Oil palm and machine learning: reviewing one decade of ideas, innovations, applications, and gaps

Machine learning (ML) offers new technologies in the precision agriculture domain with its intelligent algorithms and strong computation. Oil palm is one of the rich crops that is also emerging with modern technologies to meet global sustainability standards. This article presents a comprehensive re...

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Main Authors: Khan, Nuzhat, Kamaruddin, Mohamad Anuar, Sheikh, Usman Ullah, Yusup, Yusri, Bakht, Muhammad Paend
Format: Article
Language:English
Published: MDPI 2021
Subjects:
Online Access:http://eprints.utm.my/id/eprint/93951/1/UsmanUllahSheikh2021_OilPalmandMachineLearningReviewing.pdf
http://eprints.utm.my/id/eprint/93951/
http://dx.doi.org/10.3390/agriculture11090832
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spelling my.utm.939512022-02-28T13:26:51Z http://eprints.utm.my/id/eprint/93951/ Oil palm and machine learning: reviewing one decade of ideas, innovations, applications, and gaps Khan, Nuzhat Kamaruddin, Mohamad Anuar Sheikh, Usman Ullah Yusup, Yusri Bakht, Muhammad Paend TK Electrical engineering. Electronics Nuclear engineering Machine learning (ML) offers new technologies in the precision agriculture domain with its intelligent algorithms and strong computation. Oil palm is one of the rich crops that is also emerging with modern technologies to meet global sustainability standards. This article presents a comprehensive review of research dedicated to the application of ML in the oil palm agricultural industry over the last decade (2011–2020). A systematic review was structured to answer seven predefined research questions by analysing 61 papers after applying exclusion criteria. The works analysed were categorized into two main groups: (1) regression analysis used to predict fruit yield, harvest time, oil yield, and seasonal impacts and (2) classification techniques to classify trees, fruit, disease levels, canopy, and land. Based on defined research questions, investigation of the reviewed literature included yearly distribution and geographical distribution of articles, highly adopted algorithms, input data, used features, and model performance evaluation criteria. Detailed quantitative– qualitative investigations have revealed that ML is still underutilised for predictive analysis of oil palm. However, smart systems integrated with machine vision and artificial intelligence are evolving to reform oil palm agri-business. This article offers an opportunity to understand the significance of ML in the oil palm agricultural industry and provides a roadmap for future research in this domain. MDPI 2021-09 Article PeerReviewed application/pdf en http://eprints.utm.my/id/eprint/93951/1/UsmanUllahSheikh2021_OilPalmandMachineLearningReviewing.pdf Khan, Nuzhat and Kamaruddin, Mohamad Anuar and Sheikh, Usman Ullah and Yusup, Yusri and Bakht, Muhammad Paend (2021) Oil palm and machine learning: reviewing one decade of ideas, innovations, applications, and gaps. Agriculture (Switzerland), 11 (9). pp. 1-26. ISSN 2077-0472 http://dx.doi.org/10.3390/agriculture11090832 DOI:10.3390/agriculture11090832
institution Universiti Teknologi Malaysia
building UTM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Malaysia
content_source UTM Institutional Repository
url_provider http://eprints.utm.my/
language English
topic TK Electrical engineering. Electronics Nuclear engineering
spellingShingle TK Electrical engineering. Electronics Nuclear engineering
Khan, Nuzhat
Kamaruddin, Mohamad Anuar
Sheikh, Usman Ullah
Yusup, Yusri
Bakht, Muhammad Paend
Oil palm and machine learning: reviewing one decade of ideas, innovations, applications, and gaps
description Machine learning (ML) offers new technologies in the precision agriculture domain with its intelligent algorithms and strong computation. Oil palm is one of the rich crops that is also emerging with modern technologies to meet global sustainability standards. This article presents a comprehensive review of research dedicated to the application of ML in the oil palm agricultural industry over the last decade (2011–2020). A systematic review was structured to answer seven predefined research questions by analysing 61 papers after applying exclusion criteria. The works analysed were categorized into two main groups: (1) regression analysis used to predict fruit yield, harvest time, oil yield, and seasonal impacts and (2) classification techniques to classify trees, fruit, disease levels, canopy, and land. Based on defined research questions, investigation of the reviewed literature included yearly distribution and geographical distribution of articles, highly adopted algorithms, input data, used features, and model performance evaluation criteria. Detailed quantitative– qualitative investigations have revealed that ML is still underutilised for predictive analysis of oil palm. However, smart systems integrated with machine vision and artificial intelligence are evolving to reform oil palm agri-business. This article offers an opportunity to understand the significance of ML in the oil palm agricultural industry and provides a roadmap for future research in this domain.
format Article
author Khan, Nuzhat
Kamaruddin, Mohamad Anuar
Sheikh, Usman Ullah
Yusup, Yusri
Bakht, Muhammad Paend
author_facet Khan, Nuzhat
Kamaruddin, Mohamad Anuar
Sheikh, Usman Ullah
Yusup, Yusri
Bakht, Muhammad Paend
author_sort Khan, Nuzhat
title Oil palm and machine learning: reviewing one decade of ideas, innovations, applications, and gaps
title_short Oil palm and machine learning: reviewing one decade of ideas, innovations, applications, and gaps
title_full Oil palm and machine learning: reviewing one decade of ideas, innovations, applications, and gaps
title_fullStr Oil palm and machine learning: reviewing one decade of ideas, innovations, applications, and gaps
title_full_unstemmed Oil palm and machine learning: reviewing one decade of ideas, innovations, applications, and gaps
title_sort oil palm and machine learning: reviewing one decade of ideas, innovations, applications, and gaps
publisher MDPI
publishDate 2021
url http://eprints.utm.my/id/eprint/93951/1/UsmanUllahSheikh2021_OilPalmandMachineLearningReviewing.pdf
http://eprints.utm.my/id/eprint/93951/
http://dx.doi.org/10.3390/agriculture11090832
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score 13.201949