OPTIMASI PENGENALAN KARAKTER ARAB TULISAN TANGAN MENGGUNAKAN MODEL HYBRID QUANTUM CONVOLUTIONAL NEURAL NETWORK (QCNN) DENGAN TEKNIK DENSE ANGLE ENCODING

Haerul Anam, NIM.: 24206051019 (2026) OPTIMASI PENGENALAN KARAKTER ARAB TULISAN TANGAN MENGGUNAKAN MODEL HYBRID QUANTUM CONVOLUTIONAL NEURAL NETWORK (QCNN) DENGAN TEKNIK DENSE ANGLE ENCODING. Masters thesis, UIN SUNAN KALIJAGA YOGYAKARTA.

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Abstract

Handwritten Arabic character recognition faces challenges due to variations in writing styles and morphological similarities, particularly among homoglyph characters that differ in the number or position of dots. In a Hybrid Quantum Convolutional Neural Network (HQCNN), these challenges are also related to limitations in feature representation when latent CNN features are mapped to a quantum circuit. Standard Angle Encoding maps one feature to one qubit, causing the required number of qubits to increase with the feature dimension. This study aims to develop and evaluate a Hybrid Quantum Convolutional Neural Network (HQCNN) with Dense Angle Encoding (DAE) for handwritten Arabic character recognition and to analyze the effect of

Item Type: Thesis (Masters)
Additional Information / Supervisor: Prof. Dr. Ir. Shofwatul 'Uyun, S.T., M.Kom., IPM., ASEAN Eng.
Uncontrolled Keywords: Dense Angle Encoding, Hybrid QCNN, Karakter Arab, Quantum Machine Learning, Variational Quantum Circuit
Subjects: 000 Ilmu Komputer, Ilmu Informasi, dan Karya Umum > 000 Karya Umum > 006.3 Artificial Intelligence (Kecerdasan Buatan)
Divisions: Fakultas Sains dan Teknologi > Informatika (S2)
Depositing User: Muh Khabib
Date Deposited: 07 Oct 2026 09:12
Last Modified: 07 Oct 2026 09:12
URI: http://digilib.uin-suka.ac.id/id/eprint/78782

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