Araştırma Makalesi
BibTex RIS Kaynak Göster
Yıl 2024, Cilt: 8 Sayı: 2, 33 - 44, 13.09.2024
https://doi.org/10.34110/forecasting.1489839

Öz

Proje Numarası

1

Kaynakça

  • [1]"Heart Attack Rates According to World Health Organization", Indy Türk, Available: https://www.indyturk.com/node/545246.
  • [2]J. Santhana Krishnan; S. Geetha , "Prediction of Heart Disease Using Machine Learning Algorithms," in 2019 1st International Conference on Innovations in Information and Communication Technology (ICIICT), Chennai, India 21 June 2019.
  • [3]A. Ritu, P. Prajoy K. Aditya, "ECG Classification and Analysis for Heart Disease Prediction Using XAI-Driven Machine Learning Algorithms," Part of the Intelligent Systems Reference Library book series, April 2022.
  • [4]R. Rashik , "Heart Attack Analysis & Prediction Dataset," Kaggle, Available: https://www.kaggle.com/datasets/rashikrahmanpritom/heart-attack-analy sis-prediction-dataset?datasetId=1226038&sortBy=voteCount.
  • [5]D. Sena Merter, "What is a Standard Scaler?" Data Science School, Available: https://www.veribilimiokulu.com/veri-hazirliginin-vazgecilmezi-ozellik- olceklenen/.
  • [6]"Logistic Regression in Machine Learning," Javatpoint, Available: https://www.javatpoint.com/logistic-regression-in-machine-learning. [7]B. Jason, "Logistic Regression for Machine Learning Details," Machine Learning Mastery, Available: https://machinelearningmastery.com/logistic-regression-for-machine-lear ning/.
  • [8]"Logistic Regression for Machine Learning Image," Spark By Examples, Available: https://sparkbyexamples.com/wp-content/uploads/2023/03/Screenshot-2 023-03-11-at-4.19.28-PM. png.
  • [9]"Support Vector Machine Algorithm," Java point, Available: https://www.javatpoint.com/machine-learning-support-vector-machine-a algorithm.
  • [10]G. Rohith, "Support Vector Machine — Introduction to Machine Learning Algorithms," Towards Data Science, Available: https://towardsdatascience.com/support-vector-machine-introduction-to- machine-learning-algorithms-934a444fca47. [11]"Support Vector Machine Artwork," Datatron, Available: https://datatron.com/wp-content/uploads/2021/05/Support-Vector-Machi ne.png.
  • [12]R. Surithi, "Understand Random Forest Algorithms with Examples," Analytics Vidhya, Available: https://www.analyticsvidhya.com/blog/2021/06/understanding-random-f orest/.
  • [13]Y. Tony, "Understanding Random Forest," Towards Data Science, Available: https://towardsdatascience.com/understanding-random-forest-58381e060 2d2.
  • [14] “Random Forest Image” Available: https://encrypted-tbn0.gstatic.com/images?q=tbn
  • [15] “Decision Trees” Avaliable: https://scikit-learn.org/stable/modules/tree.html
  • [16] “Decision Tree Terminologies” Avaliable: https://www.geeksforgeeks.org/decision-tree/
  • [17] “Decision Tree Algorithm in Machine Learning” Available: https://static.javatpoint.com/tutorial/machine-learning/images/decision-tr ee-classification-algorithm.png
  • [18]R. Rashik , "Heart Attack Analysis & Prediction Dataset," Kaggle, Available: https://www.kaggle.com/datasets/rashikrahmanpritom/heart-attack-analy
  • sis-prediction-dataset?datasetId=1226038&sortBy=voteCount. [19]K. Ajitesh “Accuracy, Precision, Recall & F1-Score – Python Examples” Avaliable: https://vitalflux.com/accuracy-precision-recall-f1-score-python-example/
  • [20]K. Ajitesh “What is the presicion score? Available: https://scikit-learn.org/stable/modules/generated/sklearn.metrics.precisio n_score.html
  • [21]K. Ajitesh “Accuracy, Precision, Recall & F1-Score – Python Examples” Available: https://vitalflux.com/accuracy-precision-recall-f1-score-python-example/
  • [22]K. Rohit “What is F1score?”Avaliable: https://www.v7labs.com/blog/f1-score-guide#:~:text=F1%20score

Heart Attack Analysis and Prediction with Machine Learning Techniques

Yıl 2024, Cilt: 8 Sayı: 2, 33 - 44, 13.09.2024
https://doi.org/10.34110/forecasting.1489839

Öz

This study explores the use of machine learning algorithms to analyze and predict heart attacks, focusing on genetics, lifestyle, medical history, and biometric factors. The data was analyzed using logistic regression, support vector machines, decision trees, and random forests. Support vector machines were found to be the most effective model for predicting heart attack risk, with a high accuracy rate and low error rate. The study highlights the potential of machine learning in assisting healthcare professionals and individuals in determining heart attack risk and taking preventive measures.

Etik Beyan

تم عمل هذا البحث وفق اخلاقيات النشر

Destekleyen Kurum

/

Proje Numarası

1

Teşekkür

الشكر والتقدير الى الباحثين وتعاونهم الدائم

Kaynakça

  • [1]"Heart Attack Rates According to World Health Organization", Indy Türk, Available: https://www.indyturk.com/node/545246.
  • [2]J. Santhana Krishnan; S. Geetha , "Prediction of Heart Disease Using Machine Learning Algorithms," in 2019 1st International Conference on Innovations in Information and Communication Technology (ICIICT), Chennai, India 21 June 2019.
  • [3]A. Ritu, P. Prajoy K. Aditya, "ECG Classification and Analysis for Heart Disease Prediction Using XAI-Driven Machine Learning Algorithms," Part of the Intelligent Systems Reference Library book series, April 2022.
  • [4]R. Rashik , "Heart Attack Analysis & Prediction Dataset," Kaggle, Available: https://www.kaggle.com/datasets/rashikrahmanpritom/heart-attack-analy sis-prediction-dataset?datasetId=1226038&sortBy=voteCount.
  • [5]D. Sena Merter, "What is a Standard Scaler?" Data Science School, Available: https://www.veribilimiokulu.com/veri-hazirliginin-vazgecilmezi-ozellik- olceklenen/.
  • [6]"Logistic Regression in Machine Learning," Javatpoint, Available: https://www.javatpoint.com/logistic-regression-in-machine-learning. [7]B. Jason, "Logistic Regression for Machine Learning Details," Machine Learning Mastery, Available: https://machinelearningmastery.com/logistic-regression-for-machine-lear ning/.
  • [8]"Logistic Regression for Machine Learning Image," Spark By Examples, Available: https://sparkbyexamples.com/wp-content/uploads/2023/03/Screenshot-2 023-03-11-at-4.19.28-PM. png.
  • [9]"Support Vector Machine Algorithm," Java point, Available: https://www.javatpoint.com/machine-learning-support-vector-machine-a algorithm.
  • [10]G. Rohith, "Support Vector Machine — Introduction to Machine Learning Algorithms," Towards Data Science, Available: https://towardsdatascience.com/support-vector-machine-introduction-to- machine-learning-algorithms-934a444fca47. [11]"Support Vector Machine Artwork," Datatron, Available: https://datatron.com/wp-content/uploads/2021/05/Support-Vector-Machi ne.png.
  • [12]R. Surithi, "Understand Random Forest Algorithms with Examples," Analytics Vidhya, Available: https://www.analyticsvidhya.com/blog/2021/06/understanding-random-f orest/.
  • [13]Y. Tony, "Understanding Random Forest," Towards Data Science, Available: https://towardsdatascience.com/understanding-random-forest-58381e060 2d2.
  • [14] “Random Forest Image” Available: https://encrypted-tbn0.gstatic.com/images?q=tbn
  • [15] “Decision Trees” Avaliable: https://scikit-learn.org/stable/modules/tree.html
  • [16] “Decision Tree Terminologies” Avaliable: https://www.geeksforgeeks.org/decision-tree/
  • [17] “Decision Tree Algorithm in Machine Learning” Available: https://static.javatpoint.com/tutorial/machine-learning/images/decision-tr ee-classification-algorithm.png
  • [18]R. Rashik , "Heart Attack Analysis & Prediction Dataset," Kaggle, Available: https://www.kaggle.com/datasets/rashikrahmanpritom/heart-attack-analy
  • sis-prediction-dataset?datasetId=1226038&sortBy=voteCount. [19]K. Ajitesh “Accuracy, Precision, Recall & F1-Score – Python Examples” Avaliable: https://vitalflux.com/accuracy-precision-recall-f1-score-python-example/
  • [20]K. Ajitesh “What is the presicion score? Available: https://scikit-learn.org/stable/modules/generated/sklearn.metrics.precisio n_score.html
  • [21]K. Ajitesh “Accuracy, Precision, Recall & F1-Score – Python Examples” Available: https://vitalflux.com/accuracy-precision-recall-f1-score-python-example/
  • [22]K. Rohit “What is F1score?”Avaliable: https://www.v7labs.com/blog/f1-score-guide#:~:text=F1%20score
Toplam 20 adet kaynakça vardır.

Ayrıntılar

Birincil Dil İngilizce
Konular Derin Öğrenme
Bölüm Articles
Yazarlar

Shuaib Jasim 0009-0000-5574-7302

İbrahim Onaran Bu kişi benim 0000-0002-7769-4077

Mustafa Al-asadi 0000-0002-8218-3458

Proje Numarası 1
Yayımlanma Tarihi 13 Eylül 2024
Gönderilme Tarihi 27 Mayıs 2024
Kabul Tarihi 6 Temmuz 2024
Yayımlandığı Sayı Yıl 2024 Cilt: 8 Sayı: 2

Kaynak Göster

APA Jasim, S., Onaran, İ., & Al-asadi, M. (2024). Heart Attack Analysis and Prediction with Machine Learning Techniques. Turkish Journal of Forecasting, 8(2), 33-44. https://doi.org/10.34110/forecasting.1489839
AMA Jasim S, Onaran İ, Al-asadi M. Heart Attack Analysis and Prediction with Machine Learning Techniques. TJF. Eylül 2024;8(2):33-44. doi:10.34110/forecasting.1489839
Chicago Jasim, Shuaib, İbrahim Onaran, ve Mustafa Al-asadi. “Heart Attack Analysis and Prediction With Machine Learning Techniques”. Turkish Journal of Forecasting 8, sy. 2 (Eylül 2024): 33-44. https://doi.org/10.34110/forecasting.1489839.
EndNote Jasim S, Onaran İ, Al-asadi M (01 Eylül 2024) Heart Attack Analysis and Prediction with Machine Learning Techniques. Turkish Journal of Forecasting 8 2 33–44.
IEEE S. Jasim, İ. Onaran, ve M. Al-asadi, “Heart Attack Analysis and Prediction with Machine Learning Techniques”, TJF, c. 8, sy. 2, ss. 33–44, 2024, doi: 10.34110/forecasting.1489839.
ISNAD Jasim, Shuaib vd. “Heart Attack Analysis and Prediction With Machine Learning Techniques”. Turkish Journal of Forecasting 8/2 (Eylül 2024), 33-44. https://doi.org/10.34110/forecasting.1489839.
JAMA Jasim S, Onaran İ, Al-asadi M. Heart Attack Analysis and Prediction with Machine Learning Techniques. TJF. 2024;8:33–44.
MLA Jasim, Shuaib vd. “Heart Attack Analysis and Prediction With Machine Learning Techniques”. Turkish Journal of Forecasting, c. 8, sy. 2, 2024, ss. 33-44, doi:10.34110/forecasting.1489839.
Vancouver Jasim S, Onaran İ, Al-asadi M. Heart Attack Analysis and Prediction with Machine Learning Techniques. TJF. 2024;8(2):33-44.

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