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Predicting media memorability using ensemble models

Publication Type: 
Refereed Conference Meeting Proceeding
Abstract: 
Memorability, defined as the quality of being worth remembering, is a pressing issue in media as we struggle to organize and retrieve digital content and make it more useful in our daily lives. The Predicting Media Memorability task in MediaEval 2019 tackles this problem by creating a challenge to automatically predict memorability scores building on the work developed in 2018. Our team ensembled transfer learning approaches with video captions using embeddings and our own pre-computed features which outperformed Medieval 2018’s state-of-the-art architectures.
Conference Name: 
MediaEval 2019
Digital Object Identifer (DOI): 
10.23833
Publication Date: 
27/10/2019
Conference Location: 
France
Research Group: 
Institution: 
Dublin City University (DCU)
Open access repository: 
Yes