Image screening system and screening method
By designing an image filtering system, which utilizes mechanical transmission and motor control to achieve precise filtering and classification of photos, the problem of photo filtering in existing technologies is solved, and processing efficiency and accuracy are improved.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- 罗茜婉
- Filing Date
- 2023-09-13
- Publication Date
- 2026-04-10
AI Technical Summary
Existing technology makes it difficult to effectively filter and classify multiple photos to ensure that similar photos are stored together.
Design an image screening system, including a screening tray, a geared motor, a shooting tube, a rotating shaft, and a sorting roller, etc., to achieve image shooting, angle adjustment, and classification screening through mechanical transmission and motor control.
It enables precise filtering and classification of multiple photos, ensuring that similar photos are stored together, thus improving the efficiency and accuracy of photo processing.
Smart Images

Figure CN121820182A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of image processing technology, and more specifically to an image filtering system and filtering method. Background Technology
[0002] An image is also called a photograph or photo. A photograph is an image of a person or object created by exposing photosensitive paper under a photographic negative, followed by development and fixing. The principle of a photograph is to create an image of a person or object by exposing photosensitive paper under a photographic negative, followed by development and fixing. This process is completed in a completely sealed darkroom and is an image formed entirely by scanning and irradiating with red, green, and blue lasers. Photosensitive imaging technology magically converts RGB lasers into images. The colors in a photograph grow from the molecular level within the photographic paper, unlike digital printing, inkjet printing, and other output methods that rely on the accumulation of ink. Photosensitive imaging technology ensures that the color information of each pixel in a photograph is complete. Multiple photographs taken need to be screened and classified to ensure that similar photographs are stored together. Summary of the Invention
[0003] The purpose of this invention is to provide an image filtering system and method. This system can filter multiple images to ensure that similar photos can be stored together.
[0004] An image screening system includes a screening tray and a geared motor I fixedly connected below the screening tray. A shooting horizontal tube is fixedly connected to the output shaft of the geared motor I. Two rotating horizontal shafts are rotatably connected to the screening tray, and a sorting roller is fixedly connected to both ends of the two rotating horizontal shafts.
[0005] Furthermore, both ends of the two rotating horizontal shafts are fixedly connected to drive sprockets, and the multiple drive sprockets are divided into two groups of two drive sprockets.
[0006] Furthermore, a dual-head motor is fixedly connected to the screening tray, and a main sprocket is fixedly connected to each of the two output shafts of the dual-head motor. Two support sprockets are rotatably connected to the screening tray. The two sets of two transmission sprockets, two main sprockets and two support sprockets are divided into two groups, and each group of two transmission sprockets, main sprockets and support sprockets is connected by a transmission chain.
[0007] Furthermore, multiple telescopic rods are evenly and fixedly connected to the screening tray, and multiple lifting cavities are slidably connected to the screening tray, with the multiple telescopic rods respectively fixedly connected to the multiple lifting cavities.
[0008] Furthermore, multiple lifting cavities are fixedly connected to a notched horizontal plate.
[0009] Furthermore, multiple supporting rollers are rotatably connected to the notched horizontal plate.
[0010] Furthermore, vertical partitions are fixedly connected to both the front and rear ends above the notched horizontal plate.
[0011] Furthermore, a support plate is fixedly connected to the notched horizontal plate, and a central rotating shaft is fixedly connected to the center below the support plate.
[0012] Furthermore, the central rotating shaft is rotatably connected to the bottom fixed support plate, and a reduction motor II is fixedly connected to the bottom fixed support plate. The output shaft of the reduction motor II is fixedly connected to the central rotating shaft.
[0013] Furthermore, the image filtering method of the aforementioned image filtering system includes the following steps:
[0014] Step 1: Place the multiple images one by one under the filtering tray;
[0015] Step 2: When an image is located under the screening tray, the geared motor I will be activated;
[0016] Step 3: The geared motor I drives the horizontal shooting tube to rotate. When the horizontal shooting tube rotates, the image can be captured and processed.
[0017] Step 4: Adjust the angle of the screening table based on the photo information;
[0018] Step 5: After the angle is adjusted, the two horizontal shafts will rotate, which will drive the two sets of two stacking rollers to rotate, thereby discharging the image.
[0019] Step Six: After the image is displayed, the filtering tray will return to its original position to process the next image. Attached Figure Description
[0020] The present invention will now be described in further detail with reference to the accompanying drawings and specific implementation methods.
[0021] Figure 1 This is a schematic diagram of the overall structure of an image filtering system according to the present invention;
[0022] Figure 2 This is a partial structural diagram of an image filtering system;
[0023] Figure 3 This is a schematic diagram of another aspect of an image filtering system.
[0024] Figure 4 This is a structural schematic diagram of an embodiment for capturing and sampling images;
[0025] Figure 5 This is a schematic diagram of the structure that moves and discharges the image according to the embodiment.
[0026] Figure 6 This is a structural diagram illustrating an embodiment that provides support at the bottom of this system;
[0027] Figure 7 This is a partial structural diagram of an embodiment that provides support at the bottom of this system;
[0028] Figure 8 This is a schematic diagram of another side of the structure of an embodiment that provides support for the bottom of this system;
[0029] Figure 9 This is a schematic diagram of an embodiment for limiting the position of an image;
[0030] Figure 10 This is a schematic diagram of the specific structure of an embodiment for adjusting the image output position. Detailed Implementation
[0031] The present invention will now be described in further detail with reference to the accompanying drawings.
[0032] The following is in conjunction with the appendix Figure 1-6 Detailed description: An image screening system includes a screening tray 101 and a geared motor 1102 fixedly connected to the bottom of the screening tray 101 via a flange plate. A shooting horizontal tube 103 is fixedly connected to the output shaft of the geared motor 1102 via a keyway and a snap ring. Two rotating horizontal shafts 104 are rotatably connected to the screening tray 101 via bearing seats. Both ends of the two rotating horizontal shafts 104 are fixedly connected to a sorting roller 105 by welding.
[0033] Furthermore, the screening tray 101 serves as a load-bearing and connecting element, providing a fixed space for the geared motor 1102 and a space for the two rotating horizontal shafts 104 to rotate. The geared motor 1102 provides a fixed space for the imaging horizontal tube 103 and drives it to rotate. The imaging horizontal tube 103 is used to capture and screen images. The screening tray 101 rotates according to the type of image. The two rotating horizontal shafts 104 provide a connecting space for the two sets of two sorting rollers 105 and drive them to rotate. When the two sets of two sorting rollers 105 rotate, they move the images, placing them in the appropriate positions to complete the image classification and screening process. The outer surfaces of the two sets of two sorting rollers 105 are covered with rubber, which increases the friction between the images and the rollers, ensuring the images can move.
[0034] Multiple images are placed sequentially under the screening tray 101. When an image is located under the screening tray 101, the reduction motor I102 will be activated, thereby driving the imaging tube 103 to rotate. When the imaging tube 103 rotates, the image can be captured and processed. Afterwards, the processor will use the image to adjust the angle of the screening tray 101. After the angle is adjusted, the two rotating shafts 104 will rotate, thereby driving the two sets of two sorting rollers 105 to rotate, thereby discharging the image. After the image is discharged, the screening tray 101 will return to its original position to process the next image.
[0035] The following is in conjunction with the appendix Figure 1-3 As detailed in section 5, both ends of the two rotating horizontal shafts 104 are fixedly connected to transmission sprockets 201 through keyways and snap rings, and the multiple transmission sprockets 201 are divided into two groups of two transmission sprockets 201.
[0036] Furthermore, two sets of two transmission sprockets 201 can drive two rotating horizontal shafts 104 to rotate, thereby driving two sets of two sorting rollers 105 to rotate, thus completing the screening and classification processing of multiple images.
[0037] The following is in conjunction with the appendix Figure 1-3 In detail in section 5, a dual-head motor 301 is fixedly connected to the screening tray 101 via a flange plate. The two output shafts of the dual-head motor 301 are each fixedly connected to a main sprocket 302 via a keyway and a snap ring. Two support sprockets 303 are rotatably connected to the screening tray 101 via bearing seats. The two sets of two transmission sprockets 201, two main sprockets 302 and two support sprockets 303 are divided into two groups. Each group of two transmission sprockets 201, main sprockets 302 and support sprockets 303 are connected by a transmission chain.
[0038] Furthermore, the dual-head motor 301 drives two main sprockets 302 to rotate. When the main sprockets 302 rotate, they drive two transmission chains to rotate. When the two transmission chains rotate, they drive two sets of two transmission sprockets 201 to rotate, ultimately driving the two horizontal shafts 104 to rotate. The two support sprockets 303 support the two transmission chains, preventing them from contacting the imaging horizontal tube 103. When the imaging horizontal tube 103 rotates, it will not contact the two transmission chains, thus ensuring that the imaging horizontal tube 103 can rotate smoothly. Only with the smooth rotation of the imaging horizontal tube 103 can accurate image shooting and screening be achieved.
[0039] According to the instruction manual Figure 1-4Detailed descriptions of sections 6 and 7: Multiple telescopic rods 401 are uniformly fixedly connected to the screening tray 101 via flange plates; multiple lifting slide chambers 402 are slidably connected to the screening tray 101 via multiple straight cavities; and the multiple telescopic rods 401 are respectively fixedly connected to the multiple lifting slide chambers 402 via flange plates.
[0040] Furthermore, multiple lifting cavities 402 provide sliding space for the screening tray 101, allowing it to slide only up and down. The lifting cavities 402 can be fixed in place, thus securing the screening tray 101 and restricting its movement. Multiple telescopic rods 401 can be used to raise and lower the screening tray 101, ultimately changing the height of the two sets of tray rollers 105. When the image moves directly below the screening tray 101, the two sets of tray rollers 105 are at the correct height. After image analysis, the screening tray 101 rotates. Once the screening tray 101 is adjusted, the multiple telescopic rods 401 activate, causing the screening tray 101 to move downwards, bringing the two sets of tray rollers 105 into contact with the image. When the two sets of tray rollers 105 rotate, they move the image, completing the image discharge.
[0041] According to the instruction manual Figure 1 and 6 -9 Detailed description: The plurality of the lifting slide cavities 402 are fixedly connected to the notched horizontal plate 501 by welding.
[0042] Furthermore, the notched horizontal plate 501 can provide a fixed space for multiple lifting cavities 402, allowing images to be placed on the notched horizontal plate 501. The images falling onto the notched horizontal plate 501 are then captured and filtered. The notched horizontal plate 501 can contact the conveyor belt, allowing multiple images to be placed on the conveyor belt. The images will then move sequentially onto the notched horizontal plate 501, and the multiple images moving onto the notched horizontal plate 501 will be filtered and classified.
[0043] According to the instruction manual Figure 1 and 6 -9 Detailed description: Multiple supporting rollers 601 are rotatably connected to the notched horizontal plate 501 via shafts.
[0044] Furthermore, the image moved onto the notched horizontal plate 501 will fall onto multiple supporting rollers 601. With multiple supporting rollers 601, the friction between the image and the notched horizontal plate 501 can be reduced. When the two sets of two sorting rollers 105 come into contact with the image and rotate, the image can be moved on the multiple supporting rollers 601, thus facilitating the discharge of the image.
[0045] According to the instruction manual Figure 1 and 6-9 Detailed description: Vertical partitions 701 are fixedly connected to both the front and rear ends of the notched horizontal plate 501 by welding.
[0046] Furthermore, the two vertical partitions 701 can be used to limit the image, allowing the image to enter only through the left end of the notched horizontal plate 501 and exit through the right end of the notched horizontal plate 501, ensuring the uniformity of the image exit position and facilitating the collection and processing of the exited images.
[0047] According to the instruction manual Figure 1 and 6 -10 Detailed description: A support plate 801 is fixedly connected to the notched horizontal plate 501 by welding, and a central rotating shaft 802 is fixedly connected to the center below the support plate 801 by welding.
[0048] Furthermore, the support plate 801 can provide a fixed space for the notched horizontal plate 501. The support plate 801 can drive the notched horizontal plate 501 to rotate, thereby ultimately changing the direction of image output. The central rotating shaft 802 can drive the support plate 801 to rotate, which in turn drives the notched horizontal plate 501 to rotate.
[0049] According to the instruction manual Figure 1 , 6 -8 and 10 provide detailed descriptions. The central rotating shaft 802 is rotatably connected to the bottom support plate 901 through a bearing hole. The bottom support plate 901 is fixedly connected to the reduction motor II 902 through a flange plate. The output shaft of the reduction motor II 902 is fixedly connected to the central rotating shaft 802 through a keyway and a snap ring.
[0050] Furthermore, the bottom support plate 901 provides space for the central rotating shaft 802 to rotate. The bottom support plate 901 is fixed to the ground, thus completing the fixation of the entire device. After starting the geared motor II 902, it can drive the central rotating shaft 802 to rotate. When the central rotating shaft 802 rotates, it can drive the support plate 801 to rotate, thereby changing the angle of the notch horizontal plate 501. The geared motor II 902 can be controlled by a signal. After the imaging horizontal tube 103 captures an image, it will transmit a signal to the geared motor II 902 and make the geared motor II 902 rotate at the correct angle, thereby ensuring that the image is placed in the appropriate position, and the same images are grouped together to complete the image screening.
[0051] The image filtering system filtering method includes the following steps:
[0052] Step 1: Place the multiple images one by one under the screening tray 101;
[0053] Step 2: When an image is located under the screening tray 101, the reduction motor I102 will be activated;
[0054] Step 3: The reduction motor I102 drives the horizontal shooting tube 103 to rotate. When the horizontal shooting tube 103 rotates, the image can be captured and processed.
[0055] Step 4: Adjust the angle of the screening tray 101 based on the photo information;
[0056] Step 5: After the angle is adjusted, the two horizontal shafts 104 will rotate, thereby driving the two sets of two stacking rollers 105 to rotate, thus outputting the image.
[0057] Step Six: After the image is displayed, the screening tray 101 will return to its original position to process the next image.
Claims
1. An image screening system, characterized by: It includes a screening tray (101) and a geared motor I (102) fixedly connected below the screening tray (101). A shooting horizontal tube (103) is fixedly connected to the output shaft of the geared motor I (102). Two rotating horizontal shafts (104) are rotatably connected to the screening tray (101). Both ends of the two rotating horizontal shafts (104) are fixedly connected to a sorting roller (105).
2. An image screening system according to claim 1, characterized in that: Both ends of the two rotating horizontal shafts (104) are fixedly connected to transmission sprockets (201), and the multiple transmission sprockets (201) are divided into two groups of two transmission sprockets (201).
3. An image screening system according to claim 2, wherein: A dual-head motor (301) is fixedly connected to the screening tray (101). A main sprocket (302) is fixedly connected to each of the two output shafts of the dual-head motor (301). Two support sprockets (303) are rotatably connected to the screening tray (101). The two sets of two transmission sprockets (201), two main sprockets (302) and two support sprockets (303) are divided into two groups. The two transmission sprockets (201), the main sprockets (302) and the support sprockets (303) in each group are connected by a transmission chain.
4. The image screening system of claim 1, wherein: Multiple telescopic rods (401) are evenly and fixedly connected to the screening tray (101), and multiple lifting cavities (402) are slidably connected to the screening tray (101). The multiple telescopic rods (401) are respectively fixedly connected to the multiple lifting cavities (402).
5. The image screening system of claim 1, wherein: Multiple lifting cavities (402) are fixedly connected to a notched horizontal plate (501).
6. An image screening system according to claim 5, wherein: Multiple supporting rollers (601) are rotatably connected to the notched horizontal plate (501).
7. An image screening system according to claim 5, wherein: Vertical partitions (701) are fixedly connected to both the front and rear ends of the notched horizontal plate (501).
8. The image filtering system according to claim 5, characterized in that: A support plate (801) is fixedly connected to the notched horizontal plate (501), and a central rotating shaft (802) is fixedly connected at the center below the support plate (801).
9. The image filtering system according to claim 8, characterized in that: The central rotating shaft (802) is rotatably connected to the bottom fixed plate (901), and a reduction motor II (902) is fixedly connected to the bottom fixed plate (901). The output shaft of the reduction motor II (902) is fixedly connected to the central rotating shaft (802).
10. A screening method using the image screening system of claim 9, characterized in that, The screening method includes the following steps: Step 1: Place the multiple images one by one under the screening tray (101); Step 2: When an image is located below the screening tray (101), the geared motor I (102) will be started; Step 3: The geared motor I (102) drives the shooting tube (103) to rotate. When the shooting tube (103) rotates, the image can be captured and processed. Step 4: Adjust the angle of the screening tray (101) based on the photo information; Step 5: After the angle is adjusted, the two horizontal rotating shafts (104) will rotate, thereby driving the two sets of two rotating rollers (105) to rotate, thus outputting the image; Step 6: After the image is displayed, the filtering tray (101) will return to its original position to process the next image.