SOTAVerified

Causal Inference

Causal inference is the task of drawing a conclusion about a causal connection based on the conditions of the occurrence of an effect.

( Image credit: Recovery of non-linear cause-effect relationships from linearly mixed neuroimaging data )

Papers

Showing 13011350 of 1722 papers

TitleStatusHype
Causal Probabilistic Spatio-temporal Fusion Transformers in Two-sided Ride-Hailing Markets0
Estimating Treatment Effects via Orthogonal Regularization0
Latent Convergent Cross Mapping0
The wealth of nations and the health of populations: A quasi-experimental design of the impact of sovereign debt crises on child mortality0
Causal Inference from Slowly Varying Nonstationary Processes0
A Computational Framework for Solving Nonlinear Binary OptimizationProblems in Robust Causal Inference0
Achieving Reliable Causal Inference with Data-Mined Variables: A Random Forest Approach to the Measurement Error Problem0
MASSIVE: Tractable and Robust Bayesian Learning of Many-Dimensional Instrumental Variable Models0
Affirmative Algorithms: The Legal Grounds for Fairness as Awareness0
Causality-Aware Neighborhood Methods for Recommender Systems0
Analysing the Direction of Emotional Influence in Nonverbal Dyadic Communication: A Facial-Expression Study0
Warped Gaussian Processes in Remote Sensing Parameter Estimation and Causal Inference0
Causal Inference in Geosciences with Kernel Sensitivity Maps0
Causal Inference in Geoscience and Remote Sensing from Observational Data0
Optimal Policy Trees0
Intervention Design for Effective Sim2Real TransferCode0
On Variational Inference for User Modeling in Attribute-Driven Collaborative Filtering0
General Transportability of Soft Interventions: Completeness Results0
Learning Causal Effects via Weighted Empirical Risk Minimization0
RealCause: Realistic Causal Inference Benchmarking0
Causal inference using deep neural networks0
Counterfactual Fairness with Disentangled Causal Effect Variational Autoencoder0
Rethinking recidivism through a causal lensCode0
A scoping review of causal methods enabling predictions under hypothetical interventions0
Confounding Feature Acquisition for Causal Effect EstimationCode0
Split-Treatment Analysis to Rank Heterogeneous Causal Effects for Prospective Interventions0
Incorporating Causal Effects into Deep Learning Predictions on EHR Data0
Causal Expectation-MaximisationCode0
Doubly Robust Off-Policy Learning on Low-Dimensional Manifolds by Deep Neural Networks0
High-Dimensional Feature Selection for Sample Efficient Treatment Effect Estimation0
Causal Campbell-Goodhart's law and Reinforcement LearningCode0
Exploring Logically Dependent Multi-task Learning with Causal Inference0
Structural Causal Model with Expert Augmented Knowledge to Estimate the Effect of Oxygen Therapy on Mortality in the ICU0
CaM-Gen:Causally-aware Metric-guided Text Generation0
Counterfactual Representation Learning with Balancing Weights0
Poincare: Recommending Publication Venues via Treatment Effect EstimationCode0
Causal Discovery using Compression-Complexity MeasuresCode0
Interpretable Machine Learning -- A Brief History, State-of-the-Art and Challenges0
Causal Inference in the Presence of Interference in Sponsored Search Advertising0
Double Robust Representation Learning for Counterfactual PredictionCode0
Causal Multi-Level Fairness0
Comparison between instrumental variable and mediation-based methods for reconstructing causal gene networks in yeastCode0
Causal Feature Selection with Dimension Reduction for Interpretable Text Classification0
The Adaptive Doubly Robust Estimator for Policy Evaluation in Adaptive Experiments and a Paradox Concerning Logging Policy0
Entropic Causal Inference for Neurological Applications0
How and Why to Use Experimental Data to Evaluate Methods for Observational Causal Inference0
Targeted VAE: Structured Inference and Targeted Learning for Causal Parameter Estimation0
Targeted VAE: Variational and Targeted Learning for Causal InferenceCode0
Causal Intervention for Weakly-Supervised Semantic Segmentation0
Adjusting for Confounders with Text: Challenges and an Empirical Evaluation Framework for Causal Inference0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1Random ForestAverage Treatment Effect Error0.96Unverified
2Balancing Linear RegressionAverage Treatment Effect Error0.93Unverified
3k-NNAverage Treatment Effect Error0.79Unverified
4CEVAEAverage Treatment Effect Error0.46Unverified
5Balancing Neural NetworkAverage Treatment Effect Error0.42Unverified
6Causal ForestAverage Treatment Effect Error0.4Unverified
7BCAUS DRAverage Treatment Effect Error0.29Unverified
8TARNetAverage Treatment Effect Error0.28Unverified
9Counterfactual Regression + WASSAverage Treatment Effect Error0.27Unverified
10MTDL-KNNAverage Treatment Effect Error0.23Unverified
#ModelMetricClaimedVerifiedStatus
1CFR WASSAverage Treatment Effect on the Treated Error0.09Unverified
2CFR MMDAverage Treatment Effect on the Treated Error0.08Unverified
3BARTAverage Treatment Effect on the Treated Error0.08Unverified
4GANITEAverage Treatment Effect on the Treated Error0.06Unverified
5BCAUSSAverage Treatment Effect on the Treated Error0.05Unverified
#ModelMetricClaimedVerifiedStatus
1BARTAverage Treatment Effect Error0.34Unverified
2OLS with separate regressors for each treatmentAverage Treatment Effect Error0.31Unverified
3Average Treatment Effect Error-0.23Unverified