Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-11T20:25:13.713818Z
Paper Citation Record · LEDGER
As of 13 August 2026, this Paper Citation Record lists 48 of 48 outbound references and 0 inbound Pith citation observations for arXiv:2412.05825.
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Source: paper_references, paper_reference_links, observed 2026-08-11T20:25:13.713818Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-13T06:32:02.005865+00:00
Pith citing papers itemized under the disclosed page cap.
Source: paper_references, paper_reference_links
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Source: cited_works
48 of 48 outbound references displayed
External citation measurements
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Observation 7cd1df3f-0315-4cea-98b0-a56bd1e2a251 · outbound
Self-Supervised Learning with Probabilistic Density Labeling for Rainfall Probability Estimation Effective management of class imbalance problem in climate data analysis using a hybrid of deep learning and data level sampling
Reference 1
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Observation 15b050e2-4e31-46bb-8cd7-4114cb6f06af · outbound
Self-Supervised Learning with Probabilistic Density Labeling for Rainfall Probability Estimation Self-clustered gan for precipitation nowcasting
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Observation 737b910b-69b0-4eb4-afc9-aa76bed4dfb4 · outbound
Self-Supervised Learning with Probabilistic Density Labeling for Rainfall Probability Estimation The rise of data-driven weather fore- casting: A first statistical assessment of machine learning– based weather forecasts in an operational-like context
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Observation 2262fa4b-f6b5-48f1-821b-dcb3b641f964 · outbound
Self-Supervised Learning with Probabilistic Density Labeling for Rainfall Probability Estimation Big data in precision agriculture: Weather forecasting for future farming
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Observation 7cb76c3a-d9f1-46ea-b502-bde7f9c631fe · outbound
Self-Supervised Learning with Probabilistic Density Labeling for Rainfall Probability Estimation Addressing class imbalance in deep learning for small lesion detection on medical images
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Observation eeec61d3-4130-4101-8f62-10f4fb390747 · outbound
Self-Supervised Learning with Probabilistic Density Labeling for Rainfall Probability Estimation Swin-unet: Unet-like pure transformer for medical image segmentation
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Self-Supervised Learning with Probabilistic Density Labeling for Rainfall Probability Estimation Pcct: Progressive class-center triplet loss for imbalanced medical image classification.IEEE Jour- nal of Biomedical and Health Informatics, 27(4):2026–2036,
Reference 7
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Observation a231602b-1bb4-4ac3-94c3-4582bb1eb817 · outbound
Self-Supervised Learning with Probabilistic Density Labeling for Rainfall Probability Estimation Contribution of historical precipitation change to us flood damages
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Observation 3e78ea6e-a844-40f2-ae59-365fd39d3fbe · outbound
Self-Supervised Learning with Probabilistic Density Labeling for Rainfall Probability Estimation Machine learning for numerical weather and climate mod- elling: a review
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Observation 15e8b761-6cba-4964-bac3-2194bac6e149 · outbound
Self-Supervised Learning with Probabilistic Density Labeling for Rainfall Probability Estimation An Image is Worth 16x16 Words: Transformers for Image Recognition at Scale
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Observation 11a4e2e9-0077-47a1-8871-64800e008358 · outbound
Self-Supervised Learning with Probabilistic Density Labeling for Rainfall Probability Estimation Multiscale vision transformers
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Observation 4a6ba44a-6122-48cc-a302-1737fcc60dd0 · outbound
Self-Supervised Learning with Probabilistic Density Labeling for Rainfall Probability Estimation Masked autoencoders as spatiotemporal learners
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Observation 6e8ecad6-0fbf-433c-90f6-358a3c77defb · outbound
Self-Supervised Learning with Probabilistic Density Labeling for Rainfall Probability Estimation Han- dling imbalanced medical image data: A deep-learning- based one-class classification approach
Reference 13
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Observation 8a649059-5242-44ee-8c1a-41d3f426deac · outbound
Self-Supervised Learning with Probabilistic Density Labeling for Rainfall Probability Estimation Spatio-temporal enhanced contrastive and contextual learning for weather forecasting
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Observation 30af01ab-3d7c-4ff3-85fa-fdc98f0fd846 · outbound
Self-Supervised Learning with Probabilistic Density Labeling for Rainfall Probability Estimation Masked autoencoders are scalable vision learners
Reference 15
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Observation 515287d6-18f5-418f-aa75-bcf874445ef0 · outbound
Self-Supervised Learning with Probabilistic Density Labeling for Rainfall Probability Estimation Deep learning for improving numerical weather prediction of heavy rain- fall
Reference 16
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Observation 978254f5-95a4-43c7-8004-784c7dae1841 · outbound
Self-Supervised Learning with Probabilistic Density Labeling for Rainfall Probability Estimation Survey on deep learning with class imbalance
Reference 17
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Observation 02fcc587-8111-4fef-ba55-b7fe9b29f094 · outbound
Self-Supervised Learning with Probabilistic Density Labeling for Rainfall Probability Estimation Decoupling Representation and Classifier for Long-Tailed Recognition
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Observation 4ef775a3-44f2-48b2-968c-9df675abd0c6 · outbound
Self-Supervised Learning with Probabilistic Density Labeling for Rainfall Probability Estimation Forecasting Global Weather with Graph Neural Networks
Reference 19
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Observation 0131f0eb-ae0c-4abc-9f86-5acd05d57012 · outbound
Self-Supervised Learning with Probabilistic Density Labeling for Rainfall Probability Estimation Benchmark Dataset for Precipitation Forecasting by Post-Processing the Numerical Weather Prediction
Reference 20
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Observation dcadfc42-2e28-41ba-807d-4e333d2f2f7e · outbound
Self-Supervised Learning with Probabilistic Density Labeling for Rainfall Probability Estimation Validation of integrated multisatellite retrievals for gpm (imerg) by us- ing gauge-based analysis products of daily precipitation over east asia
Reference 21
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Observation 5ac5268e-742d-4f3f-9d30-d6c71b3b14b2 · outbound
Self-Supervised Learning with Probabilistic Density Labeling for Rainfall Probability Estimation Real-world data: a brief review of the methods, applications, challenges and opportunities
Reference 23
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Observation de0c3ca3-3ee9-4f0b-8f6b-e85dedccd767 · outbound
Self-Supervised Learning with Probabilistic Density Labeling for Rainfall Probability Estimation Deep-learning post-processing of short-term station precipitation based on nwp forecasts.Atmospheric Research, 295:107032, 2023
Reference 24
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Observation 02a367bc-0dfb-4423-b7b6-707f601cb96d · outbound
Self-Supervised Learning with Probabilistic Density Labeling for Rainfall Probability Estimation Exploring the limits of weakly supervised pretraining
Reference 25
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Observation eb8f9f80-2910-4810-a6cd-9326aeef7b9a · outbound
Self-Supervised Learning with Probabilistic Density Labeling for Rainfall Probability Estimation W-MAE: Pre-trained weather model with masked autoencoder for multi-variable weather forecasting
Reference 26
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Observation a041987b-4f0a-498b-864c-622196617428 · outbound
Self-Supervised Learning with Probabilistic Density Labeling for Rainfall Probability Estimation Self-supervised rep- resentation learning from 12-lead ecg data
Reference 27
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Observation 7fcfe901-3bae-47ee-a932-31a66326019c · outbound
Self-Supervised Learning with Probabilistic Density Labeling for Rainfall Probability Estimation When does label smoothing help? Advances in neural in- formation processing systems, 32, 2019
Reference 28
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Observation 4d870aec-d2ad-4f79-ae04-563ef415bcd8 · outbound
Self-Supervised Learning with Probabilistic Density Labeling for Rainfall Probability Estimation FourCastNet: A Global Data-driven High-resolution Weather Model using Adaptive Fourier Neural Operators
Reference 29
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Observation 307478b8-4d49-4e4b-85d1-9cefd95b11a8 · outbound
Self-Supervised Learning with Probabilistic Density Labeling for Rainfall Probability Estimation Deep learning models for generation of precipitation maps based on numerical weather prediction
Reference 30
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Observation 291ff272-4dcf-4106-bfcc-b2f318203513 · outbound
Self-Supervised Learning with Probabilistic Density Labeling for Rainfall Probability Estimation Post- processing of nwp precipitation forecasts using deep learn- ing
Reference 31
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Observation 6730a898-1dd0-4e08-a965-cf86b26409e6 · outbound
Self-Supervised Learning with Probabilistic Density Labeling for Rainfall Probability Estimation Spatio- temporal downscaling of climate data using convolutional and error-predicting neural networks
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Observation 8293ea21-3822-4e99-bc17-409ea4ff753f · outbound
Self-Supervised Learning with Probabilistic Density Labeling for Rainfall Probability Estimation Convolutional lstm network: A machine learning approach for precipitation nowcasting
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Observation 8d897315-d2f4-4d70-b750-0ce3a1e180ce · outbound
Self-Supervised Learning with Probabilistic Density Labeling for Rainfall Probability Estimation Simplifying neural network training under class imbalance
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Observation 374a4bca-689f-45fb-bcfe-e7bd424681db · outbound
Self-Supervised Learning with Probabilistic Density Labeling for Rainfall Probability Estimation Environmental hazards: assessing risk and re- ducing disaster
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Observation ec0d52d0-a04e-4bee-88ab-ac191155d9c7 · outbound
Self-Supervised Learning with Probabilistic Density Labeling for Rainfall Probability Estimation MetNet: A Neural Weather Model for Precipitation Forecasting
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Observation db8c8be9-1d0d-427f-9545-142864d250ad · outbound
Self-Supervised Learning with Probabilistic Density Labeling for Rainfall Probability Estimation PostRainBench: A comprehensive benchmark and a new model for precipitation forecasting
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Self-Supervised Learning with Probabilistic Density Labeling for Rainfall Probability Estimation Videomae: Masked autoencoders are data-efficient learners for self-supervised video pre-training
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Observation 01da277a-f93d-4a62-b4aa-32229e6b5451 · outbound
Self-Supervised Learning with Probabilistic Density Labeling for Rainfall Probability Estimation Exploiting domain knowledge to address class imbalance in meteoro- logical data mining
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Observation 6a115255-885b-4d2b-9f73-52a952819ce1 · outbound
Self-Supervised Learning with Probabilistic Density Labeling for Rainfall Probability Estimation Attention is all you need
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Self-Supervised Learning with Probabilistic Density Labeling for Rainfall Probability Estimation Internimage: Exploring large-scale vi- sion foundation models with deformable convolutions
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Observation 58307d81-196d-41bb-b205-8becf3f9daba · outbound
Self-Supervised Learning with Probabilistic Density Labeling for Rainfall Probability Estimation Long-tailed Recognition by Routing Diverse Distribution-Aware Experts
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Self-Supervised Learning with Probabilistic Density Labeling for Rainfall Probability Estimation Guide to meteorolog- ical instruments and methods of observation
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Self-Supervised Learning with Probabilistic Density Labeling for Rainfall Probability Estimation Unified perceptual parsing for scene understand- ing
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Self-Supervised Learning with Probabilistic Density Labeling for Rainfall Probability Estimation mixup: Beyond Empirical Risk Minimization
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Self-Supervised Learning with Probabilistic Density Labeling for Rainfall Probability Estimation Self-Supervised Aggregation of Diverse Experts for Test-Agnostic Long-Tailed Recognition
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Self-Supervised Learning with Probabilistic Density Labeling for Rainfall Probability Estimation Leave no stone unturned: Mine extra knowledge for imbal- anced facial expression recognition
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Self-Supervised Learning with Probabilistic Density Labeling for Rainfall Probability Estimation Ur- ban computing: concepts, methodologies, and applications
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Self-Supervised Learning with Probabilistic Density Labeling for Rainfall Probability Estimation Unresolved cited work
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No inbound Pith citation observations are available.