Learning algorithms using a Galois lattice structure

R. Godin, R. Missaoui, Hassan Alaoui
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引用次数: 73

Abstract

An incremental algorithm for updating the Galois lattice is proposed where new objects may be dynamically added by modifying the existing lattice. A large experimental application reveals that adding a new object may be done in time proportional to the number of objects on the average. When there is a fixed upper bound on the number of properties related to an object, which is the case in practical applications, the worst case analysis of the algorithm confirms the experimental observations of linear growth with respect to the number of objects. Algorithms for generating rules from the lattice are also given.<>
使用伽罗瓦晶格结构学习算法
提出了一种增量式的伽罗瓦格更新算法,该算法可以通过修改现有格来动态地添加新对象。一个大型的实验应用表明,添加新对象的时间可能与平均对象数量成正比。当与对象相关的属性数量有一个固定的上界时,即实际应用中的情况,算法的最坏情况分析证实了实验观察到的对象数量线性增长。并给出了从格中生成规则的算法。
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