Data Prediction For Coffee Harvest Using Least Square Method

Edi, Surya Negara (2022) Data Prediction For Coffee Harvest Using Least Square Method. Data Prediction For Coffee Harvest Using Least Square Method.

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Abstract

Pagaralam is one of the highest quality coffee producing regions in Indonesia. But the problem that is often found by farmers is the lack of knowledge and predictions about the coffee harvest they will produce in the next period. The solution that can be given is developing an application to be able to analyze and predict coffee yield data for the next harvest period. This study produces a calculation using the Least Square method which can produce a prediction algorithm for coffee yields with the lowest prediction error rate with an MPE of 13.72 and the greatest accuracy using a MAPE of 0.0166 which is implemented in a Coffee Harvest Prediction Application.

Item Type: Article
Subjects: H Social Sciences > H Social Sciences (General)
Divisions: Faculty of Law, Arts and Social Sciences > School of Social Sciences
Depositing User: Mr Edi Surya Negara
Date Deposited: 14 Jun 2022 05:09
Last Modified: 14 Jun 2022 05:09
URI: http://eprints.binadarma.ac.id/id/eprint/10567

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