• 本文给出混合噪声线性递归最小误差算法性能分析

    This paper presents the performance analysis of recursive least square algorithm with error-saturation in mixture noise.

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  • 算法实现横摆角速度线性最小误差估计可对汽车行驶过程中的系统噪声观测噪声统计特性进行在线估计

    This algorithm can realize linear minimum mean square error estimation of yaw rate, and on-line estimate statistical characteristic of system noise and observation noise during vehicle running.

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  • 介绍了码分多址CD MA系统线性最小误差衡器

    The chip level linear minimum mean square error (LMMSE) equalizer in CDMA systems is introduced.

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  • WELCH(1983)给出了单响应线性模型误差准则最优试验设计

    WELCH(1983) has given a mean squared error criterion for optimal design of single-response linear model.

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  • 引出空间用户检测概念,并给出线性解相关(dec)多用户检测最小均方误差(MMSE)多用户检测的子空间表示。

    Educe the concept of subspace approach for multi-user detection, give out the subspace expression about DEC and MMSE multi-user detection.

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  • 给出线性分集衡器判决反馈分集衡器两种结构工作原理理论上证明后者最小均方误差性能优于线性空间分集组合器;

    The principles of the linearity diversity equalizer and decision feedback diversity equalizer are presented, and the MMSE of the latter is proved to be better than the former.

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  • 本文以多元线性回归模型形式研究对象,从减小误差角度出发,一定范围分析参数K存在性岭估计的优良性。

    The investigation object of this paper is the standard canonical form. In order to the mean square error, I analyze the existence and choiceness of ridge regression K in some spectrum.

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  • 使用等效线性技术单模态近似得到响应误差

    A response equation for the mean square deflection is obtained under a single mode approximation by using the equivalent linearization technique.

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  • 对于一般几何模型线性最小均方误差合,首先必须定义拟合误差然后采用非线性最优化法求解最小误差意义下的

    Firstly, the error of fit must be defined for nonlinear least-square fitting of generalized geometry model. Then the nonlinear optimization algorithm can be used to obtain the optimum solution.

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  • 由于基于近似线性最小均方误差估计准则而设计的,因此是一种理论上最佳跟踪案。

    As the scheme is designed conforming to the criteria of approximate linear least-mean-square error estimation, it is theoretically quasi-optimal.

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  • 结果显示模型预测效果明显优于传统线性自回归预测模型,各月的平绝对误差MAE误差RMSE)达到41.8和55.7。

    Results show that the RBFNN is obviously superior to the traditional linear model, and its MAE (mean absolute error) and RMSE (root mean square error) are 41.8 and 55.7, respectively.

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  • 结果显示模型预测效果明显优于传统线性自回归预测模型,各月的平绝对误差MAE误差RMSE)达到41.8和55.7。

    Results show that the RBFNN is obviously superior to the traditional linear model, and its MAE (mean absolute error) and RMSE (root mean square error) are 41.8 and 55.7, respectively.

    youdao

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