A Comparison Study of Deep Learning Algorithms for Metasurface Harvester Designs

نتاج البحث: Chapter

1 اقتباس (Scopus)

ملخص

The paper compares three deep learning artificial intelligence algorithms used for metasurface design. In-house design code for designing metasurface structures was developed with Python, the NumPy library. To facilitate the study, the three algorithms used are AdaBelief, Adam, and Yogi. According to the numerical comparison study, Adam has a better performance in terms of model generalization with a large dataset (in our case 7000 samples), while Adabelief and Yogi show a better performance in terms of a low dataset (in our case 4,000 samples), and Yogi has a better performance with a lower dataset correlation between the predicted performance of the energy harvester obtained from three algorithms. Yogi and Adablief performance could be improved by manipulating the hyper-parameters.

اللغة الأصليةEnglish
عنوان منشور المضيف2023 International Conference on Intelligent Computing, Communication, Networking and Services, ICCNS 2023
المحررونMuhannad Quwaider, Jaime Lloret, Marios C. Angelides, Yaser Jararweh
ناشرInstitute of Electrical and Electronics Engineers Inc.
الصفحات74-78
عدد الصفحات5
رقم المعيار الدولي للكتب (الإلكتروني)9798350339291
رقم المعيار الدولي للكتب (المطبوع)9798350339291
المعرِّفات الرقمية للأشياء
حالة النشرPublished - يونيو 19 2023
الحدث2023 International Conference on Intelligent Computing, Communication, Networking and Services, ICCNS 2023 - Hybrid, Valencia, Spain
المدة: يونيو ١٩ ٢٠٢٣يونيو ٢١ ٢٠٢٣

سلسلة المنشورات

الاسم2023 International Conference on Intelligent Computing, Communication, Networking and Services (ICCNS)

Conference

Conference2023 International Conference on Intelligent Computing, Communication, Networking and Services, ICCNS 2023
الدولة/الإقليمSpain
المدينةHybrid, Valencia
المدة٦/١٩/٢٣٦/٢١/٢٣

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