基于归一化多项式项的二维数字预失真模型的迭代剪枝

Silong Zhang, Wen-hua Chen, F. Ghannouchi, Yaqin Chen
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引用次数: 17

摘要

本文提出了一种新的二维数字预测(2d - dpd)模型核修剪方法。将传统的2-D-DPD模型改写为一种新的形式,其中每个多项式项归一化以进一步修剪。然后,采用基于迭代的表征过程对模型的项进行剪枝。在不同的PAs上进行了两个实验来验证该方法。结果表明,该方法在不影响建模精度的前提下,能够有效地对二维dpd模型进行项的剪枝。模型中的系数从24个减少到9个,从30个减少到13个,而相邻信道功率比(ACPR)和归一化均方误差(NMSE)仅牺牲约1dB。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An iterative pruning of 2-D digital predistortion model based on normalized polynomial terms
This paper proposes a new method to prune the kernels of 2-D digital preditortion (2-D-DPD) model. The conventional 2-D-DPD model is rewritten as a new form with each of the polynomial terms normalized for further pruning. Then an iteration based characterization process is taken to prune the terms of the model. Two experiments on different PAs were taken to verify the method. Both of them prove the proposed method works effectively to prune the terms of 2-D-DPD model without losing modeling precision. The numbers of coefficients in the model were reduced from 24 to 9 and from 30 to 13 while only about 1dB adjacent channel power ratio (ACPR) and 1dB normalized mean square error (NMSE) were sacrificed.
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