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High Accuracy Partially Monotone Ordinal Classification

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High Accuracy Partially Monotone Ordinal Classification - Liu, Wei, and Reynolds, Mark, and Bartley, Christopher
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The problem with many machine learning classification algorithms is that their high level of accuracy is achieved at the cost of model comprehensibility, and with a consequent loss of justifiability: their mechanism cannot be shown to be reasonable because it cannot be explained. This has hindered their acceptance in sensitive domains, leading to growing demand for 'explainable AI'. In addition, the EU's recent GDPR legislation has elevated the issue to a legal requirement. If domain knowledge regarding nondecreasing ...

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High Accuracy Partially Monotone Ordinal Classification 2020, Eliva Press

ISBN-13: 9781636480145

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