A text entry interface using smooth pursuit movements and language model

Zhe Zeng, M. Rötting
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引用次数: 9

Abstract

Nowadays, with the development of eye tracking technology, the gaze-interaction applications demonstrate great potential. Smooth pursuit based gaze typing is an intuitive text entry system with low learning effort. In this study, we provide a language-prediction function for a smooth-pursuit based gaze-typing system. Since the state-of-the-art neural network models have been successfully applied in language modeling, this study uses a pretrained model based on convolutional neural networks (CNNs) and develops a prediction function, which can predict both next possible letters and word. The results of a pilot experiment have shown that the next possible letters or word can be well predicted and selected. The mean typing speed can achieve 4.5 words per minute. The participants consider that the word prediction is helpful for reducing the visual search time.
一个使用平滑追踪动作和语言模型的文本输入界面
如今,随着眼动追踪技术的发展,目光交互的应用显示出巨大的潜力。基于平滑追踪的注视输入是一种低学习成本的直观文本输入系统。在这项研究中,我们为基于平滑追踪的注视类型系统提供了一个语言预测函数。由于最先进的神经网络模型已经成功地应用于语言建模,本研究使用基于卷积神经网络(cnn)的预训练模型,并开发了一个预测函数,该函数可以预测下一个可能的字母和单词。一项初步实验的结果表明,下一个可能的字母或单词可以很好地预测和选择。平均打字速度可达每分钟4.5字。参与者认为单词预测有助于减少视觉搜索时间。
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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