Personalizable Pen-Based Interface Using Lifelong Learning

Abdullah Almaksour, É. Anquetil, Solen Quiniou, M. Cheriet
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引用次数: 19

Abstract

In this paper, we present a new method to design customizable self-evolving fuzzy rule-based classifiers. The presented approach combines an incremental clustering algorithm with a fuzzy adaptation method in order to learn and maintain the model. We use this method to build an evolving handwritten gesture recognition system, that can be integrated into an application to provide personalization capabilities. Experiments on an on-line gesture database were performed by considering various user personalization scenarios. The experiments show that the proposed evolving gesture recognition system continuously adapts and evolve according to new data of learned classes, and remains robust when introducing new unseen classes, at any moment during the lifelong learning process.
个性化的基于笔的界面使用终身学习
本文提出了一种设计自定义自进化模糊分类器的新方法。该方法将增量聚类算法与模糊自适应方法相结合,实现了对模型的学习和维护。我们使用这种方法构建了一个不断进化的手写手势识别系统,该系统可以集成到应用程序中以提供个性化功能。考虑了不同的用户个性化场景,对在线手势数据库进行了实验。实验表明,所提出的进化手势识别系统在终身学习过程中的任何时刻都能根据已学习类的新数据不断适应和进化,并在引入新的未知类时保持鲁棒性。
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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