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Study on optimization of agent initial positions in land combat simulation

机译:陆战仿真中特工初始位置的优化研究。

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摘要

The use of computational-intelligence-based techniques in the optimization of agent initial positions in. land combat simulations is studied. A novel method for the reduction of support vectors in the support vector machine (SVM) is presented. The optimization on the width of the Gaussian kernel function and the combination of the SVM with the radial basis function neural network are performed in the proposed method. Simulation results show that the proposed method can improve the running efficiencydrastically compared with that using the traditional SVM with the same precision. We also summarize and present some experiences and trends in the study on the optimization problem in land combat simulation.
机译:研究了基于计算智能的技术在陆战模拟中特工初始位置的优化。提出了一种在支持向量机(SVM)中减少支持向量的新方法。该方法实现了高斯核函数宽度的优化以及支持向量机与径向基函数神经网络的结合。仿真结果表明,与使用相同精度的传统支持向量机相比,该方法可以显着提高运行效率。我们还总结并提出了对陆战仿真最优化问题研究的一些经验和趋势。

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