Visual detection method for appearances

A visual inspection and appearance technology, applied in neural learning methods, measurement devices, image data processing, etc., can solve the problems affecting the speed and performance of subsequent feature extraction and classification, many redundant windows, and high time complexity

Active Publication Date: 2020-11-17
上海微亿智造科技有限公司 +1
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  • Summary
  • Abstract
  • Description
  • Claims
  • Application Information

AI Technical Summary

Problems solved by technology

[0005] Traditional target detection algorithms often use a sliding window strategy to traverse the entire image, and then use Haar, SIFT, HOG and other feature extractors to extract target objects, and then use SVM, Adaboost and other classifiers to classify the extracted targets. Although t

Method used

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  • Visual detection method for appearances

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Embodiment Construction

[0088] The present invention will be described in detail below in conjunction with specific embodiments. The following examples will help those skilled in the art to further understand the present invention, but do not limit the present invention in any form. It should be noted that those skilled in the art can make several changes and improvements without departing from the concept of the present invention. These all belong to the protection scope of the present invention.

[0089] The present invention will be described in more detail through preferred examples below.

[0090] Preferred example 1:

[0091] 1. Optical guidance

[0092] Optical guidance refers to calculating the brightness, contour, area and other similarities of the images to be compared by using the reference image as the standard, so as to ensure the optical imaging consistency of the images collected by the same batch of products on different machines (including product imaging angles) , image size, im...

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Abstract

The invention provides a visual detection method for appearances which comprises the following steps: an optical guiding step: calculating the similarity of images to be compared by taking a referenceimage as a standard, so as to ensure the optical imaging consistency of the images acquired by the same batch of products on different machines; and in the visual guidance step, when small part products need to reach preset high precision, otherwise, indicating that a mechanical arm cannot conduct normal feeding; acquiring the deviation angle, the X position and the Y position of a product through a visual guidance algorithm before product feeding, and notifying the machines to conduct adjustment to ensure the product feeding precision. According to the invention, a deep learning and traditional image processing machine vision detection method is adopted, so that the requirement of similarity comparison in an image acquisition stage exists, and the invention is used for ensuring that consistent images are acquired, thereby ensuring accuracy of subsequent data for depth model detection and the accuracy of image detection.

Description

technical field [0001] The present invention relates to the field of graphic detection, in particular to a visual appearance detection method. Background technique [0002] Traditional optical guidance mainly relies on the subjective experience of the implementation engineer, and controls the optical imaging quality by adjusting the camera focal length, aperture, and working distance. The effect is average, and the imaging optical consistency of different machines is poor. [0003] The traditional visual guidance process is generally as follows: a loading mechanism (manipulator, suction cup, etc.) with an industrial camera takes a photo before each grabbing of the material, and calculates the information of the position deviation and angle deviation of the material to be grasped through the visual software to ensure It can meet the blanking accuracy when blanking. The main defect is that the accuracy cannot be guaranteed. [0004] Traditional target detection algorithms of...

Claims

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Application Information

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IPC IPC(8): G06T7/00G06T7/11G06T7/136G06T7/194G01B11/00G06K9/62G06N3/08G06T5/00
CPCG06T7/0004G06T7/11G06T7/136G06T7/194G06T5/002G06N3/08G01B11/00G06T2207/30164G06T2207/20081G06T2207/20084G06T2207/20048G06F18/22G06F18/2431
Inventor 王罡侯大为
Owner 上海微亿智造科技有限公司
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