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 72017250 of 8378 papers

TitleStatusHype
Exploring data augmentation in bias mitigation against non-native-accented speech0
Exploring Data Augmentation Methods on Social Media Corpora0
Exploring Data Augmentations on Self-/Semi-/Fully- Supervised Pre-trained Models0
Exploring Data Augmentation Strategies for Hate Speech Detection in Roman Urdu0
Data Augmentation by Fuzzing for Neural Test Generation0
Exploring Graph Classification Techniques Under Low Data Constraints: A Comprehensive Study0
Exploring Invariant Representation for Visible-Infrared Person Re-Identification0
Exploring Listwise Evidence Reasoning with T5 for Fact Verification0
Illuminating Blind Spots of Language Models with Targeted Agent-in-the-Loop Synthetic Data0
Exploring Machine Speech Chain for Domain Adaptation and Few-Shot Speaker Adaptation0
Exploring Non-contrastive Self-supervised Representation Learning for Image-based Profiling0
Exploring Racial Bias within Face Recognition via per-subject Adversarially-Enabled Data Augmentation0
Exploring Robust Face-Voice Matching in Multilingual Environments0
Exploring Self-Supervised Contrastive Learning of Spatial Sound Event Representation0
Exploring Structure Consistency for Deep Model Watermarking0
Exploring Supervised Machine Learning for Multi-Phase Identification and Quantification from Powder X-Ray Diffraction Spectra0
Exploring Temporally Dynamic Data Augmentation for Video Recognition0
Exploring Text Recombination for Automatic Narrative Level Detection0
Exploring the Design of Adaptation Protocols for Improved Generalization and Machine Learning Safety0
Exploring the Effects of Data Augmentation for Drivable Area Segmentation0
Exploring the Efficacy of Base Data Augmentation Methods in Deep Learning-Based Radiograph Classification of Knee Joint Osteoarthritis0
Exploring the Impact of Data Quantity on ASR in Extremely Low-resource Languages0
The Origins and Prevalence of Texture Bias in Convolutional Neural Networks0
Exploring the Power of Pure Attention Mechanisms in Blind Room Parameter Estimation0
Exploring the Robustness of Human Parsers Towards Common Corruptions0
Exploring the Utility of Self-Supervised Pretraining Strategies for the Detection of Absent Lung Sliding in M-Mode Lung Ultrasound0
Exploring Variational Autoencoders for Medical Image Generation: A Comprehensive Study0
Exploring WavLM Back-ends for Speech Spoofing and Deepfake Detection0
Exploring Zero and Few-shot Techniques for Intent Classification0
Extended Labeled Faces in-the-Wild (ELFW): Augmenting Classes for Face Segmentation0
Extending Temporal Data Augmentation for Video Action Recognition0
Extensive Studies of the Neutron Star Equation of State from the Deep Learning Inference with the Observational Data Augmentation0
External Large Foundation Model: How to Efficiently Serve Trillions of Parameters for Online Ads Recommendation0
Extracting knowledge from features with multilevel abstraction0
Extracting Pasture Phenotype and Biomass Percentages using Weakly Supervised Multi-target Deep Learning on a Small Dataset0
Extracting Targeted Training Data from ASR Models, and How to Mitigate It0
Extraction of Medication Names from Twitter Using Augmentation and an Ensemble of Language Models0
ExtraPhrase: Efficient Data Augmentation for Abstractive Summarization0
Extreme Augmentation : Can deep learning based medical image segmentation be trained using a single manually delineated scan?0
Extrinsic Factors Affecting the Accuracy of Biomedical NER0
EyeBAG: Accurate Control of Eye Blink and Gaze Based on Data Augmentation Leveraging Style Mixing0
Facebook AI's WMT20 News Translation Task Submission0
Facebook AI’s WMT20 News Translation Task Submission0
Face Emotion Recognization Using Dataset Augmentation Based on Neural Network0
FaceMixup: Enhancing Facial Expression Recognition through Mixed Face Regularization0
Face morphing detection in the presence of printing/scanning and heterogeneous image sources0
FaceSaliencyAug: Mitigating Geographic, Gender and Stereotypical Biases via Saliency-Based Data Augmentation0
Facial Recognition Leveraging Generative Adversarial Networks0
Facial Surgery Preview Based on the Orthognathic Treatment Prediction0
Factual Dialogue Summarization via Learning from Large Language Models0
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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