Jaringan Saraf Tiruan Backpropagation untuk Prediksi Harga Bahan Pangan di Wilayah Kabupaten Deli Serdang

Authors

  • Putri Dewita Sari Universitas Negeri Medan
  • Faiz Ahyaningsih Universitas Negeri Medan

DOI:

https://doi.org/10.62383/algoritma.v2i6.287

Keywords:

Prediction, Foodstuffs, Backpropagation

Abstract

Foodstuffs are raw materials in the form of agricultural, vegetable and animal products that are used by the food processing industry to produce a food product. Food ingredients consist of plant foods and animal foods. Food is the most basic need for human resources in a country. Food prices sometimes experience erratic increases or decreases. The aim of this research is to determine the results of food price predictions in the Deli Serdang Regency area using the Backpropagation algorithm. The data used in this research is food price data from 2020 to 2023 which comes from the official National Food Ingredients website. This research uses the Backpropagation algorithm artificial neural network method which uses several architectural models and the results of this test will produce the best accuracy values. The test results show that the best architecture for research on implementing the backpropagation algorithm in predicting food prices in Deli Serdang Regency is 2-10-1 with an accuracy of 87.5% and the 2-3-8-1 architecture with an accuracy of 87.5%.

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References

BPS Kabupaten Deli Serdang. (2021). Kabupaten Deli Serdang dalam angka kependudukan 2021. Retrieved September 11, 2023.

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Published

2024-11-01

How to Cite

Putri Dewita Sari, & Faiz Ahyaningsih. (2024). Jaringan Saraf Tiruan Backpropagation untuk Prediksi Harga Bahan Pangan di Wilayah Kabupaten Deli Serdang. Algoritma : Jurnal Matematika, Ilmu Pengetahuan Alam, Kebumian Dan Angkasa, 2(6), 105–117. https://doi.org/10.62383/algoritma.v2i6.287