Multi-computer switching device with set imaging display function
By designing a multi-computer switching device with a setting imaging display function, and utilizing signal distribution and processing circuits, engineers can directly judge the correctness of the displayed content from the setting imaging computer, solving the problem of inconvenient setting in the prior art, improving setting efficiency and reducing costs.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- NUETEQ TECH
- Filing Date
- 2025-05-19
- Publication Date
- 2026-05-19
AI Technical Summary
Existing multi-computer switching devices are not convenient enough for setting up images displayed on screen walls. Engineers need to confirm the correctness of the displayed content inside the building, which increases the difficulty of setup.
Design a multi-computer switching device with setting imaging display function. Through signal distribution circuit and processing circuit, the device can directly judge whether the setting content is correct by the image displayed by the setting imaging computer using the setting mode and display mode of the setting imaging computer, thus simplifying the setting process for engineers.
It improves the ease of setting up multi-computer switching devices, reduces the need for engineers to check display content inside buildings, lowers costs, and enhances the overall look and feel.
Smart Images

Figure CN224263617U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to a switching device, and more particularly to a multi-computer switching device with a setting imaging display function. Background Technology
[0002] Existing multi-computer switching devices used in video walls require engineers to configure the device based on the images displayed on the video wall. For example, in a video wall consisting of 3x2 display screens, the top 2x2 screens display an advertising image source, while the bottom 1x2 screen displays a message image source.
[0003] However, engineers typically need to verify, from within a building opposite the screen wall, whether the image displayed on the screen wall corresponds to the settings of the multi-computer switching device. This increases the inconvenience for engineers in configuring the images displayed on the screen wall.
[0004] Therefore, the applicant believes that the above-mentioned defects can be improved. So, the applicant has devoted himself to research and applied scientific principles, and finally proposed a utility model with a reasonable design that effectively improves the above-mentioned defects. Utility Model Content
[0005] The present invention provides a multi-computer switching device with a setting imaging display function, which can effectively improve the defects that may occur in existing multi-computer switching devices.
[0006] One embodiment of this utility model discloses a multi-computer switching device with a set imaging display function, used to connect M display devices, N computer hosts, and a set imaging computer. The multi-computer switching device includes: a signal distribution circuit connected to S input / output ports, the signal distribution circuit being able to connect the N computer hosts and the set imaging computer through a portion of the S input / output ports to receive multiple image signals from the N computer hosts, and the signal distribution circuit being able to connect the M display devices through the remaining portion of the S input / output ports; and a processing circuit electrically coupled to the signal. The distribution circuit includes a setting imaging computer with a setting mode and a display mode. When the setting imaging computer is in the setting mode, it can output an input command. When the setting imaging computer is in the display mode, the processing circuit is configured to receive the input command from the setting imaging computer through S input / output ports. The processing circuit generates a screen setting signal based on the input command to control the signal distribution circuit to distribute the image signal according to a signal configuration mode, thereby controlling M display devices and the setting imaging computer to simultaneously display the screen according to their respective signal configuration modes. Here, S, M, and N are positive integers not less than 0.
[0007] Optionally, the multi-computer switching device includes: a control transmission box electrically coupled between a setting imaging computer and S input / output ports; wherein the control transmission box has an amplification function to amplify the signal strength of the input command; N signal transmission boxes electrically coupled between N computer hosts and S input / output ports respectively; wherein each of the N signal transmission boxes has an amplification function to amplify the image signal output by the N signal transmission boxes; and M signal receiving boxes electrically coupled between M display devices and S input / output ports respectively, to drive the M display devices to display images according to the signal configuration mode.
[0008] Optionally, the number of S input / output ports is greater than the number of M display devices plus the number of N computer hosts.
[0009] Optionally, the signal distribution circuit can control at least two adjacent display devices among the M display devices to display the image signal of a computer host according to the signal configuration mode.
[0010] Optionally, the signal distribution circuit includes an adjustment circuit that receives multiple image signals through S input / output ports; wherein, the adjustment circuit can divide the image signal of a computer host into multiple sub-image signals according to the signal configuration mode, and transmit the multiple sub-image signals to at least two adjacent display devices among M display devices to image the image signal of a computer host.
[0011] Optionally, the adjustment circuit can reverse some of the sub-image signals of multiple sub-image signals according to the signal configuration mode, and transmit the unreversed multiple sub-image signals and the reversed multiple sub-image signals to two or more adjacent display devices among the M display devices to image a computer host image signal.
[0012] Optionally, the adjustment circuit can adjust the resolution of multiple sub-image signals to the same size so that two or more adjacent display devices among the M display devices can image the image signal of a computer host.
[0013] Optionally, when the number of M display devices is the same as the number of N computer hosts, the signal distribution circuit can control the M display devices to display the image signals of the N computer hosts respectively according to the signal configuration mode.
[0014] Optionally, the signal distribution circuit includes an adjustment circuit that receives multiple image signals through S input / output ports and adjusts the resolution of the multiple image signals so that M display devices display multiple image signals with the same resolution.
[0015] Optionally, the M display devices are arranged in a matrix to form at least one screen wall.
[0016] In summary, the multi-computer switching device with setting imaging display function disclosed in this utility model embodiment can achieve the following technical solution: "the processing circuit is configured to receive input instructions from the setting imaging computer through the S input / output ports, and the processing circuit generates a screen setting signal according to the input instructions to control the signal distribution circuit to distribute the image signal according to a signal configuration mode, so as to control the M display devices and the setting imaging computer to simultaneously display the screen according to the signal configuration mode." This allows engineers to directly determine whether the corresponding setting content is correct from the image displayed by the setting imaging computer, thereby increasing the convenience of setting the multi-computer switching device.
[0017] Furthermore, the multi-computer switching device with setting imaging display function disclosed in this utility model embodiment can enable engineers to directly set from a setting imaging computer and view whether the displayed image and the corresponding setting content are correct through the technical solution of "setting imaging computer having a setting mode and a display mode", thereby increasing the convenience of setting multi-computer switching device and reducing the use of a display device to reduce costs.
[0018] To further understand the features and technical content of this utility model, please refer to the following detailed description and drawings of this utility model. However, these descriptions and drawings are only used to illustrate this utility model and are not intended to limit the scope of protection of this utility model in any way. Attached Figure Description
[0019] Figure 1 This is a block diagram of a multi-computer switching device according to Embodiment 1 of this utility model.
[0020] Figure 2 This is a block diagram of a multi-computer switching device according to Embodiment 2 of this utility model.
[0021] Figure 3 for Figure 2 A schematic diagram showing images displayed on four display devices.
[0022] Figure 4 for Figure 2 A schematic diagram of four display devices displaying images in another embodiment.
[0023] Figure 5 for Figure 2 A schematic diagram of four display devices displaying images according to another embodiment.
[0024] Figure 6 This is a block diagram of a multi-computer switching device according to Embodiment 2 of this utility model.
[0025] Figure 7 This is a block diagram of a multi-computer switching device according to Embodiment 3 of this utility model. Detailed Implementation
[0026] The following specific embodiments illustrate the implementation of the "multi-computer switching device with setting imaging display function" disclosed in this utility model. Those skilled in the art can understand the advantages and effects of this utility model from the content disclosed in this specification. This utility model can be implemented or applied through other different specific embodiments, and various details in this specification can also be modified and changed based on different viewpoints and applications without departing from the concept of this utility model. Furthermore, the accompanying drawings of this utility model are for simple illustrative purposes only and are not depictions of actual dimensions, as stated in advance. The following embodiments will further describe the relevant technical content of this utility model in detail, but the disclosed content is not intended to limit the scope of protection of this utility model.
[0027] It should be understood that while terms such as "first," "second," and "third" may be used in this document to describe various components or signals, these components or signals should not be limited by these terms. These terms are primarily used to distinguish one component from another, or one signal from another. Furthermore, the term "or" as used herein should, as appropriate, include any combination of one or more of the related listed items.
[0028] [Example 1]
[0029] Please see Figure 1 This is an embodiment of the present invention, which discloses a multi-computer switching device 100 with a set imaging display function. The multi-computer switching device 100 is used to connect M display devices (DPs). 1,1 ~DP P,Q (For example, PxQ display devices DP) 1,1 ~DP P,Q The system includes N computer hosts CH1~CHN and a setting imaging computer SIC. The multi-computer switching device 100 allocates images from the N computer hosts CH1~CHN to M display devices DP through the setting of the setting imaging computer SIC. 1,1 ~DP P,Q The corresponding image is displayed, and at the same time, the multi-computer switching device 100 generates an image allocation display signal and transmits the image allocation display signal to the setting imaging computer SIC, so that the engineer can directly know whether the corresponding setting content is correct from the image displayed by the setting imaging computer SIC, thereby increasing the convenience of setting the multi-computer switching device 100.
[0030] It should be noted that M of the aforementioned display devices DP 1,1~DP P,Q In this embodiment, the display devices are arranged in a matrix to form a screen wall DW (i.e., P x Q display devices DP). 1,1 ~DP P,Q However, this utility model is not limited thereto. For example, M of the aforementioned display devices DP 1,1 ~DP P,Q It can also be arranged into multiple screen walls or screen walls of any shape according to actual design needs.
[0031] It should be noted that, for ease of understanding of this embodiment, the drawings only illustrate the structure and connection relationships of the components of the multi-computer switching device 100, but this utility model is not limited to the drawings. The following will describe each component of the multi-computer switching device 100 and its connection relationships.
[0032] The multi-computer switching device 100 includes a signal distribution circuit 1, a connector circuit 2 electrically coupled to the signal distribution circuit 1, and a processing circuit 3 electrically coupled to the signal distribution circuit 1. The connector circuit 2 includes S input / output ports PT1~PTS. The signal distribution circuit 1 can connect N computer hosts CH1~CHN to the designated imaging computer SIC through portions of the S input / output ports PT1~PTS to receive multiple image signals from the N computer hosts CH1~CHN, and the signal distribution circuit 1 can connect M display devices DP through the remaining portions of the S input / output ports PT1~PTS. 1,1 ~DP P,Q .
[0033] Specifically, the S input / output ports PT1~PTS are simultaneously connected to the M display devices DP. 1,1 ~DP P,Q The computer hosts CH1~CHN and the imaging computer SIC. M display devices DP. 1,1 ~DP P,Q After the N computer hosts CH1~CHN and the designated imaging computer SIC are connected to the signal distribution circuit 1 through the S input / output ports PT1~PTS, the M display devices DP 1,1 ~DP P,Q Each of the N computer hosts CH1~CHN and the imaging computer SIC transmits an identification code to the processing circuit 3 through the signal distribution circuit 1. The processing circuit 3 receives the identification code and determines that the device connected to the signal distribution circuit 1 is an input device or an output device.
[0034] In this embodiment, the processing circuit 3 receives M display devices DP.1,1 ~DP P,Q After the N computer hosts CH1~CHN and the designated imaging computer SIC each transmit the identification code, the processing circuit 3 determines that the N computer hosts CH1~CHN are the input devices, and the M display devices DP 1,1 ~DP P,Q The output device is defined as follows. The imaging computer (SIC) serves as both the input device and the output device.
[0035] As described above, the signal distribution circuit 1 is connected to the N computer hosts CH1~CHN (which are the input devices) via the S input / output ports PT1~PTS, and to the M display devices DP (which are the output devices). 1,1 ~DP P,Q The imaging computer SIC, which connects both the input device and the output device, allows the multi-computer switching device 100 to allocate and connect the S input / output ports PT1~PTS to the M display devices DP according to actual wiring requirements. 1,1 ~DP P,Q The N computer hosts CH1~CHN and the set imaging computer SIC are used to increase the convenience of online configuration.
[0036] It should be noted that S, M, and N are positive integers not less than 0. Furthermore, the number of S input / output ports PT1~PTS is greater than the number of M display devices DP. 1,1 ~DP P,Q The number of S input / output ports PT1-PTS, plus the number of N computer hosts CH1~CHN and the number of the set imaging computer SIC, ensures that M display devices DP can be connected simultaneously to the S input / output ports PT1~PTS. 1,1 ~DP P,Q N computer hosts CH1~CHN and the configured imaging computer SIC. Furthermore, M display devices DP. 1,1 ~DP P,Q The number is greater than the number of N computer hosts CH1~CHN, to ensure that M display devices DP 1,1 ~DP P,Q It can display multiple image signals from N computer hosts CH1~CHN.
[0037] The setting imaging computer (SIC) has a setting mode and a display mode. When the setting imaging computer (SIC) is in the setting mode, it can output an input command. After the setting imaging computer (SIC) is in the setting mode, it switches to the display mode. The processing circuit 3 is configured to receive the input command from the setting imaging computer (SIC) through one of the S input / output ports PT1~PTS, and the processing circuit 3 generates a screen setting signal according to the input command to control the signal distribution circuit 1 to distribute the image signal according to a signal configuration mode, thereby controlling the M display devices (DPs). 1,1 ~DP P,Q Simultaneously with the configured imaging computer (SIC), each displays an image according to the signal configuration mode.
[0038] In detail, the imaging computer SIC has multiple built-in signal configuration modes. Engineers can select one of these signal configuration modes through the imaging computer SIC to configure M display devices DP. 1,1 ~DP P,Q The image display mode is configured so that the imaging computer SIC outputs the input command in the setting mode. The processing circuit 3 receives the input command and generates the corresponding screen setting signal, and the processing circuit 3 transmits the screen setting signal to the signal distribution circuit 1. The signal distribution circuit 1 determines the corresponding signal configuration mode based on the screen setting signal.
[0039] Subsequently, the signal distribution circuit 1 distributes the image signals from N computer hosts CH1~CHN to M display devices DP according to the signal configuration mode. 1,1 ~DP P,Q And generate the image allocation display signal and transmit it to the designated imaging computer SIC, so that M of the display devices DP 1,1 ~DP P,Q Simultaneously with the setting imaging computer SIC, the screen is displayed according to the signal configuration mode. Therefore, the engineer can directly determine whether the corresponding settings are correct from the image displayed by the setting imaging computer SIC in the display mode, thus increasing the convenience of setting the multi-computer switching device 100.
[0040] Furthermore, the signal distribution circuit 1 includes an adjustment circuit 11. The adjustment circuit 11 is electrically coupled to the processing circuit 3. The adjustment circuit 11 receives image signals from N computer hosts CH1~CHN, adjusts the image signals of the N computer hosts CH1~CHN according to the signal configuration mode, and transmits the adjusted image signals to M display devices DP. 1,1 ~DP P,Q Display image.
[0041] It should be noted that, for ease of understanding of this embodiment, the following will describe in detail how the signal distribution circuit 1, in conjunction with the adjustment circuit 11, provides the image signals from N computer hosts CH1~CHN to M display devices DP according to the signal configuration mode. 1,1 ~DP P,Q Displays various states of the image.
[0042] [Example 2]
[0043] Please see Figures 2 to 4 As shown, this is Embodiment Two of the present invention. Since this embodiment is similar to Embodiment One described above, the similarities between the two embodiments will not be repeated. The differences between this embodiment and Embodiment One are roughly explained as follows:
[0044] like Figures 2 to 4 As shown, when M of the aforementioned display devices DP 1,1 ~DP P,Q When the number is the same as the number of N computer hosts CH1~CHN, the signal distribution circuit 1 can control M display devices DP according to the signal configuration mode. 1,1 ~DP P,Q The image signals of N computer hosts CH1~CHN are displayed respectively.
[0045] like Figure 2 and Figure 3 As shown, in this embodiment, M of the aforementioned display devices DP 1,1 ~DP P,Q The screen wall (DW) comprises a first display device DP1, a second display device DP2, a third display device DP3, and a fourth display device DP4 arranged in a matrix. N computer hosts CH1~CHN, including a first computer host CH1, a second computer host CH2, a third computer host CH3, and a fourth computer host CH4, provide the image signals.
[0046] The S input / output ports PT1~PTS include a first input / output port PT1, a second input / output port PT2, a third input / output port PT3, a fourth input / output port PT4, a fifth input / output port PT5, a sixth input / output port PT6, a seventh input / output port PT7, an eighth input / output port PT8, and a ninth input / output port PT9. The first input / output port PT1 is electrically coupled to the setting imaging computer SIC. The second input / output ports PT2 to the fifth input / output port PT5 are electrically coupled to the first computer host CH1 to the fourth computer host CH4. The sixth input / output port PT6 to the ninth input / output port PT9 are electrically coupled to the first display device DP1 to the fourth display device DP4.
[0047] As described above, when the image signals corresponding to the first computer host CH1 to the second computer host CH2 are sequentially the numbers 1 to 4, the processing circuit 3 can drive the signal distribution circuit 1 to control the first display device DP1 to the fourth display device to sequentially display the images of the numbers 1 to 4 according to the signal configuration mode.
[0048] It should be noted that when M of the aforementioned display devices DP 1,1 ~DP P,Q When it is necessary to display the image signals of multiple computer hosts CH1~CHN (N), the adjustment circuit 11 receives the multiple image signals through S input / output ports PT1~PTS and adjusts the resolution of the multiple image signals to enable the M display devices DP... 1,1 ~DP P,Q Displaying multiple image signals of the same resolution enhances the overall visual experience.
[0049] In this embodiment, the adjustment circuit 11 receives the image signals of numbers 1 to 4 from the first computer host CH1 to the fourth computer host CH4, and the adjustment circuit 11 first adjusts the resolution of the image signals of numbers 1 to 4, and then drives the first display device DP1 to the fourth display device DP4 to display the images of numbers 1 to 4, so that the images of numbers 1 to 4 displayed by the screen wall DW have the same resolution, thereby improving the overall viewing experience.
[0050] like Figure 2 and Figure 4 As shown, the signal distribution circuit 1 can control M display devices DP according to the signal configuration mode. 1,1 ~DP P,QAt least two adjacent display devices DP1 and DP3 display the image signal of a computer host CH2.
[0051] It should be noted that the adjustment circuit 11 can divide the image signal of one computer host CH2 into multiple sub-image signals according to the signal configuration mode, and the adjustment circuit 11 transmits the multiple sub-image signals to M display devices DP. 1,1 ~DP P,Q At least two adjacent display devices DP1, DP3 are used to image the image signal of a computer host CH2.
[0052] In this embodiment, the signal distribution circuit 1 controls the adjacent first display device DP1 and third display device DP3 to display the image signal of the number 2 of the second computer host CH2 according to the signal configuration mode. The adjustment circuit 11, according to the signal configuration mode, segments the image signal of the number 2 of the second computer host CH2 into a first sub-image signal (i.e., the upper half of the image of the number 2) and a second sub-image signal (i.e., the lower half of the image of the number 2), and the adjustment circuit 11 transmits the first sub-image signal and the second sub-image signal to the first display device DP1 and the third display device DP3 respectively, to display the image signal of the number 2 of the second computer host CH2.
[0053] like Figure 2 and Figure 5 As shown, it should be noted that in some applications of the DW (Display Wall), due to the screen bezel design, the bottommost display devices (i.e., the third display device DP3 and the fourth display device DP4) need to be placed in reverse. Therefore, the images displayed by the bottommost display devices need to be reversed to avoid the DW displaying incorrect images. Specifically, the adjustment circuit 11 can reverse a portion of the sub-image signals according to the signal configuration mode, and transmit the unreversed sub-image signals and the reversed sub-image signals to the M display devices DP4. 1,1 ~DP P,Q Two or more adjacent display devices (i.e., the first display device DP1 to the fourth display device DP4) are used to image the image signal of one computer host CH1 to CH4.
[0054] In this embodiment, the first display device DP1 to the fourth display device DP4 display the O-shaped image signal of the first computer host CH1. When the third display device DP3 and the fourth display device DP4 are placed opposite each other, the adjustment circuit 11 reverses the sub-image signals to be displayed by the third display device DP3 and the fourth display device DP4 according to the signal configuration mode before transmitting the sub-image signals to the third display device DP3 and the fourth display device DP4.
[0055] It should be noted that the adjustment circuit 11 can adjust the resolution of multiple sub-image signals to the same size, so that the M display devices DP 1,1 ~DP P,Q Two or more adjacent display devices DP1 to DP4 image the image signal of a computer host CH1. In this embodiment, the adjustment circuit 11 can adjust the resolution of the sub-image signals displayed by the first display device DP1 to the fourth display device DP4 to the same size to improve the overall viewing experience.
[0056] [Example 3]
[0057] Please see Figure 6 As shown, this is Embodiment 3 of the present invention. Since this embodiment is similar to the above embodiments, the similarities between this embodiment and the above embodiments will not be repeated. The differences between this embodiment and the above embodiments are roughly explained as follows:
[0058] like Figure 6 As shown, in this embodiment, the multi-computer switching device 100 further includes a control transmission box CTX, four signal transmission boxes TX1~TX4, and four signal receiving boxes RX1~RX4. The control transmission box CTX is electrically coupled between the setting imaging computer SIC and the input / output ports PT1~PT9. The control transmission box CTX has an amplification function to amplify the signal strength of the input command.
[0059] It should be noted that the setting imaging computer SIC can increase the signal strength of the input command through the control transmission box CTX, thereby increasing the transmission distance of the input command and increasing the distance between the setting imaging computer SIC and the signal distribution circuit 1 to facilitate the setting of the multi-computer switching device 100.
[0060] The four signal transmission boxes TX1~TX4 are electrically coupled between the four computer hosts CH1~CH4 and the input / output ports PT1~PT9, respectively. Each of the four signal transmission boxes TX1~TX4 has an amplification function to amplify the image signal output by the four signal transmission boxes TX1~TX4, thereby increasing the transmission distance of the image signal and thus increasing the distance between the computer hosts CH1~CH4 and the signal distribution circuit 1, thus facilitating the configuration of the multi-computer switching device 100.
[0061] It should be noted that the number of signal transmission boxes TX1~TX4 corresponds to the number of computer hosts CH1~CH4. Therefore, when the number of computer hosts CH1~CH4 is N, the number of signal transmission boxes TX1~TX4 also corresponds to N.
[0062] The four signal receiving boxes RX1~RX4 are electrically coupled between the four display devices DP1~DP4 and the input / output ports PT1~PT9, respectively, to drive the four display devices DP1~DP4 to display images according to the signal configuration mode. It should be noted that the four signal receiving boxes DP1~DP4 receive the image allocation display signal and transmit the image allocation display signal to the four display devices DP1~DP4, serving as a signal receiving buffer for the four display devices DP1~DP4.
[0063] It should be noted that the number of signal receiving boxes RX1~RX4 corresponds to the number of display devices DP1~DP4. Therefore, when the number of display devices DP1~DP4 is M, the number of signal receiving boxes RX1~RX4 also corresponds to M.
[0064] [Example 4]
[0065] Please see Figure 7 As shown, this is Embodiment 4 of the present invention. Since this embodiment is similar to the embodiments described above, the similarities between this embodiment and the embodiments described above will not be repeated. The differences between this embodiment and the embodiments described above are roughly explained as follows:
[0066] like Figure 7 As shown, in this embodiment, there are M display devices DP 1,1 ~DP P,Q (like Figure 1As shown, three screen walls can be arranged, namely a first screen wall DW1, a second screen wall DW2, and a third screen wall DW3. The first screen wall DW1 is a 2x2 screen wall composed of four display devices DP1-DP4 arranged in a matrix. The second screen wall DW2 uses a large-sized display device DP5. The third screen wall DW3 is a 2x3 screen wall composed of six display devices DP6-DP11 arranged in a matrix, but this invention is not limited to this. For example, M display devices DP6-DP11... 1,1 ~DP P,Q The number of screen walls that can be arranged can be adjusted according to the actual design requirements.
[0067] The signal distribution circuit 1 can distribute the image signals of the computer hosts CH1~CH11 to the first screen wall DW1 to the third screen wall DW3 according to the signal configuration mode to display the image signals of the computer hosts CH1~CH11.
[0068] [Technical Effects of the Embodiments of this Utility Model]
[0069] In summary, the multi-computer switching device with setting imaging display function disclosed in this utility model embodiment can achieve the following technical solution: "the processing circuit is configured to receive input instructions from the setting imaging computer through the S input / output ports, and the processing circuit generates a screen setting signal according to the input instructions to control the signal distribution circuit to distribute the image signal according to a signal configuration mode, so as to control the M display devices and the setting imaging computer to simultaneously display the screen according to the signal configuration mode." This allows engineers to directly determine whether the corresponding setting content is correct from the image displayed by the setting imaging computer, thereby increasing the convenience of setting the multi-computer switching device.
[0070] Furthermore, the multi-computer switching device with setting imaging display function disclosed in this utility model embodiment can enable engineers to directly set from a setting imaging computer and view whether the displayed image and the corresponding setting content are correct through the technical solution of "setting imaging computer having a setting mode and a display mode", thereby increasing the convenience of setting multi-computer switching device and reducing the use of a display device to reduce costs.
[0071] The above-disclosed content is only a preferred and feasible embodiment of the present utility model, and is not intended to limit the patent scope of the present utility model. Therefore, all equivalent technical changes made using the contents of the present utility model specification and drawings are included in the patent scope of the present utility model.
Claims
1. A multi-computer switching device with a set imaging display function, characterized in that, The multi-computer switching device with a setting imaging display function is used to connect M display devices, N computer hosts, and one setting imaging computer. The multi-computer switching device includes: A signal distribution circuit is connected to S input / output ports. The signal distribution circuit is used to connect N computer hosts and the designated imaging computer through portions of the S input / output ports to receive multiple image signals from the N computer hosts. The signal distribution circuit is also used to connect M display devices through the remaining portions of the S input / output ports. as well as A processing circuit is electrically coupled to the signal distribution circuit; wherein the setting imaging computer has a setting mode and a display mode; when the setting imaging computer is in the setting mode, the setting imaging computer outputs an input command; when the setting imaging computer is in the display mode, the processing circuit is configured to receive the input command from the setting imaging computer through the S input / output ports, and the processing circuit generates a screen setting signal according to the input command to control the signal distribution circuit to distribute the image signal according to a signal configuration mode, so as to control the M display devices and the setting imaging computer to simultaneously display the screen according to the signal configuration mode; Where S, M and N are positive integers not less than 0.
2. The multi-computer switching device with setting imaging display function according to claim 1, characterized in that, The multi-computer switching device includes: A control transmission box is electrically coupled between the set imaging computer and the S input / output ports; wherein the control transmission box has an amplification function to amplify the signal strength of the input command; N signal transmission boxes are electrically coupled between N computer hosts and S input / output ports, respectively; each of the N signal transmission boxes has an amplification function to amplify the image signals output by the N signal transmission boxes; and M signal receiving boxes are electrically coupled between the M display devices and the S input / output ports, respectively, to drive the M display devices to display images according to the signal configuration mode.
3. The multi-computer switching device with setting imaging display function according to claim 1, characterized in that, The number of S input / output ports is greater than the number of M display devices plus the number of N computer hosts.
4. The multi-computer switching device with setting imaging display function according to claim 1, characterized in that, The signal distribution circuit controls at least two adjacent display devices among the M display devices to display the image signal of a computer host according to the signal configuration mode.
5. The multi-computer switching device with a set imaging display function according to claim 4, characterized in that, The signal distribution circuit includes an adjustment circuit that receives multiple image signals through S input / output ports. The adjustment circuit divides the image signal of a computer host into multiple sub-image signals according to the signal configuration mode, and transmits the multiple sub-image signals to at least two adjacent display devices among M display devices to image the image signal of a computer host.
6. The multi-computer switching device with a set imaging display function according to claim 5, characterized in that, The adjustment circuit reverses a portion of the sub-image signals according to the signal configuration mode, and transmits the unreversed sub-image signals and the reversed sub-image signals to two or more adjacent display devices among the M display devices to image the image signal of a computer host.
7. The multi-computer switching device with setting imaging display function according to claim 5, characterized in that, The adjustment circuit adjusts the resolution of the multiple sub-image signals to the same size, so that two or more adjacent display devices among the M display devices image the image signal of one computer host.
8. The multi-computer switching device with setting imaging display function according to claim 1, characterized in that, When the number of M display devices is the same as the number of N computer hosts, the signal distribution circuit controls the M display devices to display the image signals of the N computer hosts respectively according to the signal configuration mode.
9. The multi-computer switching device with setting imaging display function according to claim 1, characterized in that, The signal distribution circuit includes an adjustment circuit that receives multiple image signals through S input / output ports and adjusts the resolution of the multiple image signals so that M display devices display multiple image signals with the same resolution.
10. The multi-computer switching device with setting imaging display function according to claim 1, characterized in that, M of the aforementioned display devices are arranged in a matrix to form at least one screen wall.