2022 International Conference on 3D Immersion, Interaction and Multi-Sensory Experiences (ICDIIME) 2022
DOI: 10.1109/icdiime56946.2022.00022
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Research into Digital Oil Painting Restoration Algorithm Based on Image Acquisition Technology

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Cited by 2 publications
(3 citation statements)
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“…In the broader field of material culture, AI systems have been used for the classification and/or reconstruction of pottery [46][47][48][49][50][51][52][53][54][55], and provenance studies of pottery [55], as well as the classification of ancient coins [56], constituent materials in shell middens [57], or of cut marks on bones retrieved from archaeological sites sites [58,59]. Custom -designed AI systems have also been used in the field of restoration and conservation [55,60,61].…”
Section: Use Of Genai Language Models In Cultural Heritage Studiesmentioning
confidence: 99%
“…In the broader field of material culture, AI systems have been used for the classification and/or reconstruction of pottery [46][47][48][49][50][51][52][53][54][55], and provenance studies of pottery [55], as well as the classification of ancient coins [56], constituent materials in shell middens [57], or of cut marks on bones retrieved from archaeological sites sites [58,59]. Custom -designed AI systems have also been used in the field of restoration and conservation [55,60,61].…”
Section: Use Of Genai Language Models In Cultural Heritage Studiesmentioning
confidence: 99%
“…In the 1940s and 1950s, someone came up with the idea of the Markov chain [10] .The concept of the Malkov chain, which is used to describe the process by which the state of a random sequence is transferred from one iteration to the next, was first proposed by the Russian mathematician Andrei Markov [1] .The Markov chain was the stepping stone that led to the development of diffusion-generation models in the years that followed.…”
Section: Historical Evolution Of the Generate Modelmentioning
confidence: 99%
“…The backwards process is also a Malkov chain [9] , and its combined probability distribution can be estimated by using the known forward probability transfer distribution in combination with the unknown backwards probability transmission distribution. A conditional probability distribution is used to estimate the reverse probability transfer distribution in a diffusion mode [10] , and it is assumed that this distribution follows the normal distribution. After training a neural network to obtain the correct parameters, an original image can be reconstructed based on the probability distribution of known conditions.…”
Section: Comparison Of Diffusion Modelsmentioning
confidence: 99%