2020
DOI: 10.3390/informatics7030021
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Expert Refined Topic Models to Edit Topic Clusters in Image Analysis Applied to Welding Engineering

Abstract: This paper proposes a new method to generate edited topics or clusters to analyze images for prioritizing quality issues. The approach is associated with a new way for subject matter experts to edit the cluster definitions by “zapping” or “boosting” pixels. We refer to the information entered by users or experts as “high-level” data and we are apparently the first to allow in our model for the possibility of errors coming from the experts. The collapsed Gibbs sampler is proposed that permits efficient … Show more

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Cited by 1 publication
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References 36 publications
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