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首页> 外文期刊>Journal of Computational and Applied Mathematics >Global dynamics of a system governing an algorithm for regression with censored and non-censored data under general errors
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Global dynamics of a system governing an algorithm for regression with censored and non-censored data under general errors

机译:在一般误差下,用于控制带删失数据和无删失数据的回归算法的系统的全局动力学

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We present an investigation into the dynamics of a system, which underlies a new estimating algorithm for regression with grouped and nongrouped data. The algorithm springs from a simplification of the well-known EM algorithm, in which the expectation step of the EM is substituted by a modal step. This avoids awkward integrations when the error distribution is assumed to be general. The sequences generated by the estimating procedure proposed here define our objective system, which is piecewise linear. The study tackles the system's asymptotic stability as well as its speed of convergence to the equilibrium point. In this sense, to reduce the speed of convergence, we propose an alternative estimating procedure. Numerical examples illustrate the theoretical results, compare the proposed procedures and analyze the precision of the estimate.
机译:我们提出了对系统动力学的研究,该研究为使用分组和非分组数据进行回归的新估计算法奠定了基础。该算法源于众所周知的EM算法的简化,其中EM的期望步骤被模态步骤代替。当误差分布被假定为一般时,这避免了笨拙的积分。这里提出的估计程序生成的序列定义了我们的目标系统,该系统是分段线性的。该研究解决了系统的渐近稳定性及其收敛到平衡点的速度。从这个意义上讲,为了降低收敛速度,我们提出了一种替代估计程序。数值算例说明了理论结果,比较了所提出的程序并分析了估计的精度。

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