A graphic, text and video content generation system and its display device adjustment mechanism

By adaptively adjusting the focus and cleaning device of the projection device through the graphic, text and video content generation system, the problem that the projection device cannot adaptively adjust the focus is solved, and the clarity of the projected image and the user experience are improved.

CN120017807BActive Publication Date: 2025-10-03NANJING XIAOWEI ZHICHUANG DIGITAL TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202510378120.3
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-03-28
Publication Date
2025-10-03
Estimated Expiration
2045-03-28

AI Technical Summary

Technical Problem

Existing projection equipment cannot adaptively adjust the focal length when projecting AI-generated images, resulting in blurred images and low efficiency of manual adjustment.

Method used

It adopts a graphic and video content generation system, and adjusts the projection distance according to the distribution of dark and bright blocks in the image through the control center. It combines edge sharpness algorithm and Laplace algorithm for focus processing, optimizes projection clarity through time series prediction model, and is equipped with an automatic cleaning device to avoid the influence of debris.

Benefits of technology

It realizes adaptive clarity adjustment of the projected image, improves the projection effect and clarity, reduces manual intervention, and enhances the user experience.

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Abstract

The present invention relates to the field of image display projection technology, and discloses a graphic, text, and video content generation system and a display device adjustment mechanism thereof, comprising a mounting base plate for installing a graphic, text, and video content display device adjustment mechanism, wherein the device body is arranged on the top of the mounting base plate, and a first slide groove is provided on the top of the mounting base plate. The device body comprises: a regulating device, which is fixedly connected to the left side of the top of the mounting base plate, and the regulating device is used to adjust the projection distance of the generated image; a processing device, which is arranged on the right side of the top of the mounting base plate, and the processing device is used to adjust the focal length of the generated image. At the same time, the processing device is cleaned during the adjustment process to prevent debris from affecting the clarity of the generated image, thereby improving the projection effect of the device and the clarity of the projected image, and facilitating user use. The device has the advantages of improving the projection effect of the device and the clarity of the projection, and facilitating user use.
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Description

Technical Field

[0001] The present invention relates to the technical field of image display and projection, and in particular to a graphic, text, and video content generation system and a display device adjustment mechanism thereof. Background Art

[0002] AI image and text generation tools have been widely used by enterprises in recent years. They can automatically generate corresponding images or graphic content based on user input (text description, keywords or images), which is of great help to the daily management of enterprises.

[0003] Publication No.: CN110324596A discloses a clarity detection method, characterized in that the clarity detection method is applied to a clarity detection device for detecting a projection device, the clarity detection device comprising an acquisition unit and a projection screen, the acquisition unit and the projection device being respectively arranged on both sides of the projection screen, the clarity detection method comprising: controlling the projection device to project a projection image onto the projection screen, the projection image comprising N black blocks arranged in a first field of view, N being a positive integer, controlling the acquisition unit to acquire a first image, the first image comprising the projection image, determining a scanning area of ​​the first image, and scanning the first image. The area is scanned to determine the first clarity. The device solves the problem in the prior art that there is no unified detection standard for the clarity detection of projection equipment and the clarity detection accuracy of projection equipment is low. However, in actual use, the existing projection tools cannot adjust the projection focal length of the spontaneous image according to the AI-generated image when projecting the AI-generated image, which makes the projected AI image blurred in actual processing. The existing equipment usually adopts manual adjustment, but this method is more difficult to handle and cannot quickly adjust the projected image. The existing equipment has further room for improvement in the clarity adjustment of AI image projection. Summary of the Invention

[0004] In view of the shortcomings of the existing technology, the present invention provides a graphic, text and video content generation system and a display device adjustment mechanism thereof, which has the advantages of improving the projection effect and projection clarity of the device and facilitating user use.

[0005] To achieve the above-mentioned objectives, the present invention provides the following technical solutions: a graphic and video content generation system and a display device adjustment mechanism thereof, comprising: a mounting base, a first slide groove, a device body, a control device, a first linear drive component, a first output rod, a processing device, a first slide rod, a second slide groove, a side bin, an image generation projection device, a fixing part, a rotation drive component, a rotating shaft, a first movable wheel, a first shaft rod, a second movable wheel, a movable belt, a telescopic rod, a chassis, a slider, a processing bin, a second slide rod, a sleeve rod, a limit groove, a first bevel gear, a second bevel gear, a fixed rod, a rotating disk, a rotating rod, a return groove plate, a movable plate, a mounting rod, a cleaning plate, an auxiliary device, a second shaft rod, a second linear drive component, a second output rod, a clamping rod, a screw, a limit sleeve, a chuck, a movable sleeve, a projection lens barrel, a fixing frame, a collection component, a data center, and a control center.

[0006] The positions and connections of the aforementioned structures are as follows: A graphic, text, and video content generation system includes an image generation and projection device for performing AI image generation and projection of keywords, a control center, an acquisition component for collecting data on the projected image, and a device body for performing focus processing on the generated image. In step S100, the image generation and projection device intelligently generates and projects an image based on a keyword input by a user, and the control center adjusts the projection distance of the device body based on the distribution of dark and bright blocks in the image.

[0007] S200: The device body processes the focus of the projected image. During this process, the control center calculates the change in the image's projection clarity during the focus adjustment process using an edge sharpness algorithm, and records and statistically analyzes the change data.

[0008] S300: The control center performs gamma correction based on the recorded projection image, and projects the corrected image through the device body;

[0009] S400: The device body spontaneously readjusts the projection focal length according to the above analysis data.

[0010] Preferably, in S100, the generated image of the image generating projection device is preliminarily analyzed and processed by the control center, and the control center adjusts the projection distance of the device body by analyzing the overall proportion of bright blocks and dark blocks in the generated image. When the proportion of bright blocks in the generated image is greater than the proportion of dark blocks, the device body increases the projection distance of the generated image, thereby avoiding an increase in the degree of overlap between the projection of the generated image and the light source of the device body's own projection, thereby increasing the fatigue effect of the bright frame color blocks on the user's eyes when the user observes the generated image. When the proportion of dark blocks in the generated image is greater than the proportion of bright blocks, the device body reduces the projection distance of the generated image, thereby avoiding a situation where the user has difficulty in carefully observing the overall situation of the image when the projection distance of the generated image is far. At the same time, an increase in the degree of overlap between the projection of the generated image and the light source of the device body's own projection is beneficial to the user's observation of the generated image projection, thereby improving the applicability of the device.

[0011] Preferably, in S200, the control center turns on the device body to perform focus adjustment processing on the projection of the generated image. During this period, the control center records the projection data S1 of the image generated in the T1 time period, the projection data S2 of the image generated in the T2 time period, and the projection data S3 of the image generated in the T3 time period. The control center processes the above data according to the edge sharpness calculation algorithm. The control center processes and records the gradient size around each pixel point in the S1 projection data to obtain the local edge sharpness value of each pixel point, and obtains the clarity value of the S1 projection data by accumulating the local edge sharpness values ​​of all pixels in the S1 projection data. Similarly, the clarity value of the S2 projection data and the clarity value of the S3 projection data can be obtained. The control center then recursively constructs a time series prediction engineering model based on the clarity value changes and long-short term memory of the above data, and uses the time series prediction engineering model to predict the clarity value changes of the projection data in the future. The control center sets a threshold internally, which is the clarity value at which the projection data can be clearly observed by the user. The control center compares and analyzes the prediction result with the threshold. When the prediction result is greater than or equal to the threshold, the projection focal length of the device body can ensure that the projection of the generated image is clearly visible. The control center stops the device body from continuing to adjust the projection focal length when the device body operates within the time period of the prediction result. When the prediction result is less than the threshold, the projection of the generated image cannot be guaranteed to be clearly visible, and the device body continues to adjust the focal length.

[0012] Preferably, in S300, the control center divides the collected S1 projection data, S2 projection data, and S3 projection data into several sub-planes in sequence, and performs pixel grayscale difference calculation on the several sub-planes through the Laplace algorithm. When the grayscale of the central pixel in the sub-plane is higher than the grayscale of the surrounding pixels, the central grayscale of the sub-plane needs to be further reduced. When the grayscale of the central pixel in the sub-plane is lower than the grayscale of the surrounding pixels, that is, the central grayscale of the sub-plane needs to be increased. When the grayscale of the central pixel in the sub-plane is the same as the grayscale of the surrounding pixels, the sub-plane does not need to be processed. The control center corrects the grayscale coefficient of the generated image through the calculated data of the several sub-planes, and continuously corrects the grayscale coefficient of the generated image with different time periods, so as to obtain a projected image that is still clearly visible after projection.

[0013] Preferably, in S400, in step S200, when the control center stops the device body from continuing to adjust the projection focal length when the device body is running within the time period of the prediction result, and in the case that the actual projection data is greatly different from the prediction result, the prediction model is trained with the data collected this time as training data, and the difference between the prediction result of the time series prediction engineering model and the actual data is continuously reduced over a long period of time until the prediction result of the time series prediction engineering model is corrected. At the same time, the control center records the above data through the analysis algorithm and filters out the time period of the clearest image data collected. The control center refocuses the device body according to the time period of the clearest image data, improves the projection effect of the device on the generated picture, improves the clarity of the image projected by the device, and is convenient for users to use.

[0014] A graphic, text, and video content display device adjustment mechanism includes a mounting base plate for mounting the graphic, text, and video content display device adjustment mechanism, wherein a device body is disposed on top of the mounting base plate, a first slide groove is provided on the top of the mounting base plate, and the device body includes:

[0015] A control device, which is fixedly connected to the top left side of the mounting base, and is used to adjust the projection distance of the generated image;

[0016] A processing device is provided on the top right side of the mounting base plate. The processing device is used to adjust the focus of the generated image. During the adjustment process, the processing device is cleaned to prevent debris from affecting the clarity of the generated image, thereby improving the projection effect of the device and the clarity of the projected image, and facilitating user use.

[0017] The auxiliary device is fixedly connected to the top of the processing device. The auxiliary device is used to cooperate with the processing device to adjust the focal length of the generated image to facilitate user use.

[0018] Preferably, the control device includes a first linear drive component, which is fixedly connected to the inner wall of the left end of the control device. The first linear drive component is configured as an electric push rod. The right end output end of the first linear drive component is fixedly connected to a first output rod. The first output rod passes through the control device and extends to the outer side of the right end of the control device. The extended part of the first output rod is fixedly connected to a processing device to ensure the normal operation of the device.

[0019] Preferably, the processing device includes a first sliding rod, which is fixedly connected to the bottom of the processing device, the first sliding rod is slidably connected to the inside of the first slide groove, the left end inner wall of the processing device is fixedly connected to a side bin, and the side bin passes through and extends to the inside of the auxiliary device, and the bottom side of the right end inner wall of the side bin is fixedly connected to a rotation drive assembly, the rotation drive assembly is configured as a drive motor, and the right output end of the rotation drive assembly is fixedly connected to a rotating shaft, and the end of the rotating shaft away from the rotating drive assembly is fixedly connected to a first movable wheel, and the end of the first movable wheel away from the rotating shaft is fixedly connected to a telescopic rod, and the telescopic rod passes through the processing device and extends to the right of the processing device. At the outer side of the end, a first shaft is rotatably connected to the top side of the inner wall of the left end of the side bin, and a second movable wheel is fixedly connected to the right end surface of the first shaft, and a movable belt is movably connected to the outer surface of the second movable wheel and the first movable wheel. The image generating and projecting device is fixedly connected to the right end surface of the side bin, and the image generating and projecting device passes through and extends to the interior of the auxiliary device. Two fixing parts are fixedly connected to the front and rear end surfaces of the image generating and projecting device, and the other ends of the four fixing parts are respectively fixedly connected to the inner walls of the auxiliary device and the processing device. The right end surface of the image generating and projecting device is fixedly connected to the projection bin to ensure the normal operation of the device.

[0020] Preferably, the processing device also includes a processing bin, which is arranged inside the processing device, and the bottom of the processing bin is fixedly connected to a second sliding rod, and the processing device is provided with a second sliding groove at one end close to the second sliding rod, and the second sliding rod is slidably connected to the inside of the second sliding groove, and a sleeve rod is provided inside the processing bin, and the sleeve rod passes through the processing bin and extends to the outside of the left end of the processing bin, and the internal front and rear ends of the sleeve rod are provided with limiting grooves, the telescopic rod is movably connected to the inside of the sleeve rod, and the part of the telescopic rod in the sleeve rod is fixedly connected to the chassis, and the end of the chassis close to the limiting groove is fixedly connected to the slider, and the slider is slidably connected to the inside of the limiting groove, and the sleeve rod is in the part of the processing bin. The gear train is fixedly connected to the first bevel gear, and the front end and rear end of the first bevel gear are meshed with the second bevel gear. One end of the second bevel gear away from the first bevel gear is fixedly connected to the fixing rod, and one end of the fixing rod away from the second bevel gear is fixedly connected to the rotating disk. One end of the rotating disk away from the fixing rod is fixedly connected to the rotating rod and the rotating rod is not set at the center of the rotating disk. The outer surface of the rotating rod is movably connected to the return groove plate, and the top of the return groove plate is fixedly connected to the movable plate, and the ends of the two movable plates close to their symmetrical surfaces are fixedly connected to the mounting rod, and a cleaning plate is fixedly connected between the two mounting rods. The top of the processing device is not closed to ensure the normal operation of the device.

[0021] Preferably, the auxiliary device includes a second shaft, which is arranged inside the auxiliary device, the second shaft passes through and extends to the inside of the side bin, and the extended part of the second shaft is fixedly connected to the second movable wheel, and the right end surface of the second shaft is fixedly connected to a second linear drive assembly, the second linear drive assembly is configured as a cylinder, and the right end output end of the second linear drive assembly is differentially connected to a second output rod, and the right end surface of the second output rod is fixedly connected to a clamping rod, a screw is provided inside the auxiliary device, and the left and right sides of the screw are rotatably connected to a limiting sleeve, and the top of the limiting sleeve is fixedly connected to the auxiliary At the top inner wall of the device, the screw passes through the limiting sleeve on the left and the penetrating part of the screw is fixedly connected to a chuck that matches the clamping rod. The outer surface of the screw is movably connected to a movable sleeve, and the bottom of the movable sleeve is fixedly connected to the projection lens barrel. The left part of the projection lens barrel is movably connected to the outer surface of the projection bin, and the bottom of the projection lens barrel is fixedly connected to a fixing frame, which is fixedly connected to the top of the processing bin. The acquisition component is fixedly connected to the right end surface of the auxiliary device, and the top of the auxiliary device is fixedly connected to the data center. The control center is fixedly connected to the top of the data center to ensure the normal operation of the device. Beneficial effects

[0022] 1. The graphic, text and video content generation system and its display device adjustment mechanism adjust the projection distance of the device body according to the distribution of dark blocks and bright blocks in the image through the control center, so that the device can spontaneously adjust the projection distance of the projected image, thereby improving the projection effect and projection clarity of the device and facilitating user use.

[0023] 2. The graphic and video content generation system and its display device adjustment mechanism adjust the focal length through the processing device and auxiliary device while cleaning the projection lens barrel to prevent debris from affecting the clarity of the generated image, thereby improving the projection effect of the device and the clarity of the projected image.

[0024] 3. The graphic and video content generation system and its display device adjustment mechanism predict the change in the clarity of the projected image in the future through the control center, thereby improving the focus adjustment efficiency of the device, improving the projection effect of the device and the clarity of the projected image.

[0025] 4. The graphic and video content generation system and its display device adjustment mechanism continuously correct the grayscale coefficient of the generated image based on the Laplace algorithm and the projected image through the control center, thereby obtaining a projected image that is still clearly visible after projection, thereby improving the projection effect of the device and the clarity of the projected image. BRIEF DESCRIPTION OF THE DRAWINGS

[0026] Figure 1 This is a schematic diagram of the structure of a system for generating graphic, text and video content and a display device adjustment mechanism thereof according to the present invention;

[0027] Figure 2 This is a schematic diagram of step S100 of a system for generating graphic, text, and video content and a display device adjustment mechanism thereof according to the present invention;

[0028] Figure 3 This is a schematic structural diagram of step S200 of a system for generating graphic, text, and video content and a display device adjustment mechanism thereof according to the present invention;

[0029] Figure 4 This is a schematic structural diagram of step S300 of a system for generating graphic, text, and video content and a display device adjustment mechanism thereof according to the present invention;

[0030] Figure 5 This is a schematic structural diagram of a system for generating graphic, text, and video content and a display device adjustment mechanism thereof in step S400 of the present invention;

[0031] Figure 6 This is a schematic diagram of the appearance and structure of a graphic, text, and video content generation system and its display device adjustment mechanism according to the present invention;

[0032] Figure 7 This is a schematic diagram of the internal structure of a graphics, text, and video content generation system and a display device adjustment mechanism control device of the present invention;

[0033] Figure 8 This is a schematic diagram of the internal structure of a graphics, text, and video content generation system and a display device adjustment mechanism processing device thereof according to the present invention;

[0034] Figure 9This is a schematic diagram of the internal structure of a side compartment of a graphic, text, and video content generation system and its display device adjustment mechanism according to the present invention;

[0035] Figure 10 This is a schematic diagram of the internal structure of a graphics, text, and video content generation system and a display device adjustment mechanism sleeve rod of the present invention;

[0036] Figure 11 This is a schematic diagram of the internal structure of a processing chamber of a graphic, text, and video content generation system and its display device adjustment mechanism according to the present invention;

[0037] Figure 12 The present invention is a diagram showing the internal structure of a system for generating graphic, text and video content and an auxiliary device for its display device adjustment mechanism.

[0038] In the figure: 1, mounting base; 10, first slide; 2, device body; 3, control device; 30, first linear drive assembly; 31, first output rod; 4, processing device; 40, first slide; 400, second slide; 41, side chamber; 410, image generation and projection device; 4100, fixing member; 411, rotation drive assembly; 412, rotating shaft; 413, first movable wheel; 414, first shaft; 415, second movable wheel; 416, movable belt; 417, telescopic rod; 4170, chassis; 4171, slider; 42, processing chamber; 420, second slide; 4 21. Sleeve rod; 4210. Limiting groove; 422. First bevel gear; 423. Second bevel gear; 424. Fixed rod; 425. Rotating disk; 426. Rotating rod; 43. Return groove plate; 430. Movable plate; 431. Mounting rod; 432. Cleaning plate; 5. Auxiliary device; 50. Second shaft; 500. Second linear drive assembly; 501. Second output rod; 502. Clamping rod; 51. Screw; 510. Limiting sleeve; 511. Chuck; 52. Movable sleeve; 520. Projection lens barrel; 521. Fixed bracket; 53. Collection assembly; 54. Data center; 55. Control center. DETAILED DESCRIPTION

[0039] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention. Example 1

[0040] See also Figures 1 to 12A system for generating graphic, text, and video content includes an image generation and projection device 410 for performing AI image generation and projection on keywords, a control center 55, an acquisition component 53 for acquiring data on the projected image, and a device body 2 for performing focus processing on the generated image. In step S100, the image generation and projection device 410 intelligently generates and projects an image based on a keyword input by a user, and the control center 55 adjusts the projection distance of the device body 2 based on the distribution of dark and bright blocks in the image.

[0041] S200, the device body 2 processes the focus of the projected image. During this process, the control center 55 calculates the change in the image's projection clarity during the focus adjustment process based on an edge sharpness algorithm, and records and statistically analyzes the change data.

[0042] S300: The control center 55 performs gamma correction based on the recorded projection image, and projects the corrected image through the device body 2;

[0043] S400: The device body 2 spontaneously readjusts the projection focal length according to the above analysis data.

[0044] In S100, the generated image of the image generation projection device 410 is preliminarily analyzed and processed by the control center 55. The control center 55 adjusts the projection distance of the device body 2 by analyzing the overall proportion of bright blocks and dark blocks in the generated image. When the proportion of bright blocks in the generated image is greater than the proportion of dark blocks, the device body 2 increases the projection distance of the generated image, thereby avoiding the increase in the degree of overlap between the projection of the generated image and the light source of the device body 2 itself, thereby increasing the fatigue effect of the bright frame color blocks on the user's eyes when the user observes the generated image. When the proportion of dark blocks in the generated image is greater than the proportion of bright blocks, the device body 2 reduces the projection distance of the generated image, thereby avoiding the user's difficulty in carefully observing the overall situation of the image when the projection distance of the generated image is far. At the same time, the increase in the degree of overlap between the projection of the generated image and the light source of the device body 2 itself is beneficial to the user's observation of the generated image projection, thereby improving the applicability of the device.

[0045] In S200, the control center 55 turns on the device body 2 to adjust the focus of the projection of the generated image. During this period, the control center 55 records the projection data S1 of the image generated in the T1 time period, the projection data S2 of the image generated in the T2 time period, and the projection data S3 of the image generated in the T3 time period. The control center 55 processes the above data according to the edge sharpness calculation algorithm. The control center 55 processes the gradient size around each pixel point in the S1 projection data and records the local edge sharpness value of each pixel point. The local edge sharpness value of all pixels in the S1 projection data is accumulated to obtain the clarity value of the S1 projection data. Similarly, the clarity value of the S2 projection data and the clarity value of the S3 projection data can be obtained. Then the control The center 55 recursively constructs a time series prediction engineering model based on the clarity value changes and long-short term memory of the above data, and uses the time series prediction engineering model to predict the clarity value changes of the projection data in a period of time in the future. The control center 55 sets a threshold internally, which is the clarity value at which the projection data can be clearly observed by the user. The control center 55 compares and analyzes the prediction result with the threshold. When the prediction result is greater than or equal to the threshold, that is, the projection focal length of the device body 2 can ensure that the projection of the generated image is clearly visible, the control center 55 stops the device body 2 from continuing to adjust the projection focal length when the device body 2 operates within the time period of the prediction result. When the prediction result is less than the threshold, that is, the projection of the generated image cannot be guaranteed to be clearly visible, the device body 2 continues to adjust the focal length.

[0046] In S300, the control center 55 divides the collected S1 projection data, S2 projection data, and S3 projection data into several sub-planes in sequence, and the control center 55 calculates the pixel grayscale difference in the several sub-planes through the Laplace algorithm. When the grayscale of the central pixel in the sub-plane is higher than the grayscale of the surrounding pixels, the central grayscale in the sub-plane needs to be further reduced. When the grayscale of the central pixel in the sub-plane is lower than the grayscale of the surrounding pixels, the central grayscale in the sub-plane needs to be increased. When the grayscale of the central pixel in the sub-plane is the same as the grayscale of the surrounding pixels, the sub-plane does not need to be processed. The control center 55 corrects the grayscale coefficient of the generated image through the calculated data of the several sub-planes, and continuously corrects the grayscale coefficient of the generated image with different time periods, thereby obtaining a projection image that is still clearly visible after projection.

[0047] In S400, in step S200, when the control center 55 stops the device body 2 from continuing to adjust the projection focal length when the device body 2 operates within the time period of the prediction result, and when there is a large difference between the actual projection data and the prediction result, the prediction model is trained with the data collected this time as training data. In the long run, the difference between the prediction result of the time series prediction engineering model and the actual data is continuously reduced until the prediction result of the time series prediction engineering model is corrected. At the same time, the control center 55 records the above data through the analysis algorithm and filters out the time period of the clearest image data collected. The control center 55 refocuses the device body 2 according to the time period of the clearest image data, improves the projection effect of the device on the generated picture, improves the clarity of the image projected by the device, and is convenient for users to use. Example 2

[0048] See also Figures 1 to 12 Based on the first embodiment, a graphic, text, and video content display device adjustment mechanism includes a mounting base 1 for mounting the graphic, text, and video content display device adjustment mechanism. A device body 2 is disposed on top of the mounting base 1. A first slide groove 10 is formed on the top of the mounting base 1. The device body 2 includes:

[0049] A control device 3, which is fixedly connected to the top left side of the mounting base 1, and is used to adjust the projection distance of the generated image;

[0050] The processing device 4 is arranged on the top right side of the mounting base plate 1. The processing device 4 is used to adjust the focus of the generated image. At the same time, the processing device 4 performs a cleaning process during the adjustment process to prevent debris from affecting the clarity of the generated image, thereby improving the projection effect of the device and the clarity of the projected image, and facilitating user use;

[0051] The auxiliary device 5 is fixedly connected to the top of the processing device 4. The auxiliary device 5 is used to cooperate with the processing device 4 to adjust the focal length of the generated image to facilitate user use.

[0052] The control device 3 includes a first linear drive component 30, which is fixedly connected to the inner wall of the left end of the control device 3. The first linear drive component 30 is configured as an electric push rod. The right end output end of the first linear drive component 30 is fixedly connected to a first output rod 31. The first output rod 31 passes through the control device 3 and extends to the outside of the right end of the control device 3. The extended part of the first output rod 31 is fixedly connected to the processing device 4 to ensure the normal operation of the device.

[0053] The processing device 4 includes a first slide bar 40, which is fixedly connected to the bottom of the processing device 4, and the first slide bar 40 is slidably connected to the inside of the first slide groove 10. The left end inner wall of the processing device 4 is fixedly connected to the side bin 41, and the side bin 41 passes through and extends to the inside of the auxiliary device 5. The bottom side of the right end inner wall of the side bin 41 is fixedly connected to a rotation drive component 411. The rotation drive component 411 is configured as a drive motor. The right output end of the rotation drive component 411 is fixedly connected to a rotating shaft 412. The end of the rotating shaft 412 away from the rotating drive component 411 is fixedly connected to a first movable wheel 413. The end of the first movable wheel 413 away from the rotating shaft 412 is fixedly connected to a telescopic rod 417. The telescopic rod 417 passes through the processing device 4 and extends to the right of the processing device 4. At the outer end, a first shaft rod 414 is rotatably connected to the top side of the inner wall of the left end of the side bin 41, and a second movable wheel 415 is fixedly connected to the right end surface of the first shaft rod 414. The second movable wheel 415 and the outer surface of the first movable wheel 413 are movably connected with a movable belt 416. The image generating and projecting device 410 is fixedly connected to the right end surface of the side bin 41. The image generating and projecting device 410 passes through and extends to the interior of the auxiliary device 5. Two fixing parts 4100 are fixedly connected to the front and rear end surfaces of the image generating and projecting device 410. The other ends of the four fixing parts 4100 are respectively fixedly connected to the inner walls of the auxiliary device 5 and the processing device 4. The right end surface of the image generating and projecting device 410 is fixedly connected to the projection bin to ensure the normal operation of the device.

[0054] The processing device 4 also includes a processing bin 42, which is arranged inside the processing device 4, and a second slide bar 420 is fixedly connected to the bottom of the processing bin 42. A second slide groove 400 is provided at one end of the processing device 4 close to the second slide bar 420, and the second slide bar 420 is slidably connected to the inside of the second slide groove 400. A sleeve rod 421 is provided inside the processing bin 42, and the sleeve rod 421 passes through the processing bin 42 and extends to the outside of the left end of the processing bin 42. The internal front and rear ends of the sleeve rod 421 are both provided with limiting grooves 4210, and the telescopic rod 417 is movably connected to the inside of the sleeve rod 421. The part of the telescopic rod 417 in the sleeve rod 421 is fixedly connected to the chassis 4170, and one end of the chassis 4170 close to the limiting groove 4210 is fixedly connected to the slider 4171, and the slider 4171 is slidably connected to the inside of the limiting groove 4210. The sleeve rod 421 is in the processing bin The first bevel gear 422 is fixedly connected to the part of the bin 42, and the front and rear ends of the first bevel gear 422 are meshed with the second bevel gear 423. The end of the second bevel gear 423 away from the first bevel gear 422 is fixedly connected to the fixing rod 424, and the end of the fixing rod 424 away from the second bevel gear 423 is fixedly connected to the rotating disk 425, and the end of the rotating disk 425 away from the fixing rod 424 is fixedly connected to the rotating rod 426, and the rotating rod 426 is not set at the center of the rotating disk 425. The outer surface of the rotating rod 426 is movably connected to the return groove plate 43, and the top of the return groove plate 43 is fixedly connected to the movable plate 430. The two movable plates 430 are fixedly connected to the mounting rod 431 at one end near their symmetrical surface. A cleaning plate 432 is fixedly connected between the two mounting rods 431. The top of the processing device 4 is not closed to ensure the normal operation of the device. Example 3

[0055] See also Figures 1 to 12, further on the basis of embodiment 2, the auxiliary device 5 includes a second shaft rod 50, which is arranged inside the auxiliary device 5, the second shaft rod 50 passes through and extends to the inside of the side bin 41 and the extended part of the second shaft rod 50 is fixedly connected to the second movable wheel 415, and the right end surface of the second shaft rod 50 is fixedly connected to a second linear drive component 500, the second linear drive component 500 is configured as a cylinder, and the right end output end of the second linear drive component 500 is differentially connected to a second output rod 501, and the right end surface of the second output rod 501 is fixedly connected to a clamping rod 502, and a screw 51 is provided inside the auxiliary device 5, and the left and right sides of the screw 51 are rotatably connected to a limiting sleeve 510, and the top of the limiting sleeve 510 is fixedly connected At the top inner wall of the auxiliary device 5, the screw 51 passes through the limiting sleeve 510 on the left and the penetrating part of the screw 51 is fixedly connected to the chuck 511 adapted to the clamping rod 502, and the outer surface of the screw 51 is movably connected to the movable sleeve 52, and the bottom of the movable sleeve 52 is fixedly connected to the projection lens barrel 520, and the left part of the projection lens barrel 520 is movably connected to the outer surface of the projection chamber, and the bottom of the projection lens barrel 520 is fixedly connected to the fixing frame 521, and the fixing frame 521 is fixedly connected to the top of the processing chamber 42, the collection component 53 is fixedly connected to the right end surface of the auxiliary device 5, and the top of the auxiliary device 5 is fixedly connected to the data center 54, and the control center 55 is fixedly connected to the top of the data center 54 to ensure the normal operation of the device.

[0056] Working principle: S100, the image generated by the image generation projection device 410 is preliminarily analyzed and processed by the control center 55. The control center 55 adjusts the projection distance of the device body 2 by analyzing the overall proportion of bright blocks and dark blocks in the generated image. When the proportion of bright blocks in the generated image is greater than the proportion of dark blocks, the control center 55 transmits an electrical signal to the first linear drive component 30. The first linear drive component 30 starts to retract the first output rod 31 and move it to the left. The movement of the first output rod 31 drives the processing device 4 and the auxiliary device 5 to move to the left as a whole, thereby increasing the projection distance of the generated image, thereby avoiding the projection of the generated image and the projection of the device body 2 itself. The degree of overlap of the light sources increases, thereby increasing the fatigue effect of the bright frame color blocks on the user's eyes when the user observes the generated image. When the proportion of dark blocks in the generated image is greater than the proportion of bright blocks, the control center 55 similarly activates the first linear drive assembly 30 to push out the first output rod 31 and move it to the right. The movement of the first output rod 31 drives the processing device 4 and the auxiliary device 5 to move to the right, thereby reducing the projection distance of the generated image, avoiding the user having difficulty in carefully observing the overall situation of the image when the projection distance of the generated image is far. At the same time, the increased degree of overlap between the projection of the generated image and the projection light source of the device body 2 itself is beneficial to the user's observation of the generated image projection, thereby improving the applicability of the device.

[0057] S200, the control center 55 turns on the device body 2 to adjust the focus of the projection of the generated image. During this period, the control center 55 records the projection data S1 of the image generated in the T1 time period, the projection data S2 of the image generated in the T2 time period, and the projection data S3 of the image generated in the T3 time period. The control center 55 processes the above data according to the edge sharpness calculation algorithm. The control center 55 processes the gradient size around each pixel point in the S1 projection data and records the local edge sharpness value of each pixel point. The local edge sharpness value of all pixels in the S1 projection data is accumulated to obtain the clarity value of the S1 projection data. Similarly, the clarity value of the S2 projection data and the clarity value of the S3 projection data can be obtained. Then the control center 55 The control center 55 recursively constructs a time series prediction engineering model based on the clarity value changes and long-term and short-term memory of the above data, and uses the time series prediction engineering model to predict the clarity value changes of the projection data in a period of time in the future. The control center 55 sets a threshold internally, which is the clarity value at which the projection data can be clearly observed by the user. The control center 55 compares and analyzes the prediction result with the threshold. When the prediction result is greater than or equal to the threshold, that is, at this time, the projection focal length of the device body 2 can ensure that the projection of the generated image is clearly visible, the control center 55 stops the device body 2 from continuing to adjust the projection focal length when the device body 2 operates within the time period of the prediction result. When the prediction result is less than the threshold, that is, at this time, the projection of the generated image still cannot ensure its clarity, the device body 2 continues to adjust the focal length;

[0058] In step S200, the control center 55 turns on the rotary drive assembly 411, the rotary drive assembly 411 turns on and drives the rotating shaft 412 to rotate, the rotating shaft 412 rotates and drives the first movable wheel 413 to rotate, the first movable wheel 413 rotates through the movable belt 416 to drive the second movable wheel 415 to rotate, the second movable wheel 415 rotates and drives the second shaft rod 50 to rotate, the second shaft rod 50 rotates and drives the second linear drive assembly 500 to rotate, and in the initial state, the clamping rod 502 is clamped in the chuck 511. At this time, the second linear drive assembly 500 rotates through the second output rod 501 and the clamping rod 502. 502 drives the chuck 511 to rotate, the rotation of the chuck 511 drives the screw 51 to rotate, the rotation of the screw 51 drives the movable sleeve 52 to move rightward, the movement of the movable sleeve 52 drives the projection lens barrel 520 to move, thereby gradually increasing the focal length of the projection of the generated image, and at the same time, the rotation of the first movable wheel 413 can drive the telescopic rod 417 to rotate, the rotation of the telescopic rod 417 drives the sleeve rod 421 to rotate through the chassis 4170, the slider 4171, and the limit slot 4210, the rotation of the sleeve rod 421 drives the first bevel gear 422 to rotate, and the rotation of the first bevel gear 422 drives the two second bevel gears 4 23 rotates, the second bevel gear 423 rotates through the fixed rod 424 to drive the rotating disk 425 to rotate, the rotating disk 425 rotates to drive the rotating rod 426 to rotate, the rotating rod 426 rotates to drive the return groove plate 43 to do a linear reciprocating motion from bottom to top, the return groove plate 43 moves through the movable plate 430 and the mounting rod 431 to drive the cleaning plate 432 to move, the cleaning plate 432 does a linear reciprocating motion to continuously clean the lens at the right end of the projection lens barrel 520, to prevent debris from affecting the clarity of the generated image, to improve the projection effect of the device and the clarity of the projected image, and each upward movement of the cleaning plate 432 When cleaning 520, the second linear drive assembly 500 drives the second output rod 501 to move so that the clamping rod 502 is engaged with the chuck 511, so that the movable sleeve 52 and the projection lens barrel 520 can move. At this time, the cleaning plate 432 can clean them normally. When the cleaning plate 432 reciprocates linearly to reset, the second linear drive assembly 500 drives the second output rod 501 and the clamping rod 502 to reset so that the movable sleeve 52 and the projection lens barrel 520 cannot move. At this time, the acquisition assembly 53 acquires the projection image at the current focal length, thereby improving the projection effect of the device and the clarity of the projection image, and facilitating user use.

[0059] S300, the control center 55 divides the collected S1 projection data, S2 projection data, and S3 projection data into several sub-planes in sequence. The control center 55 calculates the grayscale difference of pixels in the several sub-planes using the Laplace algorithm. When the grayscale of the central pixel in a sub-plane is higher than the grayscale of the surrounding pixels, the central grayscale in the sub-plane needs to be further reduced. When the grayscale of the central pixel in a sub-plane is lower than the grayscale of the surrounding pixels, that is, the central grayscale in the sub-plane needs to be increased. When the grayscale of the central pixel in a sub-plane is the same as the grayscale of the surrounding pixels, the sub-plane does not need to be processed. The control center 55 corrects the grayscale coefficient of the generated image using the calculated data of the several sub-planes, and continuously corrects the grayscale coefficient of the generated image at different time periods, thereby obtaining a projection image that is still clearly visible after projection;

[0060] S400. In step S200, when the control center 55 stops the device body 2 from continuing to adjust the projection focal length when the device body 2 operates within the time period of the prediction result, and uses the collected data this time as training data to train the prediction model when there is a large difference between the actual projection data and the prediction result. In the long run, the difference between the prediction result of the time series prediction engineering model and the actual data is continuously reduced until the prediction result of the time series prediction engineering model is corrected. At the same time, the control center 55 records the above data through the analysis algorithm and filters out the time period of the clearest image data collected. The control center 55 refocuses the device body 2 according to the time period of the clearest image data, improves the projection effect of the device on the generated picture, and improves the clarity of the image projected by the device, which is convenient for users to use.

[0061] While embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions, and variations may be made to these embodiments without departing from the principles and spirit of the invention, and that the scope of the invention is defined by the appended claims and their equivalents.

Claims

1. A method for generating graphic, text, and video content, comprising an image generation and projection device (410) for generating and projecting AI images of keywords, a control center (55), an acquisition component (53) for acquiring data of the projected image, and a device body (2) for performing focus processing on the generated image, characterized in that: S100, the image generation and projection device (410) intelligently generates an image based on the keywords input by the user and projects it, and the control center (55) adjusts the projection distance of the device body (2) based on the distribution of dark blocks and bright blocks in the image; S200, the device body (2) processes the focal length of the projected image, during which the control center (55) calculates the change in the clarity of the image during the focal length adjustment process based on the edge sharpness algorithm, and records and statistically analyzes the change data; The control center (55) is used to open the device body (2) to adjust the focus of the projection of the generated image. During this period, the control center (55) records the projection data S1 of the image generated in the T1 time period, the projection data S2 of the image generated in the T2 time period, and the projection data S3 of the image generated in the T3 time period. The control center (55) processes the above data according to the edge sharpness calculation algorithm. The control center (55) processes the gradient size around each pixel point in the S1 projection data and records the local edge sharpness value of each pixel point. The local edge sharpness value of all pixel points in the S1 projection data is accumulated to obtain the clarity value of the S1 projection data. Similarly, the clarity value of the S2 projection data and the clarity value of the S3 projection data can be obtained. Then the control center (55) ) A time series prediction engineering model is constructed based on the clarity value changes of the above data and the long-term and short-term memory recursion. The time series prediction engineering model is used to predict the clarity value changes of the projection data in a future period of time. The control center (55) internally sets a threshold value, which is the clarity value at which the projection data can be clearly observed by the user. The control center (55) compares and analyzes the prediction result with the threshold value. When the prediction result is greater than or equal to the threshold value, that is, the projection focal length of the device body (2) can ensure that the projection of the generated image is clearly visible, the control center (55) stops the device body (2) from continuing to adjust the projection focal length when the device body (2) operates within the time period of the prediction result. When the prediction result is less than the threshold value, that is, the projection of the generated image still cannot ensure that it is clearly visible, the device body (2) continues to adjust the focal length. S300, the control center (55) performs gamma correction based on the recorded projection image, and projects the corrected image through the device body (2); The control center (55) divides the collected S1 projection data, S2 projection data, and S3 projection data into several sub-planes in sequence. The control center (55) calculates the grayscale difference of pixels in the several sub-planes through the Laplace algorithm. When the grayscale of the central pixel in the sub-plane is higher than the grayscale of the surrounding pixels, the central grayscale in the sub-plane needs to be further reduced. When the grayscale of the central pixel in the sub-plane is lower than the grayscale of the surrounding pixels, the central grayscale in the sub-plane needs to be increased. When the grayscale of the central pixel in the sub-plane is the same as the grayscale of the surrounding pixels, the sub-plane does not need to be processed. The control center (55) corrects the grayscale coefficient of the generated image through the calculated data of the several sub-planes, and continuously corrects the grayscale coefficient of the generated image with different time periods, thereby obtaining a projection image that can still be clearly seen after projection; S400, the device body (2) spontaneously readjusts the projection focal length according to the above analysis data; when the device body (2) operates within the time period of the prediction result, the control center (55) stops the device body (2) from continuing to adjust the projection focal length. In the case that the actual projection data differs greatly from the prediction result, the prediction model is trained with the data collected this time as training data. In the long run, the difference between the prediction result of the time series prediction engineering model and the actual data is continuously reduced until the prediction result of the time series prediction engineering model is corrected. At the same time, the control center (55) records the above data through the analysis algorithm and selects the time period of the clearest image data collected. The control center (55) refocuses the device body (2) according to the time period of the clearest image data, improves the projection effect of the device on the generated image, improves the clarity of the image projected by the device, and is convenient for users to use.

2. The method for generating graphic, text, and video content according to claim 1, wherein: In S100, the generated image of the image generation projection device (410) is preliminarily analyzed and processed by the control center (55). The control center (55) adjusts the projection distance of the device body (2) by analyzing the overall proportion of bright color blocks and dark color blocks in the generated image. When the proportion of bright color blocks in the generated image is greater than the proportion of dark color blocks, the device body (2) increases the projection distance of the generated image, thereby avoiding the increase in the degree of overlap between the projection of the generated image and the light source of the device body (2) itself, thereby increasing the fatigue effect of the bright frame color blocks on the user's eyes when the user observes the generated image. When the proportion of dark color blocks in the generated image is greater than the proportion of bright color blocks, the device body (2) reduces the projection distance of the generated image, thereby avoiding the difficulty for the user to carefully observe the overall situation of the image when the projection distance of the generated image is far. At the same time, the increase in the degree of overlap between the projection of the generated image and the light source of the device body (2) itself is beneficial to the user's observation of the generated image projection, thereby improving the applicability of the device.

3. A graphic, text, and video content display device adjustment mechanism, using any one of the graphic, text, and video content generation methods according to claims 1-2, comprising a mounting base plate (1) for mounting a graphic, text, and video content display device adjustment mechanism, a device body (2) being arranged on the top of the mounting base plate (1), a first slide groove (10) being provided on the top of the mounting base plate (1), and the device body (2) comprising: A regulating device (3) is fixedly connected to the top left side of the mounting base plate (1), and the regulating device (3) is used to adjust the projection distance of the generated image; A processing device (4) is arranged on the top right side of the mounting base plate (1), and the processing device (4) is used to adjust the focus of the generated image. At the same time, the processing device (4) performs a cleaning process during the adjustment process to prevent debris from affecting the clarity of the generated image; The auxiliary device (5) is fixedly connected to the top of the processing device (4), and the auxiliary device (5) is used to cooperate with the processing device (4) to adjust the focal length of the generated image.

4. The adjusting mechanism for displaying graphic, text, or video content according to claim 3, wherein: The control device (3) comprises a first linear drive assembly (30) fixedly connected to the inner wall of the left end of the control device (3); the first linear drive assembly (30) is configured as an electric push rod; a first output rod (31) is fixedly connected to the right end output end of the first linear drive assembly (30); the first output rod (31) passes through the control device (3) and extends to the outer side of the right end of the control device (3); and a processing device (4) is fixedly connected to the extended portion of the first output rod (31).

5. The adjusting mechanism for displaying graphic, text, or video content according to claim 4, wherein: The processing device (4) includes a first slide bar (40) which is fixedly connected to the bottom of the processing device (4). The first slide bar (40) is slidably connected to the inside of the first slide groove (10). A side bin (41) is fixedly connected to the inner wall of the left end of the processing device (4), and the side bin (41) passes through and extends to the inside of the auxiliary device (5). A rotation drive component (411) is fixedly connected to the bottom side of the inner wall of the right end of the side bin (41). The rotation drive component (411) is configured as a drive motor. A rotation shaft (412) is fixedly connected to the right output end of the rotation drive component (411). An end of the rotation shaft (412) away from the rotation drive component (411) is fixedly connected to a first movable wheel (413). An end of the first movable wheel (413) away from the rotation shaft (412) is fixedly connected to a telescopic rod (417). The telescopic rod (417) passes through the processing device (4) and The side bin (41) extends to the outside of the right end of the processing device (4); the top side of the left inner wall of the side bin (41) is rotatably connected to a first shaft (414); the right end surface of the first shaft (414) is fixedly connected to a second movable wheel (415); the second movable wheel (415) and the outer surface of the first movable wheel (413) are movably connected to a movable belt (416); the image generation and projection device (410) is fixedly connected to the right end surface of the side bin (41); the image generation and projection device (410) passes through and extends to the interior of the auxiliary device (5); the front and rear end surfaces of the image generation and projection device (410) are fixedly connected to two fixing members (4100); the other ends of the four fixing members (4100) are respectively fixedly connected to the inner walls of the auxiliary device (5) and the processing device (4); and the right end surface of the image generation and projection device (410) is fixedly connected to the projection bin.

6. The adjusting mechanism for displaying graphic, text, or video content according to claim 5, wherein: The processing device (4) further comprises a processing chamber (42), which is arranged inside the processing device (4), a second slide bar (420) is fixedly connected to the bottom of the processing chamber (42), a second slide groove (400) is provided at one end of the processing device (4) close to the second slide bar (420), the second slide bar (420) is slidably connected inside the second slide groove (400), a sleeve rod (421) is provided inside the processing chamber (42), the sleeve rod (421) passes through the processing chamber (42) and extends to the processing chamber (42). At the outer side of the left end of the storage bin (42), the inner front end and the rear end of the sleeve rod (421) are both provided with a limiting groove (4210), the telescopic rod (417) is movably connected to the inner part of the sleeve rod (421), the portion of the telescopic rod (417) at the sleeve rod (421) is fixedly connected to the chassis (4170), the end of the chassis (4170) close to the limiting groove (4210) is fixedly connected to the slider (4171), the slider (4171) is slidably connected to the inner part of the limiting groove (4210), and the sleeve The rod (421) is fixedly connected to the first bevel gear (422) at the portion where it is located in the processing chamber (42). The front end and the rear end of the first bevel gear (422) are both meshedly connected to the second bevel gear (423). The end of the second bevel gear (423) away from the first bevel gear (422) is fixedly connected to the fixed rod (424). The end of the fixed rod (424) away from the second bevel gear (423) is fixedly connected to the rotating disk (425). The rotating disk (425) is fixedly connected to the end of the fixed rod (424). The end is fixedly connected to a rotating rod (426) and the rotating rod (426) is not arranged at the center of the rotating disk (425). The outer surface of the rotating rod (426) is movably connected to the return groove plate (43). The top of the return groove plate (43) is fixedly connected to a movable plate (430). The ends of the two movable plates (430) close to their symmetrical surfaces are fixedly connected to a mounting rod (431). A cleaning plate (432) is fixedly connected between the two mounting rods (431). The top of the processing device (4) is not closed.

7. The adjusting mechanism for displaying graphic, text, or video content according to claim 6, wherein: The auxiliary device (5) includes a second shaft (50), which is arranged inside the auxiliary device (5), the second shaft (50) passes through and extends to the inside of the side bin (41), and the extended portion of the second shaft (50) is fixedly connected to the second movable wheel (415), the right end surface of the second shaft (50) is fixedly connected to a second linear drive component (500), the second linear drive component (500) is configured as a cylinder, the right end output end of the second linear drive component (500) is differentially connected to a second output rod (501), the right end surface of the second output rod (501) is fixedly connected to a clamping rod (502), a screw (51) is arranged inside the auxiliary device (5), the left and right sides of the screw (51) are rotatably connected to a limiting sleeve (510), and the top of the limiting sleeve (510) is fixedly connected to the auxiliary device. At the top inner wall of the housing (5), a screw rod (51) passes through the left limiting sleeve (510), and the through portion of the screw rod (51) is fixedly connected to a chuck (511) adapted to the chuck rod (502). The outer surface of the screw rod (51) is movably connected to a movable sleeve (52). The bottom of the movable sleeve (52) is fixedly connected to a projection lens barrel (520). The left portion of the projection lens barrel (520) is movably connected to the outer surface of the projection chamber. The bottom of the projection lens barrel (520) is fixedly connected to a fixing frame (521). The fixing frame (521) is fixedly connected to the top of the processing chamber (42). The collection component (53) is fixedly connected to the right end surface of the auxiliary device (5). The top of the auxiliary device (5) is fixedly connected to a data center (54). The control center (55) is fixedly connected to the top of the data center (54).

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