SOTAVerified

Content-Based Image Retrieval

Content-Based Image Retrieval is a well studied problem in computer vision, with retrieval problems generally divided into two groups: category-level retrieval and instance-level retrieval. Given a query image of the Sydney Harbour bridge, for instance, category-level retrieval aims to find any bridge in a given dataset of images, whilst instance-level retrieval must find the Sydney Harbour bridge to be considered a match.

Source: Camera Obscurer: Generative Art for Design Inspiration

Papers

Showing 5175 of 195 papers

TitleStatusHype
Class Anchor Margin Loss for Content-Based Image Retrieval0
Classifying magnetic resonance image modalities with convolutional neural networks0
Class-Specific Variational Auto-Encoder for Content-Based Image Retrieval0
Color Image Retrieval Using Fuzzy Measure Hamming and S-Tree0
Combining Real-Valued and Binary Gabor-Radon Features for Classification and Search in Medical Imaging Archives0
Comparative Study and Optimization of Feature-Extraction Techniques for Content based Image Retrieval0
Computing Similarity between Cultural Heritage Items using Multimodal Features0
A Comparison of CNN and Classic Features for Image Retrieval0
Constrained Mass Optimal Transport0
Content-Based Brain Tumor Retrieval for MR Images Using Transfer Learning0
Content Based Image Indexing and Retrieval0
Content-based Image Retrieval and the Semantic Gap in the Deep Learning Era0
Content Based Image Retrieval from AWiFS Images Repository of IRS Resourcesat-2 Satellite Based on Water Bodies and Burnt Areas0
Content-Based Image Retrieval for Multi-Class Volumetric Radiology Images: A Benchmark Study0
A Semantically-Aware Relevance Measure for Content-Based Medical Image Retrieval Evaluation0
Content Based Image Retrieval (CBIR) in Remote Clinical Diagnosis and Healthcare0
Content-based image retrieval speedup0
Content Based Image Retrieval System using Feature Classification with Modified KNN Algorithm0
Content-based image retrieval system with most relevant features among wavelet and color features0
A Triplet-loss Dilated Residual Network for High-Resolution Representation Learning in Image Retrieval0
Content-Based Image Retrieval Using Multiresolution Analysis Of Shape-Based Classified Images0
Content-Based Image Retrieval Using COSFIRE Descriptors with application to Radio Astronomy0
Content-Based Medical Image Retrieval with Opponent Class Adaptive Margin Loss0
Content-Based Image Retrieval Based on Late Fusion of Binary and Local Descriptors0
A Self-Balanced Min-Cut Algorithm for Image Clustering0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1LHRRMAP90.94Unverified