Generating facets for phone-based navigation of structured data

Krishna Kummamuru, Ajith Jujjuru, Mayuri Duggirala
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引用次数: 1

Abstract

Designing interactive voice systems that have optimum cognitive load on callers has been an active research topic for quite some time. There have been many studies comparing the user preferences on navigation trees with higher depths over higher breadths. In this paper, we consider the navigation of structured data containing various types of attributes using phone-based interactions. This problem is particularly relevant to emerging economies in which innovative voice-based applications are being built to address semi-literate population. We address the problem of identifying the right sequence of facets to be presented to the user for phone-based navigation of the data in two stages. Firstly, we perform extensive user studies in the target population to understand the relation between the nature of facets (attributes) of the data and the cognitive load. Secondly, we propose an algorithm to design optimum navigation trees based on the inferences made in the first phase. We compare the proposed algorithm with the traditional facet generation algorithms with respect to various factors and discuss the optimality of the proposed algorithm.
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为基于手机的结构化数据导航生成facet
设计对呼叫者具有最佳认知负荷的交互式语音系统一直是一个活跃的研究课题。已经有很多研究比较了用户对导航树深度和宽度的偏好。在本文中,我们考虑使用基于手机的交互来导航包含各种类型属性的结构化数据。这个问题与新兴经济体尤其相关,新兴经济体正在开发基于语音的创新应用程序,以解决半文盲人口的问题。我们在两个阶段解决了识别要呈现给用户的基于手机的数据导航的正确序列的问题。首先,我们在目标人群中进行了广泛的用户研究,以了解数据方面(属性)的性质与认知负荷之间的关系。其次,我们提出了一种基于第一阶段推理的最优导航树设计算法。我们将所提出的算法与传统的面生成算法在各种因素方面进行比较,并讨论所提出算法的最优性。
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