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Diversity

Diversity in data sampling is crucial across various use cases, including search, recommendation systems, and more. Ensuring diverse samples means capturing a wide range of variations and perspectives, which leads to more robust, unbiased, and comprehensive models. In search use cases, for instance, diversity helps avoid redundancy, ensuring that users are exposed to a broader set of relevant information rather than repeated similar results.

Papers

Showing 47514800 of 9051 papers

TitleStatusHype
Neuroevolution is a Competitive Alternative to Reinforcement Learning for Skill DiscoveryCode1
Dynamic Stochastic Ensemble with Adversarial Robust Lottery Ticket Subnetworks0
Inference Latency Prediction at the Edge0
Training Diverse High-Dimensional Controllers by Scaling Covariance Matrix Adaptation MAP-Annealing0
Why Should I Choose You? AutoXAI: A Framework for Selecting and Tuning eXplainable AI SolutionsCode1
Reprogramming Pretrained Language Models for Antibody Sequence InfillingCode1
AlphaFold Distillation for Protein DesignCode1
The Vendi Score: A Diversity Evaluation Metric for Machine LearningCode1
Dynamical Isometry for Residual Networks0
Making Your First Choice: To Address Cold Start Problem in Vision Active LearningCode1
ISFL: Federated Learning for Non-i.i.d. Data with Local Importance SamplingCode0
Adaptive Leading Cruise Control in Mixed Traffic Considering Human Behavioral Diversity0
TripleE: Easy Domain Generalization via Episodic ReplayCode0
Concise and interpretable multi-label rule setsCode0
Generative Category-Level Shape and Pose Estimation with Semantic PrimitivesCode1
Improving Sample Quality of Diffusion Models Using Self-Attention GuidanceCode7
GenDexGrasp: Generalizable Dexterous GraspingCode1
GFlowNets and variational inferenceCode0
Investigating Metric Diversity for Evaluating Long Document SummarisationCode0
Leveraging Social Media as a Source for Clinical Guidelines: A Demarcation of Experiential Knowledge0
Analyzing the Dialect Diversity in Multi-document SummariesCode0
Accuracy meets Diversity in a News Recommender System0
Can Data Diversity Enhance Learning Generalization?0
Evaluating Diversity of Multiword Expressions in Annotated Text0
Towards Summarizing Healthcare Questions in Low-Resource Setting0
Evaluating and Mitigating Inherent Linguistic Bias of African American English through Inference0
Social and environmental impact of recent developments in machine learning on biology and chemistry researchCode0
School closures and educational path: how the Covid-19 pandemic affected transitions to college0
Towards complete representation of bacterial contents in metagenomic samples0
The Minority Matters: A Diversity-Promoting Collaborative Metric Learning Algorithm0
Parea: multi-view ensemble clustering for cancer subtype discoveryCode1
Start Small: Training Controllable Game Level Generators without Training Data by Learning at Multiple SizesCode0
Federated Stain Normalization for Computational PathologyCode0
Domain-Unified Prompt Representations for Source-Free Domain GeneralizationCode1
Denoising Diffusion Probabilistic Models for Styled Walking Synthesis0
UCEpic: Unifying Aspect Planning and Lexical Constraints for Generating Explanations in RecommendationCode0
Revisiting Few-Shot Learning from a Causal PerspectiveCode0
Rethinking Clustering-Based Pseudo-Labeling for Unsupervised Meta-LearningCode0
Mutation Effect Generalizability under Selection-Drift0
Feature-based Learning for Diverse and Privacy-Preserving Counterfactual ExplanationsCode0
Draw Your Art Dream: Diverse Digital Art Synthesis with Multimodal Guided DiffusionCode1
TaskMix: Data Augmentation for Meta-Learning of Spoken Intent Understanding0
Knowledge Distillation to Ensemble Global and Interpretable Prototype-Based Mammogram Classification Models0
Self-supervised Image Clustering from Multiple Incomplete Views via Constrastive Complementary Generation0
Open-Ended Diverse Solution Discovery with Regulated Behavior Patterns for Cross-Domain Adaptation0
Multiple-Choice Question Generation: Towards an Automated Assessment Framework0
Enhancing Data Diversity for Self-training Based Unsupervised Cross-modality Vestibular Schwannoma and Cochlea Segmentation0
Semantically Consistent Data Augmentation for Neural Machine Translation via Conditional Masked Language ModelCode0
Selecting Better Samples from Pre-trained LLMs: A Case Study on Question Generation0
AcroFOD: An Adaptive Method for Cross-domain Few-shot Object DetectionCode1
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