Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-11T22:55:49.824873Z
Paper Citation Record · LEDGER
As of 21 August 2026, this Paper Citation Record lists 65 of 65 outbound references and 0 inbound Pith citation observations for arXiv:2412.03009.
A citation records a reference. It does not transfer a finding from one paper to another.
Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-11T22:55:49.824873Z
One-hop event checks from named stored sources.
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Pith citing papers itemized under the disclosed page cap.
Source: paper_references, paper_reference_links
A source-named dated measurement, never combined with another source.
Source: cited_works
65 of 65 outbound references displayed
External citation measurements
No source-named external measurement is stored.
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Data Acquisition for Improving Model Fairness using Reinforcement Learning Analysis of thompson sampling for the multi-armed bandit problem
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Data Acquisition for Improving Model Fairness using Reinforcement Learning Machine bias: There’s software used across the country to predict future criminals
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Data Acquisition for Improving Model Fairness using Reinforcement Learning Using confidence bounds for exploitation-exploration trade-offs
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Data Acquisition for Improving Model Fairness using Reinforcement Learning Learn2clean: Optimizing the sequence of tasks for web data preparation
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Data Acquisition for Improving Model Fairness using Reinforcement Learning The shapley value in database manage- ment
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Data Acquisition for Improving Model Fairness using Reinforcement Learning Fair preprocessing: towards understanding compositional fairness of data transformers in machine learning pipeline
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Data Acquisition for Improving Model Fairness using Reinforcement Learning The art and practice of data science pipelines: A comprehensive study of data science pipelines in theory, in-the-small, and in-the-large
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Data Acquisition for Improving Model Fairness using Reinforcement Learning Housing department slaps facebook with discrimination charge
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Data Acquisition for Improving Model Fairness using Reinforcement Learning Bandits with heavy tail
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Data Acquisition for Improving Model Fairness using Reinforcement Learning A survey on deep reinforcement learning for data processing and analytics
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Data Acquisition for Improving Model Fairness using Reinforcement Learning Upper- confidence-bound algorithms for active learning in multi-armed bandits
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Data Acquisition for Improving Model Fairness using Reinforcement Learning Fairness in machine learning: A survey
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Data Acquisition for Improving Model Fairness using Reinforcement Learning Selective data acquisition in the wild for model charging
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Data Acquisition for Improving Model Fairness using Reinforcement Learning Fair prediction with disparate impact: A study of bias in recidivism prediction instruments
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Data Acquisition for Improving Model Fairness using Reinforcement Learning Dennis Cook and Sanford Weisberg
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Data Acquisition for Improving Model Fairness using Reinforcement Learning Give me some credit, 2011
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Data Acquisition for Improving Model Fairness using Reinforcement Learning Rpt-insight-amazon scraps secret ai recruiting tool that showed bias against women
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Data Acquisition for Improving Model Fairness using Reinforcement Learning Davis, S
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Data Acquisition for Improving Model Fairness using Reinforcement Learning Explanations for data repair through shapley values
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Data Acquisition for Improving Model Fairness using Reinforcement Learning Retiring adult: New datasets for fair machine learning
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Data Acquisition for Improving Model Fairness using Reinforcement Learning A density-based algorithm for discovering clusters in large spatial databases with noise
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Data Acquisition for Improving Model Fairness using Reinforcement Learning Joint entity linking with deep reinforcement learning
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Data Acquisition for Improving Model Fairness using Reinforcement Learning Data shapley: Equitable valuation of data for machine learning
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Data Acquisition for Improving Model Fairness using Reinforcement Learning On upper-confidence bound policies for switching bandit problems
Reference 29
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Data Acquisition for Improving Model Fairness using Reinforcement Learning Deepline: Automl tool for pipelines generation using deep reinforcement learning and hierarchical actions filtering
Reference 30
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Data Acquisition for Improving Model Fairness using Reinforcement Learning Self-driving cars more likely to hit blacks
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Data Acquisition for Improving Model Fairness using Reinforcement Learning Data clustering: 50 years beyond k-means
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Data Acquisition for Improving Model Fairness using Reinforcement Learning Unresolved cited work
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Data Acquisition for Improving Model Fairness using Reinforcement Learning Understanding black-box predictions via influence functions
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Data Acquisition for Improving Model Fairness using Reinforcement Learning Unresolved cited work
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Data Acquisition for Improving Model Fairness using Reinforcement Learning Qtune: a query-aware database tuning system with deep reinforcement learning
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Data Acquisition for Improving Model Fairness using Reinforcement Learning Algorithms for multi-armed bandit problems
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Data Acquisition for Improving Model Fairness using Reinforcement Learning Data acquisition for improving model confidence
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Data Acquisition for Improving Model Fairness using Reinforcement Learning Data Acquisition for Improving Machine Learning Models
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Data Acquisition for Improving Model Fairness using Reinforcement Learning A Survey on Bias and Fairness in Machine Learning
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Data Acquisition for Improving Model Fairness using Reinforcement Learning Applications and computation of the shapley value in databases and machine learning
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Data Acquisition for Improving Model Fairness using Reinforcement Learning Tailoring data source distributions for fairness-aware data integration
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Data Acquisition for Improving Model Fairness using Reinforcement Learning Recommendation System-based Upper Confidence Bound for Online Advertising
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Data Acquisition for Improving Model Fairness using Reinforcement Learning Interpretable Data-Based Explanations for Fairness Debugging
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Data Acquisition for Improving Model Fairness using Reinforcement Learning Coverage-based data-centric approaches for responsible and trustworthy ai
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Data Acquisition for Improving Model Fairness using Reinforcement Learning Introduction to multi-armed bandits
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Data Acquisition for Improving Model Fairness using Reinforcement Learning Slice tuner: A selective data acquisition framework for accurate and fair machine learning models
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Reference 2019
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No inbound Pith citation observations are available.