包含嵌入式神经网络的数据库系统的完整性约束

Iain Millns, B. Eaglestone
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引用次数: 3

摘要

神经网络在一些数据库系统中被用来对对象进行分类,但是像传统的统计分类器一样,它们经常会错误地分类。在某些应用中,需要对分类错误的对象比例进行约束。这显然是一个诚信问题。针对嵌入式神经网络数据库系统,提出了一种新的完整性约束,数据库管理员可以利用该约束对类的错误分类比例进行约束。该方法基于概率神经网络生成的概率映射到错误分类的可能百分比。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An integrity constraint for database systems containing embedded neural networks
Neural networks are used in some database systems to classify objects, but like traditional statistical classifiers they often misclassify. For some applications, it is necessary to bound the proportion of misclassified objects. This is clearly an integrity problem. We describe a new integrity constraint for database systems with embedded neural networks, with which Database Administrator can enforce a bound on the proportion of misclassifications in a class. The approach is based upon mapping probabilities generated by a probablistic neural network to the likely percentage of misclassifications.
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