Scenes/Objects classification toolbox

Scenes recognition toolbox for vision systems
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更新 2011/4/25

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Scenes/Objects Rocognition toolbox v0.12
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This toolbox provides some basic tools for scenes/object recognition in vision systems.
Based on supervised classification, this toolbox offerts some state-of-art descriptors coupled with fast and efficient classifiers.
Descriptors are divided in two famillies:
i) "direct" features computed from images [1,2,3,4,5,19],
ii) "dictionnary learning + spatial pooling" features computed from a collection of patches:
a) Bag of Features [6,7] and
b) Sparse Dictionary learning [8,9].
Large-Scale Linear SVM such Liblinear [10] or Pagasos [11] are used to train models since features are almost perfectly linearly separable.
Non-linear Kernels extension for additive homogeneous kernels (chi2, intersection histogram, etc...) is performed through features map method [12,22].
The main objective of this toolbox is to deliver simple but efficient tools, easy to modify, mainly written in C codes with a matlab interface.

Please open readme.txt for full instructions

引用

Sebastien PARIS (2026). Scenes/Objects classification toolbox (https://jp.mathworks.com/matlabcentral/fileexchange/29800-scenes-objects-classification-toolbox), MATLAB Central File Exchange. 取得日: .

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作成: R2009b
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1.2.0.0

0.12 - Add new normalization method.
- Better default parameters which improve results.
- Better databases handling.
- Add "triangle" soft assignement for K-means dictionary learning approach [21]

1.1.0.0

0.11
-Compile SPAMS with -largeArrayDims flag for WIN64 system
-Can handle any many databases where images per topics are in a specific folder with specific config files
- Read readme.txt for a complete of changes

1.0.0.0