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A Multimodal Fingers Classification for General Interactive Surfaces

机译:通用交互式曲面的多峰手指分类

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In this paper a multimodal fingers classification to detect touch points over general interactive surfaces is presented. Three different classifiers have been used: artificial neural networks, decision trees and rules learner. The data set has been created extracting statistical parameters from finger ROIs on about 40000 video samples. The accuracy obtained for the three classifiers on the test set is respectively 96,68%, 96,58% and 97,41%. The model classifiers generated work very well in real-time applications, so an innovative software called TouchPAD has been designed and implemented.
机译:在本文中,提出了一种多模态手指分类以检测一般交互表面上的触摸点。已经使用了三种不同的分类器:人工神经网络,决策树和规则学习器。已创建数据集,从大约40000个视频样本的手指ROI中提取统计参数。测试集上三个分类器的准确度分别为96.68%,96.58%和97.41%。模型分类器在实时应用程序中生成的效果非常好,因此已经设计并实现了一种称为TouchPAD的创新软件。

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