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Artwork’s Authenticity Recognition Model Using Machine Vision and Applications

Advances in Machine Learning & Artificial Intelligence · 2024

This paper presents an artwork authenticity recognition model using machine vision, image processing, and a fuzzy interface system and it is an applied research category. Artworks have always been subject to copying due to their importance, uniqueness, and great financial value, and it has always been the focus of international counterfeiters worldwide. Throughout history, due to various incidents, artworks have been stolen, crossed the borders of different countries, and traded in various auctions. Therefore, recognizing and confirming an artwork's authenticity is always challenging. In this research, I try to present a model to verify the authenticity of artwork using artificial intelligence techniques. The basic assumption is that a quality image of the original artwork is available with the specifications that I will explain in the section. Indeed, two images will be compared by taking pictures of other samples, and their differences will be identified with high accuracy, which the human eye cannot recognize. So, this model cannot recognize artwork authenticity without imaging history. In other words, photographing the original artwork can be used as a basis for comparison with

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