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ICIE 1.0: A Novel Tool for Interactive Contextual Interaction Explanations

机译:ICIE 1.0:一种用于交互上下文交互解释的新颖工具

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With the rise of new laws around privacy and awareness, explanation of automated decision making becomes increasingly important. Nowadays, machine learning models are used to aid experts in domains such as banking and insurance to find suspicious transactions, approve loans and credit card applications. Companies using such systems have to be able to provide the rationale behind their decisions; blindly relying on the trained model is not sufficient. There are currently a number of methods that provide insights in models and their decisions, but often they are either good at showing global or local behavior. Global behavior is often too complex to visualize or comprehend, so approximations are shown, and visualizing local behavior is often misleading as it is difficult to define what local exactly means (i.e. our methods don't "know" how easily a feature-value can be changed; which ones are flexible, and which ones are static). We introduce the ICIE framework (Interactive Contextual Interaction Explanations) which enables users to view explanations of individual instances under different contexts. We will see that various contexts for the same case lead to different explanations, revealing different feature interactions.
机译:随着围绕隐私和意识的新法律的兴起,对自动决策的解释变得越来越重要。如今,机器学习模型已用于帮助银行和保险等领域的专家查找可疑交易,批准贷款和信用卡申请。使用此类系统的公司必须能够提供决策依据。盲目地依靠训练过的模型是不够的。当前有许多方法可以提供有关模型及其决策的见解,但通常它们要么善于显示全局行为,要么善于表现局部行为。全局行为通常过于复杂而无法可视化或理解,因此只能显示近似值,而可视化局部行为通常会产生误导作用,因为难以定义局部确切的含义(即我们的方法不“知道”某项功能的难易程度-值可以更改;哪些是灵活的,哪些是静态的)。我们介绍了ICIE框架(交互式上下文交互解释),该框架使用户可以查看不同上下文下单个实例的解释。我们将看到,同一案例的各种上下文导致不同的解释,揭示了不同的功能交互。

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