• 针对简单遗传算法局限性提出基于粒子算法遗传算法

    According to the limitations of simple genetic algorithms, design genetic algorithms based on particle swarm.

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  • 同时,通过实验证明了系统简单遗传算法生成测试数据优越性

    And by the experiment that is designed in this paper, the advantage of the system is proved.

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  • 算法简单遗传算法编码方式选择策略交叉变异操作进行了改进使搜索效率有了很大的提高,有效地避免了早期收敛

    This algorithm improves on encoding, selection, crossover and mutation operations of SGA. It enhances searching efficiency greatly, and avoids effectively premature convergence.

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  • 一个简单例,着重探讨如何遗传算法应用于解决目标模糊问题

    Takes a simple question for example to discuss how to apply the genetic algorithms to solve the multi-objectives and fuzzy problems.

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  • 这种算法有些地方遗传算法竞争算法相类似但是计算小,而且程序简单

    It is similar in some ways to genetic algorithms or evolutionary algorithms, but requires less computational cost and generally only a few lines of code.

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  • 最后一个简单实例说明使用遗传算法生成基本数据类型测试数据过程

    At last we use a simple example to show the process of test data of basic type generation with GA.

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  • 遗传算法主要特点在于简单通用鲁棒性强

    The main characteristic of the GA is that it is simple, universal and robust.

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  • 遗传算法一种模拟自然进化而提出的简单高效优化组合方法

    Genetic algorithms is an efficiently combined and optimized method by simulating the nature evolution.

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  • 优化BP神经网络模型简单的BP神经网络进行比较实验结果表明,基于遗传算法优化的BP神经网络模型在耕地分等评价工作中的应用完全可行

    After the comparison of optimized BPNN model and simple BPNN model, the result shows that, it is completed feasible to use optimized BPNN model in cultivated land classification work.

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  • 遗传算法应用网格结构杆件下料优化经过工程实例分析表明方法简单易行效果明显。

    Genetic algorithms is used for optimization cutting of lattice structure members. Some project examples indicate that this method is simple and practicable and effective.

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  • 遗传算法优化BP神经网络在收敛速度泛化能力简单的BP神经网络要好,模拟结果接近于真实值。

    The constringency speed and generalization ability of optimized BPNN model are better than that of simple BPNN model, and the simulation result is close to reality.

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  • 遗传算法优化BP神经网络在收敛速度泛化能力简单的BP神经网络要好,模拟结果接近于真实值。

    The constringency speed and generalization ability of optimized BPNN model are better than that of simple BPNN model, and the simulation result is close to reality.

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