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Geometric Applications of Principal Component Analysis: Quality of Pca Bounding Boxes and Detecting Symmetry Darko Dimitrov
Geometric Applications of Principal Component Analysis: Quality of Pca Bounding Boxes and Detecting Symmetry
Darko Dimitrov
Most of the applications of Principal Component Analysis (PCA) are non-geometric in their nature. However, there are also a few purely geometric applications. The focus of this book are the geometric properties of the PCA in the context of PCA bounding boxes and reflective symmetry. A frequently used heuristic for computing a bounding box of a set of points is based on PCA. Here, the quality of the PCA bounding boxes is investigated. Bounds on the worst case ratio of the volume of the PCA bounding box and the volume of the minimum volume bounding box are presented. Also, the impact of the theoretical results on applications of several PCA variants in practice are studied. Symmetry detection is an important problem with many applications in pattern recognition, computer vision and computational geometry. In this book, we use a relation between the perfect reflective symmetry and the principal components of shapes to compute the planes of symmetry of perfect and approximate reflective symmetric point sets.
| Mediji | Grāmatas Paperback Book (Grāmata ar mīksto vāku un līmēto muguru) |
| Izlaists | 2012. gada 10. augusts |
| ISBN13 | 9783838134338 |
| Izdevēji | Südwestdeutscher Verlag für Hochschulsch |
| Lapas | 148 |
| Izmēri | 150 × 9 × 226 mm · 238 g |
| Valoda | Vācu |