Building Knowledge Bases

2103 Words5 Pages

Abstract

One key point in the design and implementation of intelligent systems is the process of building knowledge bases. As most of the research in the AI field has moved from the construction of general purpose problem solvers to building knowledge-based systems that deal with problems restricted to a particular domain, many techniques have been proposed to acquisition and representation of knowledge bases. This paper presents an overview of these techniques and describes several aspects related to building knowledge bases and how they can affect the overall implementation of intelligent systems.

Introduction

Before the presentation of the techniques and characteristics of building knowledge bases, it is necessary to establish the groundwork for that by first defining knowledge and how it differs from data and information.

In order to clearly distinguish these concepts, they can be thought as part of a hierarchy where data is the base of the pyramid, followed by information, knowledge and wisdom the top (Tuthill, 1990). Data consists of raw facts that has no useful meaning or has little application until they are interrelated and processed to generate what we call information. For example, a file can store a sequence of names and dates (data) which has no meaning until they are related to company X and represent the employees of X (information). Furthermore, the stored data become information when they can be processed to generate a meaningful output to a community of users.

When the information is synthesized it is called knowledge and it is considered in a higher level in the hierarchy just described. In other words, knowledge is a collection of facts, relationships and behavior of objects in a model represented ...

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Bibliography

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