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A Web Browsing Cognitive Model

机译:网络浏览认知模型

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摘要

Web usage have been studied from the point of view of machine learning. Although web usage prediction are mostly restricted to an static web site structure, hence this results to be a hard restriction to accomplish in the practice. We propose a decision-making model that allow predicting web users' navigation choices even in dynamics web sites. We propose a neurophysiological theory of web browsing decision making, which is based on the Leaky Competing Accumulator (LCA). The model is stochastic and has been studied in the context of Psychology for many years. Choices are performed to follow hyperlink according to user text preferences. This process is repeated until the web user decide to leave the web site. Model's parameters are required to be fitted in order to perform Monte Carlo simulations. It has been observed that nearly 73% of the real distribution is recovered by this method.
机译:从机器学习的角度研究了Web使用。尽管Web使用预测主要限于静态网站结构,因此,这实际上是在实践中难以实现的限制。我们提出一种决策模型,即使在动态网站中也可以预测网络用户的导航选择。我们提出了基于泄漏竞争累加器(LCA)的网络浏览决策的神经生理学理论。该模型是随机的,并且已经在心理学的背景下进行了多年的研究。根据用户文本首选项执行选择以跟随超链接。重复此过程,直到Web用户决定离开该网站为止。为了执行蒙特卡洛模拟,需要拟合模型的参数。已经观察到,通过这种方法可以恢复将近73%的实际分布。

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