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An Early Warning Method for Agricultural Products Price Spike Based on Artificial Neural Networks Prediction

机译:基于人工神经网络预测的农产品价格上涨预警方法

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In general, the agricultural producing sector is affected by the diversity in supply, mostly from small companies, in addition to the rigidity of the demand, the territorial dispersion, the seasonality or the generation of employment related to the rural environment. These characteristics differentiate the agricultural sector from other economic sectors. On the other hand, the volatility of prices payed by producers, the high cost of raw materials, and the instability of both domestic and international markets are factors which have eroded the competitiveness and profitability of the agricultural sector. Because of the advance in technology, applications have been developed based on Artificial Neural Networks (ANN) which have helped the development of sales forecast on consumer products, improving the accuracy of traditional forecasting systems. This research uses the RNA to develop an early warning system for facing the increase in agricultural products, considering macro and micro economic variables and factors related to the seasons of the year.
机译:总体而言,除了需求的刚性,地域分散性,季节性或与农村环境有关的就业机会外,农业生产部门还受到供应的多样性的影响,其中多数是小公司的供应。这些特征将农业部门与其他经济部门区分开来。另一方面,生产者支付的价格波动,原材料的高成本以及国内外市场的不稳定性是侵蚀农业部门竞争力和盈利能力的因素。由于技术的进步,已经开发了基于人工神经网络(ANN)的应用程序,这些应用程序帮助开发了消费产品的销售预测,提高了传统预测系统的准确性。这项研究利用RNA来开发面向农产品增长的预警系统,同时考虑宏观和微观经济变量以及与一年四季相关的因素。

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