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Penerapan Convolutional Neural Network untuk Membedakan Foto Sintetis Hasil Generative Artificial Intelligence dan Foto Asli
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Date
Authors
Sari,Yuliana Permata
Journal Title
Journal ISSN
Volume Title
Publisher
Politeknik Negeri Batam
Abstract
The advancement of Generative Artificial Intelligence (GAI) has enabled the
creation of synthetic images that closely resemble real photographs, raising
challenges in verifying digital content authenticity. This study aims to develop a
classification model based on Convolutional Neural Network (CNN) to distinguish
between synthetic and real images accurately, as well as to implement it into a
prototype detection system. The dataset consists of AI-generated and real images
processed through preprocessing, training, and testing stages. Model performance is
evaluated using accuracy, precision, recall, and F1-score. The results indicate that
CNN effectively extracts visual features and achieves good classification
performance. The model is then integrated into a web-based prototype to support
real-time detection. The implementation results show that the system performs well;
however, it still has limitations in handling unseen data outside the training
distribution.
Description
Citation
IEEE
