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Gaze and Event Tracking for Evaluation of Recommendation-Driven Purchase

机译:凝视和事件跟踪评估推荐驱动的购买

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摘要

Recommendation systems play an important role in e-commerce turnover by presenting personalized recommendations. Due to the vast amount of marketing content online, users are less susceptible to these suggestions. In addition to the accuracy of a recommendation, its presentation, layout, and other visual aspects can improve its effectiveness. This study evaluates the visual aspects of recommender interfaces. Vertical and horizontal recommendation layouts are tested, along with different visual intensity levels of item presentation, and conclusions obtained with a number of popular machine learning methods are discussed. Results from the implicit feedback study of the effectiveness of recommending interfaces for four major e-commerce websites are presented. Two different methods of observing user behavior were used, i.e., eye-tracking and document object model (DOM) implicit event tracking in the browser, which allowed collecting a large amount of data related to user activity and physical parameters of recommending interfaces. Results have been analyzed in order to compare the reliability and applicability of both methods. Observations made with eye tracking and event tracking led to similar results regarding recommendation interface evaluation. In general, vertical interfaces showed higher effectiveness compared to horizontal ones, with the first and second positions working best, and the worse performance of horizontal interfaces probably being connected with banner blindness. Neural networks provided the best modeling results of the recommendation-driven purchase (RDP) phenomenon.
机译:推荐系统通过呈现个性化建议,在电子商务营业局中发挥着重要作用。由于在线大量的营销内容,用户对这些建议的影响较小。除了建议书的准确性,其呈现,布局和其他视觉方面还可以提高其效率。本研究评估了推荐器接口的视觉方面。垂直和水平推荐布局经过测试,以及不同的视觉强度水平的物品呈现,并讨论了许多流行的机器学习方法获得的结论。介绍了建议四大电子商务网站推荐界面有效性的隐性反馈研究。使用两种不同的观察用户行为的方法,即浏览器中的眼睛跟踪和文档对象模型(DOM)隐式事件跟踪,这允许收集与用户活动相关的大量数据和推荐接口的物理参数。已经分析了结果,以比较两种方法的可靠性和适用性。用眼睛跟踪和事件跟踪进行的观察结果导致了关于推荐界面评估的类似结果。通常,与水平界面相比,垂直界面显示出更高的效果,其中第一和第二位置最佳,水平接口的性能较差可能与横幅失明相连。神经网络提供了推荐驱动购买(RDP)现象的最佳建模结果。

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