Development of invariant features of nonconvex images for system of automatic recognition of three-dimensional objects

A. Terekhin
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引用次数: 1

Abstract

The ubiquity increase of production volumes leads to the introduction of automatic conveyors and assembly lines. An integral part of it is the robotic units, equipped with technical vision. System of automatic recognition is used therein as a machine vision. The main part of any SAR is a vector of image features. During the past five years, various of researchers have published many algorithms for calculating object features that allows to recognize three-dimensional objects [1, 2, 3 and 4]. This article describes an algorithm for calculating the dimensionless features of flat binary nonconvex images that are invariant to a shift, rotate, and scale change of the image of the object in the scene. The basis of developed features is a vector of diagonal features of form (created by author) of images of projections of three-dimensional objects, that describes the shape of the convex projection of the object. Selecting the basis for the development of new features is determined by the fact that using the basis of diagonal features of form, image classification model was created. It allows to use this features for solving the problem of recognition of randomly arranged three-dimensional objects by two images.
三维物体自动识别系统中非凸图像不变性特征的发展
产量的普遍增加导致了自动传送带和装配线的引入。它的一个组成部分是机器人单元,配备了技术视觉。其中,自动识别系统被用作机器视觉。SAR的主要部分是图像特征向量。在过去的五年中,各种各样的研究人员发表了许多计算物体特征的算法,这些算法允许识别三维物体[1,2,3,4]。本文描述了一种算法,用于计算平面二进制非凸图像的无量纲特征,这些特征对场景中对象的图像的移位、旋转和比例变化是不变的。开发特征的基础是三维物体投影图像的对角线特征形式向量(由作者创建),它描述了物体的凸投影的形状。选择发展新特征的依据,决定了利用对角线特征的形态基础,建立图像分类模型。它允许使用这一特征来解决由两个图像识别随机排列的三维物体的问题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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