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|3 10.36539/1427-014-001-019
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|a eng
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044 |
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|b الجزائر
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100 |
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|9 771321
|a Messaoudi, Malika
|e Author
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245 |
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|a Random Forest Modeling for Forecasting Economic Growth:
|b A Machine Learning Approach in the Case of Algeria "1964-2022"
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260 |
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|b جامعة أمحمد بوقرة بومرداس - كلية العلوم الاقتصادية والتجارية وعلوم التسيير
|c 2024
|g جوان
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300 |
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|a 391 - 410
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336 |
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|a بحوث ومقالات
|b Article
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|b This research aims to explore the efficacy of machine learning techniques, specifically Random Forest modeling, in forecasting economic growth. The research problem lies in the challenge of accurately predicting economic trends, which is crucial for effective policy formulation and decision-making. The study follows a structured methodology comprising data collection, preprocessing, feature selection, model training, and validation. Results demonstrate the effectiveness of Random Forest modeling in capturing the intricate patterns of economic data and outperforming traditional forecasting methods. This approach offers promising prospects for enhancing the accuracy and reliability of economic growth forecasts, thereby facilitating informed decision-making processes in various sectors.
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653 |
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|a التعلم الآلي
|a التنمية الاقتصادية
|a الأداء التنافسي
|a الغابات العشوائية
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692 |
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|b Economic Forecasting
|b Time Series Analysis
|b Machine Learning (ML)
|b Random Forest (RF)
|b Tree Decision
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773 |
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|4 الاقتصاد
|6 Economics
|c 019
|e Revue Abaad Iktissadia
|f Abՙād iqtiṣādiyaẗ
|l 001
|m مج14, ع1
|o 1427
|s مجلة أبعاد اقتصادية
|v 014
|x 1112-8062
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856 |
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|u 1427-014-001-019.pdf
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|d y
|p y
|q n
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|a EcoLink
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|c 1480318
|d 1480318
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