Methods, systems, devices, and storage media based on millimeter wave transmission of high frequency signals
By converting USB-Thunderbolt signals into millimeter-wave transmission signals and transmitting them wirelessly, the problem of low efficiency in long-distance transmission is solved, achieving efficient signal transmission and improving the transmission efficiency and flexibility between devices.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-02-22
- Publication Date
- 2026-04-10
AI Technical Summary
Existing technologies suffer from low transmission efficiency when transmitting high-frequency signals over long distances. In particular, Wi-Fi transmission bandwidth is insufficient to support high-frequency data transmission, and the cable length limitation in wired mode also affects transmission efficiency.
Employing millimeter-wave transmission technology, the USB-Thunderbolt signal is converted into a millimeter-wave transmission signal, and wireless transmission and reset are achieved through a millimeter-wave signal conversion chip, realizing bidirectional signal transmission and leveraging the transmission advantages of millimeter waves to improve efficiency and range.
It enables long-distance, lossless, high-frequency, full-load wireless signal transmission, improves signal transmission efficiency between devices, solves the problem of cable limitations, and is flexible and practical.
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Figure CN116389574B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of data transmission, in particular to a method, system and device for transmitting high-frequency signals based on millimeter waves and a storage medium. BACKGROUND
[0002] With the rapid iteration of communication and network technology, the network transmission environment has gradually been replaced by the transmission mode of different frequency bands of radio waves. For example, the original Ethernet has been replaced by wireless Wi-Fi, but even the maximum transmission speed of high-performance Wi-Fi is only about 1Gbps, which is far from enough to support the increasingly high high-frequency data transmission compared with the 80Gbps bandwidth of USB4 2.0 and Thunderbolt4. As an example of the mainstream coaxial cable for transmitting 80Gbps bandwidth, the length of the cable is mostly within 1 meter due to the influence of the cable process itself, and long-distance transmission will seriously affect its transmission efficiency. SUMMARY
[0003] In order to solve the problem of low transmission efficiency in the prior art when transmitting high-frequency signals over a long distance, the present application provides a method, system, device and storage medium for transmitting high-frequency signals based on millimeter waves.
[0004] In a first aspect, the present application provides a method for transmitting high-frequency signals based on millimeter waves, which adopts the following technical solution:
[0005] The method for transmitting high-frequency signals based on millimeter waves provided by the present application comprises:
[0006] The wireless device converts the first USB-Thunderbolt signal to be sent into a first millimeter wave transmission signal through a wireless signal conversion IC, transmits the first millimeter wave transmission signal wirelessly, and sends the first USB-Thunderbolt signal to a USB-Thunderbolt chip;
[0007] The first millimeter wave transmission signal is received and reset to the first USB-Thunderbolt signal by a millimeter wave signal conversion chip, and the first USB-Thunderbolt signal is sent to the USB-Thunderbolt chip, which is used for the USB-Thunderbolt chip to distribute to different interfaces according to the signal type of the first USB-Thunderbolt signal;
[0008] Alternatively,
[0009] The USB-Thunderbolt chip converts the second USB-Thunderbolt signal to be transmitted into a second millimeter wave transmission signal through the millimeter wave signal conversion chip, transmits the second millimeter wave transmission signal in a wireless manner, and transmits the second USB-Thunderbolt signal to the wireless device.
[0010] The second millimeter wave transmission signal is received and reset into the second USB-Thunderbolt signal by the wireless signal conversion IC, and the second USB-Thunderbolt signal is transmitted to the wireless device, so that the wireless device distributes to different data interfaces according to the signal type of the second USB-Thunderbolt signal.
[0011] By adopting the above technical solution, when transmitting the signal, the first USB-Thunderbolt signal of the wireless device is first converted into a first millimeter wave transmission signal by the wireless signal conversion IC and transmitted in a wireless manner, and the first USB-Thunderbolt signal is transmitted to the USB-Thunderbolt chip, and then the first millimeter wave transmission signal is received and reset into the first USB-Thunderbolt signal by the millimeter wave signal conversion chip, and then the first USB-Thunderbolt signal is transmitted to the USB-Thunderbolt chip, so that the USB-Thunderbolt chip distributes to different interfaces according to the signal type of the first USB-Thunderbolt signal. Then, the millimeter wave transmission signal conversion chip converts the second USB-Thunderbolt signal to be transmitted into a second millimeter wave transmission signal, and then the USB-Thunderbolt chip transmits the second millimeter wave transmission signal in a wireless manner, and transmits the second USB-Thunderbolt signal to the wireless device, and then the wireless device distributes to different data interfaces according to the signal type of the second USB-Thunderbolt signal. Thus, the long-distance lossless high-frequency full-load transmission of the USB-Thunderbolt signal is realized, the USB-Thunderbolt signal is converted into a millimeter wave, and due to the transmission advantage of the millimeter wave itself, the efficiency of signal transmission between devices is improved, and the transmission length is improved, which has practical value.
[0012] Preferably, the first millimeter wave transmission signal is transmitted in a wireless manner, including:
[0013] the first millimeter wave transmission signal is transmitted wirelessly by a first millimeter wave transmitter,
[0014] The first USB-Thunderbolt signal is reset by the millimeter wave signal conversion chip.
[0015] The first USB-Thunderbolt signal is reset by the first millimeter wave receiver.
[0016] By adopting the above technical scheme, specifically, the first millimeter wave transmitter is wirelessly transmitted by the first millimeter wave generator, and the first USB-Thunderbolt signal is reset by the first millimeter wave receiver, so that the wireless transmission of the first millimeter wave signal is realized, and the use flexibility is higher.
[0017] Preferably, the second millimeter wave signal is transmitted in a wireless manner, comprising:
[0018] The second millimeter wave signal is wirelessly transmitted by the second millimeter wave transmitter,
[0019] The USB-Thunderbolt chip converts the second USB-Thunderbolt signal to be transmitted into the second millimeter wave signal by the millimeter wave signal conversion chip, comprising:
[0020] The second USB-Thunderbolt signal is reset by the second millimeter wave receiver.
[0021] By adopting the above technical scheme, specifically, the second millimeter wave signal is wirelessly transmitted by the second millimeter wave transmitter, and the second USB-Thunderbolt signal is reset by the second millimeter wave receiver, so that the wireless transmission of the second millimeter wave signal is completed, and the reverse transmission of the signal is realized.
[0022] Preferably, the USB-Thunderbolt chip distributes the first USB-Thunderbolt signal to different interfaces according to the signal type of the first USB-Thunderbolt signal, comprising:
[0023] The USB-Thunderbolt signal is separated from the Data signal, the PCI Express signal and the DisplayPort signal by the IC USB / Thunderbolt and transmitted to the downstream device.
[0024] The wireless device distributes the second USB-Thunderbolt signal to different data interfaces according to a signal type of the second USB-Thunderbolt signal, and the wireless device exchanges data with the data interfaces.
[0025] By using the above technical solutions, the IC USB / Thunderbolt separates the USB-Thunderbolt signal into a Data signal, a PCI Express signal, and a DisplayPort signal, transmits the separated signals to a downstream device, and distributes the separated signals to different data interfaces, so as to realize bidirectional transmission of the signals.
[0026] Preferably, the receiving and resetting of the first millimeter wave transmission signal into the first USB-Thunderbolt signal by the millimeter wave signal conversion chip comprises:
[0027] At the current k-1 time, the initial millimeter wave band electromagnetic signal data transmitted by the base station is detected, and the initial millimeter wave band electromagnetic signal data is used as a basis for
[0028] An initial electromagnetic wave signal representation vector is generated;
[0029] According to the initial electromagnetic wave signal representation vector, a millimeter wave band electromagnetic signal state corresponding to the next k time immediately after the k-1 time is predicted, and the millimeter wave band electromagnetic signal state is corrected according to external environmental factors of base station signal transmission, so as to obtain a corresponding signal correction amount;
[0030] At the k time, the actual millimeter wave band electromagnetic signal transmitted by the base station is detected, and the actual millimeter wave band electromagnetic signal is corrected according to the signal correction amount, so as to obtain a corrected millimeter wave band electromagnetic signal state; the actual millimeter wave band electromagnetic signal is updated according to the predicted millimeter wave band electromagnetic signal state and the corrected millimeter wave band electromagnetic signal state, so as to repair the loss of the millimeter wave band electromagnetic signal in the transmission process.
[0031] By using the above technical solutions, the millimeter wave band electromagnetic wave signal is processed by Gaussian distribution conversion and Kalman filtering algorithm at the level of signal data processing, so as to realize signal prediction and signal update of the millimeter wave band electromagnetic wave signal in turn, thereby recovering the loss of the millimeter wave band electromagnetic signal in the transmission process, resetting the millimeter wave signal into a USB-Thunderbolt signal, and effectively saving the construction cost and operation cost of the microcell base station, reducing the influence of the microcell base station on the macro base station signal in the construction process, and improving the transmission efficiency of the millimeter wave band electromagnetic signal.
[0032] Preferably, after the second millimeter wave transmission signal is received and reset by the wireless signal conversion IC into the second USB-Thunderbolt signal, the method comprises:
[0033] Based on the second USB-Thunderbolt signal, the wireless device exchanges data with the wireless signal conversion IC.
[0034] By adopting the above technical solution, after the wireless signal conversion IC receives and resets the second millimeter wave transmission signal into the second USB-Thunderbolt signal, the wireless signal conversion IC exchanges data with the wireless device based on the second USB-Thunderbolt signal. Thus, the reverse reception of signals is realized.
[0035] Preferably, the first millimeter wave transmission signal is transmitted in a wireless manner, comprising:
[0036] The first millimeter wave transmission signal is transmitted by radio waves with a frequency of 30-300 GHz.
[0037] By adopting the above technical solution, the radio waves with a frequency of 30-300 GHz are the frequency range of the transmittable millimeter waves.
[0038] In a second aspect, the application provides a system for transmitting high-frequency signals based on millimeter waves, which adopts the following technical solution:
[0039] A system for transmitting high-frequency signals based on millimeter waves, comprising:
[0040] A first transmission module for converting the USB-Thunderbolt signal output by the device through USB or Thunderbolt into a millimeter wave transmission signal through a Thunderbolt signal conversion IC, transmitting the millimeter wave transmission signal through a millimeter wave transmitter and a millimeter wave receiver, and resetting the millimeter wave transmission signal into a USB-Thunderbolt signal through a millimeter wave signal conversion IC, and separating the USB-Thunderbolt signal for use by a downstream device.
[0041] A second transmission module for converting the USB-Thunderbolt signal into a millimeter wave transmission signal through a millimeter wave signal conversion IC, transmitting the millimeter wave transmission signal through a millimeter wave transmitter and a millimeter wave receiver, and converting the millimeter wave transmission signal into a USB-Thunderbolt signal through a wireless signal conversion IC for transmission to the device.
[0042] A second transmission module for converting the USB-Thunderbolt signal into a millimeter wave transmission signal through a millimeter wave signal conversion IC, transmitting the millimeter wave transmission signal through a millimeter wave transmitter and a millimeter wave receiver, and converting the millimeter wave transmission signal into a USB-Thunderbolt signal through a wireless signal conversion IC for transmission to the device.
[0043] By adopting the technical scheme, the first transmission module first converts the USB-Thunderbolt signal output by the device into a millimeter wave transmission signal by using a USB or Thunderbolt signal conversion IC, then transmits the millimeter wave transmission signal by using a millimeter wave transmitter and a millimeter wave receiver, and then resets the millimeter wave transmission signal to the USB-Thunderbolt signal by using a millimeter wave signal conversion IC, and finally separates the USB-Thunderbolt signal to the downstream device for use, thereby realizing forward transmission of the signal. Then, the second transmission module converts the USB-Thunderbolt signal into a millimeter wave transmission signal by using a millimeter wave signal conversion IC, then transmits the millimeter wave transmission signal by using a millimeter wave transmitter and a millimeter wave receiver, and finally converts the millimeter wave transmission signal into a USB-Thunderbolt signal by using a wireless signal conversion IC for transmission to the device, thereby realizing reverse transmission of the signal. Thus, under the action of the first transmission module and the second transmission module, bidirectional transmission of the signal is completed.
[0044] In a third aspect, the application provides a system for transmitting high-frequency signals based on millimeter waves, which adopts the following technical scheme:
[0045] A device includes a memory, a processor, and a computer program stored in the memory and executable on the processor, and the processor implements the method for transmitting high-frequency signals based on millimeter waves when executing the computer program.
[0046] By adopting the technical scheme, the computer instructions of the method for transmitting high-frequency signals based on millimeter waves are generated and stored in the memory, so as to be loaded and executed by the processor, thereby making it convenient to use the terminal device made of the memory and the processor.
[0047] In a fourth aspect, the application provides a computer readable medium, which adopts the following technical scheme:
[0048] A computer readable medium stores a computer program, and the computer program is executed by a processor to implement the method for transmitting high-frequency signals based on millimeter waves.
[0049] By adopting the technical scheme, the computer instructions of the method for transmitting high-frequency signals based on millimeter waves are generated and stored in the computer readable medium, so as to be loaded and executed by the processor, thereby making it convenient to read and store the computer instructions through the computer readable medium.
[0050] In summary, the application has at least one of the following beneficial technical effects:
[0051] 1. When transmitting signals, first convert the first USB-Thunderbolt signal of the wireless device into a first millimeter wave transmission signal through the wireless signal conversion IC, and transmit wirelessly, then receive the first millimeter wave transmission signal through the millimeter wave signal conversion chip and reset it to the first USB-Thunderbolt signal, then send the first USB-Thunderbolt signal to the USB-Thunderbolt chip, and finally the USB-Thunderbolt chip distributes the first USB-Thunderbolt signal to different interfaces according to the signal type. Then, the millimeter wave transmission signal conversion chip converts the second USB-Thunderbolt signal to be sent into a second millimeter wave transmission signal and transmits wirelessly, and the USB-Thunderbolt chip sends the above-mentioned second USB-Thunderbolt signal to the wireless device, and the wireless device distributes the second USB-Thunderbolt signal to different data interfaces according to the signal type. Thus, bidirectional, long-distance lossless high-frequency full-load transmission of wireless signals is realized, USB-Thunderbolt signals are converted into millimeter waves, the advantages of millimeter wave transmission are used to improve the efficiency of signal transmission between devices, and the transmission length is improved, without considering the wire process, which has high practical value. BRIEF DESCRIPTION OF DRAWINGS
[0052] Figure 1 is a first flow chart of a method for transmitting high-frequency signals based on millimeter waves according to an embodiment of the present application.
[0053] Figure 2 is a second flow chart of a method for transmitting high-frequency signals based on millimeter waves according to an embodiment of the present application.
[0054] Figure 3 is a third flow chart of a method for transmitting high-frequency signals based on millimeter waves according to an embodiment of the present application.
[0055] Figure 4 is a fourth flow chart of a method for transmitting high-frequency signals based on millimeter waves according to an embodiment of the present application.
[0056] Figure 5 is a fifth flow chart of a method for transmitting high-frequency signals based on millimeter waves according to an embodiment of the present application.
[0057] Figure 6 is a module block diagram of a system for transmitting high-frequency signals based on millimeter waves according to an embodiment of the present application.
[0058] Figure 7 is an internal structure block diagram of a device for transmitting high-frequency signals based on millimeter waves according to an embodiment of the present application. DETAILED DESCRIPTION
[0059] The technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments of the present application. Based on the embodiments in the present application, all the other embodiments obtained by a person of ordinary skill in the art without creative work are within the protection scope of the present application.
[0060] The embodiments of the present application disclose a method for transmitting high-frequency signals based on millimeter waves. Referring to Figure 1 , the method comprises the following steps.
[0061] S10. The wireless device converts the first USB-Thunderbolt signal to be transmitted into a first millimeter wave transmission signal through a wireless signal conversion IC, transmits the first millimeter wave transmission signal in a wireless manner, and sends the first USB-Thunderbolt signal to the USB-Thunderbolt chip;
[0062] The first millimeter wave transmission signal is received and reset to the first USB-Thunderbolt signal through a millimeter wave signal conversion chip, and the first USB-Thunderbolt signal is sent to the USB-Thunderbolt chip, which is used for the USB-Thunderbolt chip to distribute to different interfaces according to the signal type of the first USB-Thunderbolt signal;
[0063] Or,
[0064] S20. The USB-Thunderbolt chip converts the second USB-Thunderbolt signal to be transmitted into a second millimeter wave transmission signal through the millimeter wave signal conversion chip, transmits the second millimeter wave transmission signal in a wireless manner, and sends the second USB-Thunderbolt signal to the wireless device;
[0065] The second millimeter wave transmission signal is received and reset to the second USB-Thunderbolt signal through a wireless signal conversion IC, and the second USB-Thunderbolt signal is sent to the wireless device, which is used for the wireless device to distribute to different data interfaces according to the signal type of the second USB-Thunderbolt signal.
[0066] Wherein, the transmission in a wireless signal is carried out in a 30-300GHz radio wave transmission.
[0067] Specifically, when transmitting the signal, the first USB-Thunderbolt signal of the wireless device is first converted into a first millimeter wave transmission signal by the wireless signal conversion IC, and transmitted wirelessly to the USB-Thunderbolt chip, and then the first millimeter wave transmission signal is received and reset to the first USB-Thunderbolt signal by the millimeter wave signal conversion chip, and then the first USB-Thunderbolt signal is sent to the USB-Thunderbolt chip, so that the USB-Thunderbolt chip distributes the first USB-Thunderbolt signal to different interfaces according to the signal type of the first USB-Thunderbolt signal. Next, the millimeter wave transmission signal conversion chip converts the second USB-Thunderbolt signal to be sent into a second millimeter wave transmission signal, and then the USB-Thunderbolt chip transmits the second millimeter wave transmission signal wirelessly, and sends the second USB-Thunderbolt signal to the wireless device, and the wireless device distributes the second USB-Thunderbolt signal to different data interfaces according to the signal type of the second USB-Thunderbolt signal. Thus, the bidirectional transmission of the signal is completed.
[0068] The effect is to realize high-frequency signal transmission between devices, convert high-frequency signals into millimeter waves for transmission during transmission, improve transmission efficiency, and transmission within a certain distance will not be greatly affected. In addition, the transmission of wireless signals is not limited by wire, and the flexibility of use is better.
[0069] Reference Figure 2 The first millimeter wave transmission signal is transmitted wirelessly, including:
[0070] The first millimeter wave transmission signal is wirelessly transmitted by the first millimeter wave transmitter,
[0071] The first millimeter wave transmission signal is received and reset to the first USB-Thunderbolt signal by the millimeter wave signal conversion chip, including:
[0072] The first millimeter wave transmission signal is received by the first millimeter wave receiver, and the first millimeter wave transmission signal is reset to the first USB-Thunderbolt signal.
[0073] Specifically, the first millimeter wave transmission signal is transmitted in a wireless manner, that is, the first millimeter wave transmission signal is wirelessly transmitted by the first millimeter wave generator. The first millimeter wave transmission signal is received and reset by the millimeter wave signal conversion chip, that is, the first millimeter wave is received and reset by the first millimeter wave receiver to the first USB-Thunderbolt signal, so as to realize wireless transmission of the first millimeter wave transmission signal, which is no longer limited by the wire and improves the use flexibility.
[0074] Referring to Figure 3 The second millimeter wave transmission signal is transmitted in a wireless manner, comprising:
[0075] The second millimeter wave transmission signal is wirelessly transmitted by the second millimeter wave transmitter,
[0076] The USB-Thunderbolt chip converts the second USB-Thunderbolt signal to be transmitted into the second millimeter wave transmission signal through the millimeter wave signal conversion chip, comprising:
[0077] The second millimeter wave transmission signal is received by the second millimeter wave receiver, and the second millimeter wave transmission signal is reset to the second USB-Thunderbolt signal.
[0078] Specifically, the second millimeter wave transmission signal is transmitted in a wireless manner, that is, the second millimeter wave transmission signal is wirelessly transmitted by the second millimeter wave transmitter. The second USB-Thunderbolt signal is converted into the second millimeter wave transmission signal by the millimeter wave signal conversion chip, that is, the second millimeter wave transmission signal is received and reset to the second USB-Thunderbolt signal by the second millimeter wave receiver, so as to complete the wireless transmission of the second millimeter wave transmission signal, realize the reverse wireless transmission of the signal, and improve the transmission efficiency.
[0079] Referring to Figure 4 The USB-Thunderbolt chip distributes the first USB-Thunderbolt signal to different interfaces according to the signal type of the first USB-Thunderbolt signal, comprising:
[0080] The USB-Thunderbolt signal is separated from the Data signal, the PCI Express signal and the DisplayPort signal by the IC USB / Thunderbolt and transmitted to the downstream device;
[0081] The wireless device distributes the second USB-Thunderbolt signal to different data interfaces according to the signal type of the second USB-Thunderbolt signal, comprising:
[0082] The wireless device exchanges data with the data interface.
[0083] Specifically, the IC USB / Thunderbolt separates the Data signal in the USB-Thunderbolt signal, the PCI Express signal and the DisplayPort signal, and transmits the separated signals to the downstream device and distributes them to different data interfaces for data exchange and return, so as to realize bidirectional transmission of signals.
[0084] Referring to Figure 5 The first millimeter wave transmission signal is received and reset as a first USB-Thunderbolt signal by a millimeter wave signal conversion chip, comprising:
[0085] At the current k-1 time, the initial millimeter wave electromagnetic signal data transmitted by the base station is detected to generate a corresponding initial electromagnetic wave signal representation vector;
[0086] According to the initial electromagnetic wave signal representation vector, the state of the millimeter wave electromagnetic signal corresponding to the next k time immediately after the k-1 time is predicted, and the state of the millimeter wave electromagnetic signal is corrected according to the external environmental factors of the base station signal transmission, so as to obtain the corresponding signal correction amount;
[0087] At the k time, the actual millimeter wave electromagnetic signal transmitted by the base station is detected, and the actual millimeter wave electromagnetic signal is corrected according to the signal correction amount, so as to obtain the corrected millimeter wave electromagnetic signal state;
[0088] According to the millimeter wave electromagnetic signal state obtained by the above prediction and the corrected millimeter wave electromagnetic signal state, the actual millimeter wave electromagnetic signal is updated, so as to repair the loss of the millimeter wave electromagnetic signal in the transmission process.
[0089] The loss of millimeter wave in free space transmission path includes:
[0090] One limitation of millimeter wave radio frequency (RF) communication is the free space path loss (FSPL) of direct line-of-sight communication between two antennas. FSPL is inversely proportional to the square of the wavelength and is given by the following equation:
[0091]
[0092] Where:
[0093] d is the distance between the two antennas, in meters, and λ is the wavelength, in meters.
[0094] As can be seen from this formula, a 10-fold reduction in wavelength results in a 100-fold increase in free space path loss. Therefore, the attenuation at millimeter wavelengths is many orders of magnitude higher than that at more traditional communication frequencies, such as FM radio or Wi-Fi.
[0095] In radio frequency communication calculations, this loss equation is usually converted to a result in dB, with frequency in GHz and distance in kilometers. After this conversion, the equation becomes:
[0096] FSPL (dB) = 20 * log 10 (d) + 20 * log 10 (f) + 92.45.
[0097] Specifically, the Data in the USB-Thunderbolt signal, the PCI Express signal is converted into a USB-Thunderbolt signal transmission through the USB / Thunderbolt IC; the USB-Thunderbolt signal is converted into a millimeter wave transmission signal through the millimeter wave signal conversion IC; the millimeter wave transmission signal is emitted by the millimeter wave transmitter to emit high-frequency electric waves, the high-frequency electric waves are 30-300GHz electric waves, the high-frequency electric waves are transmitted with the millimeter wave receiver of the millimeter wave transmission end and the high-frequency electric waves are converted into millimeter wave signals, and the millimeter wave signals are reset to USB / Thunderbolt signals through the USB / Thunderbolt signal conversion IC. This is the signal transmission process of the device receiving the above high-frequency signal, based on millimeter waves to improve transmission efficiency and to a certain extent to improve the transmission distance.
[0098] The wave band range of millimeter waves is 30-300GHz, located between the ultra-high frequency band and the far infrared band, and the lower part of the far infrared band is the terahertz band. The wavelength of the electric wave of this frequency band is 10mm to 1mm; this frequency band is called millimeter wave.
[0099] Millimeter wave transmission has the following advantages: wide bandwidth, high data rate, low delay, small antenna, limited range, limited reflection and penetration, and improved resolution; there are also limitations, such as high path loss of free space, significant atmospheric attenuation, and problems such as diffuse reflection, limited penetration, etc.
[0100] After the wireless signal conversion IC receives and resets the second millimeter wave transmission signal to the second USB-Thunderbolt signal, it includes:
[0101] Based on the second USB-Thunderbolt signal, the wireless device exchanges data with the wireless signal conversion IC.
[0102] Specifically, after the wireless signal conversion IC receives and resets the second millimeter wave transmission signal to the second USB-Thunderbolt signal, the wireless signal conversion IC exchanges data with the wireless device based on the second USB-Thunderbolt signal. Thus, the reverse receiving process of the signal is realized.
[0103] In an embodiment, a system for transmitting high-frequency signals based on millimeter waves is provided, referring to Figure 6 , comprising:
[0104] The first transmission module 10 is used for converting the USB-Thunderbolt signals output by the device into millimeter wave transmission signals through USB or
[0105] Thunderbolt signal conversion IC, transmitting the millimeter wave transmission signals through a millimeter wave transmitter and a millimeter wave receiver, and resetting the millimeter wave transmission signals into USB-Thunderbolt signals through a millimeter wave signal conversion IC, and separating the USB-Thunderbolt signals for use by downstream devices.
[0106] The second transmission module 20 is used for converting the USB-Thunderbolt signals into millimeter wave signals through a millimeter wave signal conversion IC, transmitting the millimeter wave signals through a millimeter wave transmitter and a millimeter wave receiver, and converting the millimeter wave signals into USB-Thunderbolt signals through a wireless signal conversion IC for transmission to the device.
[0107] The first transmission module 10 is used for converting the USB-Thunderbolt signals output by the device into millimeter wave transmission signals through USB or
[0108] The specific limitation of the system based on millimeter wave transmission of high frequency signals can refer to the limitation of the system based on millimeter wave transmission of high frequency signals described above, which will not be repeated here. The modules in the system based on millimeter wave transmission of high frequency signals described above can be realized by software, hardware and their combination in whole or in part. The modules described above can be embedded in or independent of the processor in the device in hardware form, or stored in the memory in the device in software form, so that the processor can call and execute the operations corresponding to the above modules.
[0109] In an embodiment, a device, which can be a server, is provided, and its internal structure diagram can be shown as Figure 7 The device includes a processor, a memory, a network interface and a database connected by a system bus. The processor of the device is used to provide computing and control capabilities. The memory of the device includes a non-volatile medium and an internal memory. The non-volatile medium stores an operating system, a computer program and a database. The internal memory provides an environment for the operation of the operating system and the computer program in the non-volatile medium. The database of the device is used for data related to a method based on millimeter wave transmission of high frequency signals. The network interface of the device is used for communication connection with external terminals through a network. The computer program is executed by the processor to implement a method based on millimeter wave transmission of high frequency signals.
[0110] In an embodiment, a device is provided, including a memory, a processor and a computer program stored in the memory and executable on the processor. The processor implements the method based on millimeter wave transmission of high frequency signals in the above embodiment when executing the computer program, such as Figure 1 In an embodiment, a device is provided, including a memory, a processor and a computer program stored in the memory and executable on the processor. The processor implements the method based on millimeter wave transmission of high frequency signals in the above embodiment when executing the computer program, such as Figure 6 In an embodiment, a device is provided, including a memory, a processor and a computer program stored in the memory and executable on the processor. The processor implements the method based on millimeter wave transmission of high frequency signals in the above embodiment when executing the computer program, such as
[0111] In an embodiment, a computer readable medium is provided, which stores a computer program. The computer program is executed by the processor to implement the method based on millimeter wave transmission of high frequency signals in the above embodiment, such as Figure 1 In an embodiment, a computer readable medium is provided, which stores a computer program. The computer program is executed by the processor to implement the method based on millimeter wave transmission of high frequency signals in the above embodiment, such as Figure 6 In an embodiment, a computer readable medium is provided, which stores a computer program. The computer program is executed by the processor to implement the method based on millimeter wave transmission of high frequency signals in the above embodiment, such as
[0112] Those skilled in the art can understand that all or part of the processes in the above-mentioned embodiment methods can be completed by instructing the relevant hardware through a computer program, and the computer program can be stored in a non-volatile computer readable medium. When the computer program is executed, the processes of the above-mentioned embodiments of the methods can be included. Any reference to memory, storage, database or other medium used in the embodiments of the present application can include non-volatile and / or volatile memory. Non-volatile memory can include read-only memory (RON), programmable RON (PRON), electrically programmable RON (EPRON), electrically erasable programmable RON (EEPRON) or flash memory. Volatile memory can include random access memory (RAN) or external cache memory. As an illustration but not limitation, RAN is available in various forms, such as static RAN (SRAN), dynamic RAN (DRAN), synchronous DRAN (SDRAN), double data rate SDRAN (DDR SDRAN), enhanced SDRAN (ESDRAN), synchronous link (SyNchliNk) DRAN (SLDRAN), memory bus (RaNbus) direct RAN (RDRAN), direct memory bus dynamic RAN (DRDRAN), and memory bus dynamic RAN (RDRAN).
[0113] Those skilled in the art can clearly understand that, for the convenience and brevity of description, only the above-mentioned division of functional units and modules is exemplified, and in actual application, the above-mentioned functions can be completed by different functional units and modules according to needs, that is, the internal structure of the device is divided into different functional units or modules to complete all or part of the functions described above.
[0114] The above embodiments are only used to illustrate the technical solutions of the present application, but not limit it; although the present application has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that the technical solutions recorded in the foregoing embodiments can be modified, or some technical features can be replaced by equivalents; and these modifications or replacements do not make the essence of the corresponding technical solutions deviate from the spirit and scope of the technical solutions of the embodiments of the present application, and should be included in the protection scope of the present application.
Claims
1. A method of transmitting a high frequency signal based on millimeter waves, characterized by, The application relates to a USB-Thunderbolt signal transmission method and device. The wireless device converts a first USB-Thunderbolt signal to be transmitted into a first millimeter wave transmission signal through a wireless signal conversion IC, and transmits the first millimeter wave transmission signal to a USB-Thunderbolt chip in a wireless mode; The first millimeter wave transmission signal is received and reset into the first USB-Thunderbolt signal through a millimeter wave signal conversion chip, and the first USB-Thunderbolt signal is transmitted to the USB-Thunderbolt chip, so that the USB-Thunderbolt chip distributes different interfaces according to the signal type of the first USB-Thunderbolt signal; The first millimeter wave transmission signal is transmitted in a wireless mode, which comprises transmitting the first millimeter wave transmission signal through a first millimeter wave transmitter; the first millimeter wave transmission signal is received and reset into the first USB-Thunderbolt signal through a first millimeter wave receiver; The USB-Thunderbolt chip distributes different interfaces according to the signal type of the first USB-Thunderbolt signal, which comprises separating and transmitting a Data signal, a PCIExpress signal and a DisplayPort signal to a downstream device through an IC USB / Thunderbolt.
2. The method of claim 1, wherein, The first millimeter wave transmission signal is transmitted in a wireless mode, which comprises transmitting the first millimeter wave transmission signal through a 30-300GHz radio wave.
3. A method of transmitting a high frequency signal based on millimeter waves, characterized by, The application relates to a USB-Thunderbolt signal transmission method and device. The USB-Thunderbolt chip converts a second USB-Thunderbolt signal to be transmitted into a second millimeter wave transmission signal through a millimeter wave signal conversion chip, and transmits the second millimeter wave transmission signal to a wireless device in a wireless mode; The second millimeter wave transmission signal is received and reset into the second USB-Thunderbolt signal through a wireless signal conversion IC, and the second USB-Thunderbolt signal is transmitted to the wireless device, so that the wireless device distributes different data interfaces according to the signal type of the second USB-Thunderbolt signal; The wireless transmission of the second millimeter wave transmission signal includes wireless sending of the second millimeter wave transmission signal by a second millimeter wave transmitter; and the receiving and resetting of the second millimeter wave transmission signal into the second USB-Thunderbolt signal by the wireless signal conversion IC includes receiving the second millimeter wave transmission signal by a second millimeter wave receiver and resetting the second millimeter wave transmission signal into the second USB-Thunderbolt signal. The wireless device distributes the second USB-Thunderbolt signal to different data interfaces according to the signal type of the second USB-Thunderbolt signal, and the wireless device exchanges data with the data interfaces.
4. The method of claim 3, wherein, After the receiving and resetting of the second millimeter wave transmission signal into the second USB-Thunderbolt signal by the wireless signal conversion IC, the wireless device exchanges data with the wireless signal conversion IC based on the second USB-Thunderbolt signal.
5. A system for transmitting high frequency signals based on millimeter waves, characterized by The method comprises the following steps: The first transmission module is configured to convert the first USB-Thunderbolt signal output by the wireless device into a first millimeter wave transmission signal by a wireless signal conversion IC, transmit the first millimeter wave transmission signal by a millimeter wave transmitter and a millimeter wave receiver, and receive and reset the first millimeter wave transmission signal into a first USB-Thunderbolt signal by a millimeter wave signal conversion chip, and separate the first USB-Thunderbolt signal to a downstream device for use. The second transmission module is configured to convert a second USB-Thunderbolt signal into a second millimeter wave transmission signal by a millimeter wave signal conversion chip, transmit the second millimeter wave transmission signal by a millimeter wave transmitter and a millimeter wave receiver, and receive and reset the second millimeter wave transmission signal into a second USB-Thunderbolt signal by a wireless signal conversion IC to transmit to a wireless device.
6. A computer device comprising a memory, a processor, and a computer program stored in the memory and executable on the processor, characterized in that, The processor executes the computer program to implement the method for transmitting high-frequency signals based on millimeter waves according to any one of claims 1 to 4.
7. A computer readable medium storing a computer program, characterized in that, The computer program is executed by the processor to implement the method for transmitting high-frequency signals based on millimeter waves according to any one of claims 1 to 4.
Citation Information
Patent Citations
Mobile terminal
CN110113450A
Data transmission method and device, mobile terminal and storage medium
CN113038447A