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Joint Task Difficulties Estimation and Testees Ranking for Intelligence Evaluation

机译:联合任务难度估计和受测者智力评估排名

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In this paper, we study the testing tasks evaluation and testees ranking problem, in which tasks have different difficulty levels, and testees have different capabilities.We assume that a testee may have a probability to pass a certain task so as to allow certain uncertainty. The goal of this problem is to simultaneously determine the relative difficulty level of each testing task and the relative capability of every testee, purely based on the test outcome. We design two models to solve this problem. The first one assumes that the test outcome follows a certain Bernoulli distribution; while the second one assumes that the test outcome follows a certain Bernoulli distribution with the beta distribution-type a priori knowledge. Then, we form the original problem into likelihood estimation problems and solve them by using coordinate descent algorithms. We show that the beta distribution-type a priori knowledge is needed, when we only carry out a limited number of tests due to time and financial budgets. All these findings are useful to intelligence tests. Finally, we discuss how to extend this statistical learning model for more general cases as well as in a specific case in the field of Computational Social Systems like artificial social cognition evaluation.
机译:本文研究了测试任务评估和测试者排名问题,其中任务具有不同的难度级别,并且测试者具有不同的能力。我们假设测试者可能有通过某个任务的可能性,从而允许一定的不确定性。此问题的目的是纯粹基于测试结果,同时确定每个测试任务的相对难度级别和每个测试对象的相对能力。我们设计了两个模型来解决此问题。第一个假设测试结果遵循一定的伯努利分布。而第二个假设则假设测试结果遵循一定的伯努利分布,且具有β分布类型的先验知识。然后,我们将原始问题变成似然估计问题,并使用坐标下降算法对其进行求解。当由于时间和财务预算而仅进行有限数量的测试时,我们表明需要beta分布类型的先验知识。所有这些发现对于智力测验都是有用的。最后,我们讨论如何在计算社会系统领域(如人工社会认知评估)中将这种统计学习模型扩展到更一般的案例以及特定案例。

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