JOURNAL ARTICLE

Learning local image descriptors using binary decision trees

Juha YlioinasJuho KannalaAbdenour HadidMatti Pietikäinen

Year: 2014 Journal:   IEEE Winter Conference on Applications of Computer Vision Vol: 2 Pages: 347-354

Abstract

In this paper we propose a unified framework for learning such local image descriptors that describe pixel neighborhoods using binary codes. The descriptors are constructed using binary decision trees which are learnt from a set of training image patches. Our framework generalizes several previously proposed binary descriptors, such as BRIEF, LBP and their variants, and provides a principled way to learn new constructions which have not been previously studied. Further, the proposed framework can utilize both labeled or unlabeled training data, and hence fits to both supervised and unsupervised learning scenarios. We evaluate our framework using varying levels of supervision in the learning phase. The experiments show that our descriptor constructions perform comparably to benchmark descriptors in two different applications, namely texture categorization and age group classification from facial images.

Keywords:
Artificial intelligence Pattern recognition (psychology) Benchmark (surveying) Computer science Local binary patterns Categorization Set (abstract data type) Image (mathematics) Contextual image classification Binary number Machine learning Pixel Decision tree Binary decision diagram Mathematics Histogram Theoretical computer science

Metrics

2
Cited By
0.45
FWCI (Field Weighted Citation Impact)
29
Refs
0.65
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Advanced Image and Video Retrieval Techniques
Physical Sciences →  Computer Science →  Computer Vision and Pattern Recognition
Image Retrieval and Classification Techniques
Physical Sciences →  Computer Science →  Computer Vision and Pattern Recognition
Remote-Sensing Image Classification
Physical Sciences →  Engineering →  Media Technology

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