Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-08T16:49:25.021509Z
Paper Citation Record · LEDGER
As of 10 August 2026, this Paper Citation Record lists 71 of 71 outbound references and 0 inbound Pith citation observations for arXiv:2608.05265.
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 2026-08-08T16:49:25.021509Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-10T06:31:04.303077+00:00
Pith citing papers itemized under the disclosed page cap.
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A source-named dated measurement, never combined with another source.
Source: cited_works
71 of 71 outbound references displayed
External citation measurements
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction and Negri, Jacquelyn A
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction and Addison, Priscilla and Oommen, Thomas and Salazar, Sean E
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction and Negri, Jacquelyn A
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction and Destro, Elisa and Bhuiyan, Md Abul Ehsan and Borga, Marco and Anagnostou, Emmanouil N
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction Machine Learning for Improved Post-fire Debris Flow Likelihood Prediction , url =
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction and Gartner, Joseph E
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction TabPFN-2.5: Advancing the State of the Art in Tabular Foundation Models
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction Accurate predictions on small data with a tabular foundation model , volume =
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction TabPFN: A Transformer That Solves Small Tabular Classification Problems in a Second
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction xRFM: Accurate, scalable, and interpretable feature learning models for tabular data
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction Landslide Risk Assessment as a Reference for Disaster Prevention and Mitigation: A Case Study of the Renhe District, Panzhihua City, China , volume =
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction Assessment of post-wildfire debris flow occurrence using classifier tree , volume =
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction Interpretable Machine Learning for TabPFN
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction Transformers Can Do Bayesian Inference
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction and Kean, Jason W
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction and Benson, Nathan C
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction A Unified Approach to Interpreting Model Predictions
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction A method for better mapping of susceptibility to thaw hazards in data-scarce cold regions , volume =
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction Reliability and effectiveness of early warning systems for natural hazards: Concept and application to debris flow warning , volume =
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction Knowledge-Data Dually Driven Paradigm for Accurate Landslide Susceptibility Prediction under Data-Scarce Conditions Using Geomorphic Priors and Tabular Foundation Model , url =
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction Susceptibility Prediction of Post-Fire Debris Flows in Xichang, China, Using a Logistic Regression Model from a Spatiotemporal Perspective , volume =
Reference 21
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction Exploring the Application of a Debris Flow Likelihood Regression Model in Mediterranean Post-Fire Environments, Using Field Observations-Based Validation , volume =
Reference 22
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction Addressing class imbalance in soil movement predictions , volume =
Reference 23
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction Optimizing the Predictive Ability of Machine Learning Methods for Landslide Susceptibility Mapping Using
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction The meaning and use of the area under a receiver operating characteristic (
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction Proceedings of the 22nd
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction A Scalable Framework for Post Fire Debris Flow Hazard Assessment Using Satellite Precipitation Data , volume =
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction Understanding variable importances in forests of randomized trees , volume =
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction Random Forests , volume =
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction A comparative study of different classification techniques for marine oil spill identification using
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction Unresolved cited work
Reference 31
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction , urldate =
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction , urldate =
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction and Bottou, L
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction Optuna: A Next-generation Hyperparameter Optimization Framework , isbn =
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction Hyperband: A Novel Bandit-Based Approach to Hyperparameter Optimization , volume =
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction Visualizing Data using t-
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction Unresolved cited work
Reference 38
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction The Wasserstein distances , isbn =
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction and Hart, P
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction Support-vector networks , volume =
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction Extremely randomized trees , volume =
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction and Hinton, Geoffrey E
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction and Rizzo, Maria L
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction Why do tree-based models still outperform deep learning on tabular data?
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction Deep Neural Networks and Tabular Data: A Survey , volume =
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction Modeling Tabular data using Conditional GAN
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction Machine-Learning-Based Prediction Modeling for Debris Flow Occurrence: A Meta-Analysis , volume =
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction doi:10.2113/gseegeosci.21.4.277 , abstract =
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction Language Models are Few-Shot Learners , volume =
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction The Elements of Statistical Learning , rights =
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction Mamba: Linear-Time Sequence Modeling with Selective State Spaces
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction A survey of cross-validation procedures for model selection , volume =
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction A study of cross-validation and bootstrap for accuracy estimation and model selection , isbn =
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction and Alexander, R
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction and Talbot, Nicola L.C
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction A mathematical framework for studying rainfall intensity-duration-frequency relationships , volume =
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction Unresolved cited work
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction pfdf - Python library for postfire debris-flow hazard assessments and research, version 3.0.2 , url =
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction "Why Should I Trust You?": Explaining the Predictions of Any Classifier
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction Explainable AI for Trees: From Local Explanations to Global Understanding
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction Statistical Comparisons of Classifiers over Multiple Data Sets , volume =
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction , urldate =
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction Cross-validation pitfalls when selecting and assessing regression and classification models , volume =
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction Attention is All you Need , volume =
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction Advances in Neural Information Processing Systems , publisher =
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction , urldate =
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction Time for a Change: a Tutorial for Comparing Multiple Classifiers Through Bayesian Analysis , volume =
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Evaluating Machine Learning Models for Post-Wildfire Debris-Flow Prediction Inference for the Generalization Error , volume =
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