Publication | Closed Access
Personalized portraits ranking
13
Citations
9
References
2011
Year
Unknown Venue
EngineeringImage RetrievalBiometricsPersonalized PortraitsStyle TransferImage SearchVisual ArtsSocial SciencesPersonalized FeaturesImage AnalysisInformation RetrievalAffective ComputingUser ModelingDesignUser ExperienceSocial Multimedia TaggingImage SimilarityComputer VisionPersonal IntentComputational AestheticHuman-computer Interaction
Portraits, also known as images of people, constitute an important part of consumer photos. Existing methods manage portraits based on either explicit objectives, e.g., a specified person or event, or aesthetics, i.e., the aesthetic quality of portraits. This paper presents a novel system for personalized portraits ranking. First, four kinds of personalized features, i.e., composition, clothing style, affection and social relationship are proposed to quantify users' intent. Then, example-based and sketch-based user interfaces (UI) are developed, which are capable of capturing users' personal intent hardly described by queries or aesthetics. Finally, portraits ranking is implemented by combing these features together with the developed user interfaces. Experimental results show that the system performs well in providing personalized preferences and the proposed features are effective for portraits ranking. From the user study, our system gets promising results.
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