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 83268350 of 10420 papers

TitleStatusHype
Monte Carlo Deep Neural Network Arithmetic0
Adapting to Label Shift with Bias-Corrected Calibration0
COMBINED FLEXIBLE ACTIVATION FUNCTIONS FOR DEEP NEURAL NETWORKS0
Beyond image classification: zooplankton identification with deep vector space embeddings0
Evo-NAS: Evolutionary-Neural Hybrid Agent for Architecture Search0
AdaScale SGD: A Scale-Invariant Algorithm for Distributed Training0
DeepAGREL: Biologically plausible deep learning via direct reinforcement0
Distance-based Composable Representations with Neural Networks0
Gated Channel Transformation for Visual RecognitionCode0
Learning in Confusion: Batch Active Learning with Noisy Oracle0
Laconic Image Classification: Human vs. Machine Performance0
Defensive Tensorization: Randomized Tensor Parametrization for Robust Neural Networks0
MANIFOLD FORESTS: CLOSING THE GAP ON NEURAL NETWORKS0
Manifold Oblique Random Forests: Towards Closing the Gap on Convolutional Deep NetworksCode0
Improving Confident-Classifiers For Out-of-distribution DetectionCode0
Invariance vs Robustness of Neural Networks0
When Robustness Doesn’t Promote Robustness: Synthetic vs. Natural Distribution Shifts on ImageNet0
Smart Ternary Quantization0
Training Data Distribution Search with Ensemble Active Learning0
Unknown-Aware Deep Neural Network0
Scalable Deep Neural Networks via Low-Rank Matrix Factorization0
Test-Time Training for Out-of-Distribution Generalization0
Siamese Attention Networks0
SoftAdam: Unifying SGD and Adam for better stochastic gradient descent0
Scale-Equivariant Neural Networks with Decomposed Convolutional Filters0
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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
5Meta Pseudo Labels (EfficientNet-L2)Top 1 Accuracy90.2Unverified
6DaViT-HTop 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