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A Novel Forecasting Method for Large-Scale Sales Prediction Using Extreme Learning Machine

机译:一种使用极端学习机的大规模销售预测预测方法

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With the rise of e-commerce business, sales forecasting plays an increasingly important role, for accurate and speedy forecasting can help e-commerce companies solve all the uncertainty associated with demand and supply and reduce inventory cost. As the rapid growth in the amount of data, traditional intelligence models like Neural Networks have weakness in terms of speed. In this paper, we introduce the algorithm of ELM (extreme learning machine). In addition, we subjoin many e-commerce related indicators to increase the accuracy and reliability of prediction. In sum, the new model provides a better result both in terms of speed and accuracy. Experiments are conducted with the real sales data from an e-commerce company in China.
机译:随着电子商务业务的兴起,销售预测发挥着越来越重要的作用,因为准确和快速的预测可以帮助电子商务公司解决与需求和供应相关的所有不确定性并降低库存成本。 随着数据量的快速增长,传统的智能模型,如神经网络在速度方面具有弱点。 在本文中,我们介绍了ELM(极端学习机)的算法。 此外,我们划开了许多电子商务相关指标,以提高预测的准确性和可靠性。 总之,新模型在速度和准确性方面提供了更好的结果。 实验是通过来自中国电子商务公司的实际销售数据进行的。

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