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Machine + man: A field experiment on the role of discretion in augmenting AI-based lending models

机译:机器+人:一个脱离级贷款模型中自行决定作用的现场试验

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We assess the role of human discretion in lending outcomes using a randomized, controlled experiment. The lenders in our sample utilize a third party, machine-generated credit model as an input in their decision. We design a new feature for the credit-scoring platform - the slider feature which - invites lenders to incorporate additional discretion in their decision by adjusting the machine-based recommendation. We compare the loan outcomes for treatment lenders that randomly get the slider, relative to a control group. The treatment group's adjustments are predictive of forward looking portfolio characteristics they show larger declines in future portfolio-level credit risk and larger increases in future sales orders, relative to the control group. The effects of our intervention are more pronounced when borrowers do not have social media accounts and in competitive markets. Our study provides insights about the role of human decisions, given the rapid evolution of machine-based lending models. (C) 2020 Elsevier B.V. All rights reserved.
机译:我们评估人类自行决定在使用随机控制实验的贷款结果方面的作用。我们的样本中的贷款人利用第三方机器生成的信用模式作为其决定中的输入。我们为信用评分平台设计了一个新功能 - 滑块功能 - 通过调整基于机器的推荐,邀请贷方在决定中纳入额外的自行决定。我们将贷款结果与控制组一起进行随机获取滑块的治疗贷款人进行比较。治疗集团的调整是预测前瞻性的组合特征,他们在未来的投资组合信用风险中显示出更大的下降,并相对于对照组将未来销售订单的增加。当借款人没有社交媒体账户和竞争市场时,我们的干预的效果更加明显。考虑到基于机器的贷款模型的快速演变,我们的研究提供了对人类决策作用的见解。 (c)2020 Elsevier B.v.保留所有权利。

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