首页> 外文会议>IFIP WG 6.11 Conference on e-Business, e-Services, and e-Society >How Quickly Can We Predict Users' Ratings on Aesthetic Evaluations of Websites? Employing Machine Learning on Eye-Tracking Data
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How Quickly Can We Predict Users' Ratings on Aesthetic Evaluations of Websites? Employing Machine Learning on Eye-Tracking Data

机译:我们如何快速预测用户对网站的美学评估的评级? 在眼睛跟踪数据上使用机器学习

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This study examines how quickly we can predict users' ratings on visual aesthetics in terms of simplicity, diversity, colorfulness, craftsmanship. To predict users' ratings, first we capture gaze behavior while looking at high, neutral, and low visually appealing websites, followed by a survey regarding user perceptions on visual aesthetics towards the same websites. We conduct an experiment with 23 experienced users in online shopping, capture gaze behavior and through employing machine learning we examine how fast we can accurately predict their ratings. The findings show that after 25 s we can predict ratings with an error rate ranging from 9% to 11 % depending on which facet of visual aesthetic is examined. Furthermore, within the first 15 s we can have a good and sufficient prediction for simplicity and colorfulness, with error rates 11% and 12% respectively. For diversity and craftsmanship, 20 s are needed to get a good and sufficient prediction similar to the one from 25 s. The findings indicate that we need more than 10 s of viewing time to be able to accurately capture perceptions on visual aesthetics. The study contributes by offering new ways for designing systems that will take into account users' gaze behavior in an unobtrusive manner and will be able inform researchers and designers about their perceptions of visual aesthetics.
机译:本研究审查了我们在简单,多样性,丰富多彩,工艺方面预测用户对视觉美学评级的速度。为了预测用户的评级,首先捕获凝视行为,同时看看高,中立和低视觉上吸引人的网站,然后是关于用户对视觉美学对同一网站的看法的调查。我们在网上购物中进行了23名经验丰富的用户进行实验,捕获凝视行为,通过采用机器学习,我们检查我们可以准确预测其评级的速度。结果表明,在25秒之后,我们可以预测误差率的额定值,根据检测到视觉美学的刻面。此外,在前15秒内,我们可以为简单和丰富度具有良好且充分的预测,误差率分别为11%和12%。对于多样性和工艺,需要20秒来获得类似于25秒的良好和充分的预测。调查结果表明,我们需要超过10秒的观看时间,以便能够准确地捕捉视觉美学的看法。该研究通过提供以不引人注目的方式考虑用户凝视行为的新方法,并能够能够向研究人员和设计师提供关于他们对视觉美学的看法。

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