A non-smooth, non-local variational approach to saliency detection in real time
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2023-12
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In this paper, we propose and solve numerically a general non-smooth, non-local variational model to tackle the saliency
detection problem in natural images. In order to overcome the typical drawback of the non-local methods in image processing,
which mainly is the inherent computational complexity of non-local calculus, as the non-local derivatives are computed w.r.t
every point of the domain, we propose a diferent scenario. We present a novel convex energy minimization problem in the
feature space, which is eficiently solved by means of a non-local primal-dual method. Several implementations and discussions are presented taking care of the computing platforms, CPU and GPU, achieving up to 33 fps and 62 fps respectively
for 300×400 image resolution, making the method eligible for real time applications.
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Alcaín, E., Muñoz, A.I., Schiavi, E. et al. A non-smooth non-local variational approach to saliency detection in real time. J Real-Time Image Proc 18, 739–750 (2021). https://doi.org/10.1007/s11554-020-01016-4
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