SOTAVerified

Dataset Generation

The task involves enhancing the training of target application (e.g. autonomous driving systems) by generating datasets of diverse and critical elements (e.g. traffic scenarios). Traditional methods rely on expensive and limited datasets, which often fail to capture rare but essential situations that can pose risks during testing.

Papers

Showing 276300 of 308 papers

TitleStatusHype
Actionet: An Interactive End-To-End Platform For Task-Based Data Collection And Augmentation In 3D EnvironmentCode1
Afro-MNIST: Synthetic generation of MNIST-style datasets for low-resource languagesCode1
Exploring the Impacts from Datasets to Monocular Depth Estimation (MDE) Models with MineNavi0
Image Generation for Efficient Neural Network Training in Autonomous Drone RacingCode1
Synthetic Dataset Generation with Itemset-Based Generative Models0
Through Fog High-Resolution Imaging Using Millimeter Wave Radar0
Learning Camera Miscalibration DetectionCode0
Unsupervised Multi-label Dataset Generation from Web Data0
On Deep Learning for Radio Resource Management in A Non-stationary Radio Environment0
Private Dataset Generation Using Privacy Preserving Collaborative LearningCode0
Synthetic Error Dataset Generation Mimicking Bengali Writing Pattern0
ViWi Vision-Aided mmWave Beam Tracking: Dataset, Task, and Baseline SolutionsCode1
Smart Home Appliances: Chat with Your FridgeCode0
Face Manifold: Manifold Learning for Synthetic Face GenerationCode0
Cut-and-Paste Dataset Generation for Balancing Domain Gaps in Object Instance Detection0
Synthetic dataset generation for object-to-model deep learning in industrial applicationsCode0
Learning to Propagate for Graph Meta-LearningCode0
GAN-Leaks: A Taxonomy of Membership Inference Attacks against Generative ModelsCode0
Methodology for the Automated Metadata-Based Classification of Incriminating Digital Forensic Artefacts0
Selection of Waveform Parameters Using Machine Learning for 5G and Beyond0
Rethinking Table Recognition using Graph Neural NetworksCode0
LeagueAI: Improving object detector performance and flexibility through automatically generated training data and domain randomizationCode0
Fonts-2-Handwriting: A Seed-Augment-Train framework for universal digit classificationCode0
Boundary Aware Multi-Focus Image Fusion Using Deep Neural Network0
A Seed-Augment-Train Framework for Universal Digit Classification0
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