Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-12T14:47:47.454125Z
Paper Citation Record · LEDGER
As of 12 August 2026, this Paper Citation Record lists 31 of 31 outbound references and 2 inbound Pith citation observations for arXiv:2411.14896.
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 2026-08-12T14:47:47.454125Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-12T06:34:41.77262+00:00
Pith citing papers itemized under the disclosed page cap.
Source: paper_references, paper_reference_links, observed 2026-08-10T04:36:37.808364Z
A source-named dated measurement, never combined with another source.
Source: arxiv_reference, observed 2026-06-30T15:24:50.157172Z
31 of 31 outbound references displayed
External citation measurements
No source-named external measurement is stored.
Observation b6c3eb48-ff39-455c-a044-63f7eab981cb · outbound
Evaluating LLM Prompts for Data Augmentation in Multi-label Classification of Ecological Texts Survey on deep learning with class imbalance,
Reference 1
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Observation 4f3dabfb-8cd8-485b-9e97-3c7befb82822 · outbound
Evaluating LLM Prompts for Data Augmentation in Multi-label Classification of Ecological Texts Text data augmentation for deep learning,
Reference 2
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Observation 81594427-7ea6-4b34-9dbb-5655befff1f9 · outbound
Evaluating LLM Prompts for Data Augmentation in Multi-label Classification of Ecological Texts Generative pre-trained transformer (GPT) in research: A systematic review on data augmentation,
Reference 3
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Evaluating LLM Prompts for Data Augmentation in Multi-label Classification of Ecological Texts An empirical survey of data augmentation for limited data learning in NLP,
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Observation 5fbc2c2b-5d84-4bf9-aa6d-41c8e0756f80 · outbound
Evaluating LLM Prompts for Data Augmentation in Multi-label Classification of Ecological Texts Green values in crowdfunding projects,
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Evaluating LLM Prompts for Data Augmentation in Multi-label Classification of Ecological Texts Detecting Mentions of Green Practices in Social Media Based on Text Classification,
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Observation 80823b5d-084b-4661-962c-949fde4ca685 · outbound
Evaluating LLM Prompts for Data Augmentation in Multi-label Classification of Ecological Texts Green practices: Ways to investigation,
Reference 7
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Observation 507d047a-5268-451e-8b25-24fae71539f0 · outbound
Evaluating LLM Prompts for Data Augmentation in Multi-label Classification of Ecological Texts EDA: Easy data augmentation techniques for boost- ing performance on text classification tasks,
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Observation 499e2f3f-f7b1-440c-b238-c9a0c511da13 · outbound
Evaluating LLM Prompts for Data Augmentation in Multi-label Classification of Ecological Texts AEDA: An easier data augmentation technique for text classification,
Reference 9
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Observation bd9ddf2f-d461-43a0-92ab-e65bfb343faf · outbound
Evaluating LLM Prompts for Data Augmentation in Multi-label Classification of Ecological Texts Improving Neural Machine Translation Models with Monolingual Data
Reference 10
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Observation 0718af48-c192-432b-8850-5f83af4ede4e · outbound
Evaluating LLM Prompts for Data Augmentation in Multi-label Classification of Ecological Texts Data augmentation using pre- trained transformer models,
Reference 11
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Observation 12deb49b-ee32-4164-915a-7afc838c9067 · outbound
Evaluating LLM Prompts for Data Augmentation in Multi-label Classification of Ecological Texts Conditional BERT contextual augmentation,
Reference 12
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Observation af99e906-fae8-4514-aa2b-cbd56277bb54 · outbound
Evaluating LLM Prompts for Data Augmentation in Multi-label Classification of Ecological Texts AugGPT: Leveraging ChatGPT for Text Data Augmentation
Reference 13
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Observation ce4e5998-4372-4324-982f-37afe20a0f81 · outbound
Evaluating LLM Prompts for Data Augmentation in Multi-label Classification of Ecological Texts Is ChatGPT the ultimate Data Augment- ation Algorithm?
Reference 14
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Observation b52e1f37-0e03-4e14-9e67-741c2ecdc63f · outbound
Evaluating LLM Prompts for Data Augmentation in Multi-label Classification of Ecological Texts Improving Text Classification with Large Language Model-Based Data Augmentation,
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Observation cb4d82bf-3142-4f96-9ae3-3c8a49302465 · outbound
Evaluating LLM Prompts for Data Augmentation in Multi-label Classification of Ecological Texts GPT3Mix: Leveraging large-scale language models for text augmentation,
Reference 16
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Observation 61394940-6778-497c-b27a-516acbaf29ff · outbound
Evaluating LLM Prompts for Data Augmentation in Multi-label Classification of Ecological Texts Medical Data Augmentation via ChatGPT: A Case Study on Medication Identification and Medication Event Classification
Reference 17
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Observation 5c1d6ee8-1e0f-4539-b1c7-8027ea0c8bcf · outbound
Evaluating LLM Prompts for Data Augmentation in Multi-label Classification of Ecological Texts Enhancing social network hate detection using back translation and GPT-3 augmentations during training and test-time,
Reference 18
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Observation 33b426f9-95e5-49c0-95c6-3a6b88b0e45c · outbound
Evaluating LLM Prompts for Data Augmentation in Multi-label Classification of Ecological Texts Improving multiclass classification of fake news using BERT-based models and ChatGPT- augmented data,
Reference 19
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Observation c8297dd9-7819-4b07-b025-9e45423045a2 · outbound
Evaluating LLM Prompts for Data Augmentation in Multi-label Classification of Ecological Texts From Big to Small Without Losing It All: Text Augmentation with ChatGPT for Efficient Sentiment Analysis,
Reference 20
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Observation aff49a90-d9af-4adc-a63a-213776c9f45d · outbound
Evaluating LLM Prompts for Data Augmentation in Multi-label Classification of Ecological Texts The Parrot Dilemma: Human-Labeled vs. LLM-augmented Data in Classification Tasks,
Reference 21
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Observation f660957a-b41d-463d-b6f5-a8d589bda6ab · outbound
Evaluating LLM Prompts for Data Augmentation in Multi-label Classification of Ecological Texts GreenRu: A Russian Dataset for Detecting Mentions of Green Practices in Social Media Posts,
Reference 22
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Evaluating LLM Prompts for Data Augmentation in Multi-label Classification of Ecological Texts The importance of green practices to reduce consumption,
Reference 23
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Evaluating LLM Prompts for Data Augmentation in Multi-label Classification of Ecological Texts A family of pretrained transformer language models for Russian,
Reference 24
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Observation 39fead69-b27d-44be-a259-d0a100b7dda7 · outbound
Evaluating LLM Prompts for Data Augmentation in Multi-label Classification of Ecological Texts ELECTRA: Pre- training text encoders as discriminators rather than generators,
Reference 25
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Evaluating LLM Prompts for Data Augmentation in Multi-label Classification of Ecological Texts Adaptation of deep bidirectional multilin- gual transformers for Russian language,
Reference 26
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Evaluating LLM Prompts for Data Augmentation in Multi-label Classification of Ecological Texts BERT: Pre- training of deep bidirectional transformers for language understanding,
Reference 27
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Evaluating LLM Prompts for Data Augmentation in Multi-label Classification of Ecological Texts Simple transformers,
Reference 28
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Observation 1772070d-0d35-41e1-bb98-46ab02095f8b · outbound
Evaluating LLM Prompts for Data Augmentation in Multi-label Classification of Ecological Texts ROUGE: A package for automatic evaluation of summaries,
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Evaluating LLM Prompts for Data Augmentation in Multi-label Classification of Ecological Texts BERTScore: Evaluating text generation with BERT,
Reference 30
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Evaluating LLM Prompts for Data Augmentation in Multi-label Classification of Ecological Texts Available: https://openreview.net/pdf?id=r1xMH1BtvB
Reference 2020
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Multimodal Large Language Models for Image, Text, and Speech Data Augmentation: A Survey Evaluating LLM Prompts for Data Augmentation in Multi-label Classification of Ecological Texts
Reference 177
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Reference 10
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