基于触摸行为的年龄估计提高儿童安全

M. Hossain, Carl Haberfeld
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引用次数: 6

摘要

儿童只需敲击几下键盘就可以访问互联网上的成人内容。虽然可以建立单独的儿童安全帐户,但更好的方法可能是将自动年龄估计功能集成到浏览器中。我们设想通过实施儿童安全浏览器,结合类似电影行业的互联网内容评级,提供更安全的浏览体验。在创建这样的浏览器之前,有必要测试年龄估计模块,看看是否可能存在可接受的错误率。我们创建了一个Android应用程序,用于收集生物识别触摸数据,特别是敲击数据。我们安排了一所小学、一所初中、一所高中和一所大学,并收集了262个用户会话(5岁至61岁)的样本。从挖掘数据中构建特征向量,用于训练和测试14个回归器和分类器。回归结果显示,手机和平板电脑的最佳平均绝对误差分别为3.451年和3.027年。分类结果显示,手机和平板电脑的分类准确率分别为73.63%和82.28%。这些结果表明,年龄估计,因此,儿童安全浏览器,是可行的,是一个有价值的目标。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Touch Behavior Based Age Estimation Toward Enhancing Child Safety
Adult content on the Internet may be accessed by children with only a few keystrokes. While separate child-safe accounts may be established, a better approach could be incorporating automatic age estimation capability into the browser. We envision a safer browsing experience by implementing child-safe browsers combined with Internet content rating similar to the film industry. Before such a browser is created it was necessary to test the age estimation module to see whether acceptable error rates are possible. We created an Android application for collecting biometric touch data, specifically tapping data. We arranged with an elementary school, a middle school, a high school, and a university and collected samples from 262 user sessions (ages 5 to 61). From the tapping data, feature vectors were constructed, which were used to train and test 14 regressors and classifiers. Results for regression show the best mean absolute errors of 3.451 and 3.027 years, respectively, for phones and tablets. Results for classification show the best accuracies of 73.63% and 82.28%, respectively, for phones and tablets. These results demonstrate that age estimation, and hence, a child-safe browser, is feasible, and is a worthwhile objective.
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