SOTAVerified

Data Augmentation

Data augmentation involves techniques used for increasing the amount of data, based on different modifications, to expand the amount of examples in the original dataset. Data augmentation not only helps to grow the dataset but it also increases the diversity of the dataset. When training machine learning models, data augmentation acts as a regularizer and helps to avoid overfitting.

Data augmentation techniques have been found useful in domains like NLP and computer vision. In computer vision, transformations like cropping, flipping, and rotation are used. In NLP, data augmentation techniques can include swapping, deletion, random insertion, among others.

Further readings:

( Image credit: Albumentations )

Papers

Showing 45264550 of 8378 papers

TitleStatusHype
Restoration of Hand-Drawn Architectural Drawings Using Latent Space Mapping With Degradation Generator0
Unsupervised Prompt Tuning for Text-Driven Object Detection0
Robust Heterogeneous Federated Learning under Data CorruptionCode0
ObjectStitch: Object Compositing With Diffusion Model0
BiasAdv: Bias-Adversarial Augmentation for Model Debiasing0
Weakly Supervised Temporal Sentence Grounding With Uncertainty-Guided Self-Training0
Edges to Shapes to Concepts: Adversarial Augmentation for Robust Vision0
RankMix: Data Augmentation for Weakly Supervised Learning of Classifying Whole Slide Images With Diverse Sizes and Imbalanced CategoriesCode0
Vector Quantization With Self-Attention for Quality-Independent Representation Learning0
Boosting Novel Category Discovery Over Domains with Soft Contrastive Learning and All in One ClassifierCode0
MetaMix: Towards Corruption-Robust Continual Learning With Temporally Self-Adaptive Data Transformation0
Markov Game Video Augmentation for Action Segmentation0
Tracking Passengers and Baggage Items using Multiple Overhead Cameras at Security CheckpointsCode0
Learning to mask: Towards generalized face forgery detection0
SESNet: sequence-structure feature-integrated deep learning method for data-efficient protein engineering0
Data Augmentation using Transformers and Similarity Measures for Improving Arabic Text Classification0
Joint Engagement Classification using Video Augmentation Techniques for Multi-person Human-robot Interaction0
Detection of Active Emergency Vehicles using Per-Frame CNNs and Output Smoothing0
Knowledge-Guided Data-Centric AI in Healthcare: Progress, Shortcomings, and Future Directions0
General GAN-generated image detection by data augmentation in fingerprint domain0
Learning Generalizable Representations for Reinforcement Learning via Adaptive Meta-learner of Behavioral SimilaritiesCode0
Understanding and Improving Transfer Learning of Deep Models via Neural Collapse0
Time to Market Reduction for Hydrogen Fuel Cell Stacks using Generative Adversarial Networks0
HMM-based data augmentation for E2E systems for building conversational speech synthesis systems0
Audio Denoising for Robust Audio Fingerprinting0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1DeiT-B (+MixPro)Accuracy (%)82.9Unverified
2ResNet-200 (DeepAA)Accuracy (%)81.32Unverified
3DeiT-S (+MixPro)Accuracy (%)81.3Unverified
4ResNet-200 (Fast AA)Accuracy (%)80.6Unverified
5ResNet-200 (UA)Accuracy (%)80.4Unverified
6ResNet-200 (AA)Accuracy (%)80Unverified
7ResNet-50 (DeepAA)Accuracy (%)78.3Unverified
8ResNet-50 (TA wide)Accuracy (%)78.07Unverified
9ResNet-50 (LoRot-E)Accuracy (%)77.72Unverified
10ResNet-50 (LoRot-I)Accuracy (%)77.71Unverified
#ModelMetricClaimedVerifiedStatus
1WideResNet-40-2 (Faster AA)Percentage error3.7Unverified
2Shake-Shake (26 2×32d) (Faster AA)Percentage error2.7Unverified
3WideResNet-28-10 (Faster AA)Percentage error2.6Unverified
4Shake-Shake (26 2×112d) (Faster AA)Percentage error2Unverified
5Shake-Shake (26 2×96d) (Faster AA)Percentage error2Unverified
#ModelMetricClaimedVerifiedStatus
1DiffAugClassification Accuracy92.7Unverified
2PaCMAPClassification Accuracy85.3Unverified
3hNNEClassification Accuracy77.4Unverified
4TopoAEClassification Accuracy74.6Unverified