A New Semantic Network Program Based on Combination of Case Knowledge and General Knowledge

Kazuo Nishimura
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引用次数: 1

Abstract

This paper proposes a new semantic network program that combines case knowledge with well-defined general knowledge. The proposed semantic network program has been applied to scene understanding problem. When the network receives a scene image, it outputs candidates for an ambiguous image object in the scene image based on activation spreading on the network. Java programming language has been employed to program the semantic network. It has been shown that object-oriented principle fits semantic networks and makes them a practical tool to realize human-like information processing. Simulation of image object identification has been carried out and has shown that the proposed semantic network program can be an effective component in modeling interaction between logical and pattern information processing.
一种基于Case知识和General Knowledge相结合的语义网络程序
本文提出了一种将案例知识与定义良好的一般知识相结合的语义网络程序。所提出的语义网络程序已应用于场景理解问题。当网络接收到场景图像时,基于网络上的激活扩散,输出场景图像中模糊图像对象的候选对象。采用Java编程语言对语义网络进行编程。研究表明,面向对象的原则适合语义网络,使其成为实现类人信息处理的实用工具。对图像目标识别进行了仿真,结果表明所提出的语义网络程序可以有效地实现逻辑信息处理与模式信息处理之间的交互建模。
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