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Classifying Covert Photographs CVPR 2012 POSTER

Classifying Covert Photographs

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Classifying Covert Photographs. CVPR 2012 POSTER. Outline. Introduction Combine Image Features and Attributes Experiment Conclusion. Introduction. Why doing this classification ? Image/video acquisition devices New Internet technologies What is covert? Secret photography. - PowerPoint PPT Presentation

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Page 1: Classifying Covert Photographs

Classifying Covert Photographs

CVPR 2012 POSTER

Page 2: Classifying Covert Photographs

Outline Introduction Combine Image Features and Attributes Experiment Conclusion

Page 3: Classifying Covert Photographs

Introduction Why doing this classification?

Image/video acquisition devices New Internet technologies

What is covert? Secret photography

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Introduction

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Introduction Challenges

Database construction Training set covert:1200 regular:4800 Testing set covert:300 regular:1200

Attribute annotation

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Combine Image Features and Attributes

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Combine Image Features and Attributes

Low-Level Image Features Bag of Features(BoF) Color GIST Color moments Edge Orientation Histogram Gray Histogram

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Combine Image Features and Attributes

Low-Level Image Features Gray Level Co-occurrence Matrix Hue descriptor Local Binary Pattern Pyramid histogram of orientation gradient Spatiogram

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Combine Image Features and Attributes

Attribute Classifiers and Attribute Features

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Combine Image Features and Attributes

Fusion with Multiple Kernels Learning(MKL)

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Combine Image Features and Attributes

Fusion with Multiple Kernels Learning(MKL) Feature normalization and kernel

standardization

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Experiment Performance evaluation metrics

AUC 1-EER

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Experiment Evaluation of MKL algorithm

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Experiment Evaluation of MKL algorithm

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Experiment Evaluation of MKL algorithm

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Experiment Evaluation of MKL algorithm

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Experiment Evaluation of MKL algorithm

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Experiment Evaluation of MKL algorithm

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Experiment

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Conclusion Appropriate features are really important to

the accuracy. Multiple Kernel Learning