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Paper Citation Record · LEDGER

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation

As of 17 August 2026, this Paper Citation Record lists 100 of 102 outbound references and 2 inbound Pith citation observations for arXiv:2602.11908.

A citation records a reference. It does not transfer a finding from one paper to another.

pith.paper-citation-record.v1
2602.11908 v3

Coverage vector

measured 100 of 102 reference resolution

Typed states for the displayed outbound observations.

Source: paper_references, paper_reference_links, observed 2026-08-03T00:03:31.683006Z

measured 102 of 102 standing notices

One-hop event checks from named stored sources.

Source: scholarly_work_events, retraction_status_cache, observed 2026-08-17T06:30:58.91139+00:00

measured 2 of 2 inbound itemization

Pith citing papers itemized under the disclosed page cap.

Source: paper_references, paper_reference_links, observed 2026-05-20T23:56:44.979471Z

measured 0 of 1 external citation measurements

A source-named dated measurement, never combined with another source.

Source: arxiv_reference, observed 2026-05-20T23:59:15.248753Z

Reference resolution

100 of 102 outbound references displayed

  • verified exact1
  • verified fuzzy0
  • unresolved96
  • parse uncertain0
  • malformed identifier3
  • metadata mismatch0

External citation measurements

No source-named external measurement is stored.

Outbound references

Observation 1bf1bff5-6fc0-441d-8fc5-b655e24efdae · outbound

This paper cites Towards a Human-like Open-Domain Chatbot.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Towards a Human-like Open-Domain Chatbot

Reference 1

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source=pdf_text observed=2026-08-03T00:03:18.159203Z digest=sha256:27e4fd11fe9e15eadf2fee20067a06f81c8c9611dd10b6fc7c4bedefdd6a645d

Observation d42595d8-6316-4003-a61f-f0e44f1310fc · outbound

This paper cites A Gentle Introduction to Conformal Prediction and Distribution-Free Uncertainty Quantification.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation A Gentle Introduction to Conformal Prediction and Distribution-Free Uncertainty Quantification

Reference 2

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source=pdf_text observed=2026-08-03T00:03:18.276169Z digest=sha256:d84e8f5c53cee530740d5b47ede72ae2b2be06832b73e5db1a1233b92b65354a

Observation 2be8f48b-ec61-42f6-accb-df1f2ee1da36 · outbound

This paper cites Introducing the claude 3 model family.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Introducing the claude 3 model family

Reference 3

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source=pdf_text observed=2026-08-03T00:03:18.391062Z digest=sha256:9067b09630331013b828fcad901cf289a45c4873b02608652016910c91c98c4c

Observation 63fb5a86-0296-4ccd-aded-94fa500e3f10 · outbound

This paper cites Semantic information.British Journal for the Philosophy of Science, 4(14):147–157, 1953.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Semantic information.British Journal for the Philosophy of Science, 4(14):147–157, 1953

Reference 4

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Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-17T06:30:58.91139+00:00.

source=pdf_text observed=2026-08-03T00:03:18.460268Z digest=sha256:87bebf4d84c43c72aae75aad9fa6279235aa8757ff678baff77e3a4e003ee128

Observation 0cfb03ed-6361-4934-8fb3-2aa4055473cc · outbound

This paper cites Synthese Library.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Synthese Library

Reference 5

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source=pdf_text observed=2026-08-03T00:03:18.551481Z digest=sha256:c924b774999d7ea9f7158ed3895bca0660519365443e3ad4c0e132e74f1a4589

Observation 648a5623-6eca-40cc-a92f-ff7a0eecd95b · outbound

This paper cites DeepSeek-V3 Technical Report.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation DeepSeek-V3 Technical Report

Reference 6

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source=pdf_text observed=2026-08-03T00:03:18.642129Z digest=sha256:4ef7afaf23fd9140e631860f3a82621d3b1dfd57f3a4fa1c98e4532e1aa65b47

Observation fdbe0663-d3a9-4b7b-9375-4dd9c5a6fff7 · outbound

This paper cites On the founda- tions of noise-free selective classification.J.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation On the founda- tions of noise-free selective classification.J

Reference 7

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source=pdf_text observed=2026-08-03T00:03:18.731927Z digest=sha256:0a8844f644c34fdd72daf66a54e07b756c680401c992df61509703353d457313

Observation 9b897719-37c9-497f-8cd3-9322676b34df · outbound

This paper cites Lm-polygraph: Un- certainty estimation for language models.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Lm-polygraph: Un- certainty estimation for language models

Reference 8

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source=pdf_text observed=2026-08-03T00:03:18.855499Z digest=sha256:e24054f3cef9a84bc9cd668951d71562b83688498e824616deb2d04fda91c6d2

Observation 8e32955a-5b45-49a8-9c8a-e8ec615464d0 · outbound

This paper cites Fact-checking the out- put of large language models via token-level uncer- tainty quantification.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Fact-checking the out- put of large language models via token-level uncer- tainty quantification

Reference 9

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source=pdf_text observed=2026-08-03T00:03:18.986476Z digest=sha256:4f1a871e88be07c20d210eb8a0898c1ea9dc161c3f9e3c1819083070d929c246

Observation c901e001-d035-4f74-97fd-4575528a5066 · outbound

This paper cites Don’t hallucinate, abstain: Identifying LLM knowl- edge gaps via multi-llm collaboration.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Don’t hallucinate, abstain: Identifying LLM knowl- edge gaps via multi-llm collaboration

Reference 10

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source=pdf_text observed=2026-08-03T00:03:19.138224Z digest=sha256:0383d423110a299fd33a6a8cfce8b278ee998544b44b1ca2a30173c11069ac50

Observation 08176e05-1956-4d95-8ac6-e7aff94de8c2 · outbound

This paper cites What can we learn from the selective prediction and uncertainty estimation performance of 523 imagenet classifiers? InICLR, 2023.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation What can we learn from the selective prediction and uncertainty estimation performance of 523 imagenet classifiers? InICLR, 2023

Reference 11

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source=pdf_text observed=2026-08-03T00:03:19.347950Z digest=sha256:4c63cc7460ba710b762133fb086d0922f0efea7e217827cc8071ec3ecb0d95fe

Observation 6507984f-46f0-4cb9-aafe-c113e62fcd7d · outbound

This paper cites Bias-Reduced Uncertainty Estimation for Deep Neural Classifiers.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Bias-Reduced Uncertainty Estimation for Deep Neural Classifiers

Reference 12

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source=pdf_text observed=2026-08-03T00:03:19.431099Z digest=sha256:f09214829511fa9f647417870c78f966acde0aa7f6a4f0dc51c09313a3af95b5

Observation 7568562c-ffc8-489a-be3b-2de0f6cf89a2 · outbound

This paper cites Gemini 2.5: Pushing the Frontier with Advanced Reasoning, Multimodality, Long Context, and Next Generation Agentic Capabilities.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Gemini 2.5: Pushing the Frontier with Advanced Reasoning, Multimodality, Long Context, and Next Generation Agentic Capabilities

Reference 13

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source=pdf_text observed=2026-08-03T00:03:19.585626Z digest=sha256:988ca1804b9c169da3a0caada9a8982fd9f0236668c6d00df13b222f5ac45f2e

Observation 81a30f28-91e1-4efd-8a3c-1018db7a7458 · outbound

This paper cites Hierarchical Selective Classification.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Hierarchical Selective Classification

Reference 14

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source=pdf_text observed=2026-08-03T00:03:19.782803Z digest=sha256:ed8a93b1c79c4e87efaeb633ac2e41b19de0cd921d979b57d34ddf38f8ec13ed

Observation af7c2ef5-176c-4ee1-80cf-57cf1e7f3097 · outbound

This paper cites Can Language Models Be Specific? How?.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Can Language Models Be Specific? How?

Reference 15

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source=pdf_text observed=2026-08-03T00:03:19.935671Z digest=sha256:a773768bc3fd746f629eaf095ec732c65caf0b9c023895d3a2ef384c39b6ec8f

Observation 058bfcd8-b6d4-4665-a0fa-f94da2da1d9f · outbound

This paper cites A survey on hallucination in large language models: Principles, taxonomy, challenges, and open questions.ACM Trans.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation A survey on hallucination in large language models: Principles, taxonomy, challenges, and open questions.ACM Trans

Reference 16

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source=pdf_text observed=2026-08-03T00:03:20.096207Z digest=sha256:b1f18e4681cb6ecbe9661a4112d2ed6a26d358fb4cf4e3bb34cbfb848cdfa2a7

Observation 71ebe582-46e2-4bd6-ad07-253dc46b77ba · outbound

This paper cites Optimized batch prompt- ing for cost-effective llms.Proceedings of the VLDB Endowment, 18(7):2172–2184, 2025.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Optimized batch prompt- ing for cost-effective llms.Proceedings of the VLDB Endowment, 18(7):2172–2184, 2025

Reference 17

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source=pdf_text observed=2026-08-03T00:03:20.245277Z digest=sha256:aba43821e730a7830607f9a8944012b6ff82170c2038d6893a52828b7656455d

Observation 8ff85f9b-29cd-4203-a847-9deb057d91b1 · outbound

This paper cites Survey of hallucination in natural language generation.ACM Comput.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Survey of hallucination in natural language generation.ACM Comput

Reference 18

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source=pdf_text observed=2026-08-03T00:03:20.390943Z digest=sha256:c4874ba6de53e729c41d7b9e6abaa37b3b59b6f5b75b501603b9fd5b267dfc0f

Observation 10c3a1af-80d0-4f53-95be-8462e8004b44 · outbound

This paper cites Weld, and Luke Zettlemoyer.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Weld, and Luke Zettlemoyer

Reference 19

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source=pdf_text observed=2026-08-03T00:03:20.523735Z digest=sha256:61159cbb7a54a9676a8030f2993e30cedebaee0c85a09a6a854dd13ecb65daa4

Observation de57daed-0a24-4122-b6d4-6eab5d97592d · outbound

This paper cites Language Models (Mostly) Know What They Know.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Language Models (Mostly) Know What They Know

Reference 20

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source=pdf_text observed=2026-08-03T00:03:20.693204Z digest=sha256:3d9413eaa434871ff3cd8916c679e32b8baf8aebfc2d75e780ce72b17d5ac094

Observation 963c0683-82b9-41bb-8db6-69f75a324651 · outbound

This paper cites LLMs cannot (yet) match the specificity and simplicity of online commu- nities in long form question answering.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation LLMs cannot (yet) match the specificity and simplicity of online commu- nities in long form question answering

Reference 21

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source=pdf_text observed=2026-08-03T00:03:20.820609Z digest=sha256:d13d66bff3e60831531434d9ec07612e8219ee11d7cf3fb7b1d94668cc11e948

Observation 63e738c7-908a-417f-a421-d3c84f0c127f · outbound

This paper cites Why Language Models Hallucinate.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Why Language Models Hallucinate

Reference 22

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source=pdf_text observed=2026-08-03T00:03:21.277478Z digest=sha256:c639e8d94bdff3753c8e9cc58b4e5e3994a51aaf37420f64a1ab715eead36264

Observation 0c841976-6e62-4183-8c36-3727cf32f7de · outbound

This paper cites Semantic uncertainty: Linguistic invariances for uncertainty estimation in natural language gen- eration.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Semantic uncertainty: Linguistic invariances for uncertainty estimation in natural language gen- eration

Reference 24

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source=pdf_text observed=2026-08-03T00:03:21.679332Z digest=sha256:848ef4e3a314add35c9f83347ae00c8ef4c054b3c25f0a5d9928fbd05035abb0

Observation 7a8263f8-a378-45b9-bfea-591b6775a3e8 · outbound

This paper cites Generating with confidence: Uncertainty quantifi- cation for black-box large language models.Trans.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Generating with confidence: Uncertainty quantifi- cation for black-box large language models.Trans

Reference 25

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Observation 525a0744-2b4f-47b7-8a32-59fe72544d64 · outbound

This paper cites Semnani, Harold Tried- man, Jialiang Xu, Isaac Dan Zhao, and Monica S.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Semnani, Harold Tried- man, Jialiang Xu, Isaac Dan Zhao, and Monica S

Reference 26

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source=pdf_text observed=2026-08-03T00:03:22.031035Z digest=sha256:2f8e55163c0e05279ce75d869bd5d5f1e4543f6b6731544ff40243c300b62634

Observation e7aabc83-b375-45d3-9a29-657f56ad7393 · outbound

This paper cites Revisiting the Gold Standard: Grounding Summarization Evaluation with Robust Human Evaluation.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Revisiting the Gold Standard: Grounding Summarization Evaluation with Robust Human Evaluation

Reference 27

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source=pdf_text observed=2026-08-03T00:03:22.328378Z digest=sha256:8540e55728bd8ffd14485270ffa253d17807ab8420bb29f44feb460e65ded813

Observation 383cf905-c7e6-4515-92b3-77810f688f36 · outbound

This paper cites an unresolved cited work.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Unresolved cited work

Reference 28

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source=pdf_text observed=2026-08-03T00:03:21.796514Z digest=sha256:7ac3416441b51a7cdfb90f8f1e1643ef8f3c466739f9355be2b406c7875a08a4

Observation f3b29ae8-3491-4756-a2b7-53b9c5577c63 · outbound

This paper cites Passonneau.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Passonneau

Reference 29

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source=pdf_text observed=2026-08-03T00:03:22.620005Z digest=sha256:9566c5550b4b4f88f48094484f5a3f828bd650bccc2a1bc85183aa30dc45768b

Observation cc693f82-2110-42ae-a8da-6e08d7982855 · outbound

This paper cites gpt-oss-120b & gpt-oss-20b model card,.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation gpt-oss-120b & gpt-oss-20b model card,

Reference 30

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source=pdf_text observed=2026-08-03T00:03:22.911980Z digest=sha256:38fcd22dfd11d6663fd13b6e5fe4dbd82d2d8d378ed962b7ff6b838045f56945

Observation a0c1ac87-5f48-4af8-ae09-c00a38668115 · outbound

This paper cites findings-emnlp.938.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation findings-emnlp.938

Reference 31

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source=pdf_text observed=2026-08-03T00:03:22.182787Z digest=sha256:4b638c92254ca9bfc06d5c1a4004ca2d6f2e0c17af2773c5c9b28c2f0b7472a5

Observation aae9824f-30ac-4f53-a5b2-264da2453a68 · outbound

This paper cites Qwen3 Technical Report.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Qwen3 Technical Report

Reference 32

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source=pdf_text observed=2026-08-03T00:03:23.294886Z digest=sha256:7d400a2b92324ec0d460f28e2889268dc712827b5f12fe7e8fa562039c4f11bc

Observation dfd82b15-2ca8-41b1-b765-f5b78443a991 · outbound

This paper cites Factscore: Fine-grained atomic evaluation of fac- tual precision in long form text generation.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Factscore: Fine-grained atomic evaluation of fac- tual precision in long form text generation

Reference 33

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source=pdf_text observed=2026-08-03T00:03:22.474547Z digest=sha256:1f818e5520b4d7c6c521797650caeeed682034d3d580773b9d8f377b77dbfe55

Observation bc696b07-ad95-4b12-81b3-c596166fe372 · outbound

This paper cites an unresolved cited work.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Unresolved cited work

Reference 34

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source=pdf_text observed=2026-08-03T00:03:23.553211Z digest=sha256:9755236b6384b1169cffcedd6db828d6316b47916d9b050717af6a50e1fda779

Observation 76dc8ab5-a7a2-4677-95d1-f8a7c5686630 · outbound

This paper cites Using Information Content to Evaluate Semantic Similarity in a Taxonomy.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Using Information Content to Evaluate Semantic Similarity in a Taxonomy

Reference 35

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source=pdf_text observed=2026-08-03T00:03:23.665589Z digest=sha256:c8d9801462daecc809c52703ca49163592749aa98b4b1df44ee6769db3ef05a5

Observation cc2de745-974b-4910-ac54-55fd8bd9fbde · outbound

This paper cites Crowdsourcing lightweight pyramids for manual summary evalua- tion.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Crowdsourcing lightweight pyramids for manual summary evalua- tion

Reference 36

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source=pdf_text observed=2026-08-03T00:03:23.802656Z digest=sha256:6f64ef0ac43d7ead90bb1db59fd7c5c24cbff5927a06d75cd5c67edceef024ad

Observation 30a88078-6e8e-4172-bdf6-b5a0051cf52a · outbound

This paper cites Can Knowledge Graphs Make Large Language Models More Trustworthy? An Empirical Study Over Open-ended Question Answering.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Can Knowledge Graphs Make Large Language Models More Trustworthy? An Empirical Study Over Open-ended Question Answering

Reference 37

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source=pdf_text observed=2026-08-03T00:03:23.943252Z digest=sha256:a63df826a480ffaa2245cce67d94e0e611adfdabc43bf4a6b9d150af51f71030

Observation f4c432c6-d43b-4782-817d-a94df6867edd · outbound

This paper cites Fact-checking complex claims with program-guided reasoning.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Fact-checking complex claims with program-guided reasoning

Reference 38

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source=pdf_text observed=2026-08-03T00:03:23.181804Z digest=sha256:c22a186087ca84c0e5cf90daa786a65bf833fe65d9fc980e7744531623f752c3

Observation a4bb4807-356a-48ae-ac20-5ca3309e174e · outbound

This paper cites LaMDA: Language Models for Dialog Applications.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation LaMDA: Language Models for Dialog Applications

Reference 39

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source=pdf_text observed=2026-08-03T00:03:24.194076Z digest=sha256:b94a7e1ae7d6b91f36289d800afec1b6906d1eaec920e4017d34c1a1f1fe3ce0

Observation 0c56ae05-286a-476f-a8e9-d9f8cde308a5 · outbound

This paper cites A Stitch in Time Saves Nine: Detecting and Mitigating Hallucinations of LLMs by Validating Low-Confidence Generation.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation A Stitch in Time Saves Nine: Detecting and Mitigating Hallucinations of LLMs by Validating Low-Confidence Generation

Reference 41

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source=pdf_text observed=2026-08-03T00:03:24.512527Z digest=sha256:da1426919717ce4e0a2d969995e9d9bbce7a9a3a9723925a4d15bc9291a5b9fc

Observation 844412e3-cb99-43ab-bd4d-689e986fcb6a · outbound

This paper cites Benchmarking uncertainty quantification methods 11 for large language models with lm-polygraph.Trans.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Benchmarking uncertainty quantification methods 11 for large language models with lm-polygraph.Trans

Reference 42

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source=pdf_text observed=2026-08-03T00:03:24.632412Z digest=sha256:27d2ded353257b9359501a8ba6851aeec75758146fed090b87fe8fd3cf3ef35f

Observation dceb6651-06fb-4c06-84d8-20f2d4629987 · outbound

This paper cites Token-Level Density-Based Uncertainty Quantification Methods for Eliciting Truthfulness of Large Language Models.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Token-Level Density-Based Uncertainty Quantification Methods for Eliciting Truthfulness of Large Language Models

Reference 43

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Source-reported events for the cited work

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source=pdf_text observed=2026-08-03T00:03:24.728318Z digest=sha256:6bdd71edf2615fe404166de206d29a27ab8484249ced956cb81e6060b4901b5c

Observation 73d555d5-83ce-4477-bbeb-e5850f33e588 · outbound

This paper cites Conditional validity of inductive conformal predictors.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Conditional validity of inductive conformal predictors

Reference 44

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source=pdf_text observed=2026-08-03T00:03:24.871070Z digest=sha256:9a51c95ff0c0a34e40dbe3e53cc70876f01652b8d235aa294d0423801621078b

Observation 0172bb90-0bdb-440c-9cf0-72d816bb6c8d · outbound

This paper cites The Llama 3 Herd of Models.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation The Llama 3 Herd of Models

Reference 45

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source=pdf_text observed=2026-08-03T00:03:24.063266Z digest=sha256:757580ba8aa58f34e80fadc95d3fa68afd2f749ff878b012d1fa3c6dda9ff4e0

Observation 976b333c-5e08-4ef4-a864-e03f6d0d9211 · outbound

This paper cites Wikidata: a free collaborative knowledgebase.Commun.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Wikidata: a free collaborative knowledgebase.Commun

Reference 46

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source=pdf_text observed=2026-08-03T00:03:25.181608Z digest=sha256:4a29fe502fee6869991ebfedb736fb215429dc2b80b6fde56e1cc589fbd53b94

Observation e0ddef58-6d14-4d98-aaf5-1ecc70757836 · outbound

This paper cites A Comprehensive Survey of Hallucination Mitigation Techniques in Large Language Models.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation A Comprehensive Survey of Hallucination Mitigation Techniques in Large Language Models

Reference 47

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source=pdf_text observed=2026-08-03T00:03:24.365784Z digest=sha256:527f00414853080a51b2ecd86218f490981817b38f351e78938970df4121f143

Observation fd551a3b-de19-4f68-84fa-5ab8168b07ef · outbound

This paper cites Wong, Emine Yilmaz, Shuming Shi, and Zhaopeng Tu.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Wong, Emine Yilmaz, Shuming Shi, and Zhaopeng Tu

Reference 48

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source=pdf_text observed=2026-08-03T00:03:25.457827Z digest=sha256:a55245b0b7782e27c64f93171d3ce333d549abf1d15da3e0abd4b3e1862fde9d

Observation 49cdaf19-d6bb-4791-a661-4b6a92fb683b · outbound

This paper cites Narrowing the Knowledge Evaluation Gap: Open-Domain Question Answering with Multi-Granularity Answers.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Narrowing the Knowledge Evaluation Gap: Open-Domain Question Answering with Multi-Granularity Answers

Reference 49

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source=pdf_text observed=2026-08-03T00:03:25.580309Z digest=sha256:7739c1443099f19220456819e077ba335449ab36ce2ff9342c04c4eb6657e219

Observation 07165edd-cb18-47d5-a678-f6453b0d343f · outbound

This paper cites LUQ: long-text uncertainty quan- tification for llms.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation LUQ: long-text uncertainty quan- tification for llms

Reference 50

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source=pdf_text observed=2026-08-03T00:03:25.725434Z digest=sha256:f43cc2d11c47e57598ed6a8bbb2c7430286fc4d5640a46c153ce4f6de0166f9a

Observation b10b1654-e102-4ea5-ac6c-7e7e756138bd · outbound

This paper cites Finding a bal- anced degree of automation for summary evaluation.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Finding a bal- anced degree of automation for summary evaluation

Reference 51

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source=pdf_text observed=2026-08-03T00:03:26.102745Z digest=sha256:04586c330601d49aa78ae66247ea084c6aff8a71e24e095e388f5fec7591d1c4

Observation 10e7bc47-e3c6-4f0d-a163-d56442932173 · outbound

This paper cites Machine-learning applications of algo- rithmic randomness.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Machine-learning applications of algo- rithmic randomness

Reference 52

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source=pdf_text observed=2026-08-03T00:03:25.045885Z digest=sha256:572a6bfd8344669a88f0d99e81bfa25fffb249ff24e159b586c402836a72799a

Observation d250bc6d-9511-468c-abb8-1702ce2d2c91 · outbound

This paper cites an unresolved cited work.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Unresolved cited work

Reference 54

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source=pdf_text observed=2026-08-03T00:03:25.298087Z digest=sha256:70975564f7b210b39b1a8a015387664e948596323f9b5015a96becc598c1cb34

Observation 352d25cc-3164-4b03-9ea4-98cdaa44d424 · outbound

This paper cites emnlp-main.299.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation emnlp-main.299

Reference 59

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source=pdf_text observed=2026-08-03T00:03:25.987020Z digest=sha256:b5c39a5e2c7f476c9241c1d4f422cb3b9c82eee6e16e26b3b6db2f84e2451ef8

Observation 1e52a40d-2c82-484b-bc08-fd103fcdf216 · outbound

This paper cites an unresolved cited work.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Unresolved cited work

Reference 62

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source=pdf_text observed=2026-08-03T00:03:26.369273Z digest=sha256:82795f6a8d1abf7c6bae66462ed2cb66645467e503a0c8f91d37e4f3656efb3c

Observation 88442010-719a-47bb-9fd5-6440ce539bc7 · outbound

This paper cites an unresolved cited work.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Unresolved cited work

Reference 63

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source=pdf_text observed=2026-08-03T00:03:26.541433Z digest=sha256:19a85bce67e3ac86061b822243a4f3fd38b83787fac92b8f4ef43d0b2e1182ac

Observation 95a010c4-bfdd-455f-b444-36ce1c72e859 · outbound

This paper cites an unresolved cited work.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Unresolved cited work

Reference 64

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source=pdf_text observed=2026-08-03T00:03:26.701898Z digest=sha256:781143b531b0cc5ac93bf83b3322f56c6c6fbd9291c281313736294355bd2d0e

Observation fac7c6f2-1514-4e89-af4b-5089e12ada6a · outbound

This paper cites an unresolved cited work.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Unresolved cited work

Reference 65

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source=pdf_text observed=2026-08-03T00:03:26.842236Z digest=sha256:b0f49c14cf98b0ee76bb38408c8ca57b394a16ebcbf88df98a540e94788a4eab

Observation 4e6c2cfc-3487-4ef8-b1dc-57b36945df70 · outbound

This paper cites an unresolved cited work.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Unresolved cited work

Reference 66

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source=pdf_text observed=2026-08-03T00:03:26.977413Z digest=sha256:278b3fcbeb2bd3561693f77175f55303281b6900e66935ecc95320bf3563ebee

Observation 453e2e5e-758e-46b8-aa40-1996bbc739e9 · outbound

This paper cites an unresolved cited work.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Unresolved cited work

Reference 67

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source=pdf_text observed=2026-08-03T00:03:27.132929Z digest=sha256:c0f0acd34ae61bf371fbffc8fc6616f8c88574a031493c03c0c8261a4ae44e93

Observation f70d3435-8b13-47fb-8dac-b1dba3fc8b6e · outbound

This paper cites ## Example 2 Input Text:Albert Einstein was a German-born theoretical physicist who is best known for developing the theory of relativity.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation ## Example 2 Input Text:Albert Einstein was a German-born theoretical physicist who is best known for developing the theory of relativity

Reference 68

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source=pdf_text observed=2026-08-03T00:03:27.228727Z digest=sha256:3f58834b0f2005884ab20b90027631750572f7f65bbced433373b04eb2d14622

Observation c01e1cc7-a6f3-4fda-8c07-22cf824df1cc · outbound

This paper cites an unresolved cited work.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Unresolved cited work

Reference 69

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source=pdf_text observed=2026-08-03T00:03:27.407060Z digest=sha256:10092e7cf9ed9debfcfac9f70259600b8c8ef656330043bcdc6e43910de769c0

Observation 1c88dcfd-6ee8-4a9f-8b79-efe12785cbc1 · outbound

This paper cites an unresolved cited work.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Unresolved cited work

Reference 70

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source=pdf_text observed=2026-08-03T00:03:27.573954Z digest=sha256:cf2236f8a399283e3624837f3955e143239162e64d4fa19f19b691ce9880ac2b

Observation eaf7b5bd-82fb-461b-b9cc-861a1f4d1249 · outbound

This paper cites an unresolved cited work.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Unresolved cited work

Reference 71

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source=pdf_text observed=2026-08-03T00:03:27.672298Z digest=sha256:ef1cee3012ffac8880c5ed385b97679ea3b1335f8383ca966dc79a3a15587de5

Observation 32fdbda2-04f6-4e0b-abc9-b0a0bf5a81ec · outbound

This paper cites ## Example 3.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation ## Example 3

Reference 72

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source=pdf_text observed=2026-08-03T00:03:27.772231Z digest=sha256:6b2828b104b6bd07743f0fbf980c07c5c10fbe1dfc6ee38017134c0031d5118c

Observation dfa1fe89-9cd7-4c86-875d-384fdea5db8c · outbound

This paper cites - The confidence score must be a number between 0 and 100.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation - The confidence score must be a number between 0 and 100

Reference 73

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source=pdf_text observed=2026-08-03T00:03:27.935678Z digest=sha256:cfb46db680fcaf0047fb2097879dea7e7d4d93ce74f80fed01f69c5cbad1ff08

Observation 4825bd59-8234-4153-bb61-dbc477cfb919 · outbound

This paper cites # Review and Guidance Think step by step.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation # Review and Guidance Think step by step

Reference 78

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source=pdf_text observed=2026-08-03T00:03:28.567602Z digest=sha256:ab6333755c5034502b88c4d1b9134f87b849f327bce41a2a28dca61e4c94daa1

Observation b9698749-f8ac-4f36-84d7-72091ccac249 · outbound

This paper cites Reasoning: (your reasoning here).

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Reasoning: (your reasoning here)

Reference 79

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source=pdf_text observed=2026-08-03T00:03:28.640760Z digest=sha256:de611b7706bb067ab583e96aa77b841e1e1f9f25ea09d4bfc875e4e5f2247394

Observation 83275b95-6afa-4c30-99ed-3d61aa3d366e · outbound

This paper cites Reasoning: (your reasoning here).

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Reasoning: (your reasoning here)

Reference 80

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source=pdf_text observed=2026-08-03T00:03:28.722005Z digest=sha256:7be3bd0060bac030510cd52d0158294a959288c1574abe2ffcd07051f95ff22b

Observation 63367b78-08b3-4e9a-9e1d-04a858bda220 · outbound

This paper cites an unresolved cited work.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Unresolved cited work

Reference 81

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source=pdf_text observed=2026-08-03T00:03:28.801719Z digest=sha256:3c9242403d733aeaebcf14fd2ce20a5136f227903f6d3ea8c537690f7cc9d658

Observation 912f5daa-6c6f-4117-a3fb-c170ce1c97b7 · outbound

This paper cites Do not change the ENTITY.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Do not change the ENTITY

Reference 82

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source=pdf_text observed=2026-08-03T00:03:28.853542Z digest=sha256:59f109853e2365806a514a6013f69f1bb4cb97fb9384f97a9b18073d44f20685

Observation 78ce6ac8-cf0a-4402-90f8-66a2b91278d5 · outbound

This paper cites an unresolved cited work.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Unresolved cited work

Reference 83

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source=pdf_text observed=2026-08-03T00:03:28.967140Z digest=sha256:d3989741692836336653388148c4a45e36987c5c137d22d35b35684d748213ea

Observation 8afe0436-0af3-46a2-844c-6aa991178476 · outbound

This paper cites Make the smallest logical generalization at each step.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Make the smallest logical generalization at each step

Reference 84

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source=pdf_text observed=2026-08-03T00:03:29.106743Z digest=sha256:869299969528178f7d68b687121c1a50c2d3619e2f77db1726f75bc15a012989

Observation 2d2fb7f8-9385-429b-88ef-33cad12ec796 · outbound

This paper cites an unresolved cited work.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Unresolved cited work

Reference 85

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source=pdf_text observed=2026-08-03T00:03:29.222100Z digest=sha256:22bff7fc033dcc585c081a3e4f8128f0df7096b1a59195587543fe5ef0f4e3d7

Observation 80231d5c-c67c-487a-ba32-7e669ca74ea6 · outbound

This paper cites The rest of the sentence must remain unchanged.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation The rest of the sentence must remain unchanged

Reference 86

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source=pdf_text observed=2026-08-03T00:03:29.336506Z digest=sha256:692f8a7586993ed7e665d306bfd8822d93a21672a48fd23e0600ab2b5584721f

Observation 50092f4a-8f7e-4095-be27-dc6b73957c9e · outbound

This paper cites an unresolved cited work.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Unresolved cited work

Reference 87

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source=pdf_text observed=2026-08-03T00:03:29.394540Z digest=sha256:45f983b6918fed651311e7f4a38c081255ff3abfb42e1af2e6f0b74dbf81a97e

Observation 987b8928-c385-457c-8514-b234aa8c98da · outbound

This paper cites an unresolved cited work.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Unresolved cited work

Reference 88

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source=pdf_text observed=2026-08-03T00:03:29.472539Z digest=sha256:b025f54bd8b975fe909b01427fefc0c7585800744f72f25fa2467bebde5a759d

Observation 0de129a9-9132-4615-b681-57c1a218160f · outbound

This paper cites In that case, output ‘STOP‘ and explain why.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation In that case, output ‘STOP‘ and explain why

Reference 89

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source=pdf_text observed=2026-08-03T00:03:29.553628Z digest=sha256:cf3023c66b4960631aa734ef51bf3245215945195fe817a91be8398814ea8479

Observation fab03f10-d41f-4c6e-903b-1e3625ae4947 · outbound

This paper cites Reasoning: I’m less confident about the exact city than the country.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Reasoning: I’m less confident about the exact city than the country

Reference 90

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source=pdf_text observed=2026-08-03T00:03:29.638115Z digest=sha256:95f04deabdbae3c2c1cfce987ccbc1896039082bae35dec2a497e0d8bc015acc

Observation 8180c1e4-acad-478c-b257-cdc8caa39f5c · outbound

This paper cites Reasoning: Warsaw is a city in Poland, so this is a valid generalization.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Reasoning: Warsaw is a city in Poland, so this is a valid generalization

Reference 91

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source=pdf_text observed=2026-08-03T00:03:29.721562Z digest=sha256:b8f20477248bd6002dceab5e8cfa96713241ea8b4d8163ef1a95dbfc45e1304d

Observation 8e43fc28-cc15-4512-9861-a055f128a87e · outbound

This paper cites Reasoning: Poland is a European country.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Reasoning: Poland is a European country

Reference 92

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source=pdf_text observed=2026-08-03T00:03:29.801905Z digest=sha256:d9f395cdd5e50e35e7f14e5c7b59ed289b0b722d46fa0b98a61d238dd1f56294

Observation 810e7641-ef37-4d3c-846e-0fd906818f0c · outbound

This paper cites Reasoning: Further generalization would be too vague to retain meaning.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Reasoning: Further generalization would be too vague to retain meaning

Reference 93

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source=pdf_text observed=2026-08-03T00:03:29.879826Z digest=sha256:0bc10f47343cc43e9835270cb1a5ad6d22b6b7bd53cd450406ac93031d4bfd56

Observation e9142c29-37fb-4aa8-a4de-426a84f6fb9c · outbound

This paper cites - The confidence score must be a number between 0 and 100.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation - The confidence score must be a number between 0 and 100

Reference 94

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source=pdf_text observed=2026-08-03T00:03:29.979747Z digest=sha256:211bbc3351dc1616fe06087cdd1f20e5b465e87b3de87d54049d95b1363b64b5

Observation ee3bfab6-b3cd-4760-8535-869fbfbfbec7 · outbound

This paper cites an unresolved cited work.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Unresolved cited work

Reference 95

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source=pdf_text observed=2026-08-03T00:03:29.982761Z digest=sha256:f72b7342e5fdc0a61782169ef5509d16a3fcef99b81824c597fdd79b3a20049b

Observation 0dff476b-8cb3-425d-98cc-38f2377e7b7b · outbound

This paper cites an unresolved cited work.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Unresolved cited work

Reference 96

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source=pdf_text observed=2026-08-03T00:03:30.152180Z digest=sha256:0069e685fdd0559cbf25c78e9488533ae8ff9d0f42bf4b4d2bcf74076cf25e4f

Observation bf198785-bb7f-464a-8062-04318a961651 · outbound

This paper cites an unresolved cited work.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Unresolved cited work

Reference 97

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source=pdf_text observed=2026-08-03T00:03:30.257769Z digest=sha256:755bd2f42d6330277029ef7d28e5aa8509d5550ecc3fc398ca6d0172d75464aa

Observation 6f2cf9d0-3f8a-494d-ad3c-48b93479b4a6 · outbound

This paper cites an unresolved cited work.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Unresolved cited work

Reference 98

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source=pdf_text observed=2026-08-03T00:03:30.366062Z digest=sha256:c7c7bfad4d4423aa51d6b822ec2f5863ab6f0328e2690868ee62d13a148ed866

Observation d19498ac-988b-43eb-be48-0ad17b4a6b3c · outbound

This paper cites # Review and Guidance Think step by step.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation # Review and Guidance Think step by step

Reference 99

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source=pdf_text observed=2026-08-03T00:03:30.516460Z digest=sha256:918a6833dadd7434546cba03d1312bbdf2aea828c3121a480d96e01280020326

Observation ca3cf3f9-d889-4b35-97d2-35892a0b41b0 · outbound

This paper cites an unresolved cited work.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Unresolved cited work

Reference 100

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source=pdf_text observed=2026-08-03T00:03:30.676983Z digest=sha256:8d67faf8638ee921f546395e1f48d2e8002130a9296cb454a42d7568272c6125

Observation 0df5b095-4413-4b42-9a61-32646701f89b · outbound

This paper cites an unresolved cited work.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Unresolved cited work

Reference 101

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source=pdf_text observed=2026-08-03T00:03:30.792610Z digest=sha256:d6bbe43bb726c3001c6c4247cd2774d7ac46496b9df04c029568202ee714eae0

Observation 5c966921-fe4a-485b-9146-774c2024c823 · outbound

This paper cites SUPPORTED.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation SUPPORTED

Reference 102

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source=pdf_text observed=2026-08-03T00:03:30.889393Z digest=sha256:429a73d98de807b9f5eb254674d1f178fcdd7c90937cf1ed13d026d54b75c16d

Observation 56b7d67e-7548-45b1-a4cd-1dd4ead418d0 · outbound

This paper cites • This is always the subject of the sentence.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation • This is always the subject of the sentence

Reference 103

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source=pdf_text observed=2026-08-03T00:03:31.009654Z digest=sha256:19398c7801511db54737eb3953b11771a323f61cc0f9ab34896b1c8e5e3665f0

Observation 82ed6573-2390-477c-92c0-2a2754b3d505 · outbound

This paper cites people” • For places, use terms like “cities.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation people” • For places, use terms like “cities

Reference 104

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source=pdf_text observed=2026-08-03T00:03:31.141006Z digest=sha256:5669f3dc2a0ce2cf90cfa4993d08aa960362a8c85a829435072aee56052daa4c

Observation 10e72bea-d794-48b3-9597-0247f2833d82 · outbound

This paper cites • Use the format: How many [pluralized broad category] are there?.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation • Use the format: How many [pluralized broad category] are there?

Reference 105

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source=pdf_text observed=2026-08-03T00:03:31.233529Z digest=sha256:c2bca8f53ddb27b5585faef98bcb211a133dbc00556f2b7a8501f5f8215300da

Observation 4f682ba9-e3d5-4603-9a50-b782f5419e1d · outbound

This paper cites • Keep the rest of the sentence as intact as possible.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation • Keep the rest of the sentence as intact as possible

Reference 106

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source=pdf_text observed=2026-08-03T00:03:31.369420Z digest=sha256:7b321a747e92bf399e5fa41a81fac1593d5ceca3035ac803e76b5c87bfdd845b

Observation ee659bea-5a9c-4501-a56c-6d24c9cac79a · outbound

This paper cites French artists.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation French artists

Reference 107

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source=pdf_text observed=2026-08-03T00:03:31.485772Z digest=sha256:1d9cfb452ec5a85b66caefbf5b1e548dd07563ef8a3e5bb6e5460b77d324d6fe

Observation 0165a781-cc4d-4732-89f5-9914deab2af1 · outbound

This paper cites These include sequence-level aggregates such as log-likelihood and (inverse) perplexity, as well as more local measures such as the minimum token log-probability.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation These include sequence-level aggregates such as log-likelihood and (inverse) perplexity, as well as more local measures such as the minimum token log-probability

Reference 108

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source=pdf_text observed=2026-08-03T00:03:31.595536Z digest=sha256:83d650e752c5742ae7756ade35a1af5dec6024c6967649e2776ab4f3e2374413

Observation 2a5dfc84-a44e-416b-8e47-0ffffcd4be52 · outbound

This paper cites atoms” evaluates ranking over the original atom set, whereas “all.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation atoms” evaluates ranking over the original atom set, whereas “all

Reference 109

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source=pdf_text observed=2026-08-03T00:03:31.683006Z digest=sha256:dbdcb3953e746f1f029c8a373d7ac246469fb892492670b50fa0f7f9d3383c5c

Observation 0f4a6fee-6b97-4666-bfbd-32d34f359cb8 · outbound

This paper cites findings-emnlp.111/.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation findings-emnlp.111/

Reference 111

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source=pdf_text observed=2026-08-03T00:03:21.119154Z digest=sha256:6fcd4a6af8fd191e712c1b0ad12db00b49eeb02bfe74a3b1b325111cf9eddc38

Observation 89f11618-63f6-4afb-82ba-cd14311009be · outbound

This paper cites URL https://aclanthology.org/ N04-1019/.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation URL https://aclanthology.org/ N04-1019/

Reference 152

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source=pdf_text observed=2026-08-03T00:03:22.774498Z digest=sha256:f50258a014b50aee403b836455e8c3e30b1c063141cd7fcc3ea561e87103e009

Observation ba56e52f-5f0e-47e8-824c-41ae244c2063 · outbound

This paper cites Ice Bucket Challenge.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation Ice Bucket Challenge

Reference 531

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source=pdf_text observed=2026-08-03T00:03:26.231798Z digest=sha256:06503e91fc268c76b710b02388adaa7db5ceeaaf8852753dd69a13361db3f9c5

Observation 4f4e32de-3428-4912-bf75-d692f744d3d8 · outbound

This paper cites doi: 10.18653/v1/2024.findings-emnlp.

When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation doi: 10.18653/v1/2024.findings-emnlp

Reference 2024

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source=pdf_text observed=2026-08-03T00:03:20.942117Z digest=sha256:724a917fb1deb198e0809a45d91bad809874ae921f2bd0a985f81da5a41e40fb

Pith citing papers

Observation 4b431fc0-3dcf-47d9-93e3-d84b90fc62ca · inbound

Answer Only as Precisely as Justified: Calibrated Claim-Level Specificity Control for Agentic Systems cites this paper.

Answer Only as Precisely as Justified: Calibrated Claim-Level Specificity Control for Agentic Systems When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation

Reference 5

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arxiv_id, observed 2026-06-03T02:05:13.522389Z

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No event found in the named queried sources as of 2026-08-17T06:30:58.91139+00:00.

source=pdf_text observed=2026-05-10T05:31:11.718051Z digest=sha256:c89fc41587dde044e75a49bd459bf12bc65038a63c2a6d31e41a8951ba5b776b

Observation d3826a06-f7a8-4ad7-8f30-30abd89d9f14 · inbound

Answer Only as Precisely as Justified: Calibrated Claim-Level Specificity Control for Agentic Systems cites this paper.

Answer Only as Precisely as Justified: Calibrated Claim-Level Specificity Control for Agentic Systems When Should LLMs Be Less Specific? Selective Abstraction for Reliable Long-Form Text Generation

Reference 5

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verified exact
arxiv_id, observed 2026-06-03T02:05:13.522389Z

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No event found in the named queried sources as of 2026-08-17T06:30:58.91139+00:00.

source=pdf_text observed=2026-05-20T23:56:44.979471Z digest=sha256:9ec41afe9f34058bc6ef9fc70f3a15d0181b3f25892ea2e541561dcb37566a7a