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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 34013450 of 9051 papers

TitleStatusHype
Explore-Instruct: Enhancing Domain-Specific Instruction Coverage through Active ExplorationCode1
Ultrasound Image Segmentation of Thyroid Nodule via Latent Semantic Feature Co-Registration0
Incentive Mechanism Design for Distributed Ensemble Learning0
Dialect Transfer for Swiss German Speech Translation0
Analysing of 3D MIMO Communication Beamforming in Linear and Planar Arrays0
Kernel-Elastic Autoencoder for Molecular Design0
Evolutionary Dynamic Optimization and Machine Learning0
Towards Evaluating Generalist Agents: An Automated Benchmark in Open WorldCode1
D2 Pruning: Message Passing for Balancing Diversity and Difficulty in Data PruningCode1
CRITERIA: a New Benchmarking Paradigm for Evaluating Trajectory Prediction Models for Autonomous DrivingCode3
FedSym: Unleashing the Power of Entropy for Benchmarking the Algorithms for Federated Learning0
TabLib: A Dataset of 627M Tables with ContextCode1
Learning a Cross-modality Anomaly Detector for Remote Sensing ImageryCode1
Context-Enhanced Detector For Building Detection From Remote Sensing Images0
On the Impact of Cross-Domain Data on German Language Models0
Diversity of Thought Improves Reasoning Abilities of LLMs0
Diversity for Contingency: Learning Diverse Behaviors for Efficient Adaptation and Transfer0
GMOCAT: A Graph-Enhanced Multi-Objective Method for Computerized Adaptive TestingCode1
ADASR: An Adversarial Auto-Augmentation Framework for Hyperspectral and Multispectral Data FusionCode1
RK-core: An Established Methodology for Exploring the Hierarchical Structure within DatasetsCode0
Stochastic Super-resolution of Cosmological Simulations with Denoising Diffusion Models0
Adversarial optimization leads to over-optimistic security-constrained dispatch, but sampling can help0
Score-Based Generative Models for Designing Binding Peptide BackbonesCode1
Mitigating stereotypical biases in text to image generative systems0
Cultural Compass: Predicting Transfer Learning Success in Offensive Language Detection with Cultural FeaturesCode0
CoinSeg: Contrast Inter- and Intra- Class Representations for Incremental SegmentationCode1
Understanding the Effects of RLHF on LLM Generalisation and DiversityCode1
Hexa: Self-Improving for Knowledge-Grounded Dialogue System0
Diversity from Human Feedback0
Growing ecosystem of deep learning methods for modeling proteinx2013protein interactions0
SEER : A Knapsack approach to Exemplar Selection for In-Context HybridQACode0
Affine Frequency Division Multiplexing With Index Modulation0
Understanding Transfer Learning and Gradient-Based Meta-Learning TechniquesCode0
Increasing Entropy to Boost Policy Gradient Performance on Personalization TasksCode0
SocialCircle: Learning the Angle-based Social Interaction Representation for Pedestrian Trajectory PredictionCode1
ZSC-Eval: An Evaluation Toolkit and Benchmark for Multi-agent Zero-shot CoordinationCode2
Enhancing Pre-Trained Language Models with Sentence Position Embeddings for Rhetorical Roles Recognition in Legal Opinions0
Benchmarking Large Language Models with Augmented Instructions for Fine-grained Information Extraction0
IPMix: Label-Preserving Data Augmentation Method for Training Robust ClassifiersCode1
QE-BEV: Query Evolution for Bird's Eye View Object Detection in Varied ContextsCode0
FM Tone Transfer with Envelope Learning0
A Holistic Evaluation of Piano Sound Quality0
Metadata-Conditioned Generative Models to Synthesize Anatomically-Plausible 3D Brain MRIsCode0
A Process for Topic Modelling Via Word Embeddings0
Domain Randomization for Sim2real Transfer of Automatically Generated Grasping DatasetsCode1
Knolling Bot: Learning Robotic Object Arrangement from Tidy Demonstrations0
On the Embedding Collapse when Scaling up Recommendation ModelsCode1
Toward a Plug-and-Play Vision-Based Grasping Module for RoboticsCode1
Amortizing intractable inference in large language modelsCode1
Unbiased estimation of sampling variance for Simpson's diversity indexCode0
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