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Machine Learning-Based Decision Support System for Effective Quality Farming

机译:基于机器学习的决策支持系统,实现有效养殖

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Although Big data analytics, machine learning and cloud technologies have been acknowledged as better enablers in revolutionizing the quality of agricultural systems, in most of the developing nations like India there is no able system to effectively survey the real grocery needs of the society and accordingly educate the farmers to grow and supply the crops. Due to lack of such process, there is no synchronization between demand and supply of food crops, and hence, most of the time farmers suffer with loss and consumers suffer from high varied prices. In order to address this problem, data about the demand, supply, and price variation of various crops of different seasons of the year have been collected and analysed. The analysis results have shown a huge gap between demand and supply of crops. Hence, this work proposes novel machine learning-based data analytics system that forecasts the demand for different food crops and regulates the supply accordingly by assisting the farmers in growing the crops based on the demand. Implementation results have shown 92% reduction in the gap.
机译:虽然大数据分析,机器学习和云技术被承认为改变农业系统质量的更好的推动者,但在印度等大多数发展中国家中,没有能够有效地调查社会的真正杂货需求并相应地教育农民要增长并提供作物。由于缺乏此类过程,粮食作物的需求与供应之间没有同步,因此,大多数农民遭受损失,消费者遭受高度不同的价格。为了解决这个问题,已经收集和分析了关于当年不同季节各种杂粮的需求,供应和价格变化的数据。分析结果显示了作物需求与供应之间的巨大差距。因此,这项工作提出了基于新型机器学习的数据分析系统,该系统预测了对不同粮食作物的需求,并通过协助农民根据需求促进农民生长作物来规范供应。实施结果显示出差距减少了92%。

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