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Validation of WASD neuronet fitting method applied to Asian population projection: 9 years within 1.9 error in average

机译:WASD神经网络拟合方法应用于亚洲人口预测的验证:9年内平均误差为1.9%

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Data fitting as well as projection plays an important part in information processing. As the computing power improves, fitting methods such as the WASD (weights-and-structure-determination) neuronet become more operable. Though the WASD neuronet has been applied to different issues, its application on fitting data needs to be recognized more widely. Therefore, this paper is committed to introduce the WASD-neuronet model for data fitting and further to explore its capability of data projection (or say, prediction). In order to improve the projection performance and extend its application, we introduce the learning-checking method and the concept of global minimum point (GMP). By applying such a model to Asian population projection, the great performance is thus substantiated. With 12 experiments validating the predicting performance and a final projection based on historical data, we present a reasonable population tendency in the following 9 years (i.e., the Asian population keeps growing with a steady growth rate).
机译:数据拟合和投影在信息处理中起着重要的作用。随着计算能力的提高,诸如WASD(重量和结构确定)神经网络之类的拟合方法变得更加实用。尽管WASD神经网络已应用于不同的问题,但其在拟合数据上的应用需要得到更广泛的认可。因此,本文致力于介绍用于数据拟合的WASD神经网络模型,并进一步探索其数据投影(或预测)能力。为了提高投影性能并扩展其应用范围,我们介绍了学习检查方法和全局最小点(GMP)的概念。通过将这种模型应用于亚洲人口预测,可以证明其出色的表现。通过12个实验验证了预测性能并基于历史数据进行了最终预测,我们在接下来的9年中提出了合理的人口趋势(即亚洲人口以稳定的增长率保持增长)。

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