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Application of foundation settlement prediction based on improved particle swarm algorithm and wavelet denoising ground settlement prediction

机译:改进粒子群算法和小波去噪地面沉降预测在地基沉降预测中的应用

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In dealing with the problem of premature, the swarm was divided into different types and different update strategy was carried on each swarm. In order to improve the algorithm's convergence precise we also introduced the chaos mutation operations to increase particles' diversity. Meanwhile in order to remove the noise in the raw foundation settlement data, we introduced the wavelet algorithm. And we also made a compare with the standard particle swarm optimization to forecast the foundation settlement. The experiment indicated that this method had a better global and local searching ability and a high forecast precision.
机译:为了解决过早的问题,将群集分为不同的类型,并对每个群集执行不同的更新策略。为了提高算法的收敛精度,我们还引入了混沌突变操作以增加粒子的多样性。同时为了消除原始地基沉降数据中的噪声,我们引入了小波算法。并与标准粒子群算法进行了比较,以预测地基沉降。实验表明,该方法具有较好的全局和局部搜索能力,具有较高的预测精度。

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