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A Hybrid Approach for Shape Retrieval Using Genetic Algorithms and Approximate Distance

机译:基于遗传算法和近似距离的混合形状检索方法

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>This article describes how the classical algorithm of shape context (SC) is still unable to capture the part structure of some complex shapes. To overcome this insufficiency, the authors propose a novel shape-based retrieval approach that is called HybMAS-GA using a multi-agent system (MAS) and a genetic algorithm (GA). They define a new distance called approximate distance (AD) to define a SC method by AD, which called approximate distance shape context (ADSC) descriptor. Furthermore, the authors' proposed HybMAS-GA is a star architecture where all shape context agents, N, are directly linked to a coordinator agent. Each retrieval agent must perform either a SC or an ADSC method to obtain a similar shape, started from its own initial configuration of sample points. This combination increases the efficiency of the proposed HybMAS-GA algorithm and ensures its convergence to an optimal images retrieval as it is shown through experimental results.
机译:>本文介绍了形状上下文(SC)的经典算法如何仍然无法捕获某些复杂形状的零件结构。为了克服这种不足,作者提出了一种使用多代理系统(MAS)和遗传算法(GA)的新颖的基于形状的检索方法,称为HybMAS-GA。他们定义了一个称为近似距离(AD)的新距离,以通过AD定义一种SC方法,该方法称为近似距离形状上下文(ADSC)描述符。此外,作者提出的HybMAS-GA是一种星形架构,其中所有形状上下文代理N都直接链接到协调代理。每个检索代理必须执行SC或ADSC方法以获得相似的形状,这要从其自身的初始采样点配置开始。实验结果表明,这种结合提高了提出的HybMAS-GA算法的效率,并确保了其收敛到最佳图像检索的目的。

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