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An Integrated Approach Containing Genetic Algorithm and Hopfield Network for Object Recognition under Affine Transformations

机译:仿射变换下包含遗传算法和Hopfield网络的目标识别集成方法

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摘要

Both the Hopfield network and the genetic algorithm are powerful tools for object recognition tasks, e.g., subgraph matching problems. Unfortunately, they both have serious drawbacks. The Hopfield network is very sensitive to its initial state, and it stops at a local minimum if the initial state is not properly given. The genetic algorithm, on the other hand, usually only finds a near-global solution, and it is time-consuming for large-scale problems. In this paper, we propose an integrated scheme of these two methods, while eliminating their drawbacks and keeping their advantages, to solve object recognition problems under affine transformations. Some arrangements and programming strategies are required. First, we use some specialized 2-D genetic algorithm operators to accelerate the convergence. Second, we extract the "seeds" of the solution of the genetic algorithm to serve as the initial state of the Hopfield network. This procedure further improves the efficiency of the system. In addition, we also include several pertinent post matching algorithms for refining the accuracy and robustness. In the examples, the proposed scheme is used to solve some subgraph matching problems with occlusions under affine transformations. As shown by the results, this integrated scheme does outperform many counterpart algorithms in accuracy, efficiency, and stability.
机译:Hopfield网络和遗传算法都是用于对象识别任务(例如,子图匹配问题)的强大工具。不幸的是,它们都有严重的缺陷。 Hopfield网络对其初始状态非常敏感,如果初始状态未正确给出,它将在局部最小值处停止。另一方面,遗传算法通常只能找到近乎全局的解决方案,并且对于大规模问题而言非常耗时。在本文中,我们提出了这两种方法的集成方案,同时消除了它们的缺点并保留了它们的优点,以解决仿射变换下的目标识别问题。需要一些安排和编程策略。首先,我们使用一些专门的二维遗传算法运算符来加速收敛。其次,我们提取遗传算法解的“种子”作为Hopfield网络的初始状态。该过程进一步提高了系统效率。此外,我们还包括几种相关的后期匹配算法,以提高准确性和鲁棒性。在示例中,所提出的方案用于解决仿射变换下具有遮挡的一些子图匹配问题。结果表明,该集成方案在准确性,效率和稳定性方面确实优于许多同类算法。

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