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{ "extrinsic": { "provider": "https://deposit.softwareheritage.org/1/private/1364/meta/", "raw": { "origin": { "type": "deposit", "url": "https://doi.org/10.5201/ipol.2020.281" }, "origin_metadata": { "metadata": { "atom:external_identifier": "ipol.2020.281", "atom:title": "ipol_281", "codemeta:applicationCategory": "Image Processing", "codemeta:author": [ { "codemeta:affiliation": "UPF, Barcelona, Spain", "codemeta:name": "Lara Raad" }, { "codemeta:affiliation": "CMLA,ENS Paris-Saclay, France", "codemeta:name": "Maria Oliver" }, { "codemeta:affiliation": "UPF, Barcelona, Spain", "codemeta:name": "Coloma Ballester" }, { "codemeta:affiliation": "UPF, Barcelona, Spain", "codemeta:name": "Gloria Haro" }, { "codemeta:affiliation": "CMLA,ENS Paris-Saclay, France", "codemeta:name": "Enric Meinhardt" } ], "codemeta:dateCreated": "2019-09-26", "codemeta:datePublished": "2020-06-28", "codemeta:description": "On Anisotropic Optical Flow Inpainting Algorithms", "codemeta:downloadUrl": "http://www.ipol.im/pub/art/2020/281/flow_interp.zip", "codemeta:identifier": "https://doi.org/10.5201/ipol.2020.281", "codemeta:isPartOf": { "codemeta:identifier": "ISSN: 2105-1232 DOI: 10.5201/ipol", "codemeta:name": "Image Processing On Line (IPOL)", "codemeta:type": "Journal" }, "codemeta:keywords": [ "optical flow inpainting", "absolutely minimizing Lipschitz extension", "Laplace-Beltrami" ], "codemeta:license": { "codemeta:name": "AGPL-3.0-or-later", "codemeta:url": "https://spdx.org/licenses/AGPL-3.0-or-later.html" }, "codemeta:operatingSystem": "Linux", "codemeta:programmingLanguage": [ "C", "Matlab" ], "codemeta:referencePublication": { "codemeta:abstract": "This work describes two anisotropic optical flow inpainting algorithms. The first one recovers the missing flow values using the Absolutely Minimizing Lipschitz Extension partial differential equation (also called infinity Laplacian equation) and the second one uses the Laplace partial differential equation, both defined on a Riemmanian manifold. The Riemannian manifold is defined by endowing the plane domain with an appropriate metric depending on the reference video frame. A detailed analysis of both approaches is provided and their results are compared on three different applications: flow densification, occlusion inpainting and large hole inpainting.", "codemeta:identifier": "https://doi.org/10.5201/ipol.2020.281", "codemeta:name": "On Anisotropic Optical Flow Inpainting Algorithms", "codemeta:url": "http://www.ipol.im/pub/art/2020/281/article.pdf" }, "codemeta:relatedLink": "http://ipolcore.ipol.im/demo/clientApp/demo.html?id=281", "codemeta:releaseNotes": "This code implements the algorithm(s) published in the IPOL paper \"On Anisotropic Optical Flow Inpainting Algorithms\"", "codemeta:url": "http://www.ipol.im/pub/art/2020/281/", "codemeta:version": "1.0" }, "provider": { "metadata": {}, "provider_name": "", "provider_type": "deposit_client", "provider_url": "https://doi.org/10.5201/" }, "tool": { "configuration": { "sword_version": "2" }, "name": "swh-deposit", "version": "0.8.0" } } }, "when": "2020-12-27T21:24:00.350129+00:00" }, "original_artifact": [ { "checksums": { "sha1": "4d1925b3741c3a27d0e70e935ff909b1a3892b8d", "sha256": "773f504cdb871d4598dfb7e456f468b6a7beed3912e33cf09fca513b414372da" }, "filename": "archive.zip", "length": 7464660, "url": "https://deposit.softwareheritage.org/1/private/1364/raw/" } ] }
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flow_interp |
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