WO2016074464A1 - 无线通信的方法、可穿戴设备、移动终端及系统 - Google Patents

无线通信的方法、可穿戴设备、移动终端及系统 Download PDF

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Publication number
WO2016074464A1
WO2016074464A1 PCT/CN2015/079400 CN2015079400W WO2016074464A1 WO 2016074464 A1 WO2016074464 A1 WO 2016074464A1 CN 2015079400 W CN2015079400 W CN 2015079400W WO 2016074464 A1 WO2016074464 A1 WO 2016074464A1
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WIPO (PCT)
Prior art keywords
signal
frequency band
band information
mobile terminal
baseband signal
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Ceased
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PCT/CN2015/079400
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English (en)
French (fr)
Inventor
马凯
胡秀丽
陈彬
徐姣姣
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ZTE Corp
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ZTE Corp
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Publication date
Application filed by ZTE Corp filed Critical ZTE Corp
Priority to US15/526,339 priority Critical patent/US10143422B2/en
Priority to KR1020177015653A priority patent/KR20170083594A/ko
Priority to EP15859638.7A priority patent/EP3206424A4/en
Publication of WO2016074464A1 publication Critical patent/WO2016074464A1/zh
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

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    • A—HUMAN NECESSITIES
    • A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61B—DIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B5/00—Measuring for diagnostic purposes; Identification of persons
    • A61B5/68—Arrangements of detecting, measuring or recording means, e.g. sensors, in relation to patient
    • A61B5/6801—Arrangements of detecting, measuring or recording means, e.g. sensors, in relation to patient specially adapted to be attached to or worn on the body surface
    • A61B5/683—Means for maintaining contact with the body
    • A61B5/6831—Straps, bands or harnesses
    • H—ELECTRICITY
    • H04—ELECTRIC COMMUNICATION TECHNIQUE
    • H04W—WIRELESS COMMUNICATION NETWORKS
    • H04W16/00—Network planning, e.g. coverage or traffic planning tools; Network deployment, e.g. resource partitioning or cells structures
    • H04W16/14—Spectrum sharing arrangements between different networks
    • H—ELECTRICITY
    • H04—ELECTRIC COMMUNICATION TECHNIQUE
    • H04W—WIRELESS COMMUNICATION NETWORKS
    • H04W72/00—Local resource management
    • H04W72/04—Wireless resource allocation
    • H04W72/044—Wireless resource allocation based on the type of the allocated resource
    • H04W72/0453—Resources in frequency domain, e.g. a carrier in FDMA
    • H—ELECTRICITY
    • H03—ELECTRONIC CIRCUITRY
    • H03G—CONTROL OF AMPLIFICATION
    • H03G3/00—Gain control in amplifiers or frequency changers
    • H03G3/20—Automatic control
    • H03G3/30—Automatic control in amplifiers having semiconductor devices
    • H—ELECTRICITY
    • H04—ELECTRIC COMMUNICATION TECHNIQUE
    • H04B—TRANSMISSION
    • H04B1/00—Details of transmission systems, not covered by a single one of groups H04B3/00 - H04B13/00; Details of transmission systems not characterised by the medium used for transmission
    • H04B1/0003—Software-defined radio [SDR] systems, i.e. systems wherein components typically implemented in hardware, e.g. filters or modulators/demodulators, are implented using software, e.g. by involving an AD or DA conversion stage such that at least part of the signal processing is performed in the digital domain
    • H04B1/0007—Software-defined radio [SDR] systems, i.e. systems wherein components typically implemented in hardware, e.g. filters or modulators/demodulators, are implented using software, e.g. by involving an AD or DA conversion stage such that at least part of the signal processing is performed in the digital domain wherein the AD/DA conversion occurs at radiofrequency or intermediate frequency stage
    • H04B1/0017—Digital filtering
    • H—ELECTRICITY
    • H04—ELECTRIC COMMUNICATION TECHNIQUE
    • H04W—WIRELESS COMMUNICATION NETWORKS
    • H04W72/00—Local resource management
    • 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
    • H—ELECTRICITY
    • H04—ELECTRIC COMMUNICATION TECHNIQUE
    • H04W—WIRELESS COMMUNICATION NETWORKS
    • H04W84/00—Network topologies
    • H04W84/18—Self-organising networks, e.g. ad-hoc networks or sensor networks
    • 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
    • H04W88/04—Terminal devices adapted for relaying to or from another terminal or user

Definitions

  • This document relates to the field of wireless communications, and in particular, to a method, a wearable device, a mobile terminal, and a system for wireless communication.
  • wearable devices have developed rapidly. From smart bracelets, smart watches, to Google glasses, various portable wearable devices are becoming the new favorite in the field of mobile communication terminals.
  • the main function of the smart bracelet in the market is to use the various sensors and GPS, Bluetooth, WIFI and other communication systems to perform pulse detection, temperature detection, GPS coordinate determination, etc., and feedback the information to the mobile phone or tablet for data processing; smart watch Similar to the smart bracelet function; smart glasses such as Google Glass, currently less users, powerful, can cover the main functions of the phone.
  • wearable devices will become a must-have for most people, people will see more smart watch screens or smart glasses screens, and the demand for mobile phones will gradually decrease.
  • 4G mobile phones have entered the 4G era.
  • 4G mobile phones support multi-mode multi-frequency has become a necessary condition for major operators to enter the warehouse.
  • Many mobile phones support 5 modes and support frequency bands up to 18 frequencies. Due to space constraints, the performance of broadband and multi-frequency antennas is poor, and the diversity reception adopted in the scheme is difficult to achieve a good state due to the complexity of space and environment.
  • the main object of the embodiments of the present invention is to provide a method for wireless communication, which aims to solve the problem of how to improve the ability of a mobile terminal to receive base station data.
  • a method of wireless communication comprising:
  • the wearable device receives the frequency band information sent by the mobile terminal, where the frequency band information includes a frequency band used by the mobile terminal to communicate;
  • the wearable device receives a signal corresponding to the frequency band information sent by the base station, and the signal is Number is sent to the mobile terminal;
  • the mobile terminal acquires a wireless signal corresponding to the frequency band information according to a signal corresponding to the frequency band information sent by the wearable device and a signal corresponding to the frequency band information sent by the base station.
  • the step of the wearable device receiving the signal corresponding to the frequency band information sent by the base station, and sending the signal to the mobile terminal includes:
  • the wearable device receives a first signal corresponding to the frequency band information sent by the base station, and converts the first signal into a first baseband signal, and sends the first baseband signal to the mobile terminal;
  • the step of the mobile terminal acquiring the wireless signal corresponding to the frequency band information according to the signal corresponding to the frequency band information sent by the wearable device and the signal corresponding to the frequency band information sent by the base station includes:
  • the step of the mobile terminal receiving the signal and receiving the signal corresponding to the frequency band information sent by the base station includes:
  • the step of the mobile terminal acquiring the wireless signal corresponding to the frequency band information according to the signal corresponding to the frequency band information sent by the wearable device and the signal corresponding to the frequency band information sent by the base station includes:
  • the mobile terminal obtains a wireless signal corresponding to the frequency band information according to the second baseband signal and the third baseband signal, wherein the second signal is that the first baseband signal is transmitted from the wearable device After the signal.
  • the wearable device converts the first signal into a first baseband signal, to the The step of the mobile terminal transmitting the first baseband signal includes:
  • the wearable device amplifies the first signal, mixes the frequency by the mixer and the local oscillator to obtain the first baseband signal, performs signal processing on the first baseband signal, and wirelessly transmits the motion to the mobile terminal.
  • the step of the mobile terminal converting the second signal to the second baseband signal includes:
  • the mobile terminal reduces, by the amplification, the second signal to the second baseband signal, and the second baseband signal is the same as or similar to the first baseband signal.
  • a method of wireless communication comprising:
  • the step of receiving the signal corresponding to the frequency band information sent by the base station, and transmitting the signal to the mobile terminal includes:
  • the base station Receiving, by the base station, the first signal corresponding to the frequency band information, and converting the first signal into a first baseband signal, and transmitting the first baseband signal to the mobile terminal.
  • the converting the first signal into a first baseband signal, and sending the first baseband signal to the mobile terminal includes:
  • the first signal is amplified and then mixed by a mixer and a local oscillator to obtain the first baseband signal, and the first baseband signal is signal processed and then wirelessly transmitted to the mobile terminal.
  • a method of wireless communication comprising:
  • the step of acquiring the wireless signal corresponding to the frequency band information according to the signal corresponding to the frequency band information sent by the wearable device and the signal corresponding to the frequency band information sent by the base station includes:
  • the step of converting the second signal into a second baseband signal comprises:
  • the second signal is filtered, amplified, and restored to the second baseband signal, and the second baseband signal is the same as or similar to the first baseband signal.
  • a wearable device includes a first receiving unit, a second receiving unit, and a transmitting unit:
  • the first receiving unit is configured to: receive frequency band information sent by the mobile terminal, where the frequency band information includes a frequency band used by the mobile terminal to communicate;
  • the second receiving unit is configured to: receive a signal corresponding to the frequency band information sent by the base station;
  • the transmitting unit is configured to: send the signal to the mobile terminal.
  • the wearable device further includes a conversion unit, where
  • the second receiving unit is configured to: receive a first letter corresponding to the frequency band information sent by the base station number;
  • the conversion unit is configured to: convert the first signal into a first baseband signal
  • the transmitting unit is configured to: send the first baseband signal to the mobile terminal.
  • the conversion unit is configured to convert the first signal into a first baseband signal as follows:
  • the first baseband signal is obtained by mixing the mixer and the local oscillator, and the first baseband signal is signal processed, and then the transmitting unit is notified to perform signal processing by wireless.
  • the first baseband signal is transmitted to the mobile terminal.
  • a mobile terminal includes a transmitting unit, a receiving unit, and an acquiring unit, where:
  • the sending unit is configured to: send the frequency band information to the wearable device, where the frequency band information includes a frequency band used by the mobile terminal to communicate;
  • the receiving unit is configured to: receive the signal, and receive a signal corresponding to the frequency band information sent by the base station;
  • the acquiring unit is configured to acquire a wireless signal corresponding to the frequency band information according to a signal corresponding to the frequency band information sent by the wearable device and a signal corresponding to the frequency band information sent by the base station.
  • the acquiring unit is configured to acquire the wireless corresponding to the frequency band information according to the signal corresponding to the frequency band information sent by the wearable device and the signal corresponding to the frequency band information sent by the base station.
  • the obtaining unit is configured to convert the second signal into a second baseband signal as follows:
  • the second signal is filtered, amplified, and restored to the second baseband signal, and the second baseband signal is the same as or similar to the first baseband signal.
  • a system for wireless communication comprising a mobile terminal and at least one wearable device;
  • the wearable device is configured to: receive frequency band information sent by the mobile terminal, where the frequency band information includes a frequency band used by the mobile terminal to communicate; receive a signal corresponding to the frequency band information sent by the base station, and send the signal to the The mobile terminal;
  • the mobile terminal is configured to: send the frequency band information to the wearable device, where the frequency band information includes at least the frequency band used by the mobile terminal to communicate; receive the signal, and receive the signal corresponding to the frequency band information sent by the base station Obtaining a wireless signal corresponding to the frequency band information according to a signal corresponding to the frequency band information sent by the wearable device and a signal corresponding to the frequency band information sent by the base station.
  • the wearable device is configured to receive, according to the manner, a signal corresponding to the frequency band information sent by a base station, and send the signal to the mobile terminal;
  • the base station Receiving, by the base station, the first signal corresponding to the frequency band information, and converting the first signal into a first baseband signal, and transmitting the first baseband signal to the mobile terminal.
  • the wearable device is configured to convert the first signal into a first baseband signal and transmit the first baseband signal to the mobile terminal as follows:
  • the first signal is amplified and then mixed by a mixer and a local oscillator to obtain the first baseband signal, and the first baseband signal is signal processed and then wirelessly transmitted to the mobile terminal.
  • the mobile terminal is configured to acquire the wireless corresponding to the frequency band information according to a signal corresponding to the frequency band information sent by the wearable device and a signal corresponding to the frequency band information sent by the base station.
  • the mobile terminal is configured to convert the second signal into a second baseband signal as follows:
  • the mobile terminal reduces, by the amplification, the second signal to the second baseband signal, and the second baseband signal is the same as or similar to the first baseband signal.
  • the method for wireless communication, the wearable device, the mobile terminal and the system, the computer program and the carrier thereof are provided by the embodiment of the present invention.
  • the method sends the frequency band information to the wearable device by using the mobile terminal, where the frequency band information includes at least the a frequency band used by the mobile terminal to communicate; receiving a second signal sent by the wearable device, and converting the second signal into a second baseband signal, and receiving a third signal corresponding to the frequency band information sent by the base station, Converting the third signal into a third baseband signal; obtaining a wireless signal corresponding to the frequency band information according to the second baseband signal and the third baseband signal, thereby utilizing communication capabilities of multiple wearable devices,
  • the road receives data at the same time, greatly improving the receiving capability of the mobile phone.
  • the wearable device or other mobile terminal can also serve as the final data processing terminal, and other mobile terminals can also join the network as a relay.
  • FIG. 1 is a schematic flowchart of a first embodiment of a method for wireless communication according to the present invention
  • FIG. 2 is a scenario view of a wireless communication according to an embodiment of the present invention.
  • FIG. 3 is a schematic structural diagram of a wearable device according to an embodiment of the present disclosure.
  • FIG. 4 is a schematic structural diagram of a mobile terminal according to an embodiment of the present disclosure.
  • FIG. 5 is a schematic flowchart diagram of a second embodiment of a method for wireless communication according to the present invention.
  • FIG. 6 is a schematic flowchart of a third embodiment of a method for wireless communication according to the present invention.
  • FIG. 7 is a schematic diagram of functional modules of a first embodiment of a wearable device according to the present invention.
  • FIG. 8 is a schematic diagram of functional modules of a first embodiment of a mobile terminal according to the present invention.
  • Figure 9 is a block diagram of the system of the first embodiment of the present invention.
  • Embodiments of the present invention provide a method for wireless communication.
  • FIG. 1 is a schematic flowchart diagram of a first embodiment of a method for wireless communication according to the present invention.
  • the method of wireless communication includes:
  • Step 101 The wearable device receives the frequency band information sent by the mobile terminal, where the frequency band information includes at least a frequency band used by the mobile terminal to communicate;
  • FIG. 2 is a schematic diagram of a method for wireless communication according to an embodiment of the present invention.
  • the handset terminal and one or more wearable devices confirm the connection status and obtain the communication system supported by the one or more wearable devices, and the specific frequency band of the supported communication system.
  • the mobile terminal transmits the frequency band information being communicated to the one or more wearable devices.
  • Step 102 The wearable device receives a signal corresponding to the frequency band information sent by a base station, and sends the signal to the mobile terminal.
  • the wearable device has a communication receiving module, and can receive signals of the base station, and the plurality of wearable devices and the mobile terminal can be interconnected by short-distance communication (Wireless Fidelity (WIFI), BT, etc.)
  • WIFI Wireless Fidelity
  • BT BT
  • the architecture greatly enhances the receiving capacity of the mobile terminal.
  • the wearable device receives the signal corresponding to the frequency band information sent by the base station, and sends the signal to the mobile terminal, including:
  • the wearable device receives a first signal corresponding to the frequency band information sent by the base station, and converts the first signal into a first baseband signal, and sends the first baseband signal to the mobile terminal.
  • the wearable device converts the first signal into a first baseband signal, and sends the first baseband signal to the mobile terminal, including:
  • the wearable device amplifies the first signal, mixes the frequency by the mixer and the local oscillator to obtain the first baseband signal, performs signal processing on the first baseband signal, and wirelessly transmits the motion to the mobile terminal.
  • FIG. 3 is a schematic structural diagram of a wearable device according to an embodiment of the present invention, where the wearable device includes an RF amplifier, a local oscillator LO, a low pass filter LPF, a baseband signal processing module, and a WIFI.
  • the baseband signal processing module includes an RF amplifier, a local oscillator LO, and a low-pass filter LPF, and the baseband signal processing module is configured to convert the received signal sent by the base station into a first baseband signal, and the WIFI transceiver The module is configured to send the first baseband signal to the mobile terminal.
  • the wearable device receives the signal through the receiving antenna, amplifies the high-frequency signal, and then mixes the signal with the local oscillator (LO) by the mixer to obtain a baseband signal, and then performs filtering, enters the WIFI transceiver module, and processes the baseband signal. Sending through the WIFI transceiver module into the transmit antenna.
  • LO local oscillator
  • Step 103 The mobile terminal receives the signal, and receives a signal corresponding to the frequency band information sent by the base station;
  • Step 104 The mobile terminal acquires a wireless signal corresponding to the frequency band information according to a signal corresponding to the frequency band information sent by the wearable device and a signal corresponding to the frequency band information sent by the base station.
  • the acquiring, by the mobile terminal, the wireless signal corresponding to the frequency band information, according to the signal corresponding to the frequency band information sent by the wearable device and the signal corresponding to the frequency band information sent by the base station includes:
  • the mobile terminal Receiving, by the mobile terminal, a second signal sent by the wearable device, and converting the second signal into a second baseband signal, where the mobile terminal sends the received frequency band information by the base station Corresponding third signal is converted into a third baseband signal; the mobile terminal obtains a wireless signal corresponding to the frequency band information according to the second baseband signal and the third baseband signal, wherein the second signal is The first baseband signal passes the transmitted signal from the wearable device.
  • the second baseband signal and the first baseband signal may be the same or different.
  • the mobile terminal converts the second signal into a second baseband signal, including:
  • the mobile terminal filters and amplifies the second signal to be restored to the second baseband signal.
  • FIG. 4 is a schematic structural diagram of a mobile terminal according to an embodiment of the present invention.
  • the mobile terminal includes a WIFI transceiver module, a signal processing module, and a baseband processing module, where the signal processing module is configured to transmit a signal. Converted to a second baseband signal, the baseband processing module is configured to process the second baseband signal and the third baseband signal.
  • the WIFI antenna receives the second signal sent by the wearable device, enters the WIFI transceiver module for filtering, amplification, and the like, and then enters the signal processing module to convert the signal into the second baseband signal.
  • the mobile terminal converts the received third signal sent by the base station into a third baseband signal, and processes the second baseband signal and the third baseband signal by using a baseband processing module.
  • the role played by the wearable device is a diversity receiving module of the mobile phone. Due to the natural advantages of the wearable device, the antenna environment and the antenna space make the antenna performance superior, and even better than the communication antenna of the mobile terminal. The advantages of the device are used as relays. The wearable device can greatly improve the receiving performance of the mobile phone.
  • the communication system supported by the wearable device can be 2G/3G/4G and WIFI, BT, GPS and other standards.
  • a method, a wearable device, a mobile terminal, and a system for wireless communication are provided by the embodiment of the present invention.
  • the method sends frequency band information to a wearable device by using a mobile terminal, where the frequency band information includes at least the communication used by the mobile terminal.
  • Receiving a second signal sent by the wearable device converting the second signal into a second baseband signal, receiving a third signal corresponding to the frequency band information sent by the base station, and using the third signal Converting to a third baseband signal; obtaining a wireless signal corresponding to the frequency band information according to the second baseband signal and the third baseband signal, so that the communication capability of the plurality of wearable devices can be utilized to simultaneously receive data in multiple channels, Improve the receiving ability of the mobile phone.
  • the wearable device or other mobile terminal can also serve as the final data processing terminal, and other mobile terminals can also join the network as a relay.
  • the embodiment of the invention further provides a method for wireless communication.
  • FIG. 5 is a schematic flowchart of a second embodiment of a method for wireless communication according to the present invention.
  • the method of wireless communication includes:
  • Step 501 Receive frequency band information sent by the mobile terminal, where the frequency band information includes at least a frequency band used by the mobile terminal to communicate;
  • Step 502 Receive a signal corresponding to the frequency band information sent by the base station, and send the signal to the mobile terminal.
  • the receiving, by the base station, the signal corresponding to the frequency band information, and sending the signal to the mobile terminal including:
  • the base station Receiving, by the base station, the first signal corresponding to the frequency band information, and converting the first signal into a first baseband signal, and transmitting the first baseband signal to the mobile terminal.
  • the converting the first signal into a first baseband signal, and sending the first baseband signal to the mobile terminal includes:
  • the first signal is amplified and then mixed by a mixer and a local oscillator to obtain the first baseband signal, and the first baseband signal is signal processed and then wirelessly transmitted to the mobile terminal.
  • FIG. 3 is a schematic structural diagram of a wearable device according to an embodiment of the present invention.
  • the wearable device receives the signal through the receiving antenna, amplifies the high-frequency signal, and then mixes the signal with the local oscillator (LO) by the mixer to obtain a baseband signal, and then performs filtering, enters the WIFI transceiver module, and processes the baseband signal. Sending through the WIFI transceiver module into the transmit antenna.
  • LO local oscillator
  • the role played by the wearable device is a diversity receiving module of the mobile phone. Due to the natural advantages of the wearable device, the antenna environment and the antenna space make the antenna performance superior, and even better than the communication antenna of the mobile terminal. The advantages of the device are used as relays. The wearable device can greatly improve the receiving performance of the mobile phone.
  • the communication system supported by the wearable device can be 2G/3G/4G and WIFI, BT, GPS and other standards.
  • a method, a wearable device, a mobile terminal, and a system for wireless communication are provided by the embodiment of the present invention.
  • the method sends frequency band information to a wearable device by using a mobile terminal, where the frequency band information includes at least the communication used by the mobile terminal.
  • the mobile terminal can also serve as the final data processing terminal, while other mobile terminals can also join the network as a relay.
  • the embodiment of the invention further provides a method for wireless communication.
  • FIG. 6 is a schematic flowchart diagram of a third embodiment of a method for wireless communication according to the present invention.
  • the method of wireless communication includes:
  • Step 601 Send frequency band information to the wearable device, where the frequency band information includes at least a frequency band used by the mobile terminal to communicate;
  • Step 602 Receive the signal, and receive a signal corresponding to the frequency band information sent by the base station.
  • Step 603 Acquire a wireless signal corresponding to the frequency band information according to a signal corresponding to the frequency band information sent by the wearable device and a signal corresponding to the frequency band information sent by the base station.
  • converting the second signal to the second baseband signal includes:
  • the second signal is filtered, amplified, and restored to the second baseband signal, and the second baseband signal is the same as or similar to the first baseband signal.
  • FIG. 4 is a schematic structural diagram of a mobile terminal according to an embodiment of the present invention.
  • the WIFI antenna receives the second signal sent by the wearable device, enters the WIFI transceiver module for filtering, amplification, and the like, and then enters the signal processing module to convert the signal into the second baseband signal.
  • the mobile terminal converts the received third signal sent by the base station into a third baseband signal, and processes the second baseband signal and the third baseband signal by using a baseband processing module.
  • the role played by the wearable device is a diversity receiving module of the mobile phone. Due to the natural advantages of the wearable device, the antenna environment and the antenna space make the antenna performance superior, and even better than the communication antenna of the mobile terminal. The advantages of the device are used as relays. The wearable device can greatly improve the receiving performance of the mobile phone.
  • the communication system supported by the wearable device can be 2G/3G/4G and WIFI, BT, GPS and other standards.
  • a method, a wearable device, a mobile terminal, and a system for wireless communication are provided by the embodiment of the present invention.
  • the method sends frequency band information to a wearable device by using a mobile terminal, where the frequency band information includes at least the communication used by the mobile terminal.
  • Receiving a second signal sent by the wearable device converting the second signal into a second baseband signal, receiving a third signal corresponding to the frequency band information sent by the base station, and using the third signal Converting to a third baseband signal; obtaining a wireless signal corresponding to the frequency band information according to the second baseband signal and the third baseband signal, so that the communication capability of the plurality of wearable devices can be utilized to simultaneously receive data in multiple channels, Improve the receiving ability of the mobile phone.
  • the wearable device or other mobile terminal can also serve as the final data processing terminal, and other mobile terminals can also join the network as a relay.
  • the embodiment of the invention further provides a wearable device.
  • FIG. 7 is a schematic diagram of functional modules of a first embodiment of a wearable device according to the present invention.
  • the wearable device includes:
  • the first receiving unit 701 is configured to receive frequency band information that is sent by the mobile terminal, where the frequency band information includes at least a frequency band used by the mobile terminal to communicate;
  • the second receiving unit 702 is configured to receive a signal corresponding to the frequency band information sent by the base station;
  • the sending unit 703 is configured to send the signal to the mobile terminal.
  • the wearable device further includes a converting unit 704;
  • the second receiving unit 702 is configured to receive a first signal corresponding to the frequency band information sent by the base station;
  • the converting unit 704 is configured to convert the first signal into a first baseband signal
  • the sending unit 703 is configured to send the first baseband signal to the mobile terminal.
  • the converting unit 704 is configured to:
  • the first signal is amplified and then mixed by a mixer and a local oscillator to obtain the first baseband signal, and the first baseband signal is signal processed and then wirelessly transmitted to the mobile terminal.
  • FIG. 3 is a schematic structural diagram of a wearable device according to an embodiment of the present invention.
  • the wearable device receives the signal through the receiving antenna, amplifies the high-frequency signal, and then mixes the signal with the local oscillator (LO) by the mixer to obtain a baseband signal, and then performs filtering, enters the WIFI transceiver module, and processes the baseband signal. Sending through the WIFI transceiver module into the transmit antenna.
  • LO local oscillator
  • the role played by the wearable device is a diversity receiving module of the mobile phone. Due to the natural advantages of the wearable device, the antenna environment and the antenna space make the antenna performance superior, and even better than the communication antenna of the mobile terminal. The advantages of the device are used as relays. The wearable device can greatly improve the receiving performance of the mobile phone.
  • the communication system supported by the wearable device can be 2G/3G/4G and WIFI, BT, GPS and other standards.
  • a method, a wearable device, a mobile terminal, and a system for wireless communication are provided by the embodiment of the present invention.
  • the method sends frequency band information to a wearable device by using a mobile terminal, where the frequency band information includes at least the communication used by the mobile terminal.
  • Receiving a second signal sent by the wearable device converting the second signal into a second baseband signal, receiving a third signal corresponding to the frequency band information sent by the base station, and using the third signal Converting to a third baseband signal; obtaining a wireless signal corresponding to the frequency band information according to the second baseband signal and the third baseband signal, so that the communication capability of the plurality of wearable devices can be utilized to simultaneously receive data in multiple channels, Improve the receiving ability of the mobile phone.
  • the wearable device or other mobile terminal can also serve as the final data processing terminal, and other mobile terminals can also join the network as a relay.
  • the embodiment of the invention further provides a mobile terminal.
  • FIG. 8 is a schematic diagram of functional modules of a first embodiment of a mobile terminal according to the present invention.
  • the mobile terminal includes:
  • the sending unit 801 is configured to send, to the wearable device, the frequency band information, where the frequency band information includes at least a frequency band used by the mobile terminal to communicate;
  • the receiving unit 802 is configured to receive the signal, and receive a signal corresponding to the frequency band information sent by the base station;
  • the obtaining unit 803 is configured to acquire a wireless signal corresponding to the frequency band information according to a signal corresponding to the frequency band information sent by the wearable device and a signal corresponding to the frequency band information sent by the base station.
  • the obtaining unit 803 is configured to receive a second signal sent by the wearable device, where Converting the second signal into a second baseband signal; converting the received third signal corresponding to the frequency band information sent by the base station into a third baseband signal; according to the second baseband signal and the third The baseband signal obtains a wireless signal corresponding to the frequency band information, wherein the second signal is a signal after the first baseband signal is transmitted from the wearable device.
  • the acquiring, by the acquiring unit 803, converting the second signal to the second baseband signal includes:
  • the second signal is filtered, amplified, and restored to the second baseband signal, and the second baseband signal is the same as or similar to the first baseband signal.
  • FIG. 4 is a schematic structural diagram of a mobile terminal according to an embodiment of the present invention.
  • the WIFI antenna receives the second signal sent by the wearable device, enters the WIFI transceiver module for filtering, amplification, and the like, and then enters the signal processing module to convert the signal into the second baseband signal.
  • the mobile terminal converts the received third signal sent by the base station into a third baseband signal, and processes the second baseband signal and the third baseband signal by using a baseband processing module.
  • the role played by the wearable device is a diversity receiving module of the mobile phone. Due to the natural advantages of the wearable device, the antenna environment and the antenna space make the antenna performance superior, and even better than the communication antenna of the mobile terminal. The advantages of the device are used as relays. The wearable device can greatly improve the receiving performance of the mobile phone.
  • the communication system supported by the wearable device can be 2G/3G/4G and WIFI, BT, GPS and other standards.
  • a method, a wearable device, a mobile terminal, and a system for wireless communication are provided by the embodiment of the present invention.
  • the method sends frequency band information to a wearable device by using a mobile terminal, where the frequency band information includes at least the communication used by the mobile terminal.
  • Receiving a second signal sent by the wearable device converting the second signal into a second baseband signal, receiving a third signal corresponding to the frequency band information sent by the base station, and using the third signal Converting to a third baseband signal; obtaining a wireless signal corresponding to the frequency band information according to the second baseband signal and the third baseband signal, so that the communication capability of the plurality of wearable devices can be utilized to simultaneously receive data in multiple channels, Improve the receiving ability of the mobile phone.
  • the wearable device or other mobile terminal can also serve as the final data processing terminal, and other mobile terminals can also join the network as a relay.
  • the embodiment of the invention further provides a system.
  • Figure 9 is a block diagram of a system in accordance with a first embodiment of the present invention.
  • the system includes at least one wearable device 901 and a mobile terminal 902;
  • the wearable device 901 is configured to receive frequency band information that is sent by the mobile terminal, where the frequency band information includes at least a frequency band used by the mobile terminal to communicate; and receive a signal corresponding to the frequency band information sent by the base station, and the signal is Sent to the mobile terminal;
  • the mobile terminal 902 is configured to send the frequency band information to the wearable device, where the frequency band information includes at least the frequency band used by the mobile terminal to communicate; receiving the signal, and receiving the frequency band information corresponding to the base station And obtaining a wireless signal corresponding to the frequency band information according to a signal corresponding to the frequency band information sent by the wearable device and a signal corresponding to the frequency band information sent by the base station.
  • the wearable device receives a signal corresponding to the frequency band information sent by the base station, and sends the signal to the mobile terminal, where
  • the base station Receiving, by the base station, the first signal corresponding to the frequency band information, and converting the first signal into a first baseband signal, and transmitting the first baseband signal to the mobile terminal.
  • the wearable device converts the first signal into a first baseband signal, and sends the first baseband signal to the mobile terminal, including:
  • the first signal is amplified and then mixed by a mixer and a local oscillator to obtain the first baseband signal, and the first baseband signal is signal processed and then wirelessly transmitted to the mobile terminal.
  • FIG. 3 is a schematic structural diagram of a wearable device according to an embodiment of the present invention.
  • the wearable device receives the signal through the receiving antenna, amplifies the high-frequency signal, and then mixes the signal with the local oscillator (LO) by the mixer to obtain a baseband signal, and then performs filtering, enters the WIFI transceiver module, and processes the baseband signal. Sending through the WIFI transceiver module into the transmit antenna.
  • LO local oscillator
  • the mobile terminal acquires the wireless signal corresponding to the frequency band information according to the signal corresponding to the frequency band information sent by the wearable device and the signal corresponding to the frequency band information sent by the base station, including:
  • the mobile terminal converts the second signal into a second baseband signal, including:
  • the mobile terminal reduces, by the amplification, the second signal to the second baseband signal, and the second baseband signal is the same as or similar to the first baseband signal.
  • FIG. 4 is a schematic structural diagram of a mobile terminal according to an embodiment of the present invention.
  • the WIFI antenna receives the second signal sent by the wearable device, enters the WIFI transceiver module for filtering, amplification, and the like, and then enters the signal processing module to convert the signal into the second baseband signal.
  • the mobile terminal converts the received third signal sent by the base station into a third baseband signal, and processes the second baseband signal and the third baseband signal by using a baseband processing module.
  • the role played by the wearable device is a diversity receiving module of the mobile phone. Due to the natural advantages of the wearable device, the antenna environment and the antenna space make the antenna performance superior, and even better than the communication antenna of the mobile terminal. The advantages of the device are used as relays. The wearable device can greatly improve the receiving performance of the mobile phone.
  • the communication system supported by the wearable device can be 2G/3G/4G and WIFI, BT, GPS and other standards.
  • the embodiment of the invention also discloses a computer program, comprising program instructions, which, when executed by the wearable device, enable the wearable device to perform any of the above methods of wireless communication.
  • the embodiment of the invention also discloses a carrier carrying the computer program.
  • the embodiment of the invention also discloses a computer program, comprising program instructions, when the program instruction is executed by the mobile terminal, so that the mobile terminal can perform the above method of any wireless communication.
  • the embodiment of the invention also discloses a carrier carrying the computer program.
  • the method for wireless communication, the wearable device, the mobile terminal and the system, the computer program and the carrier thereof are provided by the embodiment of the present invention.
  • the method sends the frequency band information to the wearable device by using the mobile terminal, where the frequency band information includes at least the a frequency band used by the mobile terminal to communicate; receiving a second signal sent by the wearable device, and converting the second signal into a second baseband signal, and receiving a third signal corresponding to the frequency band information sent by the base station, Converting the third signal into a third baseband signal; obtaining a wireless signal corresponding to the frequency band information according to the second baseband signal and the third baseband signal, thereby utilizing communication capabilities of multiple wearable devices,
  • the road receives data at the same time, The receiving capability of the mobile phone is greatly improved.
  • the wearable device or other mobile terminal can also serve as the final data processing terminal, and other mobile terminals can also join the network as a relay.
  • a method, a wearable device, a mobile terminal, and a system for wireless communication are provided by the embodiment of the present invention.
  • the method sends frequency band information to a wearable device by using a mobile terminal, where the frequency band information includes at least the communication used by the mobile terminal.
  • Receiving a second signal sent by the wearable device converting the second signal into a second baseband signal, receiving a third signal corresponding to the frequency band information sent by the base station, and using the third signal Converting to a third baseband signal; obtaining a wireless signal corresponding to the frequency band information according to the second baseband signal and the third baseband signal, so that the communication capability of the plurality of wearable devices can be utilized to simultaneously receive data in multiple channels, Improve the receiving ability of the mobile phone.
  • the wearable device or other mobile terminal can also serve as the final data processing terminal, and other mobile terminals can also join the network as a relay. Therefore, the present invention has strong industrial applicability.

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Abstract

一种无线通信的方法、可穿戴设备、移动终端及系统。本发明技术方案通过移动终端向可穿戴设备发送频段信息;接收所述可穿戴设备发送的第二信号,并将所述第二信号转换为第二基带信号,接收所述基站发送的所述频段信息对应的第三信号,将所述第三信号转换为第三基带信号;根据所述第二基带信号和所述第三基带信号获得所述频段信息对应的无线信号,从而可以利用多个可穿戴设备的通信能力,多路同时接收数据,大幅提升手机的接收能力,同时,可穿戴设备或其他移动终端也可以作为最终的数据处理终端,同时其他移动终端也可以作为中继加入网络。

Description

无线通信的方法、可穿戴设备、移动终端及系统 技术领域
本文涉及无线通信领域,尤其涉及到一种无线通信的方法、可穿戴设备、移动终端及系统。
背景技术
近几年,可穿戴设备迅速发展,从智能手环、智能手表,到谷歌眼镜,各种便携的可穿戴设备正在成为移动通信终端领域的新宠。市场上智能手环主要功能是借助各种传感器以及GPS、蓝牙、WIFI等通信系统,对人体进行脉搏检测、温度检测、GPS坐标确定等,将信息反馈到手机或平板上进行数据处理;智能手表类似智能手环的功能;智能眼镜如谷歌眼镜,目前使用者较少,其功能强大,可以涵盖手机的主要功能。在不久的未来,可穿戴设备会成为多数人的必备品,人们会更多的查看智能手表屏幕或智能眼镜屏幕,而对手机的需求渐渐减少。
另外一方面,随着4G的迅猛发展,手机已经进入4G时代,目前4G手机支持多模多频已经成为各大运营商入库的必须条件,很多手机支持5模,支持频段达到18频,而手机由于空间限制造成宽频和多频天线性能较差,而方案上采用的分集接收由于空间和环境复杂也很难达到较好的状态。
发明内容
本发明实施例主要目的提供了一种无线通信的方法,旨在解决如何提高移动终端接收基站数据的能力的问题。
为了达到上述目的,采用如下技术方案:
一种无线通信的方法,所述方法包括:
可穿戴设备接收移动终端发送的频段信息,所述频段信息包括所述移动终端通信时使用的频段;
所述可穿戴设备接收基站发送的所述频段信息对应的信号,并将所述信 号发送给所述移动终端;
所述移动终端接收所述信号,并接收所述基站发送的所述频段信息对应的信号;
所述移动终端根据所述可穿戴设备发送的所述频段信息对应的信号和所述基站发送的所述频段信息对应的信号,获取所述频段信息对应的无线信号。
可选地,所述可穿戴设备接收基站发送的所述频段信息对应的信号,并将所述信号发送给所述移动终端的步骤包括:
所述可穿戴设备接收基站发送的所述频段信息对应的第一信号,并将所述第一信号转换为第一基带信号,向所述移动终端发送所述第一基带信号;
所述移动终端根据所述可穿戴设备发送的所述频段信息对应的信号和所述基站发送的所述频段信息对应的信号,获取所述频段信息对应的无线信号的步骤包括:
所述移动终端接收所述可穿戴设备发送的第二信号,并将所述第二信号转换为第二基带信号;
所述移动终端接收所述信号,并接收所述基站发送的所述频段信息对应的信号的步骤包括:
所述移动终端将接收的所述基站发送的所述频段信息对应的第三信号转换为第三基带信号;
所述移动终端根据所述可穿戴设备发送的所述频段信息对应的信号和所述基站发送的所述频段信息对应的信号,获取所述频段信息对应的无线信号的步骤包括:
所述移动终端根据所述第二基带信号和所述第三基带信号获得所述频段信息对应的无线信号,其中,所述第二信号是所述第一基带信号从所述可穿戴设备经过传输后的信号。
可选地,所述可穿戴设备将所述第一信号转换为第一基带信号,向所述 移动终端发送所述第一基带信号的步骤包括:
所述可穿戴设备将所述第一信号放大处理后通过混频器和本振进行混频得到所述第一基带信号,将所述第一基带信号进行信号处理后通过无线传输到所述移动终端。
可选地,所述移动终端将所述第二信号转换为第二基带信号的步骤包括:
所述移动终端将所述第二信号进行滤波、放大处理后还原为所述第二基带信号,所述第二基带信号与所述第一基带信号相同或者相近。
一种无线通信的方法,所述方法包括:
接收移动终端发送的频段信息,所述频段信息包括所述移动终端通信时使用的频段;
接收基站发送的所述频段信息对应的信号,并将所述信号发送给所述移动终端。
可选地,所述接收基站发送的所述频段信息对应的信号,并将所述信号发送给所述移动终端的步骤包括;
接收基站发送的所述频段信息对应的第一信号,并将所述第一信号转换为第一基带信号,向所述移动终端发送所述第一基带信号。
可选地,所述将所述第一信号转换为第一基带信号,向所述移动终端发送所述第一基带信号的步骤包括:
将所述第一信号放大处理后通过混频器和本振进行混频得到所述第一基带信号,将所述第一基带信号进行信号处理后通过无线传输到所述移动终端。
一种无线通信的方法,所述方法包括:
向可穿戴设备发送频段信息,所述频段信息包括所述移动终端通信时使 用的频段;
接收所述信号,并接收所述基站发送的所述频段信息对应的信号;
根据所述可穿戴设备发送的所述频段信息对应的信号和所述基站发送的所述频段信息对应的信号,获取所述频段信息对应的无线信号。
可选地,所述根据所述可穿戴设备发送的所述频段信息对应的信号和所述基站发送的所述频段信息对应的信号,获取所述频段信息对应的无线信号的步骤包括:
接收所述可穿戴设备发送的第二信号,并将所述第二信号转换为第二基带信号;将接收的所述基站发送的所述频段信息对应的第三信号转换为第三基带信号;根据所述第二基带信号和所述第三基带信号获得所述频段信息对应的无线信号,其中,所述第二信号是所述第一基带信号从所述可穿戴设备经过传输后的信号。
可选地,所述将所述第二信号转换为第二基带信号的步骤包括:
将所述第二信号进行滤波、放大处理后还原为所述第二基带信号,所述第二基带信号与所述第一基带信号相同或者相近。
一种可穿戴设备,所述可穿戴设备包括第一接收单元、第二接收单元和发送单元:
所述第一接收单元设置成:接收移动终端发送的频段信息,所述频段信息包括所述移动终端通信时使用的频段;
所述第二接收单元设置成:接收基站发送的所述频段信息对应的信号;
所述发送单元设置成:将所述信号发送给所述移动终端。
可选地,所述可穿戴设备还包括转换单元,其中,
所述第二接收单元设置成:接收基站发送的所述频段信息对应的第一信 号;
所述转换单元设置成:将所述第一信号转换为第一基带信号;
所述发送单元设置成:向所述移动终端发送所述第一基带信号。
可选地,所述转换单元设置成按照如下方式将所述第一信号转换为第一基带信号:
将所述第一信号放大处理后通过混频器和本振进行混频得到所述第一基带信号,将所述第一基带信号进行信号处理后通知所述发送单元通过无线将经过信号处理后的第一基带信号传输到所述移动终端。
一种移动终端,所述移动终端包括发送单元、接收单元和获取单元,其中:
所述发送单元设置成:向可穿戴设备发送频段信息,所述频段信息包括所述移动终端通信时使用的频段;
所述接收单元设置成:接收所述信号,并接收所述基站发送的所述频段信息对应的信号;
所述获取单元设置成:根据所述可穿戴设备发送的所述频段信息对应的信号和所述基站发送的所述频段信息对应的信号,获取所述频段信息对应的无线信号。
可选地,所述获取单元设置成按照如下方式根据所述可穿戴设备发送的所述频段信息对应的信号和所述基站发送的所述频段信息对应的信号,获取所述频段信息对应的无线信号:
接收所述可穿戴设备发送的第二信号,并将所述第二信号转换为第二基带信号;将接收的所述基站发送的所述频段信息对应的第三信号转换为第三基带信号;根据所述第二基带信号和所述第三基带信号获得所述频段信息对应的无线信号,其中,所述第二信号是所述第一基带信号从所述可穿戴设备 经过传输后的信号。
可选地,所述获取单元设置成按照如下方式将所述第二信号转换为第二基带信号:
将所述第二信号进行滤波、放大处理后还原为所述第二基带信号,所述第二基带信号与所述第一基带信号相同或者相近。
一种无线通信的系统,所述系统包括移动终端及至少一个可穿戴设备;
所述可穿戴设备设置成:接收移动终端发送的频段信息,所述频段信息包括所述移动终端通信时使用的频段;接收基站发送的所述频段信息对应的信号,并将所述信号发送给所述移动终端;
所述移动终端设置成:向可穿戴设备发送频段信息,所述频段信息至少包括所述移动终端通信时使用的频段;接收所述信号,并接收所述基站发送的所述频段信息对应的信号;根据所述可穿戴设备发送的所述频段信息对应的信号和所述基站发送的所述频段信息对应的信号,获取所述频段信息对应的无线信号。
可选地,所述可穿戴设备设置成按照如下方式接收基站发送的所述频段信息对应的信号,并将所述信号发送给所述移动终端;
接收基站发送的所述频段信息对应的第一信号,并将所述第一信号转换为第一基带信号,向所述移动终端发送所述第一基带信号。
可选地,所述可穿戴设备设置成按照如下方式将所述第一信号转换为第一基带信号,向所述移动终端发送所述第一基带信号:
将所述第一信号放大处理后通过混频器和本振进行混频得到所述第一基带信号,将所述第一基带信号进行信号处理后通过无线传输到所述移动终端。
可选地,所述移动终端设置成按照如下方式根据所述可穿戴设备发送的所述频段信息对应的信号和所述基站发送的所述频段信息对应的信号,获取所述频段信息对应的无线信号:
接收所述可穿戴设备发送的第二信号,并将所述第二信号转换为第二基带信号;将接收的所述基站发送的所述频段信息对应的第三信号转换为第三基带信号;根据所述第二基带信号和所述第三基带信号获得所述频段信息对应的无线信号,其中,所述第二信号是所述第一基带信号从所述可穿戴设备经过传输后的信号。
可选地,所述移动终端设置成按照如下方式将所述第二信号转换为第二基带信号:
所述移动终端将所述第二信号进行滤波、放大处理后还原为所述第二基带信号,所述第二基带信号与所述第一基带信号相同或者相近。
本发明实施例提供的一种无线通信的方法、可穿戴设备、移动终端及系统、计算机程序及其载体,所述方法通过移动终端向可穿戴设备发送频段信息,所述频段信息至少包括所述移动终端通信时使用的频段;接收所述可穿戴设备发送的第二信号,并将所述第二信号转换为第二基带信号,接收所述基站发送的所述频段信息对应的第三信号,将所述第三信号转换为第三基带信号;根据所述第二基带信号和所述第三基带信号获得所述频段信息对应的无线信号,从而可以利用多个可穿戴设备的通信能力,多路同时接收数据,大幅提升手机的接收能力,同时,可穿戴设备或其他移动终端也可以作为最终的数据处理终端,同时其他移动终端也可以作为中继加入网络。
附图概述
图1为本发明无线通信的方法第一实施例的流程示意图;
图2为本发明实施例提供的一种无线通信的场景意图;
图3为本发明实施例提供的一种可穿戴设备的结构示意图;
图4为本发明实施例提供的一种移动终端的结构示意图;
图5为本发明无线通信的方法第二实施例的流程示意图;
图6为本发明无线通信的方法第三实施例的流程示意图;
图7为本发明可穿戴设备第一实施例的功能模块示意图;
图8为本发明移动终端第一实施例的功能模块示意图;
图9为本发明第一实施例的系统结构图。
本发明目的的实现、功能特点及优点将结合实施例,参照附图做进一步说明。
本发明的较佳实施方式
应当理解,此处所描述的具体实施例仅仅用以解释本发明,并不用于限定本发明。
本发明实施例提供一种无线通信的方法。
参照图1,图1为本发明无线通信的方法第一实施例的流程示意图。
在第一实施例中,该无线通信的方法包括:
步骤101,可穿戴设备接收移动终端发送的频段信息,所述频段信息至少包括所述移动终端通信时使用的频段;
具体的,参考图2,图2是本发明实施例提供的一种无线通信的方法示意图。手机终端和一个或多个可穿戴设备确认连接状态,并获取这一个或多个可穿戴设备支持的通信制式,以及支持的通信制式的具体频段。所述手机终端将正在通信的频段信息发送到所述一个或者多个可穿戴设备中。
步骤102,所述可穿戴设备接收基站发送的所述频段信息对应的信号,并将所述信号发送给所述移动终端;
具体的,所述可穿戴设备具有通信接收模块,可以接收基站的信号,同时多个可穿戴设备以及手机终端之间可以通过短距离通信方式(无线局域网(Wireless Fidelity,WIFI)、BT等)互联,从而组成多点对多点的复合网络 架构,大幅提升手机端的接收能力。
可选地,所述可穿戴设备接收基站发送的所述频段信息对应的信号,并将所述信号发送给所述移动终端,包括:
所述可穿戴设备接收基站发送的所述频段信息对应的第一信号,并将所述第一信号转换为第一基带信号,向所述移动终端发送所述第一基带信号。
可选地,所述可穿戴设备将所述第一信号转换为第一基带信号,向所述移动终端发送所述第一基带信号,包括:
所述可穿戴设备将所述第一信号放大处理后通过混频器和本振进行混频得到所述第一基带信号,将所述第一基带信号进行信号处理后通过无线传输到所述移动终端。
具体的,参考图3,图3是本发明实施例提供的一种可穿戴设备的结构示意图,所述可穿戴设备包括RF放大器、本振LO、低通滤波器LPF、基带信号处理模块、WIFI收发模块,所述基带信号处理模块包括RF放大器、本振LO、低通滤波器LPF,所述基带信号处理模块用于将接收到的基站发送的信号转换为第一基带信号,所述WIFI收发模块用于向所述移动终端发送所述第一基带信号。可穿戴设备通过接收天线接收信号,将高频信号进行放大处理以后通过混频器与本振(LO)的信号进行混频得到基带信号,之后进行滤波,进入WIFI收发模块,将基带信号处理后通过WIFI收发模块进入发射天线发送。
步骤103,所述移动终端接收所述信号,并接收所述基站发送的所述频段信息对应的信号;
步骤104,所述移动终端根据所述可穿戴设备发送的所述频段信息对应的信号和所述基站发送的所述频段信息对应的信号,获取所述频段信息对应的无线信号。
可选地,所述移动终端根据所述可穿戴设备发送的所述频段信息对应的信号和所述基站发送的所述频段信息对应的信号,获取所述频段信息对应的无线信号包括:
所述移动终端接收所述可穿戴设备发送的第二信号,并将所述第二信号转换为第二基带信号;所述移动终端将接收的所述基站发送的所述频段信息 对应的第三信号转换为第三基带信号;所述移动终端根据所述第二基带信号和所述第三基带信号获得所述频段信息对应的无线信号,其中,所述第二信号是所述第一基带信号从所述可穿戴设备经过传输后的信号。
其中,所述第二基带信号和所述第一基带信号可以相同,也可以不同。
可选地,所述移动终端将所述第二信号转换为第二基带信号,包括:
所述移动终端将所述第二信号进行滤波、放大处理后还原为所述第二基带信号。
具体的,参考图4,图4是本发明实施例提供的一种移动终端的结构示意图,所述移动终端包括WIFI收发模块、信号处理模块及基带处理模块,所述信号处理模块用于将信号转换为第二基带信号,所述基带处理模块用于对所述第二基带信号和所述第三基带信号进行处理。WIFI天线接收到可穿戴设备发送的第二信号,进入WIFI收发模块进行滤波、放大等处理,再进入信号处理模块将信号转换为第二基带信号。所述移动终端将接收到的基站发送的第三信号转换为第三基带信号,通过基带处理模块对所述第二基带信号和所述第三基带信号进行处理。
在整个通信过程中,可穿戴设备扮演的角色是一个手机端的分集接收模块,由于可穿戴设备天然的优势,天线环境和天线空间造就天线性能较为优秀,甚至可以优于手机终端的通信天线,这样的优势造成作为中继使用,可穿戴设备可以大幅提高手机端的接收性能,而可穿戴设备所支持的通信制式可以是2G/3G/4G以及WIFI、BT、GPS等各种制式。
本发明实施例提供的一种无线通信的方法、可穿戴设备、移动终端及系统,所述方法通过移动终端向可穿戴设备发送频段信息,所述频段信息至少包括所述移动终端通信时使用的频段;接收所述可穿戴设备发送的第二信号,并将所述第二信号转换为第二基带信号,接收所述基站发送的所述频段信息对应的第三信号,将所述第三信号转换为第三基带信号;根据所述第二基带信号和所述第三基带信号获得所述频段信息对应的无线信号,从而可以利用多个可穿戴设备的通信能力,多路同时接收数据,大幅提升手机的接收能力,同时,可穿戴设备或其他移动终端也可以作为最终的数据处理终端,同时其他移动终端也可以作为中继加入网络。
本发明实施例进一步提供一种无线通信的方法。
参照图5,图5为本发明无线通信的方法第二实施例的流程示意图。
在第二实施例中,该无线通信的方法包括:
步骤501,接收移动终端发送的频段信息,所述频段信息至少包括所述移动终端通信时使用的频段;
步骤502,接收基站发送的所述频段信息对应的信号,并将所述信号发送给所述移动终端。
可选地,所述接收基站发送的所述频段信息对应的信号,并将所述信号发送给所述移动终端,包括;
接收基站发送的所述频段信息对应的第一信号,并将所述第一信号转换为第一基带信号,向所述移动终端发送所述第一基带信号。
可选地,所述将所述第一信号转换为第一基带信号,向所述移动终端发送所述第一基带信号,包括:
将所述第一信号放大处理后通过混频器和本振进行混频得到所述第一基带信号,将所述第一基带信号进行信号处理后通过无线传输到所述移动终端。
具体的,参考图3,图3是本发明实施例提供的一种可穿戴设备的结构示意图。可穿戴设备通过接收天线接收信号,将高频信号进行放大处理以后通过混频器与本振(LO)的信号进行混频得到基带信号,之后进行滤波,进入WIFI收发模块,将基带信号处理后通过WIFI收发模块进入发射天线发送。
在整个通信过程中,可穿戴设备扮演的角色是一个手机端的分集接收模块,由于可穿戴设备天然的优势,天线环境和天线空间造就天线性能较为优秀,甚至可以优于手机终端的通信天线,这样的优势造成作为中继使用,可穿戴设备可以大幅提高手机端的接收性能,而可穿戴设备所支持的通信制式可以是2G/3G/4G以及WIFI、BT、GPS等各种制式。
本发明实施例提供的一种无线通信的方法、可穿戴设备、移动终端及系统,所述方法通过移动终端向可穿戴设备发送频段信息,所述频段信息至少包括所述移动终端通信时使用的频段;接收所述可穿戴设备发送的第二信号,并将所述第二信号转换为第二基带信号,接收所述基站发送的所述频段信息对应的第三信号,将所述第三信号转换为第三基带信号;根据所述第二基带 信号和所述第三基带信号获得所述频段信息对应的无线信号,从而可以利用多个可穿戴设备的通信能力,多路同时接收数据,大幅提升手机的接收能力,同时,可穿戴设备或其他移动终端也可以作为最终的数据处理终端,同时其他移动终端也可以作为中继加入网络。
本发明实施例进一步提供一种无线通信的方法。
参照图6,图6为本发明无线通信的方法第三实施例的流程示意图。
在第三实施例中,该无线通信的方法包括:
步骤601,向可穿戴设备发送频段信息,所述频段信息至少包括所述移动终端通信时使用的频段;
步骤602,接收所述信号,并接收所述基站发送的所述频段信息对应的信号;
步骤603,根据所述可穿戴设备发送的所述频段信息对应的信号和所述基站发送的所述频段信息对应的信号,获取所述频段信息对应的无线信号。
可选地,所述根据所述可穿戴设备发送的所述频段信息对应的信号和所述基站发送的所述频段信息对应的信号,获取所述频段信息对应的无线信号,包括:
接收所述可穿戴设备发送的第二信号,并将所述第二信号转换为第二基带信号;将接收的所述基站发送的所述频段信息对应的第三信号转换为第三基带信号;根据所述第二基带信号和所述第三基带信号获得所述频段信息对应的无线信号,其中,所述第二信号是所述第一基带信号从所述可穿戴设备经过传输后的信号。
可选地,所述将所述第二信号转换为第二基带信号,包括:
将所述第二信号进行滤波、放大处理后还原为所述第二基带信号,所述第二基带信号与所述第一基带信号相同或者相近。
具体的,参考图4,图4是本发明实施例提供的一种移动终端的结构示意图。WIFI天线接收到可穿戴设备发送的第二信号,进入WIFI收发模块进行滤波、放大等处理,再进入信号处理模块将信号转换为第二基带信号。所述移动终端将接收到的基站发送的第三信号转换为第三基带信号,通过基带处理模块对所述第二基带信号和所述第三基带信号进行处理。
在整个通信过程中,可穿戴设备扮演的角色是一个手机端的分集接收模块,由于可穿戴设备天然的优势,天线环境和天线空间造就天线性能较为优秀,甚至可以优于手机终端的通信天线,这样的优势造成作为中继使用,可穿戴设备可以大幅提高手机端的接收性能,而可穿戴设备所支持的通信制式可以是2G/3G/4G以及WIFI、BT、GPS等各种制式。
本发明实施例提供的一种无线通信的方法、可穿戴设备、移动终端及系统,所述方法通过移动终端向可穿戴设备发送频段信息,所述频段信息至少包括所述移动终端通信时使用的频段;接收所述可穿戴设备发送的第二信号,并将所述第二信号转换为第二基带信号,接收所述基站发送的所述频段信息对应的第三信号,将所述第三信号转换为第三基带信号;根据所述第二基带信号和所述第三基带信号获得所述频段信息对应的无线信号,从而可以利用多个可穿戴设备的通信能力,多路同时接收数据,大幅提升手机的接收能力,同时,可穿戴设备或其他移动终端也可以作为最终的数据处理终端,同时其他移动终端也可以作为中继加入网络。
本发明实施例进一步提供一种可穿戴设备。
参照图7,图7为本发明可穿戴设备第一实施例的功能模块示意图。该可穿戴设备包括:
第一接收单元701,用于接收移动终端发送的频段信息,所述频段信息至少包括所述移动终端通信时使用的频段;
第二接收单元702,用于接收基站发送的所述频段信息对应的信号;
发送单元703,用于将所述信号发送给所述移动终端。
可选地,所述可穿戴设备还包括转换单元704;
所述第二接收单元702,用于接收基站发送的所述频段信息对应的第一信号;
所述转换单元704,用于将所述第一信号转换为第一基带信号;
所述发送单元703,用于向所述移动终端发送所述第一基带信号。
可选地,所述转换单元704,用于:
将所述第一信号放大处理后通过混频器和本振进行混频得到所述第一基带信号,将所述第一基带信号进行信号处理后通过无线传输到所述移动终端。
具体的,参考图3,图3是本发明实施例提供的一种可穿戴设备的结构示意图。可穿戴设备通过接收天线接收信号,将高频信号进行放大处理以后通过混频器与本振(LO)的信号进行混频得到基带信号,之后进行滤波,进入WIFI收发模块,将基带信号处理后通过WIFI收发模块进入发射天线发送。
在整个通信过程中,可穿戴设备扮演的角色是一个手机端的分集接收模块,由于可穿戴设备天然的优势,天线环境和天线空间造就天线性能较为优秀,甚至可以优于手机终端的通信天线,这样的优势造成作为中继使用,可穿戴设备可以大幅提高手机端的接收性能,而可穿戴设备所支持的通信制式可以是2G/3G/4G以及WIFI、BT、GPS等各种制式。
本发明实施例提供的一种无线通信的方法、可穿戴设备、移动终端及系统,所述方法通过移动终端向可穿戴设备发送频段信息,所述频段信息至少包括所述移动终端通信时使用的频段;接收所述可穿戴设备发送的第二信号,并将所述第二信号转换为第二基带信号,接收所述基站发送的所述频段信息对应的第三信号,将所述第三信号转换为第三基带信号;根据所述第二基带信号和所述第三基带信号获得所述频段信息对应的无线信号,从而可以利用多个可穿戴设备的通信能力,多路同时接收数据,大幅提升手机的接收能力,同时,可穿戴设备或其他移动终端也可以作为最终的数据处理终端,同时其他移动终端也可以作为中继加入网络。
本发明实施例进一步提供一种移动终端。
参照图8,图8为本发明移动终端第一实施例的功能模块示意图。所述移动终端包括:
发送单元801,用于向可穿戴设备发送频段信息,所述频段信息至少包括所述移动终端通信时使用的频段;
接收单元802,用于接收所述信号,并接收所述基站发送的所述频段信息对应的信号;
获取单元803,用于根据所述可穿戴设备发送的所述频段信息对应的信号和所述基站发送的所述频段信息对应的信号,获取所述频段信息对应的无线信号。
可选地,所述获取单元803,用于接收所述可穿戴设备发送的第二信号, 并将所述第二信号转换为第二基带信号;将接收的所述基站发送的所述频段信息对应的第三信号转换为第三基带信号;根据所述第二基带信号和所述第三基带信号获得所述频段信息对应的无线信号,其中,所述第二信号是所述第一基带信号从所述可穿戴设备经过传输后的信号。
所述获取单元803中执行将所述第二信号转换为第二基带信号,包括:
将所述第二信号进行滤波、放大处理后还原为所述第二基带信号,所述第二基带信号与所述第一基带信号相同或者相近。
具体的,参考图4,图4是本发明实施例提供的一种移动终端的结构示意图。WIFI天线接收到可穿戴设备发送的第二信号,进入WIFI收发模块进行滤波、放大等处理,再进入信号处理模块将信号转换为第二基带信号。所述移动终端将接收到的基站发送的第三信号转换为第三基带信号,通过基带处理模块对所述第二基带信号和所述第三基带信号进行处理。
在整个通信过程中,可穿戴设备扮演的角色是一个手机端的分集接收模块,由于可穿戴设备天然的优势,天线环境和天线空间造就天线性能较为优秀,甚至可以优于手机终端的通信天线,这样的优势造成作为中继使用,可穿戴设备可以大幅提高手机端的接收性能,而可穿戴设备所支持的通信制式可以是2G/3G/4G以及WIFI、BT、GPS等各种制式。
本发明实施例提供的一种无线通信的方法、可穿戴设备、移动终端及系统,所述方法通过移动终端向可穿戴设备发送频段信息,所述频段信息至少包括所述移动终端通信时使用的频段;接收所述可穿戴设备发送的第二信号,并将所述第二信号转换为第二基带信号,接收所述基站发送的所述频段信息对应的第三信号,将所述第三信号转换为第三基带信号;根据所述第二基带信号和所述第三基带信号获得所述频段信息对应的无线信号,从而可以利用多个可穿戴设备的通信能力,多路同时接收数据,大幅提升手机的接收能力,同时,可穿戴设备或其他移动终端也可以作为最终的数据处理终端,同时其他移动终端也可以作为中继加入网络。
本发明实施例进一步提供一种系统。
参照图9,图9为本发明第一实施例的系统结构图。所述系统包括至少一个可穿戴设备901及移动终端902;
所述可穿戴设备901,用于接收移动终端发送的频段信息,所述频段信息至少包括所述移动终端通信时使用的频段;接收基站发送的所述频段信息对应的信号,并将所述信号发送给所述移动终端;
所述移动终端902,用于向可穿戴设备发送频段信息,所述频段信息至少包括所述移动终端通信时使用的频段;接收所述信号,并接收所述基站发送的所述频段信息对应的信号;根据所述可穿戴设备发送的所述频段信息对应的信号和所述基站发送的所述频段信息对应的信号,获取所述频段信息对应的无线信号。
可选地,所述可穿戴设备接收基站发送的所述频段信息对应的信号,并将所述信号发送给所述移动终端,包括;
接收基站发送的所述频段信息对应的第一信号,并将所述第一信号转换为第一基带信号,向所述移动终端发送所述第一基带信号。
可选地,所述可穿戴设备将所述第一信号转换为第一基带信号,向所述移动终端发送所述第一基带信号,包括:
将所述第一信号放大处理后通过混频器和本振进行混频得到所述第一基带信号,将所述第一基带信号进行信号处理后通过无线传输到所述移动终端。
具体的,参考图3,图3是本发明实施例提供的一种可穿戴设备的结构示意图。可穿戴设备通过接收天线接收信号,将高频信号进行放大处理以后通过混频器与本振(LO)的信号进行混频得到基带信号,之后进行滤波,进入WIFI收发模块,将基带信号处理后通过WIFI收发模块进入发射天线发送。
可选地,所述移动终端根据所述可穿戴设备发送的所述频段信息对应的信号和所述基站发送的所述频段信息对应的信号,获取所述频段信息对应的无线信号,包括:
接收所述可穿戴设备发送的第二信号,并将所述第二信号转换为第二基带信号;将接收的所述基站发送的所述频段信息对应的第三信号转换为第三基带信号;根据所述第二基带信号和所述第三基带信号获得所述频段信息对应的无线信号,其中,所述第二信号是所述第一基带信号从所述可穿戴设备经过传输后的信号。
可选地,所述移动终端将所述第二信号转换为第二基带信号,包括:
所述移动终端将所述第二信号进行滤波、放大处理后还原为所述第二基带信号,所述第二基带信号与所述第一基带信号相同或者相近。
具体的,参考图4,图4是本发明实施例提供的一种移动终端的结构示意图。WIFI天线接收到可穿戴设备发送的第二信号,进入WIFI收发模块进行滤波、放大等处理,再进入信号处理模块将信号转换为第二基带信号。所述移动终端将接收到的基站发送的第三信号转换为第三基带信号,通过基带处理模块对所述第二基带信号和所述第三基带信号进行处理。
在整个通信过程中,可穿戴设备扮演的角色是一个手机端的分集接收模块,由于可穿戴设备天然的优势,天线环境和天线空间造就天线性能较为优秀,甚至可以优于手机终端的通信天线,这样的优势造成作为中继使用,可穿戴设备可以大幅提高手机端的接收性能,而可穿戴设备所支持的通信制式可以是2G/3G/4G以及WIFI、BT、GPS等各种制式。
本发明实施例还公开了一种计算机程序,包括程序指令,当该程序指令被可穿戴设备执行时,使得该可穿戴设备可执行上述任意的无线通信的方法。
本发明实施例还公开了一种载有所述计算机程序的载体。
本发明实施例还公开了一种计算机程序,包括程序指令,当该程序指令被移动终端执行时,使得该移动终端可执行上述任意的无线通信的方法。
本发明实施例还公开了一种载有所述计算机程序的载体。
本发明实施例提供的一种无线通信的方法、可穿戴设备、移动终端及系统、计算机程序及其载体,所述方法通过移动终端向可穿戴设备发送频段信息,所述频段信息至少包括所述移动终端通信时使用的频段;接收所述可穿戴设备发送的第二信号,并将所述第二信号转换为第二基带信号,接收所述基站发送的所述频段信息对应的第三信号,将所述第三信号转换为第三基带信号;根据所述第二基带信号和所述第三基带信号获得所述频段信息对应的无线信号,从而可以利用多个可穿戴设备的通信能力,多路同时接收数据, 大幅提升手机的接收能力,同时,可穿戴设备或其他移动终端也可以作为最终的数据处理终端,同时其他移动终端也可以作为中继加入网络。
以上所述,仅为本发明较佳的具体实施方式,但本发明的保护范围并不局限于此,任何熟悉本技术领域的技术人员在本发明揭露的技术范围内,可轻易想到的变化或替换,都应涵盖在本发明的保护范围之内。因此,本发明的保护范围应该以权利要求的保护范围为准。
工业实用性
本发明实施例提供的一种无线通信的方法、可穿戴设备、移动终端及系统,所述方法通过移动终端向可穿戴设备发送频段信息,所述频段信息至少包括所述移动终端通信时使用的频段;接收所述可穿戴设备发送的第二信号,并将所述第二信号转换为第二基带信号,接收所述基站发送的所述频段信息对应的第三信号,将所述第三信号转换为第三基带信号;根据所述第二基带信号和所述第三基带信号获得所述频段信息对应的无线信号,从而可以利用多个可穿戴设备的通信能力,多路同时接收数据,大幅提升手机的接收能力,同时,可穿戴设备或其他移动终端也可以作为最终的数据处理终端,同时其他移动终端也可以作为中继加入网络。因此本发明具有很强的工业实用性。

Claims (21)

  1. 一种无线通信的方法,所述方法包括:
    可穿戴设备接收移动终端发送的频段信息,所述频段信息包括所述移动终端通信时使用的频段;
    所述可穿戴设备接收基站发送的所述频段信息对应的信号,并将所述信号发送给所述移动终端;
    所述移动终端接收所述信号,并接收所述基站发送的所述频段信息对应的信号;
    所述移动终端根据所述可穿戴设备发送的所述频段信息对应的信号和所述基站发送的所述频段信息对应的信号,获取所述频段信息对应的无线信号。
  2. 根据权利要求1所述的无线通信的方法,其中,
    所述可穿戴设备接收基站发送的所述频段信息对应的信号,并将所述信号发送给所述移动终端的步骤包括:
    所述可穿戴设备接收基站发送的所述频段信息对应的第一信号,并将所述第一信号转换为第一基带信号,向所述移动终端发送所述第一基带信号;
    所述移动终端根据所述可穿戴设备发送的所述频段信息对应的信号和所述基站发送的所述频段信息对应的信号,获取所述频段信息对应的无线信号的步骤包括:
    所述移动终端接收所述可穿戴设备发送的第二信号,并将所述第二信号转换为第二基带信号;
    所述移动终端接收所述信号,并接收所述基站发送的所述频段信息对应的信号的步骤包括:
    所述移动终端将接收的所述基站发送的所述频段信息对应的第三信号转换为第三基带信号;
    所述移动终端根据所述可穿戴设备发送的所述频段信息对应的信号和所述基站发送的所述频段信息对应的信号,获取所述频段信息对应的无线信号 的步骤包括:
    所述移动终端根据所述第二基带信号和所述第三基带信号获得所述频段信息对应的无线信号,其中,所述第二信号是所述第一基带信号从所述可穿戴设备经过传输后的信号。
  3. 根据权利要求2所述的无线通信的方法,其中,所述可穿戴设备将所述第一信号转换为第一基带信号,向所述移动终端发送所述第一基带信号的步骤包括:
    所述可穿戴设备将所述第一信号放大处理后通过混频器和本振进行混频得到所述第一基带信号,将所述第一基带信号进行信号处理后通过无线传输到所述移动终端。
  4. 根据权利要求2所述的无线通信的方法,其中,所述移动终端将所述第二信号转换为第二基带信号的步骤包括:
    所述移动终端将所述第二信号进行滤波、放大处理后还原为所述第二基带信号,所述第二基带信号与所述第一基带信号相同或者相近。
  5. 一种无线通信的方法,所述方法包括:
    接收移动终端发送的频段信息,所述频段信息包括所述移动终端通信时使用的频段;
    接收基站发送的所述频段信息对应的信号,并将所述信号发送给所述移动终端。
  6. 根据权利要求5所述的无线通信的方法,其中,所述接收基站发送的所述频段信息对应的信号,并将所述信号发送给所述移动终端的步骤包括;
    接收基站发送的所述频段信息对应的第一信号,并将所述第一信号转换为第一基带信号,向所述移动终端发送所述第一基带信号。
  7. 根据权利要求6所述的无线通信的方法,其中,所述将所述第一信号 转换为第一基带信号,向所述移动终端发送所述第一基带信号的步骤包括:
    将所述第一信号放大处理后通过混频器和本振进行混频得到所述第一基带信号,将所述第一基带信号进行信号处理后通过无线传输到所述移动终端。
  8. 一种无线通信的方法,所述方法包括:
    向可穿戴设备发送频段信息,所述频段信息包括所述移动终端通信时使用的频段;
    接收所述信号,并接收所述基站发送的所述频段信息对应的信号;
    根据所述可穿戴设备发送的所述频段信息对应的信号和所述基站发送的所述频段信息对应的信号,获取所述频段信息对应的无线信号。
  9. 根据权利要求8所述的无线通信的方法,其中,所述根据所述可穿戴设备发送的所述频段信息对应的信号和所述基站发送的所述频段信息对应的信号,获取所述频段信息对应的无线信号的步骤包括:
    接收所述可穿戴设备发送的第二信号,并将所述第二信号转换为第二基带信号;将接收的所述基站发送的所述频段信息对应的第三信号转换为第三基带信号;根据所述第二基带信号和所述第三基带信号获得所述频段信息对应的无线信号,其中,所述第二信号是所述第一基带信号从所述可穿戴设备经过传输后的信号。
  10. 根据权利要求9所述的无线通信的方法,其中,所述将所述第二信号转换为第二基带信号的步骤包括:
    将所述第二信号进行滤波、放大处理后还原为所述第二基带信号,所述第二基带信号与所述第一基带信号相同或者相近。
  11. 一种可穿戴设备,所述可穿戴设备包括第一接收单元、第二接收单元和发送单元:
    所述第一接收单元设置成:接收移动终端发送的频段信息,所述频段信息包括所述移动终端通信时使用的频段;
    所述第二接收单元设置成:接收基站发送的所述频段信息对应的信号;
    所述发送单元设置成:将所述信号发送给所述移动终端。
  12. 根据权利要求11所述的可穿戴设备,其中,所述可穿戴设备还包括转换单元,其中,
    所述第二接收单元设置成:接收基站发送的所述频段信息对应的第一信号;
    所述转换单元设置成:将所述第一信号转换为第一基带信号;
    所述发送单元设置成:向所述移动终端发送所述第一基带信号。
  13. 根据权利要求12所述的可穿戴设备,其中,所述转换单元设置成按照如下方式将所述第一信号转换为第一基带信号:
    将所述第一信号放大处理后通过混频器和本振进行混频得到所述第一基带信号,将所述第一基带信号进行信号处理后通知所述发送单元通过无线将经过信号处理后的第一基带信号传输到所述移动终端。
  14. 一种移动终端,所述移动终端包括发送单元、接收单元和获取单元,其中:
    所述发送单元设置成:向可穿戴设备发送频段信息,所述频段信息包括所述移动终端通信时使用的频段;
    所述接收单元设置成:接收所述信号,并接收所述基站发送的所述频段信息对应的信号;
    所述获取单元设置成:根据所述可穿戴设备发送的所述频段信息对应的信号和所述基站发送的所述频段信息对应的信号,获取所述频段信息对应的无线信号。
  15. 根据权利要求14所述的移动终端,其中,所述获取单元设置成按照如下方式根据所述可穿戴设备发送的所述频段信息对应的信号和所述基站发送的所述频段信息对应的信号,获取所述频段信息对应的无线信号:
    接收所述可穿戴设备发送的第二信号,并将所述第二信号转换为第二基带信号;将接收的所述基站发送的所述频段信息对应的第三信号转换为第三基带信号;根据所述第二基带信号和所述第三基带信号获得所述频段信息对应的无线信号,其中,所述第二信号是所述第一基带信号从所述可穿戴设备经过传输后的信号。
  16. 根据权利要求15所述的移动终端,其中,所述获取单元设置成按照如下方式将所述第二信号转换为第二基带信号:
    将所述第二信号进行滤波、放大处理后还原为所述第二基带信号,所述第二基带信号与所述第一基带信号相同或者相近。
  17. 一种无线通信的系统,所述系统包括移动终端及至少一个可穿戴设备;
    所述可穿戴设备设置成:接收移动终端发送的频段信息,所述频段信息包括所述移动终端通信时使用的频段;接收基站发送的所述频段信息对应的信号,并将所述信号发送给所述移动终端;
    所述移动终端设置成:向可穿戴设备发送频段信息,所述频段信息至少包括所述移动终端通信时使用的频段;接收所述信号,并接收所述基站发送的所述频段信息对应的信号;根据所述可穿戴设备发送的所述频段信息对应的信号和所述基站发送的所述频段信息对应的信号,获取所述频段信息对应的无线信号。
  18. 根据权利要求17所述的无线通信的系统,其中,所述可穿戴设备设置成按照如下方式接收基站发送的所述频段信息对应的信号,并将所述信号发送给所述移动终端;
    接收基站发送的所述频段信息对应的第一信号,并将所述第一信号转换为第一基带信号,向所述移动终端发送所述第一基带信号。
  19. 根据权利要求18所述的无线通信的系统,其中,所述可穿戴设备设 置成按照如下方式将所述第一信号转换为第一基带信号,向所述移动终端发送所述第一基带信号:
    将所述第一信号放大处理后通过混频器和本振进行混频得到所述第一基带信号,将所述第一基带信号进行信号处理后通过无线传输到所述移动终端。
  20. 根据权利要求17所述的无线通信的系统,其中,所述移动终端设置成按照如下方式根据所述可穿戴设备发送的所述频段信息对应的信号和所述基站发送的所述频段信息对应的信号,获取所述频段信息对应的无线信号:
    接收所述可穿戴设备发送的第二信号,并将所述第二信号转换为第二基带信号;将接收的所述基站发送的所述频段信息对应的第三信号转换为第三基带信号;根据所述第二基带信号和所述第三基带信号获得所述频段信息对应的无线信号,其中,所述第二信号是所述第一基带信号从所述可穿戴设备经过传输后的信号。
  21. 根据权利要求20所述的无线通信的系统,其中,所述移动终端设置成按照如下方式将所述第二信号转换为第二基带信号:
    所述移动终端将所述第二信号进行滤波、放大处理后还原为所述第二基带信号,所述第二基带信号与所述第一基带信号相同或者相近。
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