基于机器学习和NLP的农产品价格预测

Girish Hegde, Vishwanath R. Hulipalled, J. B. Simha
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引用次数: 1

摘要

通信技术的进步对印度农村地区的人们帮助很大。人们可以通过互联网和智能手机获取信息。印度大多数人从事农业。但农民对农业领域的技术发展仍不了解。主要的差距是农民无法获得当地语言或他们能够理解的语言的细节。另一个主要问题是农民没有从他们生产的商品中获得足够的回报或好的价格。他们没有关于市场趋势和市场间信息的信息。由于缺乏未知的未来价格,他们无法做出明智的决定,何时何地出售他们的产品。在本文中,我们提出了一个使用机器学习技术(如ARIMA, SARIMA, RNN)预测商品价格的模型。在此基础上,提出了卡纳塔克邦地区语言卡纳达语的语音聊天系统模型。有了这个模式,卡纳塔克邦的农民将从预测的商品价格中受益,并获得卡纳达邦的信息。为了构建语音机器人,可以使用自然语言处理技术。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Price Prediction of Agriculture Commodities Using Machine Learning and NLP
The advancement in communication technology helped a lot for people in rural India. People can access the information over internet and use the smart phone. Majority of the people in India employed with agriculture. But still the farmers are not aware or the technology development in agriculture domain. The major gap is farmers not able to get the details in their local language or the language they are able to understand. Another major issue is farmers are not getting the enough return or good price for the commodities what they produced. They are not having information about the market trend and inter market information. Due to lack of unknown future price, they are not able to take informed decision about when and here to sell their produce. In this paper we proposed a model for forecasting the commodities price using machine learning techniques such as ARIMA, SARIMA, RNN. Also, we proposed a model to build the conversation system, voice bot for Kannada a regional language of Karnataka. With this model farmers in Karnataka will get benefitted with forecasted commodity price and get the information in Kannada. To build the voice bot the Natural Language Processing techniques can be used.
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