-Fi module 10, the baseband processing unit 50 is configured to modulate and demodulate the baseband signal upconverted by the first Wi-Fi module 10 and the down-converted baseband signal.
- the baseband processing unit 50 When the baseband processing unit 50 is integrally provided on the second Wi-Fi module 20, the baseband processing unit 50 is configured to modulate and demodulate the baseband signal upconverted by the second Wi-Fi module 20 and the downconverted baseband signal.
- the first Wi-Fi module 10 is provided with a high-speed interface
- the second Wi-Fi module 20 is provided with an IQ.
- the interface, the modem 30 is provided with a high speed interface and an IQ interface.
- the first Wi-Fi module 10 is connected to the modem 30 using a high speed interface
- the second Wi-Fi module 20 is connected to the modem 30 using an IQ interface.
- the hotspot establishes a Wi-Fi connection, and during the process of performing service data communication, when the downloaded service data is down-converted to a baseband signal by the first Wi-Fi module 10, the baseband set on the first Wi-Fi module 10 is passed.
- the processing unit 50 demodulates the baseband signal and then passes the demodulated signal to the application processor 40 via the modem 30.
- the second Wi-Fi module 20 transmits the processed baseband signal to the modem 30, and the modem 30 pairs the second Wi-Fi module 20.
- the incoming baseband signal is demodulated and the demodulated signal is then passed to the application processor 40.
- the application processor 40 integrates the received two demodulated signals for unified processing.
- the application processor 40 firstly distributes the service data to be uploaded to the modem 30 in two ways, and the modem 30 directly transmits the first service data to the first Wi-Fi module 10,
- the modem 30 modulates the second traffic data and transmits the modulated data to the second Wi-Fi module 20 when the modulation is completed.
- the first Wi-Fi module 10 receives the unmodulated first traffic data
- the unmodulated first traffic data is first modulated by the baseband processing unit 50, and then the first Wi-Fi module 10 is paired.
- the modulated data is upconverted, and then the converted data is transmitted.
- the second Wi-Fi module 20 receives the modulated data
- the second Wi-Fi module 20 up-converts the received modulated data, and then transmits the converted data.
- the second Wi-Fi module 20 is provided with a high speed interface
- the first Wi-Fi module 10 is provided with IQ.
- the interface, the modem 30 is provided with a high speed interface and an IQ interface.
- the second Wi-Fi module 20 is connected to the modem 30 using a high speed interface
- the first Wi-Fi module 10 is connected to the modem 30 using an IQ interface.
- the mobile terminal establishes a Wi-Fi connection with the Wi-Fi hotspot through the first Wi-Fi module 10 and the second Wi-Fi module 20, and performs service data communication, when the downloaded service data passes through the second road.
- the Wi-Fi module 20 is down-converted to a baseband signal, it passes through the second Wi-Fi module 20
- the set baseband processing unit 50 demodulates the baseband signal and then passes the demodulated signal to the application processor 40 via the modem 30.
- the first Wi-Fi module 10 transmits the processed baseband signal to the modem 30, and the modem 30 pairs the first Wi-Fi module 10.
- the incoming baseband signal is demodulated and the demodulated signal is then passed to the application processor 40.
- the application processor 40 integrates the received two demodulated signals for unified processing.
- the application processor 40 firstly distributes the service data to be uploaded to the modem 30 in two ways, and the modem 30 directly transmits the first service data to the second Wi-Fi module 20, The modem 30 modulates the second service data and transmits the modulated data to the first Wi-Fi module 10 when the modulation is completed.
- the second Wi-Fi module 20 receives the unmodulated first traffic data
- the unmodulated first traffic data is first modulated by the baseband processing unit 50, and then the second Wi-Fi module 20 is paired.
- the modulated data is upconverted, and then the converted data is transmitted.
- the first Wi-Fi module 10 receives the modulated data
- the first Wi-Fi module 10 up-converts the received modulated data, and then transmits the converted data.
- the baseband processing unit 50 is integrated on the first Wi-Fi module 10 or the second Wi-Fi module 20, and the service data is modulated and demodulated by the baseband processing unit 50, thereby further improving.
- the modem 30 includes a first modem 31 and a second modem 32.
- the first modem 31 is connected to the first Wi-Fi module 10
- the second modem 32 is connected to the second Wi-Fi module 20
- the application processor 40 is connected to the first modem 31 or the second modem 32.
- the first modem 31 is connected to the second modem 32.
- the baseband processing unit 50 is integrally provided on the first Wi-Fi module 10 or the second Wi-Fi module 20.
- the application processor 40 is coupled to the first modem 31, and the baseband processing unit 50 is integrally provided on the first Wi-Fi module 10.
- the baseband processing unit 50 When the baseband processing unit 50 is integrated on the first Wi-Fi module 10, the baseband processing unit 50 is configured to modulate and demodulate the baseband signal upconverted by the first Wi-Fi module 10 and the down-converted baseband signal.
- the baseband processing unit 50 When the baseband processing unit 50 is integrally provided on the second Wi-Fi module 20, the baseband processing unit 50 is configured to modulate and demodulate the baseband signal upconverted by the second Wi-Fi module 20 and the downconverted baseband signal.
- the first Wi-Fi module 10 is provided with a high-speed interface
- the second Wi-Fi module 20 is provided with an IQ.
- the interface, the first modem 31 and the second modem 32 are provided with a high speed interface and an IQ interface.
- the first Wi-Fi module 10 is connected to the first modem 31 using a high speed interface
- the second Wi-Fi module 20 is connected to the second modem 32 using an IQ interface.
- the first modem 31 and the second modem 32 are connected by a high speed interface.
- the mobile terminal establishes a Wi-Fi connection with the Wi-Fi hotspot through the first Wi-Fi module 10 and the second Wi-Fi module 20, and performs service data communication, when the downloaded service data passes through the first road.
- the Wi-Fi module 10 is down-converted into a baseband signal
- the baseband signal is demodulated by the baseband processing unit 50 disposed on the first Wi-Fi module 10, and then the demodulated signal is transmitted through the first modem 31.
- Application processor 40 After the downloaded service data is down-converted to a baseband signal by the second Wi-Fi module 20, the second Wi-Fi module 20 transmits the processed baseband signal to the second modem 32, and the second modem 32 pairs the second channel Wi.
- the baseband signal transmitted by the -Fi module 20 is demodulated, and then the demodulated signal is passed to the application processor 40.
- the application processor 40 integrates the received two demodulated signals for unified processing.
- the application processor 40 firstly distributes the service data to be uploaded to the first modem 31 and the second modem 32 in two ways, and the first modem 31 directly sends the first service data to the The first Wi-Fi module 10.
- the second modem 32 modulates the second traffic data and, upon completion of the modulation, transmits the modulated data to the second Wi-Fi module 20.
- the first Wi-Fi module 10 receives the unmodulated first path In the case of service data, the unmodulated first traffic data is first modulated by the baseband processing unit 50, and then the first Wi-Fi module 10 upconverts the modulated data, and then transmits the converted data.
- the second Wi-Fi module 20 receives the modulated data
- the second Wi-Fi module 20 up-converts the received modulated data, and then transmits the converted data.
- the second Wi-Fi module 20 is provided with a high speed interface
- the first Wi-Fi module 10 is provided with IQ.
- the interface, the first modem 31 and the second modem 32 are provided with a high speed interface and an IQ interface.
- the second Wi-Fi module 20 is connected to the second modem 32 using a high speed interface
- the first Wi-Fi module 10 is connected to the first modem 31 using an IQ interface.
- the first modem 31 and the second modem 32 are connected by a high speed interface.
- the mobile terminal establishes a Wi-Fi connection with the Wi-Fi hotspot through the first Wi-Fi module 10 and the second Wi-Fi module 20, and performs service data communication, when the downloaded service data passes through the second road.
- the Wi-Fi module 20 is down-converted into a baseband signal
- the baseband signal is demodulated by the baseband processing unit 50 disposed on the second Wi-Fi module 20, and then the demodulated signal is transmitted to the second modem 32.
- Application processor 40 After the downloaded service data is down-converted to a baseband signal by the first Wi-Fi module 10, the first Wi-Fi module 10 transmits the processed baseband signal to the first modem 31, and the first modem 31 pairs the first Wi.
- the incoming baseband signal of the Fi module 10 is demodulated and then the demodulated signal is passed to the application processor 40.
- the application processor 40 integrates the received two demodulated signals for unified processing.
- the application processor 40 firstly distributes the service data to be uploaded to the first modem 31 and the second modem 32 in two ways, and the second modem 32 sends the first service data directly to the The second Wi-Fi module 20, the first modem 31 modulates the second service data, and transmits the modulated data to the first Wi-Fi module 10 when the modulation is completed.
- the second Wi-Fi module 20 receives the unmodulated first path In the case of service data, the unmodulated first traffic data is first modulated by the baseband processing unit 50, and then the second Wi-Fi module 20 upconverts the modulated data, and then transmits the converted data.
- the first Wi-Fi module 10 receives the modulated data
- the first Wi-Fi module 10 up-converts the received modulated data, and then transmits the converted data.
- the baseband processing unit 50 is integrated on the first Wi-Fi module 10 or the second Wi-Fi module 20, and the service data is modulated and demodulated by the baseband processing unit 50, thereby further improving.
- the data in the first scheme is down-converted to a baseband signal by the wifi module, and is demodulated by the IMU through the IQ line, and the two demodulated signals are integrated through the CPU.
- the CPU allocates the data to be uploaded to the two MDMs, and after the two MDMs complete the modulation, the two-way wifi completes the up-conversion transmission.
- the mobile terminal comprises a communication terminal.
- the communication terminal can be a terminal that performs various kinds of information communication.
- the communication terminal includes a terminal device such as a mobile phone, a tablet computer, and a wearable device.
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Abstract
本发明公开了一种移动终端,包括应用处理器、第一路Wi-Fi模块与第二路Wi-Fi模块,其中,第一路Wi-Fi模块与第二路Wi-Fi模块上分别集成设置有用于调制与解调数据的基带处理单元;第一路Wi-Fi模块与第二路Wi-Fi模块分别与应用处理器连接。
Description
本发明涉及通信技术领域,尤其涉及一种移动终端。
现有移动终端一般都具备Wi-Fi上网功能,因此Wi-Fi速度对于用户使用体验来说至关重要,而对于Wi-Fi速度影响的因素很多,比如无线路由器的硬件承载能力、接入同一热点的用户数量以及移动终端抢占资源的能力等。因此,非常有必要解决提升Wi-Fi速度的技术问题,进而使移动终端能在各种应用场景下都能够具备较好的Wi-Fi速度,从而提升用户使用体验以及产品竞争力。
发明内容
本发明提供了一种移动终端,期望提升上网速度。
本发明提供一种移动终端,包括应用处理器,所述移动终端还包括第一路Wi-Fi模块与第二路Wi-Fi模块,所述第一路Wi-Fi模块与所述第二路Wi-Fi模块上分别集成设置有用于调制与解调数据的基带处理单元;所述第一路Wi-Fi模块与所述第二路Wi-Fi模块分别与所述应用处理器连接;
所述应用处理器,配置为将上传的数据发送至所述第一路Wi-Fi模块和/或所述第二路Wi-Fi模块以供进行调制后发送;以及还配置为接收通过所述第一路Wi-Fi模块和/或所述第二路Wi-Fi模块下载并解调后所发送的数据;以及还配置为合并接收到的通过两路Wi-Fi模块下载并解调后所发送的数据。
可选的,所述移动终端还包括第一路调制解调器,所述应用处理器与
所述第一路调制解调器集成设置并连接;所述第一路Wi-Fi模块、所述第二路Wi-Fi模块分别通过所述第一路调制解调器与所述应用处理器建立连接。
可选的,所述移动终端还包括第一路调制解调器与第二路调制解调器,所述应用处理器与所述第一路调制解调器集成设置并连接;所述第一路调制解调器与所述第二路调制解调器连接;
所述第一路Wi-Fi模块通过所述第一路调制解调器与所述应用处理器建立连接,所述第二路Wi-Fi模块通过所述第二路调制解调器、所述第一路调制解调器与所述应用处理器建立连接。
可选的,所述第一路Wi-Fi模块与所述第一路调制解调器采用高速接口连接;所述第二路Wi-Fi模块与所述第一路调制解调器采用高速接口连接。
可选的,所述第一路Wi-Fi模块与所述第一路调制解调器采用高速接口连接;所述第二路Wi-Fi模块与所述第二路调制解调器采用高速接口连接;所述第一路调制解调器与所述第二路调制解调器采用高速接口连接。
可选的,所述高速接口至少包括PCI-E接口、PCI-X接口、HSIC接口、USB接口中的一种或多种。
可选地,所述移动终端还包括与所述应用处理器连接的调制解调器;
所述调制解调器与所述第一路Wi-Fi模块和第二路Wi-Fi模块连接;
所述第一路Wi-Fi模块、所述调制解调器与所述应用处理器组成第一数据通道,用于进行第一数据业务传输;
所述第二路Wi-Fi模块、所述调制解调器与所述应用处理器组成第二数据通道,用于进行第二数据业务传输。
可选地,所述调制解调器包括第一调制解调器、与所述第一调制解调器连接的第二调制解调器;所述第一调制解调器与所述第一路Wi-Fi模块连接;所述第二调制解调器与所述第二路Wi-Fi模块连接;所述应用处理器与所述第一调制解调器或所述第二调制解调器连接。
可选地,所述应用处理器与所述调制解调器集成设置连接;所述第一路Wi-Fi模块采用IQ接口与所述调制解调器连接;所述第二路Wi-Fi模块采用IQ接口与所述调制解调器连接。
可选地,所述第一路Wi-Fi模块采用IQ接口与所述第一调制解调器连接;所述第二路Wi-Fi模块采用IQ接口与所述第二调制解调器连接;所述第一调制解调器与所述第二调制解调器采用高速接口连接。
可选地,所述第一路Wi-Fi模块或所述第二路Wi-Fi模块上集成设置有所述基带处理单元。
可选地,当所述第一路Wi-Fi模块上集成设置有所述基带处理单元时,所述第一路Wi-Fi模块采用高速接口与所述调制解调器连接;所述第二路Wi-Fi模块采用IQ接口与所述调制解调器连接。
可选地,当所述第二路Wi-Fi模块上集成设置有所述基带处理单元时,所述第二路Wi-Fi模块采用高速接口与所述调制解调器连接;所述第一路Wi-Fi模块采用IQ接口与所述调制解调器连接。
可选地,所述调制解调器包括第一调制解调器、与所述第一调制解调器连接的第二调制解调器;所述第一调制解调器与所述第一路Wi-Fi模块连接;所述第二调制解调器与所述第二路Wi-Fi模块连接;所述应用处理器与所述第一调制解调器或所述第二调制解调器连接。
可选地,当所述第一路Wi-Fi模块上集成设置有所述基带处理单元时,所述第一路Wi-Fi模块采用高速接口与所述第一调制解调器连接;所述第二路Wi-Fi模块采用IQ接口与所述第二调制解调器连接;所述第一调制解调器与所述第二调制解调器采用高速接口连接。
可选地,当所述第二路Wi-Fi模块上集成设置有所述基带处理单元时,所述第一路Wi-Fi模块采用IQ接口与所述第一调制解调器连接;所述第二路Wi-Fi模块采用高速接口与所述第二调制解调器连接;所述第一调制解调
器与所述第二调制解调器采用高速接口连接。
可选地,所述移动终端包括通信终端。
可选地,所述通信终端包括手机、平板电脑以及可穿戴式设备。
本发明实施例具体从移动终端的硬件结构上进行改进,通过新增加一路Wi-Fi模块以及对两路Wi-Fi模块进行改进,以集成用于调制与解调数据的基带处理单元,从而大大提升移动终端对热点资源的抢占能力,进而提升移动终端上网时的Wi-Fi速度,进而提升用户使用体验。此外,由于Wi-Fi模块自带调制解调功能,因此无需占用移动终端自身的调制解调器。
此处所说明的附图用来提供对本发明的进一步理解,构成本申请的一部分,本发明的示意性实施例及其说明用于解释本发明,并不构成对本发明的不当限定。在附图中:
图1为实现本发明各个实施例一个可选的移动终端的硬件结构示意;
图2为支持本发明移动终端之间进行通信的通信系统的示意图;
图3为本发明实施例提供的第一种移动终端的结构示意图;
图4为本发明实施例提供的第二种移动终端的结构示意图;
图5为本发明实施例提供的第三种移动终端的结构示意图;
图6为本发明实施例提供的第四种移动终端的结构示意图;
图7为本发明实施例提供的第五种移动终端的结构示意图;
图8为本发明实施例提供的第六种移动终端的结构示意图。
以下结合附图对本发明的优选实施例进行详细说明,应当理解,以下所说明的优选实施例仅用于说明和解释本发明,并不用于限定本发明。
现在将参考附图描述实现本发明各个实施例的移动终端。在后续的描
述中,使用用于表示元件的诸如“模块”、“部件”或“单元”的后缀仅为了有利于本发明的说明,其本身并没有特定的意义。因此,"模块"与"部件"可以混合地使用。
移动终端可以以各种形式来实施。例如,本发明中描述的终端可以包括诸如移动电话、智能电话、笔记本电脑、数字广播接收器、PDA(个人数字助理)、PAD(平板电脑)、PMP(便携式多媒体播放器)、导航装置等等的移动终端以及诸如数字TV、台式计算机等等的固定终端。下面,假设终端是移动终端。然而,本领域技术人员将理解的是,除了特别用于移动目的的元件之外,根据本发明的实施方式的构造也能够应用于固定类型的终端。
图1为实现本发明各个实施例一个可选的移动终端的硬件结构示意图。
移动终端100可以包括用户输入单元110、输出单元120、存储器130、控制器140和电源单元150等等。图1示出了具有各种组件的移动终端,但是应理解的是,并不要求实施所有示出的组件。输出单元120被构造为以视觉、音频和/或触觉方式提供输出信号(例如,音频信号、视频信号、警报信号、振动信号等等)。
输出单元120可以包括显示单元121、音频输出模块122等等。显示单元121可以显示在移动终端100中处理的信息。例如,当移动终端100处于电话通话模式时,显示单元121可以显示与通话或其它通信(例如,文本消息收发、多媒体文件下载等等)相关的用户界面(UI)或图形用户界面(GUI)。当移动终端100处于视频通话模式或者图像捕获模式时,显示单元121可以显示捕获的图像和/或接收的图像、示出视频或图像以及相关功能的UI或GUI等等。
同时,当显示单元121和触摸板以层的形式彼此叠加以形成触摸屏时,显示单元121可以用作输入装置和输出装置。显示单元121可以包括液晶
显示器(LCD)、薄膜晶体管LCD(TFT-LCD)、有机发光二极管(OLED)显示器、柔性显示器、三维(3D)显示器等等中的至少一种。这些显示器中的一些可以被构造为透明状以允许用户从外部观看,这可以称为透明显示器,典型的透明显示器可以例如为TOLED(透明有机发光二极管)显示器等等。根据特定想要的实施方式,移动终端100可以包括两个或更多显示单元(或其它显示装置),例如,移动终端可以包括外部显示单元(未示出)和内部显示单元(未示出)。触摸屏可用于检测触摸输入压力以及触摸输入位置和触摸输入面积。
存储器130可以存储由控制器140执行的处理和控制操作的软件程序等等,或者可以暂时地存储己经输出或将要输出的数据(例如,电话簿、消息、静态图像、视频等等)。而且,存储器130可以存储关于当触摸施加到触摸屏时输出的各种方式的振动和音频信号的数据。
存储器130可以包括至少一种类型的存储介质,所述存储介质包括闪存、硬盘、多媒体卡、卡型存储器(例如,SD或DX存储器等等)、随机访问存储器(RAM)、静态随机访问存储器(SRAM)、只读存储器(ROM)、电可擦除可编程只读存储器(EEPROM)、可编程只读存储器(PROM)、磁性存储器、磁盘、光盘等等。而且,移动终端100可以与通过网络连接执行存储器130的存储功能的网络存储装置协作。
控制器140通常控制移动终端的总体操作。例如,控制器140执行与语音通话、数据通信、视频通话等等相关的控制和处理。控制器140可以执行模式识别处理,以将在触摸屏上执行的手写输入或者图片绘制输入识别为字符或图像。
电源单元150在控制器140的控制下接收外部电力或内部电力并且提供操作各元件和组件所需的适当的电力。
这里描述的各种实施方式可以以使用例如计算机软件、硬件或其任何
组合的计算机可读介质来实施。对于硬件实施,这里描述的实施方式可以通过使用特定用途集成电路(ASIC)、数字信号处理器(DSP)、数字信号处理装置(DSPD)、可编程逻辑装置(PLD)、现场可编程门阵列(FPGA)、处理器、控制器、微控制器、微处理器、被设计为执行这里描述的功能的电子单元中的至少一种来实施,在一些情况下,这样的实施方式可以在控制器140中实施。对于软件实施,诸如过程或功能的实施方式可以与允许执行至少一种功能或操作的单独的软件模块来实施。软件代码可以由以任何适当的编程语言编写的软件应用程序(或程序)来实施,软件代码可以存储在存储器130中并且由控制器140执行。
现在将参考图2描述其中根据本发明的移动终端能够操作的通信系统。
这样的通信系统可以使用不同的空中接口和/或物理层。例如,由通信系统使用的空中接口包括例如频分多址(FDMA)、时分多址(TDMA)、码分多址(CDMA)和通用移动通信系统(UMTS)(特别地,长期演进(LTE))、全球移动通信系统(GSM)等等。作为非限制性示例,下面的描述涉及CDMA通信系统,但是这样的教导同样适用于其它类型的系统。
参考图2,CDMA无线通信系统可以包括多个移动终端100、多个基站(BS)270、基站控制器(BSC)275和移动交换中心(MSC)280。MSC280被构造为与公共电话交换网络(PSTN)290形成接口。MSC280还被构造为与可以经由回程线路耦接到基站270的BSC275形成接口。回程线路可以根据若干己知的接口中的任一种来构造,所述接口包括例如E1/T1、ATM,IP、PPP、帧中继、HDSL、ADSL或xDSL。将理解的是,如图2中所示的系统可以包括多个BSC2750。
每个BS270可以服务一个或多个分区(或区域),由多向天线或指向特定方向的天线覆盖的每个分区放射状地远离BS270。或者,每个分区可以由用于分集接收的两个或更多天线覆盖。每个BS270可以被构造为支持多个频率
分配,并且每个频率分配具有特定频谱(例如,1.25MHz,5MHz等等)。
分区与频率分配的交叉可以被称为CDMA信道。BS270也可以被称为基站收发器子系统(BTS)或者其它等效术语。在这样的情况下,术语"基站"可以用于笼统地表示单个BSC275和至少一个BS270。基站也可以被称为"蜂窝站"。或者,特定BS270的各分区可以被称为多个蜂窝站。
如图2中所示,广播发射器(BT)295将广播信号发送给在系统内操作的移动终端100。如图1中所示的广播接收模块111被设置在移动终端100处以接收由BT295发送的广播信号。在图2中,示出了几个全球定位系统(GPS)卫星300。卫星300帮助定位多个移动终端100中的至少一个。
在图2中,描绘了多个卫星300,但是理解的是,可以利用任何数目的卫星获得有用的定位信息。如图1中所示的GPS模块115通常被构造为与卫星300配合以获得想要的定位信息。替代GPS跟踪技术或者在GPS跟踪技术之外,可以使用可以跟踪移动终端的位置的其它技术。另外,至少一个GPS卫星300可以选择性地或者额外地处理卫星DMB传输。
作为无线通信系统的一个典型操作,BS270接收来自各种移动终端100的反向链路信号。移动终端100通常参与通话、消息收发和其它类型的通信。特定基站270接收的每个反向链路信号被在特定BS270内进行处理。获得的数据被转发给相关的BSC275。BSC提供通话资源分配和包括BS270之间的软切换过程的协调的移动管理功能。BSC275还将接收到的数据路由到MSC280,其提供用于与PSTN290形成接口的额外的路由服务。类似地,PSTN290与MSC280形成接口,MSC与BSC275形成接口,并且BSC275相应地控制BS270以将正向链路信号发送到移动终端100。
基于上述移动终端硬件结构以及通信系统,提出本发明方法各个实施例。
参照图3,图3为本发明移动终端一实施例的功能模块示意图。本实施
例中,移动终端进一步包括应用处理器200(Application Processor,AP)、第一路Wi-Fi模块310与第二路Wi-Fi模块320,其中,第一路Wi-Fi模块310与第二路Wi-Fi模块320分别集成设置有基带处理单元300。
本实施例中的Wi-Fi模块(310与320)与现有Wi-Fi模块基本相同,也即具备有接入wifi设备进行wifi上网的功能。基带处理单元300,主要配置为对移动终端所发出的数据进行调制后由Wi-Fi模块发送给wifi设备(比如无线路由器)进行上传,以及对Wi-Fi模块从网络下载数据进行解调。本实施例中,应用处理器200配置为处理移动终端内各应用程序的各种指令,比如打开网页、观看在线视频等。
如图3所示,第一路Wi-Fi模块310与第二路Wi-Fi模块320分别与应用处理器200连接。当第一路Wi-Fi模块310与第二路Wi-Fi模块320都连接上热点时且用户进行应用操作时,比如进行上网,应用处理器200将应用程序端需要上传网络服务器的数据发送至第一路Wi-Fi模块310和/或第二路Wi-Fi模块320,然后再经由第一路Wi-Fi模块310和/或第二路Wi-Fi模块320的调制处理后发送至路由器以上传网络服务器。而当网络服务器响应后经路由器向移动终端发送下载数据时,移动终端通过第一路Wi-Fi模块310和/或第二路Wi-Fi模块320接收该下载数据后进行解调处理,并在解调完成后发送至应用处理器200进行相应处理。
此外,应用处理器200还用于合并接收到的通过两路Wi-Fi模块下载并解调后所发送的数据。例如,当第一路Wi-Fi模块310和第二路Wi-Fi模块320所接收到的下载数据来源于同一网络服务器,也即对应移动终端的同一个应用时,此时应用处理器200需要将两路Wi-Fi模块解调后的两路数据进行整合后再行处理。
本实施例中,具体从移动终端的硬件结构上进行改进,通过新增加一路Wi-Fi模块以及对两路Wi-Fi模块进行改进,以集成用于调制与解调数据
的基带处理单元,从而大大提升移动终端对热点资源的抢占能力,进而提升移动终端上网时的Wi-Fi速度,进而提升用户使用体验。此外,由于Wi-Fi模块自带调制解调功能,因此无需占用移动终端自身的调制解调器。
可选地,如图4所示,所述移动终端进一步还包括第一路调制解调器410。
如图4所示,应用处理器200与第一路调制解调器410集成设置并连接,例如集成设置在同一个芯片上。第一路Wi-Fi模块310、第二路Wi-Fi模块320分别通过第一路调制解调器410与应用处理器200建立连接。
本实施例中,基于现有移动终端的硬件结构,也即应用处理器200与第一路调制解调器410集成设置并连接,为便于第一路Wi-Fi模块310、第二路Wi-Fi模块320连接应用处理器200时的接口实现更为方便,因此,第一路Wi-Fi模块310、第二路Wi-Fi模块320可由第一路调制解调器410间接实现与应用处理器200的连接。
可选地,如图5所示,所述移动终端进一步还包括第一路调制解调器410与第二路调制解调器420,比如双通道移动终端,例如双卡双待手机等。
如图6所示,应用处理器200与第一路调制解调器410集成设置并连接;第一路调制解调器410与第二路调制解调器420连接。第一路Wi-Fi模块310通过第一路调制解调器410与应用处理器200建立连接,第二路Wi-Fi模块320通过第二路调制解调器420、第一路调制解410调器与应用处理器200建立连接。
本实施例中,当移动终端为双通道移动终端时,为便于第一路Wi-Fi模块310、第二路Wi-Fi模块320连接应用处理器200时的接口实现更为方便,因此,可选将第一路Wi-Fi模块310通过第一路调制解调器410与应用处理器200建立连接,第二路Wi-Fi模块320通过第二路调制解调器420、
第一路调制解410调器与应用处理器200建立连接。需要说明的是,在移动终端硬件结构中,若第一路调制解410、第二路调制解调器420未连通,则需要连接第一路调制解410、第二路调制解调器420,以便于间接实现第二路Wi-Fi模块320与应用处理器200的连接。
可选地,在本发明另一实施例中,为提升双路Wi-Fi模块(310、320)与处理器200之间的数据传输速度,本实施例中,第一路Wi-Fi模块310与第一路调制解调器410采用高速接口连接;第二路Wi-Fi模块320与第一路调制解调器410采用高速接口连接。
可选地,在本发明另一实施例中,为提升双路Wi-Fi模块(310、320)与处理器200之间的数据传输速度,第一路Wi-Fi模块310与第一路调制解调器410采用高速接口连接;第二路Wi-Fi模块320与第二路调制解调器420采用高速接口连接;第一路调制解调器410与第二路调制解调器420采用高速接口连接。
可选地,高速接口至少包括PCI-E接口、PCI-X接口、HSIC接口、USB接口中的一种或多种。
参照图6,图6为本发明移动终端第一实施例的框架结构示意图。本实施例中,移动终端包括:第一路Wi-Fi模块10、第二路Wi-Fi模块20、调制解调器30以及应用处理器40。应用处理器40与调制解调器30连接,调制解调器30分别与第一路Wi-Fi模块10和第二路Wi-Fi模块20连接。第一路Wi-Fi模块10、调制解调器30以及应用处理器40组成第一数据通道,第一数据通道用于进行第一数据业务传输。第二路Wi-Fi模块20、调制解调器30以及应用处理器40组成第二数据通道,第二数据通道用于进行第二数据业务传输。
可选地,第一路Wi-Fi模块10、第二路Wi-Fi模块20与调制解调器30上均设置有IQ接口。第一路Wi-Fi模块10通过IQ接口经由IQ线与调制解
调器30连接,第二路Wi-Fi模块20通过IQ接口经由IQ线与调制解调器30连接。可选地,应用处理器40可与调制解调器30集成设置连接。
在移动终端通过第一路Wi-Fi模块10和第二路Wi-Fi模块20与Wi-Fi热点建立了Wi-Fi连接,进行业务数据通信的过程中,当下载的业务数据经过第一路Wi-Fi模块10和第二路Wi-Fi模块20下变频为基带信号后,第一路Wi-Fi模块10和第二路Wi-Fi模块20分别将各自处理的基带信号经过IQ线传入调制解调器30,调制解调器30对第一路Wi-Fi模块10和第二路Wi-Fi模块20分别传入的基带信号进行解调,然后将解调后的信号传入应用处理器40,由应用处理器40对解调后的信号进行整合,进行统一处理。
当移动终端要上传业务数据时,则首先由应用处理器40将待上传的业务数据分配至调制解调器30,由调制解调器30对待上传的业务数据进行调制,并在调制完成时,将调制后的数据经由两路分配至第一路Wi-Fi模块10和第二路Wi-Fi模块20。当第一路Wi-Fi模块10和第二路Wi-Fi模块20接收到调制后的数据时,第一路Wi-Fi模块10和第二路Wi-Fi模块20分别对接收到的调制后的数据进行上变频,然后将变频后的数据发送出去。
本实施例提供的方案,移动终端包括第一路Wi-Fi模块10、第二路Wi-Fi模块20、调制解调器30以及应用处理器40。应用处理器40与调制解调器30连接,调制解调器30分别与第一路Wi-Fi模块10和第二路Wi-Fi模块20连接。第一路Wi-Fi模块10、调制解调器30以及应用处理器40组成第一数据通道,第一数据通道用于进行第一数据业务传输。第二路Wi-Fi模块20、调制解调器30以及应用处理器40组成第二数据通道,第二数据通道用于进行第二数据业务传输。
可选地,如图7所示,在本实施例中,调制解调器30包括第一调制解调器31和第二调制解调器32。第一调制解调器31与第一路Wi-Fi模块10连接,第二调制解调器32与第二路Wi-Fi模块20连接,应用处理器40与
第一调制解调器31或第二调制解调器32连接。在图8所示的例子中,应用处理器40与第一调制解调器31连接。第一调制解调器31和第二调制解调器32连接。
可选地,第一路Wi-Fi模块10、第二路Wi-Fi模块20、第一调制解调器31与第二调制解调器32上均设置有IQ接口。第一路Wi-Fi模块10通过IQ接口经由IQ线与第一调制解调器31连接,第二路Wi-Fi模块20通过IQ接口经由IQ线与第二调制解调器32连接。
可选地,第一调制解调器31与第二调制解调器32上还设置有高速接口,第一调制解调器31与第二调制解调器32通过高速接口连接。
在移动终端通过第一路Wi-Fi模块10和第二路Wi-Fi模块20与Wi-Fi热点建立了Wi-Fi连接,进行业务数据通信的过程中,当下载的业务数据经过第一路Wi-Fi模块10和第二路Wi-Fi模块20下变频为基带信号后,第一路Wi-Fi模块10将处理的第一基带信号经过IQ线传入第一调制解调器31,第二路Wi-Fi模块20将处理的第二基带信号经过IQ线传入第二调制解调器32。第一调制解调器31对第一路Wi-Fi模块10传入的第一基带信号进行解调,然后将解调后的信号传入应用处理器40;第二调制解调器32对第二路Wi-Fi模块20传入的第二基带信号进行解调,然后将解调后的信号传入应用处理器40。应用处理器40对第一调制解调器31和第二调制解调器32传入的解调后的信号进行整合,进行统一处理。
当移动终端要上传业务数据时,则首先由应用处理器40将待上传的业务数据分配至第一调制解调器31和第二调制解调器32,第一调制解调器31对应用处理器40传入的第一待上传的业务数据进行调制,并在调制完成时,将调制后的数据传入至第一路Wi-Fi模块10;第二调制解调器32对应用处理器40传入的第二待上传的业务数据进行调制,并在调制完成时,将调制后的数据传入至第二路Wi-Fi模块20。当第一路Wi-Fi模块10和第二
路Wi-Fi模块20接收到调制后的数据时,第一路Wi-Fi模块10和第二路Wi-Fi模块20分别对接收到的调制后的数据进行上变频,然后将变频后的数据发送出去。
本实施例提供的方案,调制解调器30包括第一调制解调器31和第二调制解调器32。第一调制解调器31与第一路Wi-Fi模块10连接,第二调制解调器32与第二路Wi-Fi模块20连接,应用处理器40与第一调制解调器31或第二调制解调器32连接。第一调制解调器31和第二调制解调器32连接。通过第一调制解调器31和第二调制解调器32分别对业务数据进行调制和解调,进一步提高了数据处理的效率。
可选地,如图8所示,基于第一实施例提出本发明移动终端第三实施例。在该实施例中,第一路Wi-Fi模块10或第二路Wi-Fi模块20上集成设置有基带处理单元50。应用处理器40与调制解调器30连接,调制解调器30分别与第一路Wi-Fi模块10和第二路Wi-Fi模块20连接。在图5所示的例子中,第一路Wi-Fi模块10上集成设置有基带处理单元50。
当第一路Wi-Fi模块10上集成设置基带处理单元50时,基带处理单元50用于调制与解调第一路Wi-Fi模块10上变频的基带信号和下变频的基带信号。当第二路Wi-Fi模块20上集成设置有基带处理单元50时,基带处理单元50用于调制与解调第二路Wi-Fi模块20上变频的基带信号和下变频的基带信号。
可选地,在第一路Wi-Fi模块10上集成设置基带处理单元50的情况下,第一路Wi-Fi模块10上设置有高速接口,第二路Wi-Fi模块20上设置有IQ接口,调制解调器30上设置有高速接口和IQ接口。第一路Wi-Fi模块10采用高速接口与调制解调器30连接,第二路Wi-Fi模块20采用IQ接口与调制解调器30连接。
在移动终端通过第一路Wi-Fi模块10和第二路Wi-Fi模块20与Wi-Fi
热点建立了Wi-Fi连接,进行业务数据通信的过程中,当下载的业务数据经过第一路Wi-Fi模块10下变频为基带信号后,通过第一路Wi-Fi模块10上设置的基带处理单元50对基带信号进行解调,然后将解调后的信号经调制解调器30后传入应用处理器40。当下载的业务数据经过第二路Wi-Fi模块20下变频为基带信号后,第二路Wi-Fi模块20将处理的基带信号传入调制解调器30,调制解调器30对第二路Wi-Fi模块20传入的基带信号进行解调,然后将解调后的信号传入应用处理器40。应用处理器40对接收到的两路解调后的信号进行整合,进行统一处理。
当移动终端要上传业务数据时,则首先由应用处理器40将待上传的业务数据按两路分配至调制解调器30,调制解调器30将第一路业务数据直接发送至第一路Wi-Fi模块10,调制解调器30对第二路业务数据进行调制,并在调制完成时,将调制后的数据发送至第二路Wi-Fi模块20。当第一路Wi-Fi模块10在接收到未调制的第一路业务数据时,先通过基带处理单元50对未调制的第一路业务数据进行调制,然后第一路Wi-Fi模块10对调制后的数据进行上变频,然后将变频后的数据发送出去。当第二路Wi-Fi模块20接收到调制后的数据时,第二路Wi-Fi模块20对接收到的调制后的数据进行上变频,然后将变频后的数据发送出去。
可选地,在第二路Wi-Fi模块20上集成设置基带处理单元50的情况下,第二路Wi-Fi模块20上设置有高速接口,第一路Wi-Fi模块10上设置有IQ接口,调制解调器30上设置有高速接口和IQ接口。第二路Wi-Fi模块20采用高速接口与调制解调器30连接,第一路Wi-Fi模块10采用IQ接口与调制解调器30连接。
在移动终端通过第一路Wi-Fi模块10和第二路Wi-Fi模块20与Wi-Fi热点建立了Wi-Fi连接,进行业务数据通信的过程中,当下载的业务数据经过第二路Wi-Fi模块20下变频为基带信号后,通过第二路Wi-Fi模块20上
设置的基带处理单元50对基带信号进行解调,然后将解调后的信号经调制解调器30后传入应用处理器40。当下载的业务数据经过第一路Wi-Fi模块10下变频为基带信号后,第一路Wi-Fi模块10将处理的基带信号传入调制解调器30,调制解调器30对第一路Wi-Fi模块10传入的基带信号进行解调,然后将解调后的信号传入应用处理器40。应用处理器40对接收到的两路解调后的信号进行整合,进行统一处理。
当移动终端要上传业务数据时,则首先由应用处理器40将待上传的业务数据按两路分配至调制解调器30,调制解调器30将第一路业务数据直接发送至第二路Wi-Fi模块20,调制解调器30对第二路业务数据进行调制,并在调制完成时,将调制后的数据发送至第一路Wi-Fi模块10。当第二路Wi-Fi模块20在接收到未调制的第一路业务数据时,先通过基带处理单元50对未调制的第一路业务数据进行调制,然后第二路Wi-Fi模块20对调制后的数据进行上变频,然后将变频后的数据发送出去。当第一路Wi-Fi模块10接收到调制后的数据时,第一路Wi-Fi模块10对接收到的调制后的数据进行上变频,然后将变频后的数据发送出去。
本实施例提供的方案,在第一路Wi-Fi模块10或第二路Wi-Fi模块20上集成设置有基带处理单元50,通过基带处理单元50对业务数据进行调制和解调,进一步提高了数据处理的效率。
可选地,在本实施例中,调制解调器30包括第一调制解调器31和第二调制解调器32。第一调制解调器31与第一路Wi-Fi模块10连接,第二调制解调器32与第二路Wi-Fi模块20连接,应用处理器40与第一调制解调器31或第二调制解调器32连接。第一调制解调器31和第二调制解调器32连接。第一路Wi-Fi模块10或第二路Wi-Fi模块20上集成设置有基带处理单元50。在一些实施例中,应用处理器40与第一调制解调器31连接,第一路Wi-Fi模块10上集成设置有基带处理单元50。
当第一路Wi-Fi模块10上集成设置基带处理单元50时,基带处理单元50用于调制与解调第一路Wi-Fi模块10上变频的基带信号和下变频的基带信号。当第二路Wi-Fi模块20上集成设置有基带处理单元50时,基带处理单元50用于调制与解调第二路Wi-Fi模块20上变频的基带信号和下变频的基带信号。
可选地,在第一路Wi-Fi模块10上集成设置基带处理单元50的情况下,第一路Wi-Fi模块10上设置有高速接口,第二路Wi-Fi模块20上设置有IQ接口,第一调制解调器31和第二调制解调器32上设置有高速接口和IQ接口。第一路Wi-Fi模块10采用高速接口与第一调制解调器31连接,第二路Wi-Fi模块20采用IQ接口与第二调制解调器32连接。第一调制解调器31与第二调制解调器32采用高速接口连接。
在移动终端通过第一路Wi-Fi模块10和第二路Wi-Fi模块20与Wi-Fi热点建立了Wi-Fi连接,进行业务数据通信的过程中,当下载的业务数据经过第一路Wi-Fi模块10下变频为基带信号后,通过第一路Wi-Fi模块10上设置的基带处理单元50对基带信号进行解调,然后将解调后的信号经第一调制解调器31后传入应用处理器40。当下载的业务数据经过第二路Wi-Fi模块20下变频为基带信号后,第二路Wi-Fi模块20将处理的基带信号传入第二调制解调器32,第二调制解调器32对第二路Wi-Fi模块20传入的基带信号进行解调,然后将解调后的信号传入应用处理器40。应用处理器40对接收到的两路解调后的信号进行整合,进行统一处理。
当移动终端要上传业务数据时,则首先由应用处理器40将待上传的业务数据按两路分配至第一调制解调器31和第二调制解调器32,第一调制解调器31将第一路业务数据直接发送至第一路Wi-Fi模块10。第二调制解调器32对第二路业务数据进行调制,并在调制完成时,将调制后的数据发送至第二路Wi-Fi模块20。当第一路Wi-Fi模块10在接收到未调制的第一路
业务数据时,先通过基带处理单元50对未调制的第一路业务数据进行调制,然后第一路Wi-Fi模块10对调制后的数据进行上变频,然后将变频后的数据发送出去。当第二路Wi-Fi模块20接收到调制后的数据时,第二路Wi-Fi模块20对接收到的调制后的数据进行上变频,然后将变频后的数据发送出去。
可选地,在第二路Wi-Fi模块20上集成设置基带处理单元50的情况下,第二路Wi-Fi模块20上设置有高速接口,第一路Wi-Fi模块10上设置有IQ接口,第一调制解调器31和第二调制解调器32上设置有高速接口和IQ接口。第二路Wi-Fi模块20采用高速接口与第二调制解调器32连接,第一路Wi-Fi模块10采用IQ接口与第一调制解调器31连接。第一调制解调器31与第二调制解调器32采用高速接口连接。
在移动终端通过第一路Wi-Fi模块10和第二路Wi-Fi模块20与Wi-Fi热点建立了Wi-Fi连接,进行业务数据通信的过程中,当下载的业务数据经过第二路Wi-Fi模块20下变频为基带信号后,通过第二路Wi-Fi模块20上设置的基带处理单元50对基带信号进行解调,然后将解调后的信号经第二调制解调器32后传入应用处理器40。当下载的业务数据经过第一路Wi-Fi模块10下变频为基带信号后,第一路Wi-Fi模块10将处理的基带信号传入第一调制解调器31,第一调制解调器31对第一路Wi-Fi模块10传入的基带信号进行解调,然后将解调后的信号传入应用处理器40。应用处理器40对接收到的两路解调后的信号进行整合,进行统一处理。
当移动终端要上传业务数据时,则首先由应用处理器40将待上传的业务数据按两路分配至第一调制解调器31与第二调制解调器32,第二调制解调器32将第一路业务数据直接发送至第二路Wi-Fi模块20,第一调制解调器31对第二路业务数据进行调制,并在调制完成时,将调制后的数据发送至第一路Wi-Fi模块10。当第二路Wi-Fi模块20在接收到未调制的第一路
业务数据时,先通过基带处理单元50对未调制的第一路业务数据进行调制,然后第二路Wi-Fi模块20对调制后的数据进行上变频,然后将变频后的数据发送出去。当第一路Wi-Fi模块10接收到调制后的数据时,第一路Wi-Fi模块10对接收到的调制后的数据进行上变频,然后将变频后的数据发送出去。
本实施例提供的方案,第一路Wi-Fi模块10或第二路Wi-Fi模块20上集成设置有基带处理单元50,通过基带处理单元50对业务数据进行调制和解调,进一步提高了数据处理的效率。
方案一中的数据经过wifi模块下变频为基带信号,通过IQ线传入MDM完成解调,两路解调后的信号经由CPU进行整合。而在上传时则由CPU将需要上传的数据分配给两个MDM,两个MDM在完成调制以后再经两路wifi完成上变频发送出去。
可选地,所述移动终端包括通信终端。通信终端可为进行各种信息通信的终端。所述通信终端包括手机、平板电脑以及可穿戴式设备等终端设备。
需要说明的是,在本文中,术语“包括”、“包含”或者其任何其他变体意在涵盖非排他性的包含,从而使得包括一系列要素的过程、方法、物品或者装置不仅包括那些要素,而且还包括没有明确列出的其他要素,或者是还包括为这种过程、方法、物品或者装置所固有的要素。在没有更多限制的情况下,由语句“包括一个……”限定的要素,并不排除在包括该要素的过程、方法、物品或者装置中还存在另外的相同要素。
上述本发明实施例序号仅仅为了描述,不代表实施例的优劣。
通过以上的实施方式的描述,本领域的技术人员可以清楚地了解到上述实施例方法可借助软件加必需的通用硬件平台的方式来实现,当然也可以通过硬件,但很多情况下前者是更佳的实施方式。基于这样的理解,本
发明的技术方案本质上或者说对现有技术做出贡献的部分可以以软件产品的形式体现出来,该计算机软件产品存储在一个存储介质(如ROM/RAM、磁碟、光盘)中,包括若干指令用以使得一台终端设备(可以是手机,计算机,服务器,空调器,或者网络设备等)执行本发明各个实施例所述的方法。
以上仅为本发明的优选实施例,并非因此限制本发明的专利范围,凡按照本发明原理所作的修改,都应当理解为落入本发明的保护范围。
Claims (18)
- 一种移动终端,包括应用处理器,所述移动终端还包括第一路Wi-Fi模块与第二路Wi-Fi模块,所述第一路Wi-Fi模块与所述第二路Wi-Fi模块上分别集成设置有用于调制与解调数据的基带处理单元;所述第一路Wi-Fi模块与所述第二路Wi-Fi模块分别与所述应用处理器连接;所述应用处理器,配置为将上传的数据发送至所述第一路Wi-Fi模块和/或所述第二路Wi-Fi模块以供进行调制后发送;以及还配置为接收通过所述第一路Wi-Fi模块和/或所述第二路Wi-Fi模块下载并解调后所发送的数据;以及还配置为合并接收到的通过两路Wi-Fi模块下载并解调后所发送的数据。
- 如权利要求1所述的移动终端,所述移动终端还包括第一路调制解调器,其中,所述应用处理器与所述第一路调制解调器集成设置并连接;所述第一路Wi-Fi模块、所述第二路Wi-Fi模块分别通过所述第一路调制解调器与所述应用处理器建立连接。
- 如权利要求1所述的移动终端,所述移动终端还包括第一路调制解调器与第二路调制解调器,其中,所述应用处理器与所述第一路调制解调器集成设置并连接;所述第一路调制解调器与所述第二路调制解调器连接;所述第一路Wi-Fi模块通过所述第一路调制解调器与所述应用处理器建立连接,所述第二路Wi-Fi模块通过所述第二路调制解调器、所述第一路调制解调器与所述应用处理器建立连接。
- 如权利要求2所述的移动终端,其中,所述第一路Wi-Fi模块与所述第一路调制解调器采用高速接口连接;所述第二路Wi-Fi模块与所述第一路调制解调器采用高速接口连接。
- 如权利要求3所述的移动终端,其中,所述第一路Wi-Fi模块与所述第一路调制解调器采用高速接口连接;所述第二路Wi-Fi模块与所述第二 路调制解调器采用高速接口连接;所述第一路调制解调器与所述第二路调制解调器采用高速接口连接。
- 如权利要求4或5所述的移动终端,其中,所述高速接口至少包括PCI-E接口、PCI-X接口、HSIC接口、USB接口中的一种或多种。
- 根据权利要求1所述的移动终端,其中,所述移动终端还包括与所述应用处理器连接的调制解调器;所述调制解调器与所述第一路Wi-Fi模块和第二路Wi-Fi模块连接;所述第一路Wi-Fi模块、所述调制解调器与所述应用处理器组成第一数据通道,用于进行第一数据业务传输;所述第二路Wi-Fi模块、所述调制解调器与所述应用处理器组成第二数据通道,用于进行第二数据业务传输。
- 如权利要求7所述的移动终端,其中,所述调制解调器包括第一调制解调器、与所述第一调制解调器连接的第二调制解调器;所述第一调制解调器与所述第一路Wi-Fi模块连接;所述第二调制解调器与所述第二路Wi-Fi模块连接;所述应用处理器与所述第一调制解调器或所述第二调制解调器连接。
- 如权利要求7所述的移动终端,其中,所述应用处理器与所述调制解调器集成设置连接;所述第一路Wi-Fi模块采用IQ接口与所述调制解调器连接;所述第二路Wi-Fi模块采用IQ接口与所述调制解调器连接。
- 如权利要求8所述的移动终端,其中,所述第一路Wi-Fi模块采用IQ接口与所述第一调制解调器连接;所述第二路Wi-Fi模块采用IQ接口与所述第二调制解调器连接;所述第一调制解调器与所述第二调制解调器采用高速接口连接。
- 如权利要求7所述的移动终端,其中,所述第一路Wi-Fi模块或所述第二路Wi-Fi模块上集成设置有所述基带处理单元。
- 如权利要求11所述的移动终端,其中,当所述第一路Wi-Fi模块上集成设置有所述基带处理单元时,所述第一路Wi-Fi模块采用高速接口与所述调制解调器连接;所述第二路Wi-Fi模块采用IQ接口与所述调制解调器连接。
- 如权利要求11所述的移动终端,其特征在于,当所述第二路Wi-Fi模块上集成设置有所述基带处理单元时,所述第二路Wi-Fi模块采用高速接口与所述调制解调器连接;所述第一路Wi-Fi模块采用IQ接口与所述调制解调器连接。
- 如权利要求11所述的移动终端,其中,所述调制解调器包括第一调制解调器、与所述第一调制解调器连接的第二调制解调器;所述第一调制解调器与所述第一路Wi-Fi模块连接;所述第二调制解调器与所述第二路Wi-Fi模块连接;所述应用处理器与所述第一调制解调器或所述第二调制解调器连接。
- 如权利要求14所述的移动终端,其中,当所述第一路Wi-Fi模块上集成设置有所述基带处理单元时,所述第一路Wi-Fi模块采用高速接口与所述第一调制解调器连接;所述第二路Wi-Fi模块采用IQ接口与所述第二调制解调器连接;所述第一调制解调器与所述第二调制解调器采用高速接口连接。
- 如权利要求14所述的移动终端,其中,当所述第二路Wi-Fi模块上集成设置有所述基带处理单元时,所述第一路Wi-Fi模块采用IQ接口与所述第一调制解调器连接;所述第二路Wi-Fi模块采用高速接口与所述第二调制解调器连接;所述第一调制解调器与所述第二调制解调器采用高速接口连接。
- 根据权利要求1所述的移动终端,其中,所述移动终端包括通信终端。
- 根据权利要求17所述的移动终端,其中,所述通信终端包括手机、平板电脑以及可穿戴式设备。
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