Istituto di Scienza e Tecnologie dell'Informazione     
Carrara F., Esuli A., Fagni T., Falchi F., Moreo Fernandez A. Picture it in your mind: generating high level visual representations from textual descriptions. Technical report, 2016.
In this paper we tackle the problem of image search when the query is a short textual description of the image the user is looking for. We choose to implement the actual search process as a similarity search in a visual feature space, by learning to translate a textual query into a visual representation. Searching in the visual feature space has the advantage that any update to the translation model does not require to reprocess the, typically huge, image collection on which the search is performed. We propose Text2Vis, a neural network that generates a visual representation, in the visual feature space of the fc6-fc7 layers of ImageNet, from a short descriptive text. Text2Vis optimizes two loss functions, using a stochastic loss-selection method. A visual-focused loss is aimed at learning the actual text-to-visual feature mapping, while a text-focused loss is aimed at modeling the higher-level semantic concepts expressed in language and countering the overfit on non-relevant visual components of the visual loss. We report preliminary results on the MS-COCO dataset.
URL: http://https://arxiv.org/abs/1606.07287
Subject Image Retrieval
Cross-media Retrieval
Text Representation
H.1 Information systems. Multimedia and multimodal retrieval
I. Computing methodologies. Machine learning. Learning paradigms. Supervised learning

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