Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-16T11:19:06.137594Z
Paper Citation Record · LEDGER
As of 19 August 2026, this Paper Citation Record lists 44 of 44 outbound references and 0 inbound Pith citation observations for arXiv:2504.15922.
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 2026-08-16T11:19:06.137594Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-19T06:32:44.657259+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 68555bf1-73fa-4150-91e4-c3eb3c0b7c18 · outbound
Language Models to Support Multi-Label Classification of Industrial Data Multi-label requirements classification with large taxonomies,
Reference 1
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Observation 873d678a-900d-4f0f-a450-cf697e70e186 · outbound
Language Models to Support Multi-Label Classification of Industrial Data Zero-shot learning for require- ments classification: An exploratory study,
Reference 2
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Observation 220bb8f7-a3dc-4bfb-a28a-cb2956a67b9e · outbound
Language Models to Support Multi-Label Classification of Industrial Data Requirements Classification for Smart Allocation: A Case Study in the Railway Industry,
Reference 3
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Observation 85c71922-da3d-4308-a2d1-cd38b3d50ffd · outbound
Language Models to Support Multi-Label Classification of Industrial Data Empirical evaluation of tools for hairy requirements engineering tasks,
Reference 4
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Language Models to Support Multi-Label Classification of Industrial Data Panel: Context-dependent evaluation of tools for NL RE tasks: Recall vs. precision, and beyond,
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Observation 9b8ccd3c-1df2-4aac-815e-2bbc9b8d37ab · outbound
Language Models to Support Multi-Label Classification of Industrial Data Language Models are Few-Shot Learners,
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Observation 78b1fd5c-8ba2-456e-9c45-f037c82b73d5 · outbound
Language Models to Support Multi-Label Classification of Industrial Data A Survey on Evaluation of Large Language Models,
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Language Models to Support Multi-Label Classification of Industrial Data Unresolved cited work
Reference 8
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Observation 6950669a-cd77-4de8-943a-2c8ff50ff173 · outbound
Language Models to Support Multi-Label Classification of Industrial Data Requirements Classification and Reuse: Crossing Domain Boundaries,
Reference 9
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Observation 27a888c9-36ce-4e4a-b8e7-889539270016 · outbound
Language Models to Support Multi-Label Classification of Industrial Data BERT: Pre-training of Deep Bidirectional Transformers for Language Understanding
Reference 10
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Observation 2003b39a-e7cc-4ca8-9577-c504ff74ce5d · outbound
Language Models to Support Multi-Label Classification of Industrial Data Multiple comparisons using rank sums,
Reference 11
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Observation 97380351-794b-4a9d-82aa-54629622af93 · outbound
Language Models to Support Multi-Label Classification of Industrial Data Improving Protein Function Prediction using the Hierarchical Structure of the Gene Ontology,
Reference 12
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Observation 7a7225a0-7ecf-4d9c-b11a-63725b385f02 · outbound
Language Models to Support Multi-Label Classification of Industrial Data Natural language requirements processing: a 4d vision,
Reference 13
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Observation 0c06981b-0f3a-4f81-8922-3e455e53e969 · outbound
Language Models to Support Multi-Label Classification of Industrial Data Con- structing and Using Software Requirement Patterns,
Reference 14
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Observation 71858bff-8f4e-40b9-bc4d-169d8135ad59 · outbound
Language Models to Support Multi-Label Classification of Industrial Data Computing Semantic Relatedness Using Wikipedia- based Explicit Semantic Analysis,
Reference 15
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Observation a94437f7-09cd-4300-940e-3ddf9b030ce0 · outbound
Language Models to Support Multi-Label Classification of Industrial Data NoRBERT: Transfer Learning for Requirements Classification,
Reference 16
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Observation d6675c6a-a8c4-47ef-84f7-0ff332528859 · outbound
Language Models to Support Multi-Label Classification of Industrial Data Reporting Experiments in Software Engineering,
Reference 17
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Observation 474a7577-c84d-45ec-ae71-a1a88d543d85 · outbound
Language Models to Support Multi-Label Classification of Industrial Data Mistral 7B
Reference 18
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Observation 9688d1d4-5fa1-4425-a1c7-1ab88d90bcdd · outbound
Language Models to Support Multi-Label Classification of Industrial Data Mixtral of Experts
Reference 19
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Observation c512442f-82b0-45ff-b428-c4f0a9b8d06d · outbound
Language Models to Support Multi-Label Classification of Industrial Data Vector Semantics and Embeddings,
Reference 20
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Observation 738bd7dc-9b7e-4e60-9f90-00be0e9b5d26 · outbound
Language Models to Support Multi-Label Classification of Industrial Data One Model To Learn Them All
Reference 21
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Observation 41a7c163-e1b8-4d51-b531-8de6fc037528 · outbound
Language Models to Support Multi-Label Classification of Industrial Data A BERT-based transfer learning approach to text classification on software requirements specifications,
Reference 22
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Observation 219d111b-6c74-4190-94a9-ce9b91944698 · outbound
Language Models to Support Multi-Label Classification of Industrial Data Automatically Classifying Functional and Non-functional Requirements Using Supervised Machine Learning,
Reference 23
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Observation e350f7a9-bef0-4c2c-b2aa-aac1fcc2c60f · outbound
Language Models to Support Multi-Label Classification of Industrial Data RoBERTa: A robustly optimized BERT pretraining approach,
Reference 24
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Observation abe94c41-c078-4f4c-b63b-6569bdbfd234 · outbound
Language Models to Support Multi-Label Classification of Industrial Data Sentence-T5: Scalable Sentence Encoders from Pre-trained Text-to-Text Models
Reference 25
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Observation 9d00ece6-8773-4c50-9f47-e26121ac8ab2 · outbound
Language Models to Support Multi-Label Classification of Industrial Data Ultra-large-scale systems: The software challenge of the future,
Reference 26
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Observation 8b213f95-d3a1-42ab-97b8-bff70344cab8 · outbound
Language Models to Support Multi-Label Classification of Industrial Data Automatic Requirement Categorization of Large Natural Lan- guage Specifications at Mercedes-Benz for Review Improvements,
Reference 27
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Observation 655a9b62-00cf-4738-99f3-f46794d5d88f · outbound
Language Models to Support Multi-Label Classification of Industrial Data A model for types and levels of human interaction with automation,
Reference 28
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Observation 83b7a3c0-8f7c-4165-a6c6-258a862d069a · outbound
Language Models to Support Multi-Label Classification of Industrial Data Improving Language Understanding by Generative Pre-Training,
Reference 29
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Observation ba0d54fa-5344-4c92-9c12-473443de1255 · outbound
Language Models to Support Multi-Label Classification of Industrial Data Sentence-bert: Sentence embeddings using siamese bert-networks,
Reference 30
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Observation fb8949d0-4422-4bee-a36a-cf1e94231779 · outbound
Language Models to Support Multi-Label Classification of Industrial Data The Two Word Test: A Semantic Benchmark for Large Language Models
Reference 31
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Observation acf870fc-3ed7-4af0-a16b-d0e6cc71b134 · outbound
Language Models to Support Multi-Label Classification of Industrial Data The role of natural language in requirements engineering,
Reference 32
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Observation ea114585-5fd3-4402-8e49-709254a39695 · outbound
Language Models to Support Multi-Label Classification of Industrial Data DistilBERT, a distilled version of BERT: smaller, faster, cheaper and lighter
Reference 33
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Observation 0875e230-e319-40d7-b7ff-dc52077e23eb · outbound
Language Models to Support Multi-Label Classification of Industrial Data Evaluating Unsupervised Text Classification: Zero-shot and Similarity-based Approaches,
Reference 34
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Observation 1511ff28-7d35-4435-b4cc-e57b7dc87244 · outbound
Language Models to Support Multi-Label Classification of Industrial Data MPNet: Masked and permuted pre-training for language understanding,
Reference 35
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Observation bf483c4c-a0a3-44c9-b621-35ebaecb0f94 · outbound
Language Models to Support Multi-Label Classification of Industrial Data EvEval: A Comprehensive Evaluation of Event Semantics for Large Language Models
Reference 36
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Observation d7c8680d-8c71-4d7c-bb90-c70bacaaac1c · outbound
Language Models to Support Multi-Label Classification of Industrial Data Llama 2: Open Foundation and Fine-Tuned Chat Models
Reference 37
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Observation 9e733ac7-bfdc-4db5-bc5b-4956db8cdb91 · outbound
Language Models to Support Multi-Label Classification of Industrial Data TT-RecS: The taxonomic trace recommender system,
Reference 38
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Observation ba0929b7-c433-4a39-9c8b-6a9c19ed09d4 · outbound
Language Models to Support Multi-Label Classification of Industrial Data Attention is All you Need,
Reference 39
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Observation a096fc3f-a21e-4247-8c28-42efc8df9f15 · outbound
Language Models to Support Multi-Label Classification of Industrial Data What Language Model Architecture and Pretraining Objective Works Best for Zero-Shot Generalization?
Reference 40
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Observation 6f425cb8-df72-4fd1-847c-1b97e8e18abe · outbound
Language Models to Support Multi-Label Classification of Industrial Data MiniLM: Deep self-attention distillation for task-agnostic compression of pre- trained transformers,
Reference 41
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Observation 6084f489-1c18-45bf-b640-c21b99f0f881 · outbound
Language Models to Support Multi-Label Classification of Industrial Data Wohlin, P
Reference 42
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Observation 53aa5b98-757a-4840-975c-1b0c300aa2a4 · outbound
Language Models to Support Multi-Label Classification of Industrial Data Natural language processing for requirements engineering: A systematic mapping study,
Reference 43
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Observation 009fd397-26a4-4277-bf27-cd24d61dc9a1 · outbound
Language Models to Support Multi-Label Classification of Industrial Data IEEE, Jan
Reference 1993
Source-reported events for the cited work
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No inbound Pith citation observations are available.