SOTAVerified

Image Classification

Image Classification is a fundamental task in vision recognition that aims to understand and categorize an image as a whole under a specific label. Unlike object detection, which involves classification and location of multiple objects within an image, image classification typically pertains to single-object images. When the classification becomes highly detailed or reaches instance-level, it is often referred to as image retrieval, which also involves finding similar images in a large database.

Source: Metamorphic Testing for Object Detection Systems

Papers

Showing 78767900 of 10420 papers

TitleStatusHype
Adversarial Learning for Personalized Tag RecommendationCode0
Improving Deep Hyperspectral Image Classification Performance with Spectral Unmixing0
Incremental Learning In Online Scenario0
Improved Gradient based Adversarial Attacks for Quantized NetworksCode0
Attentive CutMix: An Enhanced Data Augmentation Approach for Deep Learning Based Image Classification0
Applications of the Streaming Networks0
Classification of Chinese Handwritten Numbers with Labeled Projective Dictionary Pair Learning0
Neural encoding and interpretation for high-level visual cortices based on fMRI using image caption features0
Triad State Space Construction for Chaotic Signal Classification with Deep Learning0
Milking CowMask for Semi-Supervised Image ClassificationCode0
Strategies for Robust Image Classification0
Pipelined Backpropagation at Scale: Training Large Models without Batches0
Covid-19: Automatic detection from X-Ray images utilizing Transfer Learning with Convolutional Neural Networks0
GreedyNAS: Towards Fast One-Shot NAS with Greedy Supernet0
Synergic Adversarial Label Learning for Grading Retinal Diseases via Knowledge Distillation and Multi-task Learning0
Robust and On-the-fly Dataset Denoising for Image Classification0
Surface Damage Detection Scheme using Convolutional Neural Network and Artificial Neural Network0
Performance Evaluation of Low-Cost Machine Vision Cameras for Image-Based Grasp VerificationCode0
SAC: Accelerating and Structuring Self-Attention via Sparse Adaptive Connection0
HDF: Hybrid Deep Features for Scene Image Representation0
TanhExp: A Smooth Activation Function with High Convergence Speed for Lightweight Neural Networks0
Dynamic Sampling and Selective Masking for Communication-Efficient Federated Learning0
Fine-grained Species Recognition with Privileged Pooling: Better Sample Efficiency Through Supervised AttentionCode0
Event-Based Control for Online Training of Neural Networks0
Affinity Graph Supervision for Visual Recognition0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1CoCa (finetuned)Top 1 Accuracy91Unverified
2Model soups (BASIC-L)Top 1 Accuracy90.98Unverified
3Model soups (ViT-G/14)Top 1 Accuracy90.94Unverified
4DaViT-GTop 1 Accuracy90.4Unverified
5DaViT-HTop 1 Accuracy90.2Unverified
6Meta Pseudo Labels (EfficientNet-L2)Top 1 Accuracy90.2Unverified
7SwinV2-GTop 1 Accuracy90.17Unverified
8MAWS (ViT-6.5B)Top 1 Accuracy90.1Unverified
9Florence-CoSwin-HTop 1 Accuracy90.05Unverified
10Meta Pseudo Labels (EfficientNet-B6-Wide)Top 1 Accuracy90Unverified