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Making machine intelligence less scary for criminal analysts: reflections on designing a visual comparative case analysis tool

机译:减少犯罪分子分析师对机器智能的恐惧:设计可视化比较案例分析工具的思考

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A fundamental task in criminal intelligence analysis is to analyze the similarity of crime cases, called comparative case analysis (CCA), to identify common crime patterns and to reason about unsolved crimes. Typically, the data are complex and high dimensional and the use of complex analytical processes would be appropriate. State-of-the-art CCA tools lack flexibility in interactive data exploration and fall short of computational transparency in terms of revealing alternative methods and results. In this paper, we report on the design of the Concept Explorer, a flexible, transparent and interactive CCA system. During this design process, we observed that most criminal analysts are not able to understand the underlying complex technical processes, which decrease the users’ trust in the results and hence a reluctance to use the tool. Our CCA solution implements a computational pipeline together with a visual platform that allows the analysts to interact with each stage of the analysis process and to validate the result. The proposed visual analytics workflow iteratively supports the interpretation of the results of clustering with the respective feature relations, the development of alternative models, as well as cluster verification. The visualizations offer an understandable and usable way for the analyst to provide feedback to the system and to observe the impact of their interactions. Expert feedback confirmed that our user-centered design decisions made this computational complexity less scary to criminal analysts.
机译:刑事情报分析的一项基本任务是分析犯罪案件的相似性(称为比较案件分析(CCA)),以识别常见的犯罪模式并对未解决的犯罪进行推理。通常,数据是复杂且高维的,因此使用复杂的分析过程将是适当的。最新的CCA工具在交互式数据探索中缺乏灵活性,并且在揭示替代方法和结果方面缺乏计算透明性。在本文中,我们报告了概念浏览器的设计,这是一个灵活,透明和交互式的CCA系统。在此设计过程中,我们观察到大多数犯罪分析人员无法理解潜在的复杂技术流程,从而降低了用户对结果的信任,因此不愿使用该工具。我们的CCA解决方案实现了计算管道以及可视化平台,使分析人员可以与分析过程的每个阶段进行交互并验证结果。拟议的视觉分析工作流以迭代方式支持对具有相应特征关系的聚类结果的解释,替代模型的开发以及聚类验证。可视化为分析人员提供了一种可理解和可用的方式,以向系统提供反馈并观察其交互的影响。专家的反馈证实,我们以用户为中心的设计决策使这种计算复杂性对于犯罪分析人员而言不那么令人恐惧。

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