Comparison-based Choices

J. Kleinberg, S. Mullainathan, J. Ugander
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引用次数: 17

Abstract

A broad range of on-line behaviors are mediated by interfaces in which people make choices among sets of options. A rich and growing line of work in the behavioral sciences indicate that human choices follow not only from the utility of alternatives, but also from the choice set in which alternatives are presented. In this work we study comparison-based choice functions, a simple but surprisingly rich class of functions capable of exhibiting so-called choice-set effects. Motivated by the challenge of predicting complex choices, we study the query complexity of these functions in a variety of settings. We consider settings that allow for active queries or passive observation of a stream of queries, and give analyses both at the granularity of individuals or populations that might exhibit heterogeneous choice behavior. Our main result is that any comparison-based choice function in one dimension can be inferred as efficiently as a basic maximum or minimum choice function across many query contexts, suggesting that choice-set effects need not entail any fundamental algorithmic barriers to inference. We also introduce a class of choice functions we call distance-comparison-based functions, and briefly discuss the analysis of such functions. The framework we outline provides intriguing connections between human choice behavior and a range of questions in the theory of sorting.
网络选择
广泛的在线行为是由界面介导的,人们在其中从一组选项中做出选择。行为科学中丰富且不断增长的研究表明,人类的选择不仅遵循选择的效用,而且遵循选择的集合。在这项工作中,我们研究了基于比较的选择函数,这是一种简单但令人惊讶的丰富的函数,能够表现出所谓的选择集效应。由于预测复杂选择的挑战,我们研究了这些函数在各种设置下的查询复杂性。我们考虑了允许主动查询或被动观察查询流的设置,并在可能表现出异构选择行为的个体或群体的粒度上进行了分析。我们的主要结果是,一维中任何基于比较的选择函数都可以像跨许多查询上下文的基本最大或最小选择函数一样有效地推断出来,这表明选择集效应不需要为推理带来任何基本的算法障碍。我们还介绍了一类选择函数,我们称之为基于距离比较的函数,并简要讨论了这类函数的分析。我们概述的框架在人类选择行为和排序理论中的一系列问题之间提供了有趣的联系。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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