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Titlebook: Computer Vision – ECCV 2020; 16th European Confer Andrea Vedaldi,Horst Bischof,Jan-Michael Frahm Conference proceedings 2020 Springer Natur

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楼主: affected
发表于 2025-3-28 18:00:23 | 显示全部楼层
Deep Reflectance Volumes: Relightable Reconstructions from Multi-view Photometric Images,ts and lighting, including non-collocated lighting, rendering photorealistic images that are significantly better than state-of-the-art mesh-based methods. We also show that our learned reflectance volumes are editable, allowing for modifying the materials of the captured scenes.
发表于 2025-3-28 22:36:30 | 显示全部楼层
https://doi.org/10.1007/978-3-030-58580-8computer security; computer vision; education; face recognition; Human-Computer Interaction (HCI); image
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Allotments and Leisure Gardens,introduce SizerNet to predict 3D clothing conditioned on human body shape and garment size parameters, and ParserNet to infer garment meshes and shape under clothing with personal details in a single pass from an input mesh. SizerNet allows to estimate and visualize the dressing effect of a garment
发表于 2025-3-29 10:35:47 | 显示全部楼层
The Ecology of Vertebrate Olfaction our construction is the introduction of a geometric distortion criterion, defined directly on the decoded shapes, translating the preservation of the metric on the decoding to the formation of linear paths in the underlying latent space. Our rationale lies in the observation that training samples a
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The Ecology of Vertebrate Olfactions and visual details. We study unsupervised sketch to photo synthesis for the first time, learning from . sketch and photo data where the target photo for a sketch is unknown during training. Existing works only deal with either style difference or spatial deformation alone, synthesizing photos from
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Literatures, Cultures, and the Environmenteir unorganized nature – points are stored in an unordered way – makes them less suited to be processed by deep learning pipelines. In this paper, we propose a method for 3D object completion and classification based on point clouds. We introduce a new way of organizing the extracted features based
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Grazers on , and Their Predatorsty distribution to the training samples on their embedding space and detect outliers according to this distribution. The embedding space is often obtained from a discriminative classifier. However, such discriminative representation focuses only on known classes, which may not be critical for distin
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