使用卷积神经网络进行机器文字识别

IF 0.6 Q4 COMPUTER SCIENCE, INFORMATION SYSTEMS
Ladislav Karrach, E. Pivarčiová
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引用次数: 0

摘要

卷积神经网络是一种特殊类型的人工神经网络,可以解决计算机视觉中的各种任务,如图像分类、对象检测和一般识别。本文介绍了卷积神经网络的基本组成部分及其体系结构,并以车牌字符识别为例,将其识别精度与其他字符识别技术进行了比较。实验的目的是确定卷积神经网络的最佳配置,以及训练集的大小和设计方法对识别率的影响。研究表明,尽管卷积神经网络最近受到了关注,但传统的识别方法仍然相关,正确分类器及其配置的选择取决于识别任务的类型。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Using a Convolutional Neural Network for Machine Written Character Recognition
Convolutional neural networks are special types of artificial neural networks that can solve various tasks in computer vision, such as image classification, object detection, and general recognition. The paper presents the basic building blocks of convolutional neural networks and their architecture, and compares their recognition accuracy with other character recognition techniques using the example of character recognition from vehicle registration plates. The purpose of the experiments was to determine the optimal configuration of the convolutional neural network and the influence of the size and design method of the training set on the recognition rate. The study shows that although convolutional neural networks have recently gained attention, traditional recognition methods are still relevant, and the choice of the right classifier and its configuration depends on the type of recognition task.
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来源期刊
TEM Journal-Technology Education Management Informatics
TEM Journal-Technology Education Management Informatics COMPUTER SCIENCE, INFORMATION SYSTEMS-
CiteScore
2.20
自引率
14.30%
发文量
176
审稿时长
8 weeks
期刊介绍: TEM JOURNAL - Technology, Education, Management, Informatics Is a an Open Access, Double-blind peer reviewed journal that publishes articles of interdisciplinary sciences: • Technology, • Computer and informatics sciences, • Education, • Management
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