WO2015096466A1 - 提高射频链路收发性能的装置、终端、方法、存储介质 - Google Patents
提高射频链路收发性能的装置、终端、方法、存储介质 Download PDFInfo
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- WO2015096466A1 WO2015096466A1 PCT/CN2014/082348 CN2014082348W WO2015096466A1 WO 2015096466 A1 WO2015096466 A1 WO 2015096466A1 CN 2014082348 W CN2014082348 W CN 2014082348W WO 2015096466 A1 WO2015096466 A1 WO 2015096466A1
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- radio frequency
- link
- test
- main switch
- receiving
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- 238000000034 method Methods 0.000 title claims abstract description 35
- 238000012360 testing method Methods 0.000 claims abstract description 198
- 235000014676 Phragmites communis Nutrition 0.000 claims abstract description 32
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- 238000010998 test method Methods 0.000 claims description 8
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- 230000035945 sensitivity Effects 0.000 description 13
- 238000005516 engineering process Methods 0.000 description 10
- 238000003780 insertion Methods 0.000 description 10
- 230000037431 insertion Effects 0.000 description 10
- 238000010586 diagram Methods 0.000 description 6
- 238000013461 design Methods 0.000 description 5
- 230000005855 radiation Effects 0.000 description 4
- 238000011161 development Methods 0.000 description 3
- 230000010365 information processing Effects 0.000 description 3
- 238000004891 communication Methods 0.000 description 2
- 238000004590 computer program Methods 0.000 description 2
- 238000010276 construction Methods 0.000 description 2
- PCHJSUWPFVWCPO-UHFFFAOYSA-N gold Chemical compound [Au] PCHJSUWPFVWCPO-UHFFFAOYSA-N 0.000 description 2
- 238000010295 mobile communication Methods 0.000 description 2
- 229910001218 Gallium arsenide Inorganic materials 0.000 description 1
- 101150019148 Slc7a3 gene Proteins 0.000 description 1
- 230000003321 amplification Effects 0.000 description 1
- 238000013459 approach Methods 0.000 description 1
- 239000003990 capacitor Substances 0.000 description 1
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- 230000020169 heat generation Effects 0.000 description 1
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- 238000004519 manufacturing process Methods 0.000 description 1
- 238000003199 nucleic acid amplification method Methods 0.000 description 1
- 230000003287 optical effect Effects 0.000 description 1
- 238000011056 performance test Methods 0.000 description 1
- 238000001228 spectrum Methods 0.000 description 1
- 230000003068 static effect Effects 0.000 description 1
- 239000000758 substrate Substances 0.000 description 1
Classifications
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B17/00—Monitoring; Testing
- H04B17/0082—Monitoring; Testing using service channels; using auxiliary channels
- H04B17/0085—Monitoring; Testing using service channels; using auxiliary channels using test signal generators
Definitions
- the present invention relates to a radio frequency link performance management technology in a mobile terminal, and in particular, to a device, a mobile terminal, a method, and a storage medium for improving the transceiving performance of an RF link.
- LTE Long Term Evolution
- 4G fourth-generation
- MIMO Multiple-Input Multiple-Output
- Transmission technology effectively increases spectrum efficiency and data transmission rate.
- the peak rate of LTE technology can reach 50Mbit/s uplink and 100Mbit/s downlink, and support multiple bandwidth allocations: 1.4MHz, 3MHz, 5MHz, 10MHz, 15MHz and 20MHz, etc. The allocation is more flexible and the system capacity and coverage are significantly improved.
- the LTE wireless network architecture is flatter, reducing system latency, reducing network construction costs and maintenance costs, and supporting interoperability with the 3rd Generation Partnership Project (3GPP) system.
- 3GPP 3rd Generation Partnership Project
- Time Division-Long Term Evolution (TD-LTE) technology is An important branch of 4G corresponds to the Frequency Division Duplexing-Long Term Evolution (FDD-LTE) technology.
- FDD-LTE Frequency Division Duplexing-Long Term Evolution
- the uplink and downlink functions of TD-LTE are implemented using the same frequency band, thereby improving resource utilization.
- TD-LTE can be used in actual use. The specific requirements of the user, by adjusting the structure ratio of the uplink and downlink frames, improve the utilization of LTE network and system resources, and have greater flexibility.
- PAs power amplifiers
- GaAs is a substrate chip, although it has the characteristics of small size, light weight, high reliability and low cost, and can save the design time by eliminating the need for the user to design the input and output matching network and the static working point; Since the inductor L and the capacitor C in the matching network are respectively composed of gold wire and gold foil, the withstand power is relatively small; due to the small volume, the DC power consumption is large, and the heat resistance of the die to the component surface is large, resulting in a relatively high heat generation. .
- the maximum output power of such a power amplifier is about 28-30 dBm, and it is difficult to achieve higher output power.
- the actual available output power of the power amplifier is only about 27-29 dBm.
- the specific requirements of the mobile terminal for the operator in addition to the reference to the 3GPP custom standard specification, will also be based on the characteristics of the network deployment of the country or region, the actual user requirements, and the like.
- OTA Over The Air
- TRP Total Radiated Power
- TISJotal Isotropic Sensitivity total omnidirectional sensitivity
- the first way when the RF chain When the power of the path to the antenna port is constant, the antenna is debugged to have higher radiation efficiency, that is, the total omnidirectional radiation power can be improved; the second way is to increase the output power of the RF link when the radiation efficiency of the antenna is constant. Or reduce its link insertion loss, and also increase the total omnidirectional radiated power. In contrast, adjusting the output power of the RF link is easier and simpler when the antenna design is finalized.
- the first way when the receiving sensitivity of the RF link port is fixed, the antenna is debugged to improve its efficiency, which can improve the total omnidirectional sensitivity.
- the second way is when When the efficiency of the antenna is constant, the insertion loss on the receiving link is reduced, and the total omnidirectional sensitivity can also be improved.
- the antenna design when the antenna design is finalized, it is easier and simpler to reduce the insertion loss of the receiving RF link.
- embodiments of the present invention are directed to providing an apparatus, a mobile terminal, a method, and a storage medium for improving radio frequency link transceiving performance, which can improve transmission power and receiving sensitivity of a mobile terminal.
- An embodiment of the present invention provides an apparatus for improving radio frequency link transmission and reception performance, including: a radio frequency transmission link configured to transmit a signal, a radio frequency receiving link configured to receive a signal transmitted by a base station, and a radio frequency transmission link and a radio frequency configured to test a test link of the receiving link;
- a first node is disposed between the power amplifier in the radio frequency transmitting link and the first antenna contact reed, and the first node is connected to the first on/off port of the radio frequency main switch in the test link;
- a second node is disposed between the receiving filter and the second antenna contact reed in the radio frequency receiving link, and the second node is connected to the third on/off port of the radio frequency main switch in the test link;
- the second on-off port of the RF main switch in the test link is connected to the ground through a resistor.
- the radio frequency transmitting link further includes: a baseband chip, a radio frequency transceiver chip, and a transmitting a filter and a transmitting antenna; the baseband chip is interconnected with the radio frequency transceiver chip, an output of the radio frequency transceiver chip is connected to the transmitting filter, and the transmitting filter is connected to the transmitting antenna via the power amplifier.
- the radio frequency receiving link further includes: a receiving antenna, a radio frequency transceiver chip, and a baseband chip; the baseband chip is interconnected with the radio frequency transceiver chip, and an output of the receiving filter is connected to the radio frequency transceiver chip; The receiving antenna is coupled to the receive filter.
- the test link further includes: a baseband chip and a radio frequency test socket; the radio frequency test socket is disposed between the radio frequency main switch and the baseband chip.
- the embodiment of the invention further provides a testing device for improving the transceiver performance of the radio frequency link, comprising: a radio frequency transmitting link configured to transmit a test signal, a radio frequency receiving link configured to receive the test signal, configured to test the radio frequency transmitting link, and a test link of the RF receiving link, and a power supply circuit configured to provide power to the test device;
- a power amplifier in the radio frequency transmitting link is connected to a first on/off port of the radio frequency main switch in the test link;
- a receiving filter in the radio frequency receiving link is connected to a third switching port of the radio frequency main switch in the test link;
- the second on/off port of the radio frequency main switch in the test link is connected to the ground through a resistor.
- the radio frequency transmitting link further includes: a baseband chip, a radio frequency transceiver chip, and a transmit filter; the baseband chip is interconnected with the radio frequency transceiver chip, and an output of the radio frequency transceiver chip is connected to the transmit filter The transmit filter is coupled to the power amplifier.
- the radio frequency receiving link further includes: a radio frequency transceiver chip and a baseband chip; the baseband chip is interconnected with the radio frequency transceiver chip, and an output of the receiving filter is connected to the radio frequency transceiver chip.
- the test link is used to test a radio frequency transmission link and a radio frequency receiving link; the test link further includes: a comprehensive tester, a baseband chip, and an RF test socket; And being disposed between the radio frequency main switch and the baseband chip, wherein the tester is connected to the radio frequency test socket.
- the power supply circuit comprises: a base, a test power supply contact, and a Micro-USB socket; or a base, a Micro-USB socket, and a Micro-USB connection line.
- An embodiment of the present invention provides a mobile terminal for improving radio frequency link transmission and reception performance, and the mobile terminal includes any one of the foregoing apparatus for improving radio frequency link transmission and reception performance; or
- the mobile terminal includes any of the above-mentioned test devices for improving the transceiving performance of a radio frequency link.
- Embodiments of the present invention provide a method for improving transceiver performance of a radio frequency link, which is to test a first on-off port of a radio frequency main switch in a link and a power amplifier and a first antenna contact reed in a radio frequency transmission link.
- the first node is connected, and the third on-off port of the RF main switch in the test link is connected to the second node between the receive filter and the second antenna contact reed in the RF receive link, and the test link is
- the second on-off port of the radio frequency main switch is connected to the ground through a resistor; in application, the method further includes:
- the RF transceiver chip modulates the baseband signal outputted by the baseband chip to the high frequency carrier signal, and the high frequency carrier signal is filtered by the transmission filter, amplified by the power amplifier, and sent to the transmitting antenna via the first antenna contact reed;
- the receiving antenna transmits the signal transmitted by the base station to the receiving filter through the second antenna contact reed, and is demodulated by the receiving filter and the RF transceiver chip, and then sent to the baseband chip.
- the embodiment of the invention further provides a test method for improving the transceiver performance of the radio frequency link, connecting the first on-off port of the radio frequency main switch in the test link to the power amplifier in the radio transmission link, and the radio frequency main in the test link
- the third on-off port of the switch is connected to the receiving filter in the RF receiving link, and the second on-off port of the RF main switch in the test link is connected to the ground through a resistor;
- the method further includes:
- the baseband chip sends a calibration transmit link command, and controls the radio frequency main switch to communicate with the common end and the first on/off port to connect the power amplifier to the radio frequency test socket;
- the baseband chip sends a calibration receiving link command, and controls the radio frequency main switch to communicate with the common end and the third on/off port to connect the receiving filter to the radio frequency test socket.
- the method further includes: determining, by the baseband chip, whether the radio frequency link is in a calibration state;
- the baseband chip determines whether the radio frequency link is in a calibration state, including:
- the baseband chip controls the common end of the RF main switch to communicate with the second switch port.
- the RF test stand is connected to the ground through the RF main switch through a resistor, and the baseband chip can detect the presence of the resistor;
- the RF coaxial cable is connected to the RF test socket.
- the RF coaxial cable is connected to the RF main switch through the RF test socket. If the baseband chip cannot detect the presence of the resistor, it is determined that the RF link is in the calibration state.
- the method further includes: the radio frequency transceiver chip modulates the baseband signal output by the baseband chip to the high frequency carrier signal, and transmits the high frequency carrier signal to the transmit filter After filtering and power amplifier amplification, it is sent to the comprehensive tester through the RF test socket.
- the method further includes: transmitting a signal transmitted by the comprehensive measuring instrument to the receiving filter through the radio frequency test socket; performing signal demodulation via the receiving filter filtering and the radio frequency transceiver chip Then sent to the baseband chip.
- the embodiment of the present invention further provides a computer storage medium, where the computer storage medium stores a computer program for performing the above method for improving radio frequency link transceiving performance of the embodiment of the present invention, and/or the implementation of the present invention.
- the above test method for improving the transmission and reception performance of a radio frequency link is not limited to, but not limited to, but not limited to, but not limited to, but not limited to, but not limited to, but not limited to, but not limited to, a computer storage medium.
- the method and the storage medium do not use the radio frequency main switch, the radio frequency test socket, and the corresponding matching network on the radio frequency transmitting link and the radio frequency receiving link, so that the insertion loss of the radio frequency transmitting link and the radio frequency receiving link can be significantly reduced. Effectively improve the transmission performance and reception performance of the RF link;
- An embodiment of the present invention provides a first node between a power amplifier in a radio frequency transmitting link and a first antenna contact reed, and connects the first node to a first on/off port of the radio frequency main switch in the test link; Providing a second node between the receiving filter in the RF receiving link and the second antenna contact reed, and connecting the second node to the third switching port of the RF main switch of the test link; The transmission power and reception sensitivity of the mobile terminal can be improved.
- the first on-off port of the radio frequency main switch in the test link is connected to the power amplifier in the radio frequency transmission link
- the third on-off port of the radio frequency main switch in the test link is connected with the radio frequency receiving link.
- the receiving filter in the test link connects the second on-off port of the RF main switch in the test link to the ground through a resistor; in testing, by controlling the common end of the RF main switch to communicate with the first on-off port, or with the second The on/off port is connected, so that the test of the radio frequency transmission link or the test of the radio frequency receiving link can be implemented.
- 1 is a schematic structural diagram of a radio frequency link
- FIG. 2 is a schematic structural diagram of a device for improving radio frequency link transmission and reception performance according to an embodiment of the present invention
- FIG. 3 is a schematic flowchart of an implementation process for improving a radio frequency link transceiver performance according to an embodiment of the present invention
- FIG. 4 is a schematic flowchart of an implementation process of a method for improving radio frequency link transceiving performance according to an embodiment of the present invention
- FIG. 5 is a schematic structural diagram of a test apparatus for improving radio frequency link transceiving performance according to an embodiment of the present invention
- FIG. 6 is a schematic diagram of an implementation process of testing a radio frequency transmitting link by testing a radio frequency link receiving and transmitting performance test method according to an embodiment of the present invention
- FIG. 7 is a schematic diagram of an implementation process of testing a radio frequency receiving link according to an embodiment of the present invention.
- FIG. 8 is a schematic structural diagram of a mobile terminal for improving radio frequency link transceiving performance according to an embodiment of the present invention. detailed description
- Figure 1 shows the structure of a radio link in a TD-LTE system.
- the radio link includes a radio transmission link and a radio frequency receiving link.
- the radio frequency transmitting link includes: a baseband chip 108, a radio frequency transceiver chip 106, a transmitting filter 105, a power amplifier 104, a radio frequency main switch 103, an RF test socket 102, an antenna contact reed 109, and an antenna 101;
- the chip 106 modulates the baseband signal output by the baseband chip 108 onto the high frequency carrier signal, and transmits the high frequency carrier signal to the transmit filter 105, and the transmit filter 105 filters the received high frequency carrier signal and transmits the signal.
- the power amplifier 104 amplifies the received high frequency carrier signal, transmits it to the antenna 101 via the RF main switch 103 and the RF test socket 102 and the antenna contact reed 109, and communicates with the base station.
- the RF receiving link includes: an antenna 101, an antenna contact reed 109, a radio frequency test socket 102, a radio frequency main switch 103, a receiving filter 107, a radio frequency transceiver chip 106, and a baseband core 108; when receiving a signal, the antenna 101 receives The signal transmitted by the base station is sent to the receiving filter 107 through the RF test socket 102 and the RF main switch 103.
- the receiving filter 107 filters the received signal and sends it to the RF transceiver chip 106.
- the RF transceiver chip 106 pairs the received signal.
- the demodulation is performed, and the demodulated signal is sent to the baseband chip 108 for information processing.
- the signal from the power amplifier 104 to the antenna contact reed 109 needs to pass through the RF main switch 103 and the RF test socket 102, based on the current Design and manufacturing process level, RF main switch from low frequency to high frequency, there will be 0.6-1.5dB insertion loss, RF test socket from low frequency to high frequency, there will be 0.2-0.3dB Insertion loss; if a high power transmit filter and a corresponding RF match link are added to the transmit link, then the transmit link will add an additional insertion loss of 1-1.5 dB; therefore, from the output port of the power amplifier 104 to The antenna contact reed 109 will increase the insertion loss of 1.8-3.3dB; currently, the maximum available output power of the power amplifier 104 used in the mobile terminal is 27-29dBm, and the power reaching the antenna contact reed 109 is only 23.7. -27.2dBm, not high; At
- the power amplifier and the first antenna contact reed in the radio frequency transmitting link are connected to the first on/off port of the radio frequency main switch in the test link via the first node, and The receiving filter and the second antenna contact reed in the RF receiving link are connected to the third on/off port of the RF main switch of the test link via the second node; during testing, by controlling the common end of the RF main switch
- the first on/off port is connected to or in communication with the second on/off port; the radio frequency main switch, the radio frequency test socket, and the corresponding matching network are not used on the radio frequency transmission link and the radio frequency reception link.
- the radio frequency transceiver chip when transmitting a signal, modulates the baseband signal output by the baseband chip to the high frequency carrier signal, and amplifies the high frequency carrier signal via the transmit filter and the power amplifier, and then passes through the first antenna contact. The reed is sent to the transmitting antenna; on the RF transmitting link, the RF main switch and the RF test socket are not used, which can effectively reduce the insertion loss of the transmitting link.
- the receiving antenna When receiving the signal, the receiving antenna transmits the signal transmitted by the base station to the receiving filter through the second antenna contact reed, demodulates the signal through the receiving filter and the RF transceiver chip, and transmits the signal to the baseband chip; on the radio frequency receiving link.
- the RF main switch and RF test socket are not used, which can effectively reduce the insertion loss of the transmitting link.
- the first on-off port of the radio frequency main switch is connected to the first node between the power amplifier and the first antenna contact reed in the radio frequency transmission link
- the third on-off port of the radio frequency main switch is The second section between the receive filter in the RF receive link and the second antenna contact reed Point test; when testing the RF transmit link, the baseband chip sends a calibration transmit link command, and controls the RF main switch to communicate with the common end and the first on/off port to connect the power amplifier to the RF test socket; when testing the RF receive link The baseband chip sends a calibration receiving link command, and controls the radio frequency main switch to communicate with the common end and the third on/off port to connect the receiving filter to the radio frequency test socket.
- the receiving antenna and the transmitting antenna may be an Inverted F-Antenna (IFA), a Planar Inverted F-Antenna (PIFA), or a Raider antenna.
- IFA Inverted F-Antenna
- PIFA Planar Inverted F-Antenna
- RDS Laser Direct Structuring
- the apparatus includes: a radio frequency transmitting link 10, a radio frequency receiving link 20, and a test link 30;
- a first node 212 is disposed between the power amplifier 202 and the first antenna contact reed 211 in the radio frequency transmitting link 10, and the first node 212 is connected to the first pass of the radio frequency main switch 209 in the test link 30.
- the disconnect port 216 is connected;
- a second node 214 is disposed between the receiving filter 206 and the second antenna contact reed 213 in the radio frequency receiving link 20, and the second node 214 is the third of the radio frequency main switch 209 in the test link 30.
- the on/off port 218 is connected;
- the second on/off port 217 of the RF main switch 209 in the test link 30 is connected to ground through a resistor 214.
- the radio frequency transmitting link 10 is configured to transmit a signal.
- the radio frequency transmitting link 10 further includes: a baseband chip 205, a radio frequency transceiver chip 204, a transmitting filter 203, and a transmitting antenna 201; the baseband chip 205. Interconnected with the radio frequency transceiver chip 204, the output of the radio frequency transceiver chip 204 is connected to the transmit filter 203, and the transmit filter 203 is connected to the transmit antenna 201 via the power amplifier 202.
- the radio frequency receiving link 20 is configured to receive a signal transmitted by the base station.
- the radio frequency receiving link 10 further includes: a receiving antenna 207, a radio frequency transceiver chip 204, and a baseband chip 205.
- the baseband chip 205 and the radio frequency transceiver chip 204 is interconnected, an output of the receive filter 203 is coupled to the radio frequency transceiver chip 204; the receive antenna 207 is coupled to the receive filter 203.
- the test link 30 is configured to test the radio frequency transmitting link 10 and the radio frequency receiving link 20; the test link 30 further includes: a baseband chip 204 and a radio frequency test socket 208; the radio frequency test socket 208 is disposed on the The RF main switch 209 is interposed between the baseband chip 204.
- Step 11 The radio frequency transceiver chip will The baseband signal output by the baseband chip is modulated onto the high frequency carrier signal, and the high frequency carrier signal is transmitted to the transmit filter.
- Step 12 The transmit filter filters the received high frequency carrier signal and sends it to the power amplifier.
- Step 13 The power amplifier amplifies the received high frequency carrier signal and transmits it to the transmitting antenna via the first antenna contact reed.
- the method for improving the transceiving performance of the radio frequency link according to the embodiment of the present invention, as shown in FIG. 4, when receiving the signal includes the following steps: Step 21: The receiving antenna will be the base station The transmitted signal is sent to the receive filter through the second antenna contact reed.
- Step 22 The receiving filter filters the received signal and sends it to the RF transceiver chip.
- Step 23 The RF transceiver chip demodulates the received signal, and sends the demodulated signal to the baseband chip for subsequent information processing.
- the embodiment of the invention further provides a testing device for improving the transceiver performance of the radio frequency link.
- the device includes: a signal transmitting portion configured to transmit a test signal, configured to receive a signal receiving portion of the test signal, a signal test portion configured as a test signal transmitting portion and a signal receiving portion, and a power supply portion configured to provide power to the test device; wherein
- the power amplifier 304 in the signal transmitting portion is connected to the first on/off port 320 of the radio frequency main switch 316 in the signal testing portion; the receiving filter 312 in the signal receiving portion and the radio frequency main switch 316 in the test link
- the third on-off port 315 is connected; the second on-off port 319 of the RF main switch 316 in the signal test portion is connected to the ground through a resistor 318; the resistance of the resistor 318 is 50 ⁇ .
- the signal transmitting part further includes: a baseband chip 309, a radio frequency transceiver chip 306, and a transmission filter 305; the baseband chip 309 is interconnected with the radio frequency transceiver chip 306, and an output connection of the radio frequency transceiver chip 306 To the transmit filter 305, the transmit filter 305 is coupled to the power amplifier 304.
- the signal receiving portion further includes: a radio frequency transceiver chip 306 and a baseband chip 309; the baseband chip 309 is interconnected with the radio frequency transceiver chip 306, and an output of the receiving filter 312 is connected to the radio frequency transceiver chip 306.
- the signal testing part further includes: a comprehensive measuring instrument 322, a baseband chip 309 and a radio frequency test socket 303; the radio frequency test socket 303 is disposed between the radio frequency main switch 316 and the baseband chip 309, the comprehensive measuring instrument 322 is connected to the radio frequency test socket 303.
- the power supply part includes: a base 308, a test power supply contact 307, and a Micro-USB socket 310; or the power supply part includes: a base 308, a Micro-USB socket 310, and a Micro-USB connection line 311; It is also configured to connect to the diagnostic test port of the test device that improves the RF link transceiving performance for the external test equipment.
- the test device for improving the transceiving performance of the radio frequency link is based on the test device for improving the transceiving performance of the radio frequency link, and the first on-off port 320 and the signal transmitting portion of the radio frequency main switch 316 of the signal test portion are
- the power amplifier 304 is connected to test the third on/off port 315 of the portion of the RF main switch 316 and the receive filter 312 in the signal receiving portion.
- the second test port 319 of the signal test portion of the RF main switch 316 is connected to the ground through the resistor 318; the RF test socket 303 is connected to the tester 322; as shown in FIG. 6, when testing the RF transmit link, the following step:
- Step 31 The baseband chip determines whether the radio frequency link is in a calibration state, and if yes, performs step 32; if not, the process ends;
- the baseband chip controls the common end of the RF main switch to communicate with the second on-off port.
- the RF test socket passes the RF main switch and the resistor. Connected to ground, the baseband is able to detect the presence of electrical resistance.
- the RF coaxial cable is connected to the RF test socket, the RF coaxial cable is connected to the RF main switch through the RF test socket, and the baseband chip cannot detect the presence of the resistor, and then the RF link is judged to be in a calibration state;
- the power supply of the test device for improving the transceiver performance of the radio frequency link includes: providing power to the test device for improving the transceiver performance of the RF link by testing the power supply contact, and connecting the test RF to the test computer through the Micro-USB socket a diagnostic port of the test device for link transceiving performance; or in a manual test, a Micro-USB cable is separately used to connect to the Micro-USB socket on the test device for improving the transceiving performance of the radio frequency link, to improve the radio frequency link
- the test device for transceiver performance provides power and a diagnostic port for the test device that connects the external test equipment to improve RF transceiver performance.
- Step 32 The baseband chip sends a calibration transmit link command, and controls the radio frequency main switch to communicate with the common end and the first on/off port to connect the power amplifier to the radio frequency test socket.
- Step 33 The RF transceiver chip modulates the baseband signal output by the baseband chip to the high frequency carrier signal, and sends the high frequency carrier signal to the transmit filter.
- Step 34 The transmit filter filters the received high frequency carrier signal and sends it to the power amplifier.
- Step 35 The power amplifier amplifies the received high frequency carrier signal and passes The RF test socket is sent to the tester.
- the test device for improving the transceiving performance of the radio frequency link is based on the test device for improving the transceiving performance of the radio frequency link, and the first on-off port 320 and the signal transmitting portion of the radio frequency main switch 316 of the signal test portion are
- the power amplifier 304 is connected to connect the third on-off port 315 of the signal test portion RF main switch 316 with the receive filter 312 in the signal receiving portion, and the second on-off port 319 of the signal test portion RF main switch 316 passes through the resistor 318.
- Step 41 The baseband chip determines whether the radio link is in a calibration state, and if yes, performs step 42; if not, the process ends;
- the baseband chip controls the common end of the RF main switch to communicate with the second on-off port.
- the RF test socket passes the RF main switch and the resistor. Connected to ground, the baseband is able to detect the presence of electrical resistance.
- the RF coaxial cable is connected to the RF test socket, the RF coaxial cable is connected to the RF main switch through the RF test socket, and the baseband chip cannot detect the presence of the resistor, and then the RF link is judged to be in a calibration state;
- the power supply of the test device for improving the transceiver performance of the radio frequency link includes: providing a necessary power supply to the test device for improving the transceiver performance of the RF link by testing the power supply contact, and connecting the test computer through the Micro-USB socket.
- the test device for link transceiving performance provides power and a diagnostic port for the test device that connects the external test equipment to improve the RF link transceiving performance.
- Step 42 The baseband chip sends a calibration receiving link command, and controls the radio frequency main switch to communicate with the common end and the third on/off port to connect the receiving filter to the radio frequency test socket.
- Step 43 The signal transmitted by the tester is sent to the receiving filter through the RF test socket.
- Step 44 The receiving filter filters the received signal and sends it to the RF transceiver chip.
- Step 45 The RF transceiver chip demodulates the received signal, and sends the demodulated signal to the baseband chip for information processing.
- the mobile terminal includes: a mobile terminal front casing 401, a mobile terminal rear casing 403, and a device 402 for improving radio frequency link transceiving performance, The transmitting antenna 404 and the receiving antenna 405; wherein the device 402 for improving the transceiving performance of the radio frequency link is the device described in FIG.
- the mobile terminal includes: a mobile terminal front case 401, a mobile terminal rear case 403, a test device 402' for improving radio frequency link transceiving performance, a transmitting antenna 404, and a receiving antenna 405; wherein the improving the radio frequency chain
- the test device 402' for the transmission and reception performance is the test device described in FIG.
- the foregoing method for improving the transceiving performance of the radio frequency link is implemented in the form of a software function module, and/or the test method for improving the transceiving performance of the radio frequency link is used, and is sold or used as an independent product, it may also be stored.
- a computer readable storage medium In a computer readable storage medium. Based on such understanding, the technical solution of the embodiments of the present invention may be embodied in the form of a software product in essence or in the form of a software product.
- the computer software product is stored in a storage medium and includes a plurality of instructions.
- a computer device (which may be a personal computer, server, or network device, etc.) is implemented to perform all or part of the methods described in various embodiments of the present invention.
- the foregoing storage medium includes: a U disk, a mobile hard disk, a read only memory (ROM), a magnetic disk or an optical disk, and the like, which can store program codes.
- ROM read only memory
- magnetic disk or an optical disk and the like, which can store program codes.
- the embodiment of the present invention further provides a computer storage medium, where the computer storage medium stores a computer program for performing the foregoing method for improving radio frequency link transceiving performance of the embodiment of the present invention, and/or Test method for RF link transmission and reception performance.
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CN106911341A (zh) * | 2017-03-30 | 2017-06-30 | 天津中兴智联科技有限公司 | 一种用于etc的超外差接收机 |
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WO2020020110A1 (en) | 2018-07-23 | 2020-01-30 | Guangdong Oppo Mobile Telecommunications Corp., Ltd. | Receiving module, transmitting module, and radio frequency system |
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JP2017505040A (ja) | 2017-02-09 |
CN104753553A (zh) | 2015-07-01 |
US9692528B2 (en) | 2017-06-27 |
US20160323044A1 (en) | 2016-11-03 |
CN104753553B (zh) | 2019-02-12 |
JP6181315B2 (ja) | 2017-08-16 |
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