Anwar, Muhammad Choirul (2026) RANCANG BANGUN SISTEM DETEKSI KONDISI PANEL SURYA BERBASIS ESP32-CAM DAN MODEL YOLOv8. Undergraduate thesis, Universitas Nusantara PGRI Kediri.
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Abstract
Penelitian ini mengembangkan sistem monitoring kondisi panel surya berbasis arsitektur hybrid dua tahap untuk mengidentifikasi 7 kelas kondisi secara real-time dan hemat bandwidth. Menggunakan model Waterfall dan metode kuantitatif, sistem diuji menggunakan dataset Roboflow sebanyak 6.218 citra yang mencakup kelas Bird Drop, Defective, Dust, Leaf, Non-Defective, Physical Damage, dan Snow. Hasil pengujian menunjukkan integrasi ESP32-CAM dengan metode Frame Difference sebagai pre-detector lokal sukses memangkas transmisi data dengan hanya mengirimkan frame anomali ke server. Pada server, model YOLOv8 Nano (~6,2 MB) berhasil melakukan klasifikasi multi-kelas dengan waktu inferensi cepat 85,4 ms/frame pada CPU laptop menengah. Evaluasi sistem menghasilkan presisi 72,80%, recall 68,66%, F1-Score 70,67%, dan mAP50 68,13%, membuktikan sistem ini andal, responsif, dan efisien untuk monitoring nirkabel.
| Item Type: | Thesis (Undergraduate) |
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| Uncontrolled Keywords: | Panel Surya, ESP32-CAM, YOLOv8, Frame Difference, Object Detection |
| Subjects: | 410 Engineering science > 452 Electrical power engineering 410 Engineering science > 461 Information systems 410 Engineering science > 462 Information technology |
| Divisions: | Fakultas Teknik dan Ilmu Komputer > S1-Teknik Informatika |
| Depositing User: | Muhammad Choirul Anwar |
| Last Modified: | 06 Aug 2026 11:41 |
| URI: | http://repository.unpkediri.ac.id/id/eprint/27541 |
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RANCANG BANGUN SISTEM DETEKSI KONDISI PANEL SURYA BERBASIS ESP32-CAM DAN MODEL YOLOv8. (deposited UNSPECIFIED)
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