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Stochastic modeling for floating-point to fixed-point conversion

机译:浮点对固定点转换的随机造型

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The floating-point to fixed-point transformation process is error prone and time consuming as the distortion introduced by the limited data size is difficult to evaluate. In this paper a method to estimate the range of variables in LTI systems with respect to the corresponding overflow probability is presented. Furthermore, we will show that the quantization noise evaluation can be realized using the same approach. The variance and the probability density function of the error are computed. The results obtained for several typical applications are presented.
机译:由于限量数据大小引入的失真难以评估,浮点对定点变换过程易于易于且耗时耗时。在本文中,呈现了一种估计关于相应溢出概率的LTI系统中的变量范围的方法。此外,我们将表明,可以使用相同的方法来实现量化噪声评估。计算误差的方差和概率密度函数。提出了几种典型应用获得的结果。

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