Publication | Closed Access
Dual-Tree wavelet scattering network with parametric log transformation for object classification
33
Citations
12
References
2017
Year
Unknown Venue
Translation Invariant RepresentationsConvolutional Neural NetworkEngineeringMachine LearningParametric Log TransformationParametric TransformationImage ClassificationImage AnalysisData SciencePattern RecognitionFusion LearningSingle-image Super-resolutionVideo TransformerUnified ClassificationMachine VisionFeature LearningComputer ScienceMedical Image ComputingDeep LearningWavelet TheoryComputer VisionDual-tree WaveletObject ClassificationClassifier System
We introduce a ScatterNet that uses a parametric log transformation with Dual-Tree complex wavelets to extract translation invariant representations from a multi-resolution image. The parametric transformation aids the OLS pruning algorithm by converting the skewed distributions into relatively mean-symmetric distributions while the Dual-Tree wavelets improve the computational efficiency of the network. The proposed network is shown to outperform Mallat's ScatterNet [1] on two image datasets, both for classification accuracy and computational efficiency. The advantages of the proposed network over other supervised and some unsupervised methods are also presented using experiments performed on different training dataset sizes.
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