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  1. Research Outputs

Multi-Level Net: a Visual Saliency Prediction Model

Conference Paper
Publication Date:
2016
Short description:
Multi-Level Net: a Visual Saliency Prediction Model / Cornia, Marcella; Baraldi, Lorenzo; Serra, Giuseppe; Cucchiara, Rita. - 9914:(2016), pp. 302-315. ( Fourth International Workshop on Assistive Computer Vision and Robotics Amsterdam, The Netherlands October 9th, 2016) [10.1007/978-3-319-48881-3_21].
abstract:
State of the art approaches for saliency prediction are based on Full Convolutional Networks, in which saliency maps are built using the last layer. In contrast, we here present a novel model that predicts saliency maps exploiting a non-linear combination of features coming from different layers of the network. We also present a new loss function to deal with the imbalance issue on saliency masks. Extensive results on three public datasets demonstrate the robustness of our solution. Our model outperforms the state of the art on SALICON, which is the largest and unconstrained dataset available, and obtains competitive results on MIT300 and CAT2000 benchmarks.
Iris type:
Relazione in Atti di Convegno
List of contributors:
Cornia, Marcella; Baraldi, Lorenzo; Serra, Giuseppe; Cucchiara, Rita
Authors of the University:
BARALDI LORENZO
CORNIA MARCELLA
CUCCHIARA Rita
Handle:
https://iris.unimore.it/handle/11380/1104834
Full Text:
https://iris.unimore.it//retrieve/handle/11380/1104834/114130/0029.pdf
Book title:
Computer Vision – ECCV 2016 Workshops
Published in:
LECTURE NOTES IN COMPUTER SCIENCE
Journal
LECTURE NOTES IN COMPUTER SCIENCE
Series
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