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Dense Image Correspondences for Computer Vision
This book describes the fundamental building-block of many new computer vision systems: dense and robust correspondence estimation. Dense correspondence estimation techniques are now successfully being used to solve a wide range of computer vision problems, very different from the traditional applic...
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| Diğer Yazarlar: | , |
| Materyal Türü: | e-Kitap |
| Dil: | İngilizce |
| Baskı/Yayın Bilgisi: |
Cham :
Springer International Publishing : Imprint: Springer,
2016.
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| Edisyon: | 1st ed. 2016. |
| Konular: | |
| Online Erişim: | Full-text access OPAC'ta görüntüle |
İçindekiler:
- Introduction to Dense Optical Flow
- SIFT Flow: Dense Correspondence across Scenes and its Applications
- Dense, Scale-Less Descriptors
- Scale-Space SIFT Flow
- Dense Segmentation-aware Descriptors
- SIFTpack: A Compact Representation for Efficient SIFT Matching
- In Defense of Gradient-Based Alignment on Densely Sampled Sparse Features
- From Images to Depths and Back
- DepthTransfer: Depth Extraction from Video Using Non-parametric Sampling
- Joint Inference in Image Datasets via Dense Correspondence
- Dense Correspondences and Ancient Texts.