On the Minimal Recognizable Image Patch

October 12, 2020 Β· Declared Dead Β· πŸ› International Conference on Pattern Recognition

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Authors Mark Fonaryov, Michael Lindenbaum arXiv ID 2010.05858 Category cs.CV: Computer Vision Citations 2 Venue International Conference on Pattern Recognition Last Checked 5 months ago
Abstract
In contrast to human vision, common recognition algorithms often fail on partially occluded images. We propose characterizing, empirically, the algorithmic limits by finding a minimal recognizable patch (MRP) that is by itself sufficient to recognize the image. A specialized deep network allows us to find the most informative patches of a given size, and serves as an experimental tool. A human vision study recently characterized related (but different) minimally recognizable configurations (MIRCs) [1], for which we specify computational analogues (denoted cMIRCs). The drop in human decision accuracy associated with size reduction of these MIRCs is substantial and sharp. Interestingly, such sharp reductions were also found for the computational versions we specified.
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