How Do Classifiers Induce Agents to Invest Effort Strategically?

J. Kleinberg, Manish Raghavan
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引用次数: 119

Abstract

Algorithms are often used to produce decision-making rules that classify or evaluate individuals. When these individuals have incentives to be classified a certain way, they may behave strategically to influence their outcomes. We develop a model for how strategic agents can invest effort in order to change the outcomes they receive, and we give a tight characterization of when such agents can be incentivized to invest specified forms of effort into improving their outcomes as opposed to "gaming" the classifier. We show that whenever any "reasonable" mechanism can do so, a simple linear mechanism suffices.
分类器如何诱导智能体策略性地投入精力?
算法通常用于产生对个体进行分类或评估的决策规则。当这些人有被分类的动机时,他们可能会采取策略来影响结果。我们开发了一个模型,说明战略代理如何投入努力来改变他们收到的结果,并且我们给出了一个严格的特征,即这些代理何时可以被激励投入特定形式的努力来改善他们的结果,而不是“博弈”分类器。我们表明,只要任何“合理”的机制可以做到这一点,一个简单的线性机制就足够了。
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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