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Pattern Retrieval through Classification from Pattern Warehouse: Issues and Challenges

机译:通过模式仓库中的分类检索模式:问题和挑战

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摘要

The pattern is special kinds of data which are created through various data mining techniques and stored in the pattern warehouse through a specialized pattern management system (PMS). Pattern warehouse makes the pattern non-volatile or persists. Now a day's persistent pattern retrieval is a very new and important issue. This paper focuses on problems and challenges with pattern retrieval. One can see the applicability of classification in pattern retrieval as an opportunity and trying to bring attention to probable issues and challenges behind the physical implementation of this concept. This paper concluded that the applicability of classification in pattern retrieval is well feasible. It has also discussed that how of pattern classification is different with data's classification. Classification method should be defined in such a way that it can handle pattern efficiently. So far, little emphasis has been posed on developing an overall classification system for pattern retrieval. This paper concerns only association kinds of patterns. It has presented some issues regarding (i) Decision boundary of pattern classes. (ii) Problem of calculating a reliable estimate of pattern classes. (iii) How to define class boundary (iv) How to handle overlapping of pattern classes (v) Parameter selection for pattern classes estimation (v) Preprocessing of patterns (vi) How to handle classification on demand. (vii) Updating of pattern classes (vii) Finding optimal test conditions.
机译:模式是通过各种数据挖掘技术创建的特殊类型的数据,并通过专门的模式管理系统(PMS)存储在模式仓库中。模式仓库使模式非易失或持久。现在,一天的持续模式检索是一个非常重要的新问题。本文着重于模式检索的问题和挑战。人们可以将分类在模式检索中的适用性视为一个机会,并试图引起人们对这一概念的物理实现背后的可能问题和挑战的关注。本文认为分类在模式检索中的适用性是很可行的。还讨论了模式分类与数据分类的不同之处。分类方法应定义为可以有效处理模式的方式。到目前为止,几乎没有强调开发用于模式检索的整体分类系统。本文仅涉及关联类型的模式。它提出了有关(i)模式类的决策边界的一些问题。 (ii)计算模式类别的可靠估计值的问题。 (iii)如何定义类别边界(iv)如何​​处理模式类别的重叠(v)模式类别估计的参数选择(v)模式的预处理(vi)如何按需处理分类。 (vii)更新模式类别(vii)找到最佳测试条件。

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