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On the Use of RLS with Covariance Reset in Tracking Scenarios with Discontinuities

机译:在跟踪方案中使用COOVARIANCE的使用,在跟踪方案中使用不连续性

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Low-complexity algorithms used for adaptive filtering applicationshave been shown to be ineffective in rapidly changing environments. This work investigates the use of the recursive least-squares algorithm with the addition of covariance resetting (RLS+CR) to limit the memory of the algorithm and allow it to react to more rapid variations in the environment, including the sudden appearance of an interferer. A comparison is made of the performance of the least-meansquare (LMS) algorithm with RLS+CR in rural and urban environments with and without interference using measured channel data. The RLS+CR algorithm is shown to outperform the LMS algorithm in urban environments as well as environments with high-powered interference.
机译:用于自适应滤波ApplicationShave的低复杂性算法在快速变化的环境中被证明是无效的。该工作调查了递归最小二乘算法的使用加入协方差重置(RLS + CR)来限制算法的存储器,并允许其对环境的更快速变化,包括干扰均突然出现。比较由农村和城市环境中的RLS + CR的最小均线(LMS)算法的性能进行了比较,并且使用测量的通道数据的干扰。 RLS + CR算法显示在城市环境中的LMS算法以及具有高功率干扰的环境中优于LMS算法。

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