特定的触摸手势在移动设备上找到有吸引力的短语在新闻浏览

Shohe Ito, Takuya Yoshida, F. Harada, H. Shimakawa
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引用次数: 2

摘要

当智能手机用户浏览网络新闻文章时,他们会偶然遇到吸引人的短语。那时,他们试图通过智能手机获取信息。为了在网页上搜索有吸引力的短语的信息,他们不得不操纵智能手机在小屏幕上搜索。由于操作错误等情况,它会引起压力。如果能够识别吸引短语并自动输入以推荐含有吸引短语信息的网页,则可以消除这种压力。由于智能手机的屏幕较小,用户可以通过滑动等触摸手势来移动屏幕上显示的新闻文章区域。在浏览一篇文章时,触摸手势的历史记录暗示了用户在文章中关注的位置和时间。本文提出了一种识别新闻文章中吸引人短语出现区域的方法,以实现吸引人短语的自动识别。我们已经实现了实时识别利用历史的触摸手势在网络新闻浏览。该方法通过手势轨迹显示触摸手势的历史。它是显示显示的文章区域的垂直坐标的时间序列的图表。当用户遇到吸引人的短语时,他们会采取一定的触摸手势模式来确认或仔细阅读吸引人的短语的邻近区域。因此,在所提出的方法中,通过将滑动时间窗口中的手势轨迹与预训练获得的模式匹配来检测包含吸引短语的新闻文章区域。我们使用二次函数近似的慢速和静止模式,并为单个用户定义参数。在手势轨迹上识别吸引短语时间窗的实验表明,该方法的最高准确率为0.579,最低准确率为0.278。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Specific Touch Gesture on Mobile Devices to Find Attractive Phrases in News Browsing
When smart phone users browse web news articles, they encounter attractive phrases by chance. At that time, they try to obtain information on the smart phones. In order to search the information of the attractive phrases on web pages, they have to manipulate the smart phones to search on the small screen. It causes stresses because of situations such as manipulation errors. Such stresses could be eliminated if the attractive phrases can be identified and be input automatically in order to recommend the web pages with the information of the attractive phrases. Because of the small screens of smart phones, users move the news article area displayed on the screens with touch gestures such as swipe. The history of touch gestures during browsing an article implies the position and the timing users have focused on in the article. This paper proposes a method to identify the areas where attractive phrases have appeared on news articles, in order to enable automatic identification of attractive phrases. We have achieved real-time identification by utilizing the history of touch gestures during a web news browsing. The proposed method shows the history of touch gestures by a gesture trail. It is a graph showing the time series of the vertical coordinate of the displayed article area. When users encounter attractive phrases, they take certain patterns of touch gestures to confirm or read carefully the neighborhood of the attractive phrases. Thus, in the proposed method, the news article area including an attractive phrase is detected by matching the gesture trail in a sliding time window with a pattern obtained by pre-training. We use slow-down and resting patterns approximated by quadratic functions with the parameters defined for individual users. Experiments to identify time windows of attractive phrases on gesture trails has revealed that the highest and the lowest precision ratios are 0.579 and 0.278, respectively.
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