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 51100 of 1722 papers

TitleStatusHype
PO-Flow: Flow-based Generative Models for Sampling Potential Outcomes and Counterfactuals0
Toward Informed AV Decision-Making: Computational Model of Well-being and Trust in MobilityCode0
Towards a Science of Causal Interpretability in Deep Learning for Software Engineering0
Assimilative Causal Inference0
Cooperative Causal GraphSAGE0
Causal Cartographer: From Mapping to Reasoning Over Counterfactual WorldsCode0
APEX: Empowering LLMs with Physics-Based Task Planning for Real-time InsightCode0
Ice Cream Doesn't Cause Drowning: Benchmarking LLMs Against Statistical Pitfalls in Causal Inference0
SurveillanceVQA-589K: A Benchmark for Comprehensive Surveillance Video-Language Understanding with Large Models0
Machine learning the first stage in 2SLS: Practical guidance from bias decomposition and simulation0
From What Ifs to Insights: Counterfactuals in Causal Inference vs. Explainable AI0
Attribution Projection Calculus: A Novel Framework for Causal Inference in Bayesian Networks0
A Cautionary Tale on Integrating Studies with Disparate Outcome Measures for Causal Inference0
A Generative Framework for Causal Estimation via Importance-Weighted Diffusion Distillation0
A Fast Kernel-based Conditional Independence test with Application to Causal Discovery0
Forests for Differences: Robust Causal Inference Beyond Parametric DiD0
Empowering Vision Transformers with Multi-Scale Causal Intervention for Long-Tailed Image Classification0
Causal knowledge graph analysis identifies adverse drug effects0
Beyond Patterns: Harnessing Causal Logic for Autonomous Driving Trajectory Prediction0
Hillclimb-Causal Inference: A Data-Driven Approach to Identify Causal Pathways Among Parental Behaviors, Genetic Risk, and Externalizing Behaviors in ChildrenCode0
dcFCI: Robust Causal Discovery Under Latent Confounding, Unfaithfulness, and Mixed Data0
Moments of Causal Effects0
Scientific Hypothesis Generation and Validation: Methods, Datasets, and Future Directions0
Structure Causal Models and LLMs Integration in Medical Visual Question Answering0
Federated Causal Inference in Healthcare: Methods, Challenges, and Applications0
TV-SurvCaus: Dynamic Representation Balancing for Causal Survival Analysis0
Causally Fair Node Classification on Non-IID Graph Data0
A Unifying Framework for Robust and Efficient Inference with Unstructured Data0
Inference for max-linear Bayesian networks with noise0
On the Mechanistic Interpretability of Neural Networks for Causality in Bio-statisticsCode0
A Hamiltonian Higher-Order Elasticity Framework for Dynamic Diagnostics(2HOED)0
Artificial Intelligence for Personalized Prediction of Alzheimer's Disease Progression: A Survey of Methods, Data Challenges, and Future Directions0
Inference with few treated units0
ReLU integral probability metric and its applications0
Consistent Causal Inference of Group Effects in Non-Targeted Trials with Finitely Many Effect Levels0
Causal DAG Summarization (Full Version)0
Causality for Natural Language Processing0
Dynamic Regularized CBDT: Variance-Calibrated Causal Boosting for Interpretable Heterogeneous Treatment Effects0
The heterogeneous causal effects of the EU's Cohesion Fund0
Eco-efficiency as a Catalyst for Citizen Co-production: Evidence from Chinese Cities0
Causal-Copilot: An Autonomous Causal Analysis Agent0
Causality-enhanced Decision-Making for Autonomous Mobile Robots in Dynamic EnvironmentsCode0
Reimagining Urban Science: Scaling Causal Inference with Large Language Models0
On relative universality, regression operator, and conditional independence0
A Two-Stage Interpretable Matching Framework for Causal Inference0
Double Machine Learning for Causal Inference under Shared-State InterferenceCode0
A Framework of decision-relevant observability: Reinforcement Learning converges under relative ignorability0
Better Decisions through the Right Causal World Model0
Causal Inference under Interference through Designed Markets0
Causal Inference Isn't Special: Why It's Just Another Prediction Problem0
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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