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INFERRING AND REVISING THEORIES WITH CONFIDENCE: ANALYZING BILINGUALISM IN THE 1901 CANADIAN CENSUS

机译:自信地推理和修改理论:在1901年加拿大人口普查中分析双语

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This paper shows how machine learning can help in analyzing and understanding historical change. Using data from the Canadian census of 1901, we discover the influences on bilingualism in Canada at the beginning of the last century. The discovered theories partly agree with, and partly complement, the existing views of historians on this question. Our approach, based around a decision tree, not only infers theories directly from data, but also evaluates existing theories and revises them to improve their consistency with the data. One novel aspect of this work is the use of confidence intervals to determine which factors are both statistically and practically significant, and thus contribute appreciably to the overall accuracy of the theory. When inducing a decision tree directly from data, confidence internals determine when new tests should be added. If an existing theory is being evaluated, confidence intervals also determine when old tests should be replaced, or deleted, to improve the theory. Our aim is to minimize the changes made to an existing theory to accommodate the new data. To this end, we propose a semantic measure of similarity between trees and demonstrate how this can be used to limit the changes made.
机译:本文展示了机器学习如何帮助分析和理解历史变化。使用1901年加拿大人口普查的数据,我们发现上世纪初对加拿大的双语制产生了影响。所发现的理论部分与历史学家在这个问题上的现有观点部分一致,并且部分与之互补。我们基于决策树的方法不仅可以直接从数据中推论理论,还可以评估现有理论并对其进行修改以提高其与数据的一致性。这项工作的一个新颖方面是使用置信区间来确定哪些因素在统计上和实践上都具有重要意义,从而对理论的整体准确性做出明显贡献。当直接从数据中推导决策树时,置信度内部决定何时应添加新测试。如果正在评估现有理论,则置信区间还可以确定何时应替换或删除旧的测试以改进该理论。我们的目的是最小化对现有理论所做的更改以适应新数据。为此,我们提出了一种树间相似性的语义度量,并演示了如何使用它来限制所做的更改。

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