Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-14T11:46:07.519516Z
Paper Citation Record · LEDGER
As of 16 August 2026, this Paper Citation Record lists 44 of 44 outbound references and 0 inbound Pith citation observations for arXiv:1908.08346.
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 2026-08-14T11:46:07.519516Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-15T06:32:42.880941+00:00
Pith citing papers itemized under the disclosed page cap.
Source: paper_references, paper_reference_links
A source-named dated measurement, never combined with another source.
Source: cited_works
44 of 44 outbound references displayed
External citation measurements
No source-named external measurement is stored.
Observation 46fc7053-3be1-4856-9d09-a788e2422bf4 · outbound
LoRAS: An oversampling approach for imbalanced datasets Aditsania , Adiwijaya , and A
Reference 1
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Observation beb7cebf-14d2-40bb-a589-a67091c22013 · outbound
LoRAS: An oversampling approach for imbalanced datasets A Study of Synthetic Oversampling for Twitter Imbalanced Sentiment Analysis
Reference 2
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Observation 3dc0ac18-9234-45a3-9f50-35583cc6dd2d · outbound
LoRAS: An oversampling approach for imbalanced datasets An approach for classification of highly imbalanced data using weighting and undersampling
Reference 3
Source-reported events for the cited work
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Observation 704410e3-83a3-4495-bd88-79f77bef7157 · outbound
LoRAS: An oversampling approach for imbalanced datasets Monirul Islam, Xin Yao, and Kazuyuki Murase
Reference 4
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Observation 2d188c62-aab0-42bf-9b08-cc3868f96cbb · outbound
LoRAS: An oversampling approach for imbalanced datasets Manifold-based synthetic oversampling with manifold conformance estimation
Reference 5
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Observation 0e13546c-67db-4e86-9952-627c66931923 · outbound
LoRAS: An oversampling approach for imbalanced datasets Beyond the boundaries of smote
Reference 6
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Observation 965e60b4-5837-4248-b593-3698e023eec8 · outbound
LoRAS: An oversampling approach for imbalanced datasets Smote for high-dimensional class-imbalanced data
Reference 7
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Observation 6b5fc7fc-7394-49e1-834b-41fe66df56aa · outbound
LoRAS: An oversampling approach for imbalanced datasets Safe-level-smote: Safe-level-synthetic minority over-sampling technique for handling the class imbalanced problem
Reference 8
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Observation af2bd9b2-f00f-4d86-8d24-6a709cf13c60 · outbound
LoRAS: An oversampling approach for imbalanced datasets Unresolved cited work
Reference 9
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Observation 008ea3f4-d2da-487c-a306-6d5e82feb711 · outbound
LoRAS: An oversampling approach for imbalanced datasets Unresolved cited work
Reference 10
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Observation b7c44d0b-1a6c-4709-9f09-699365339008 · outbound
LoRAS: An oversampling approach for imbalanced datasets SMOTEBoost: Improving Prediction of the Minority Class in Boosting
Reference 11
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Observation 84e81962-210b-4eb8-81e5-c53b2b686252 · outbound
LoRAS: An oversampling approach for imbalanced datasets Extreme anomalous oversampling technique for class imbalance
Reference 12
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Observation 6dfab6e7-e1bb-4730-9e8f-8b9beaf82221 · outbound
LoRAS: An oversampling approach for imbalanced datasets Credit card fraud detection: A realistic modeling and a novel learning strategy
Reference 13
Source-reported events for the cited work
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Observation 4e3412cb-1059-432e-a36e-954d648e3b1f · outbound
LoRAS: An oversampling approach for imbalanced datasets The relationship between precision-recall and roc curves
Reference 14
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Observation b75983e1-f9b0-418e-9997-1c0edad173da · outbound
LoRAS: An oversampling approach for imbalanced datasets Diversified Ensemble Classifiers for Highly Imbalanced Data Learning and Its Application in Bioinformatics
Reference 15
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Observation 8b4c1b37-b7e3-402b-a74f-7b4030e4d517 · outbound
LoRAS: An oversampling approach for imbalanced datasets Geometric smote a geometrically enhanced drop-in replacement for smote
Reference 16
Source-reported events for the cited work
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Observation 112421fc-d78b-4f6e-a43d-11aaee763ffa · outbound
LoRAS: An oversampling approach for imbalanced datasets Classification of Imbalance Data using Tomek Link (T-Link) Combined with Random Under-sampling (RUS) as a Data Reduction Method
Reference 17
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Observation d93aa620-b212-431b-9974-9000089129ce · outbound
LoRAS: An oversampling approach for imbalanced datasets Unresolved cited work
Reference 18
Source-reported events for the cited work
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Observation c5a831a3-3d8b-417b-bfaf-17a346e880d9 · outbound
LoRAS: An oversampling approach for imbalanced datasets Gosain and S
Reference 19
Source-reported events for the cited work
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Observation fbc90d73-f300-4bc4-9afb-05d847f09d92 · outbound
LoRAS: An oversampling approach for imbalanced datasets Adasyn: Adaptive synthetic sampling approach for imbalanced learning
Reference 20
Source-reported events for the cited work
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Observation cdb51c61-a42e-4538-badd-94957c080a55 · outbound
LoRAS: An oversampling approach for imbalanced datasets Borderline-smote: A new over-sampling method in imbalanced data sets learning
Reference 21
Source-reported events for the cited work
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Observation 55c825fa-b5e0-4cbd-a297-5ecfc64532a7 · outbound
LoRAS: An oversampling approach for imbalanced datasets SMOTE Bagging Algorithm for Imbalanced Dataset in Logistic Regression Analysis (Case: Credit of Bank X)
Reference 22
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Observation 8526bd71-f3c5-42dd-a468-feaa1726c101 · outbound
LoRAS: An oversampling approach for imbalanced datasets Unresolved cited work
Reference 23
Source-reported events for the cited work
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Observation ffb5fe40-b9f1-4c51-b9ee-3bcd6d3b1730 · outbound
LoRAS: An oversampling approach for imbalanced datasets B2fse framework for high dimensional imbalanced data: A case study for drug toxicity prediction
Reference 24
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Observation 38ab05ed-cf29-447d-bac9-a9c4a934fc02 · outbound
LoRAS: An oversampling approach for imbalanced datasets MSMOTE: Improving Classification Performance when Training Data is imbalanced
Reference 25
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Observation 6af28ce6-63e2-426c-b092-aa501f906d39 · outbound
LoRAS: An oversampling approach for imbalanced datasets Unresolved cited work
Reference 26
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Observation 2472bc71-7e6b-494b-bcb2-afa2d6490815 · outbound
LoRAS: An oversampling approach for imbalanced datasets Jing , X
Reference 27
Source-reported events for the cited work
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Observation 7841967b-1c8e-4faa-a8c0-0dde70b32ca1 · outbound
LoRAS: An oversampling approach for imbalanced datasets Visualizing data using t-SNE
Reference 28
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Observation a0b67a9e-be0b-44fe-889e-ae2ed948f3a7 · outbound
LoRAS: An oversampling approach for imbalanced datasets Smote-variants: A python implementation of 85 minority oversampling techniques
Reference 29
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Observation 25ef0ec6-0846-4374-8914-ad3c5de26dac · outbound
LoRAS: An oversampling approach for imbalanced datasets A hybrid approach using oversampling technique and cost-sensitive learning for bankruptcy prediction
Reference 30
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Observation 05d20b3d-ee1b-4103-b6b8-35d724fc1305 · outbound
LoRAS: An oversampling approach for imbalanced datasets Noisy replication in skewed binary classification
Reference 31
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Observation 9358f37c-0c40-4cae-aa1b-acde10a53e3b · outbound
LoRAS: An oversampling approach for imbalanced datasets Unresolved cited work
Reference 32
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Observation 07e65ffb-8cff-4863-a38b-36b50a714489 · outbound
LoRAS: An oversampling approach for imbalanced datasets Abd Elrahman and Ajith Abraham
Reference 33
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Observation 8d3fa5dc-a370-4ad8-a49e-05f8bb0c09cb · outbound
LoRAS: An oversampling approach for imbalanced datasets Kernel-based smote for svm classification of imbalanced datasets
Reference 34
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Observation c6c6b68c-cfc0-402c-83b3-70b5e1dd8e07 · outbound
LoRAS: An oversampling approach for imbalanced datasets A pruning-based approach for searching precise and generalized region for synthetic minority over-sampling
Reference 35
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Observation c2e3af4d-b56a-4ca3-bcfb-d37683496d03 · outbound
LoRAS: An oversampling approach for imbalanced datasets Smote-frst: A new resampling method using fuzzy rough set theory
Reference 36
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Observation f4be2499-580f-4f67-9924-5c2849701b4a · outbound
LoRAS: An oversampling approach for imbalanced datasets Saez, Bartosz Krawczyk, and Micha Wo\' z niak
Reference 37
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Observation 401bc48b-635c-4cbd-b364-ccfe5e68c192 · outbound
LoRAS: An oversampling approach for imbalanced datasets The precision-recall plot is more informative than the roc plot when evaluating binary classifiers on imbalanced datasets
Reference 38
Source-reported events for the cited work
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Observation e16215ab-d76a-494c-a830-b8cdae55a530 · outbound
LoRAS: An oversampling approach for imbalanced datasets Synthetic over sampling methods for handling class imbalanced problems : A review
Reference 39
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Observation 5ffa1390-837f-41a2-8489-82e1c438ad61 · outbound
LoRAS: An oversampling approach for imbalanced datasets A comparison of oversampling methods on imbalanced topic classification of korean news articles
Reference 40
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Observation 3f225928-3ba6-4a7c-b52e-929252c507ab · outbound
LoRAS: An oversampling approach for imbalanced datasets Visualizing data using t-SNE
Reference 41
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Observation d29e809b-3dfa-48fb-97b6-033210f08cdb · outbound
LoRAS: An oversampling approach for imbalanced datasets Varmedja , M
Reference 42
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Observation 2fc73974-8d13-4a1a-9afe-eb1ecbef949b · outbound
LoRAS: An oversampling approach for imbalanced datasets A hybrid classifier combining SMOTE with PSO to estimate 5-year survivability of breast cancer patients
Reference 43
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Observation 776c6fb4-773e-43a1-9d8c-ad8e032b186a · outbound
LoRAS: An oversampling approach for imbalanced datasets Young, Ii, Scott L
Reference 44
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No inbound Pith citation observations are available.