SOTAVerified

Feature Importance

Papers

Showing 601650 of 890 papers

TitleStatusHype
Gradients of Counterfactuals0
Graph-Augmented LLMs for Personalized Health Insights: A Case Study in Sleep Analysis0
Graph Neural Network for Interpreting Task-fMRI Biomarkers0
Graph Neural Networks Including Sparse Interpretability0
Graph Transformer-Based Flood Susceptibility Mapping: Application to the French Riviera and Railway Infrastructure Under Climate Change0
Greedy Modality Selection via Approximate Submodular Maximization0
Group Shapley with Robust Significance Testing and Its Application to Bond Recovery Rate Prediction0
Hate and Toxic Speech Detection in the Context of Covid-19 Pandemic using XAI: Ongoing Applied Research0
Heterogeneous Visual Features Fusion via Sparse Multimodal Machine0
Hierarchical Ensemble-Based Feature Selection for Time Series Forecasting0
High Accuracy Classification of Parkinson's Disease through Shape Analysis and Surface Fitting in ^123I-Ioflupane SPECT Imaging0
High-Throughput Computational Screening and Interpretable Machine Learning of Metal-organic Frameworks for Iodine Capture0
Hollow-tree Super: a directional and scalable approach for feature importance in boosted tree models0
How does ion temperature gradient turbulence depend on magnetic geometry? Insights from data and machine learning0
How explainable are adversarially-robust CNNs?0
How to safely discard features based on aggregate SHAP values0
Hyperparameter Optimization for Forecasting Stock Returns0
Identifying Semantically Duplicate Questions Using Data Science Approach: A Quora Case Study0
¶ILCRO: Making Importance Landscapes Flat Again0
Image Classifiers for Network Intrusions0
Implementing NLPs in industrial process modeling: Addressing Categorical Variables0
Improved Bitcoin Price Prediction based on COVID-19 data0
Improved Feature Importance Computations for Tree Models: Shapley vs. Banzhaf0
An Attention Matrix for Every Decision: Faithfulness-based Arbitration Among Multiple Attention-Based Interpretations of Transformers in Text Classification0
Improving clustering quality evaluation in noisy Gaussian mixtures0
Improving the Accuracy and Interpretability of Neural Networks for Wind Power Forecasting0
Incremental Permutation Feature Importance (iPFI): Towards Online Explanations on Data Streams0
Model-Agnostic Confidence Intervals for Feature Importance: A Fast and Powerful Approach Using Minipatch Ensembles0
Inherent Inconsistencies of Feature Importance0
Inside the black box: Neural network-based real-time prediction of US recessions0
Integrating Boosted learning with Differential Evolution (DE) Optimizer: A Prediction of Groundwater Quality Risk Assessment in Odisha0
Integrating Natural Language Processing and Exercise Monitoring for Early Diagnosis of Metabolic Syndrome: A Deep Learning Approach0
Integrating Protein Sequence and Expression Level to Analysis Molecular Characterization of Breast Cancer Subtypes0
Integrative CAM: Adaptive Layer Fusion for Comprehensive Interpretation of CNNs0
Interaction as Explanation: A User Interaction-based Method for Explaining Image Classification Models0
Interactive Reinforcement Learning for Feature Selection with Decision Tree in the Loop0
Interpretable Data-driven Methods for Subgrid-scale Closure in LES for Transcritical LOX/GCH4 Combustion0
Interpretable Deep Learning for Forecasting Online Advertising Costs: Insights from the Competitive Bidding Landscape0
Consensus-based Interpretable Deep Neural Networks with Application to Mortality Prediction0
Interpretable Dimensionality Reduction by Feature Preserving Manifold Approximation and Projection0
Interpretable machine learning-guided design of Fe-based soft magnetic alloys0
Interpretable Models via Pairwise permutations algorithm0
Interpretable Multimodal Emotion Recognition using Facial Features and Physiological Signals0
A Large-scale Multimodal Study for Predicting Mortality Risk Using Minimal and Low Parameter Models and Separable Risk Assessment0
Interpretable QSPR Modeling using Recursive Feature Machines and Multi-scale Fingerprints0
INTERPRETATION OF NEURAL NETWORK IS FRAGILE0
Interpreting a Recurrent Neural Network's Predictions of ICU Mortality Risk0
Interpreting Black-boxes Using Primitive Parameterized Functions0
Interpreting Deep Forest through Feature Contribution and MDI Feature Importance0
Interpreting Inflammation Prediction Model via Tag-based Cohort Explanation0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1Garson Variable ImportancePearson Correlation0.76Unverified
2VarImpVIANNPearson Correlation0.76Unverified
#ModelMetricClaimedVerifiedStatus
1VarImpVIANNPearson Correlation0.6Unverified
2Garson Variable ImportancePearson Correlation0.22Unverified
#ModelMetricClaimedVerifiedStatus
1VarImpVIANNPearson Correlation0.86Unverified
2Garson Variable ImportancePearson Correlation0.64Unverified
#ModelMetricClaimedVerifiedStatus
1VarImpVIANNPearson Correlation0.83Unverified
2Garson Variable ImportancePearson Correlation0.6Unverified
#ModelMetricClaimedVerifiedStatus
1VarImpVIANNPearson Correlation0.9Unverified
2Garson Variable ImportancePearson Correlation0.73Unverified
#ModelMetricClaimedVerifiedStatus
1Garson Variable ImportancePearson Correlation0.74Unverified
2VarImpVIANNPearson Correlation0.41Unverified