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Genetic Algorithm to Solve the Markova Forecast Model of the Structure of Agricultural Production Value in Heilongjiang Province

机译:遗传算法解决黑龙江省农业生产价值结构的马尔多瓦预测模型

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The structure of agricultural production value of forestry, animal husbandry, fishery industries in Heilongjiang province were studied using Markova forecast model, and the improved genetic algorithm was used to solve Markova forecast model to determine the state transition matrix, and the structure of agricultural production value in Heilongjiang province in 2011 and 2012 was forecasted, providing the reference for optimizing industry structure in Heilongjiang province. The results showed that this method had higher forecast accuracy and it was a short-term prediction method.
机译:采用马隆江省农业生产价值的农业产值,畜牧业,黑龙江省渔业行业采用马尔多瓦预测模型,采用了改进的遗传算法来解决Markova预测模型来确定国家过渡矩阵,以及农业生产价值的结构在2011年的黑龙江省,预计,预测,为2012年提供了优化黑龙江省产业结构的参考。结果表明,该方法具有更高的预测精度,并且是短期预测方法。

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