Automatic Ensemble of Deep Learning Using KNN and GA Approaches

Ben Zagagy, Maya Herman, Ofer Levi

نتاج البحث: فصل من :كتاب / تقرير / مؤتمرمنشور من مؤتمرمراجعة النظراء


Selecting the correct deep learning architecture is a significant issue when training a new deep learning neural networks model. Even when all of other DL hyper-parameters are accurate, the selected architecture will define the final classification quality of the generated model. In our previous paper we described a unique classification methodology called ACKEM for efficient and automatic classification of data, based on an ensemble of multiple DL models and KNN input-based architecture selection. The ACKEM methodology does not restrict the classification to one specific model with one specific architecture, as a specific architecture might not fit some of the input data. The ACKEM methodology had a major constraint – it used a brute-force approach for selecting the most suitable K for its inner usage of the KNN algorithm. In this paper, we propose a genetic algorithm (GA) based approach, for selecting the most suitable K. This method was tested over multiple datasets including the Covid-19 Radiography Chest X-Ray Images Dataset, the Malaria Cells Dataset, the Road Potholes Dataset, and the Voice Commands Dataset. All the tested datasets served us in our previous work on ACKEM, as well. This paper proves that replacing the inefficient method of brute force with a GA approach can improve the ACKEM method’s complexity without harming its promising results.

اللغة الأصليةالإنجليزيّة
عنوان منشور المضيفIntelligent Computing - Proceedings of the 2021 Computing Conference
المحررونKohei Arai
ناشرSpringer Science and Business Media Deutschland GmbH
عدد الصفحات12
رقم المعيار الدولي للكتب (المطبوع)9783030801250
المعرِّفات الرقمية للأشياء
حالة النشرنُشِر - 2021
الحدثComputing Conference, 2021 - Virtual, Online
المدة: ١٥ يوليو ٢٠٢١١٦ يوليو ٢٠٢١

سلسلة المنشورات

الاسمLecture Notes in Networks and Systems
مستوى الصوت284
رقم المعيار الدولي للدوريات (المطبوع)2367-3370
رقم المعيار الدولي للدوريات (الإلكتروني)2367-3389


!!ConferenceComputing Conference, 2021
المدينةVirtual, Online

ملاحظة ببليوغرافية

Publisher Copyright:
© 2021, The Author(s), under exclusive license to Springer Nature Switzerland AG.


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