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Narrowing the Gap Between QoS Metrics and Web QoE Using Above-the-fold Metrics

机译:使用首屏度量缩小QoS度量与Web QoE之间的差距

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Page load time (PLT) is still the most common application Quality of Service (QoS) metric to estimate the Quality of Experience (QoE) of Web users. Yet, recent literature abounds with proposals for alternative metrics (e.g., Above The Fold, SpeedIndex and their variants) that aim at better estimating user QoE. The main purpose of this work is thus to thoroughly investigate a mapping between established and recently proposed objective metrics and user QoE. We obtain ground truth QoE via user experiments where we collect and analyze 3,400 Web accesses annotated with QoS metrics and explicit user ratings in a scale of 1 to 5, which we make available to the community. In particular, we contrast domain expert models (such as ITU-T and IQX) fed with a single QoS metric, to models trained using our ground-truth dataset over multiple QoS metrics as features. Results of our experiments show that, albeit very simple, expert models have a comparable accuracy to machine learning approaches. Furthermore, the model accuracy improves considerably when building per-page QoE models, which may raise scalability concerns as we discuss.
机译:页面加载时间(PLT)仍然是最常见的应用程序服务质量(QoS)指标,用于估计Web用户的体验质量(QoE)。但是,最近的文献中充斥着针对替代指标的建议(例如,高于折页,SpeedIndex及其变体),这些指标旨在更好地估算用户QoE。因此,这项工作的主要目的是彻底研究已建立的和最近提出的客观指标与用户QoE之间的映射。我们通过用户实验获得基本事实QoE,我们在其中收集和分析3,400个以QoS指标和明确的用户评分为注释的Web访问,比例为1到5,并向社区提供。特别是,我们将采用单个QoS指标的领域专家模型(例如ITU-T和IQX)与使用我们的真实数据集以多个QoS指标为特征训练的模型进行了对比。我们的实验结果表明,尽管非常简单,但专家模型的准确性与机器学习方法相当。此外,在构建每页QoE模型时,模型准确性大大提高,这可能引起我们讨论的可扩展性问题。

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