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Paper Citation Record · LEDGER

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting

As of 18 August 2026, this Paper Citation Record lists 100 of 130 outbound references and 1 inbound Pith citation observation for arXiv:2508.16697.

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

pith.paper-citation-record.v1
2508.16697 v1

Coverage vector

measured 100 of 130 reference resolution

Typed states for the displayed outbound observations.

Source: paper_references, paper_reference_links, observed 2026-08-05T17:39:27.082552Z

measured 101 of 101 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 1 of 1 inbound itemization

Pith citing papers itemized under the disclosed page cap.

Source: paper_references, paper_reference_links, observed 2026-06-30T07:18:20.092121Z

measured 0 of 1 external citation measurements

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

Source: arxiv_reference, observed 2026-06-30T07:24:21.630725Z

Reference resolution

100 of 130 outbound references displayed

  • verified exact15
  • verified fuzzy0
  • unresolved82
  • parse uncertain0
  • malformed identifier2
  • metadata mismatch1

External citation measurements

No source-named external measurement is stored.

Outbound references

Observation 4c3e7d34-0056-45e7-9d49-4dcfeaedb1f7 · outbound

This paper cites Evaluating Correctness and Faithfulness of Instruction-Following Models for Question Answering.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Evaluating Correctness and Faithfulness of Instruction-Following Models for Question Answering

Reference 1

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Observation 39da6883-5833-4939-8bc5-ad922fb14ce0 · outbound

This paper cites How does the pre-training objective affect what large language models learn about linguistic properties?.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting How does the pre-training objective affect what large language models learn about linguistic properties?

Reference 2

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local_arxiv, observed 2026-08-05T17:39:34.370039Z

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=2026-08-05T17:39:16.705288Z digest=sha256:53c636679feffdcc5211770b286ee25e8b5a7ffc40c5d08d8bae025b9a0ac15e

Observation b887ed47-d218-487e-b649-fc7a542bb40d · outbound

This paper cites an unresolved cited work.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Unresolved cited work

Reference 3

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source=pdf_text observed=2026-08-05T17:39:17.614505Z digest=sha256:629ad2d8f45fdfbe6cc8b4ee25e1e2957a917879e1a2f28a87518ac4f79bcde4

Observation e9d4bd5a-c724-49e2-8870-6178b305db89 · outbound

This paper cites PolyLM: Learning about Polysemy through Language Modeling.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting PolyLM: Learning about Polysemy through Language Modeling

Reference 5

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verified exact
local_arxiv, observed 2026-08-05T17:39:34.082723Z

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=2026-08-05T17:39:17.908856Z digest=sha256:61af47da72faf951e32cae878b7e1533076ea3458e37ad4893bf7eaf5052f05e

Observation e7c456e1-862b-4795-8970-5cb1ce8cd110 · outbound

This paper cites PromptNER: Prompting For Named Entity Recognition.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting PromptNER: Prompting For Named Entity Recognition

Reference 6

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source=pdf_text observed=2026-08-05T17:39:17.982976Z digest=sha256:d0f2d8b283ff1e4ee92c0b2ad3d7a7e8fd5f70e0b86744691d20dea1a54f4a0d

Observation 1f1d188f-1b78-40ce-b8d7-730c5576cc5f · outbound

This paper cites Schapire.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Schapire

Reference 7

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source=pdf_text observed=2026-08-05T17:39:18.104966Z digest=sha256:b4b2075223b29c5568ae77d37ce1304a5cdf4fd980ebc72d3c7a3371a523b534

Observation e1bec172-a6c4-41ae-b4d8-8794a417ee65 · outbound

This paper cites rapidfuzz/rapidfuzz: Release 3.8.1, April 2024.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting rapidfuzz/rapidfuzz: Release 3.8.1, April 2024

Reference 8

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source=pdf_text observed=2026-08-05T17:39:18.214384Z digest=sha256:25a73e066d2d11dc0d7fad6e63892384ee4696ded07bc2d318154960e739fc23

Observation bef8203d-e1a8-49d2-bf5d-8f0cf6391408 · outbound

This paper cites Harnessing GPT-3.5-turbo for Rhetorical Role Prediction in Legal Cases.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Harnessing GPT-3.5-turbo for Rhetorical Role Prediction in Legal Cases

Reference 9

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source=pdf_text observed=2026-08-05T17:39:18.300189Z digest=sha256:ff623acd1fdb19d967943fc8f0edc0c051d3f07c2eb69f9e2be8c7ed35bc81a0

Observation c6221c2d-a212-4357-92a0-d2b5e0f59900 · outbound

This paper cites Piqa: Reasoning about physical commonsense in natural language.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Piqa: Reasoning about physical commonsense in natural language

Reference 10

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source=pdf_text observed=2026-08-05T17:39:18.498405Z digest=sha256:3c3e9b87bc32a13557b6ac1f627d16332ea7684d05b08700d06b018ecec0dc2f

Observation b41a26fd-f53d-4c19-ac7f-a24afd2c3040 · outbound

This paper cites Prompting language models for linguistic structure,.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Prompting language models for linguistic structure,

Reference 11

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source=pdf_text observed=2026-08-05T17:39:18.670336Z digest=sha256:557e41b3af993d772116f459e55e885999cb48903cf8a2aad4b2ede4de59846d

Observation acd1bc1e-e29d-434e-9f9b-e4334b7f830b · outbound

This paper cites Language Models are Few-Shot Learners.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Language Models are Few-Shot Learners

Reference 12

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source=pdf_text observed=2026-08-05T17:39:19.006264Z digest=sha256:dd86f0e21efc45932fdffee2d4e6f66f89628a5ec2b758422697d2a175ba6cec

Observation f32b8694-6cc5-469f-9f9e-0db3d81ec8b9 · outbound

This paper cites Re-evaluating the role of Bleu in machine translation research.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Re-evaluating the role of Bleu in machine translation research

Reference 13

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source=pdf_text observed=2026-08-05T17:39:19.117623Z digest=sha256:70a3e47ab6be1449c2beee7f66570a76fd736f84645f4f4dd6c7d6edcda21d73

Observation ec179f67-b817-4a0a-9f01-abc7543741e8 · outbound

This paper cites PreCo: A large-scale dataset in preschool vocabulary for coreference resolution.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting PreCo: A large-scale dataset in preschool vocabulary for coreference resolution

Reference 14

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doi, observed 2026-08-05T17:39:30.977778Z

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.

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Observation 0f3d3a4e-9f07-4e89-93f1-1170dcf1a2ef · outbound

This paper cites PRompt optimization in multi-step tasks (PROMST): Integrating human feedback and heuristic-based sampling.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting PRompt optimization in multi-step tasks (PROMST): Integrating human feedback and heuristic-based sampling

Reference 15

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source=pdf_text observed=2026-08-05T17:39:19.452082Z digest=sha256:eed87346f5df05fac41f14cddcb356debccc5976db84a1e5eb785396b8ff7a3d

Observation deecffa9-1139-4062-a9e7-e62eaa2b2d2b · outbound

This paper cites Multiq&a: An analysis in measuring robustness via automated crowdsourcing of question perturbations and answers, 2025.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Multiq&a: An analysis in measuring robustness via automated crowdsourcing of question perturbations and answers, 2025

Reference 16

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source=pdf_text observed=2026-08-05T17:39:19.705053Z digest=sha256:448945877515875aa7564c9ee072f90d36ed1e812789608e467b315581d23dda

Observation 969ca865-729b-4c3b-af75-80a3c3de5991 · outbound

This paper cites Fishnet: Financial intelligence from sub-querying, harmonizing, neural-conditioning, expert swarms, and task planning.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Fishnet: Financial intelligence from sub-querying, harmonizing, neural-conditioning, expert swarms, and task planning

Reference 17

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source=pdf_text observed=2026-08-05T17:39:19.831570Z digest=sha256:8e92aa9be2bbc460b7fb4e31c9d5f7be68bb6cec5c5b83405f63dd1712bb9eb5

Observation a7e3886e-d41b-4ca8-bf2a-a6cf1ec5ca53 · outbound

This paper cites Deep reinforcement learning from human preferences.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Deep reinforcement learning from human preferences

Reference 18

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source=pdf_text observed=2026-08-05T17:39:19.941017Z digest=sha256:e3b22e23caf8acb6b3a4a185f55ab01854000b2f07267717c6645efe1c038909

Observation c6ee6f37-36f6-4ba8-bf7a-d76d08b9732e · outbound

This paper cites Boolq: Exploring the surprising difficulty of natural yes/no questions.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Boolq: Exploring the surprising difficulty of natural yes/no questions

Reference 19

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source=pdf_text observed=2026-08-05T17:39:20.048617Z digest=sha256:026daecc43f6c287098ae7126989fc06648fa81afb63e3833353593aab86d453

Observation 9982ac14-bd32-47ae-9f05-f20edd8b3801 · outbound

This paper cites CLARK and RICHARD J.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting CLARK and RICHARD J

Reference 20

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source=pdf_text observed=2026-08-05T17:39:20.118018Z digest=sha256:4459d149a9511f89f20a60cc30fc041236bd79ad60957285123ec3a94cefb1c6

Observation c66c49c5-32ff-454d-9ab2-ce0058f21862 · outbound

This paper cites Think you have Solved Question Answering? Try ARC, the AI2 Reasoning Challenge.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Think you have Solved Question Answering? Try ARC, the AI2 Reasoning Challenge

Reference 21

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source=pdf_text observed=2026-08-05T17:39:20.232986Z digest=sha256:30b32d769d6a18aafc489b499668cfbb03abdb888143fe6a6b4f8583bceab763

Observation 2e0f27b4-7334-402d-b98f-7aa0a8765321 · outbound

This paper cites an unresolved cited work.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Unresolved cited work

Reference 22

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source=pdf_text observed=2026-08-05T17:39:20.325273Z digest=sha256:89e4c4408b09cd0cd09ca230713e9d85fe4bde9eddc59df0ee8aefebca3d7575

Observation b4999fb1-ca01-43a6-82d5-64371367018f · outbound

This paper cites Selectively answering ambiguous questions.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Selectively answering ambiguous questions

Reference 23

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source=pdf_text observed=2026-08-05T17:39:20.429276Z digest=sha256:aab09b3dea56818709f68ffff3cd8471ca1a45fcfadacf103d739d2f1235ed33

Observation e2912c32-625a-4e8e-b4a2-7dffdb571ba0 · outbound

This paper cites hallucinations.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting hallucinations

Reference 24

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source=pdf_text observed=2026-08-05T17:39:20.522509Z digest=sha256:e8903c413519f6daf28acd98a6ffac1a501dd000db1e03eedfbb1c9883d535b0

Observation 7cfa65ef-f03d-4649-b611-b4b3ccdfd1b3 · outbound

This paper cites DeepSeek-R1: Incentivizing Reasoning Capability in LLMs via Reinforcement Learning.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting DeepSeek-R1: Incentivizing Reasoning Capability in LLMs via Reinforcement Learning

Reference 25

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Observation ba5c1a11-3b36-46d3-8381-8aa81534249f · outbound

This paper cites Prompt- ing and evaluating large language models for proactive dialogues: Clarification, target-guided, and non-collaboration.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Prompt- ing and evaluating large language models for proactive dialogues: Clarification, target-guided, and non-collaboration

Reference 26

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source=pdf_text observed=2026-08-05T17:39:20.639588Z digest=sha256:b8f63681e1a7bf9c1c6022f3c427fd7296467d64f233eb347624da805b9ad28f

Observation 61c2836c-e3e3-47ee-8d72-e2d23d27def9 · outbound

This paper cites Rephrase and Respond: Let Large Language Models Ask Better Questions for Themselves.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Rephrase and Respond: Let Large Language Models Ask Better Questions for Themselves

Reference 27

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Observation ec3ac4a0-172a-47fb-8cea-e4af6b59bd5d · outbound

This paper cites Towards Measuring the Representation of Subjective Global Opinions in Language Models.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Towards Measuring the Representation of Subjective Global Opinions in Language Models

Reference 28

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source=pdf_text observed=2026-08-05T17:39:20.917417Z digest=sha256:599a5c89d384a03faf5328818871cc14f5fdf90aca82cf9531581d190a7a3c0e

Observation faacd8ce-b9aa-430d-935f-7afa3d8e33ca · outbound

This paper cites doi: 10.18653/v1/2023.findings-emnlp.711.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting doi: 10.18653/v1/2023.findings-emnlp.711

Reference 29

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source=pdf_text observed=2026-08-05T17:39:20.728785Z digest=sha256:cdb114f9848811114f63bde68bcb192a387688ef4539fa42a6d727c138bdd9d2

Observation 6e4f70b8-77a8-46e1-9601-086eb494ed7c · outbound

This paper cites GPTScore: Evaluate as You Desire.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting GPTScore: Evaluate as You Desire

Reference 30

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source=pdf_text observed=2026-08-05T17:39:21.093352Z digest=sha256:4a033668bbfdadf9e09d66816384f32d4dc681f8b4da1a627a5e7c2c77dcbefe

Observation fd96f7e0-236f-40e8-bd65-ebee4df14b38 · outbound

This paper cites Retrieval-Augmented Generation for Large Language Models: A Survey.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Retrieval-Augmented Generation for Large Language Models: A Survey

Reference 31

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source=pdf_text observed=2026-08-05T17:39:21.201660Z digest=sha256:5147359f3e3a3e7379a072dbb253ff5f024884d56404e635342290efb47cf6c4

Observation 8c120169-a528-4e09-a5ac-24eaa825d7b2 · outbound

This paper cites On the comparative and absolute readings of superlatives, 2000.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting On the comparative and absolute readings of superlatives, 2000

Reference 32

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Observation e05dd944-d6ad-4e25-a8f0-2c9ec91ae341 · outbound

This paper cites an unresolved cited work.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Unresolved cited work

Reference 33

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Observation 95481abd-5c44-4b94-90d5-4066919c29ea · outbound

This paper cites Polysemy—Evidence from linguistics, behavioral science, and contextualized language models.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Polysemy—Evidence from linguistics, behavioral science, and contextualized language models

Reference 34

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Observation 8a537a21-4b4f-4bb9-ab21-50c8fa64b571 · outbound

This paper cites The kl-ucb algorithm for bounded stochastic bandits and beyond,.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting The kl-ucb algorithm for bounded stochastic bandits and beyond,

Reference 35

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source=pdf_text observed=2026-08-05T17:39:21.271987Z digest=sha256:a8147557e699dab517f04fda52b049e8d6e45eff78e23f98071fc0df44915ed1

Observation c5ed321f-ac15-4e7f-ac7f-ebf2bdeb2df8 · outbound

This paper cites Measuring massive multitask language understanding.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Measuring massive multitask language understanding

Reference 36

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source=pdf_text observed=2026-08-05T17:39:21.692811Z digest=sha256:c18c2c51174adcfa1842357e30c179eceb190859acb5b3f493dbdca500d787da

Observation b3b6ed05-5f62-4e40-bc51-352fcf0c703e · outbound

This paper cites Leveraging Affirmative Interpretations from Negation Improves Natural Language Understanding.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Leveraging Affirmative Interpretations from Negation Improves Natural Language Understanding

Reference 37

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

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Observation 81d260e2-ca1d-4006-9628-e03c79f113ac · outbound

This paper cites A survey on hallucination in large language models: Principles, taxonomy, challenges, and open questions.ACM Transactions on Information Systems, 43(2):1–55, January 2025.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting A survey on hallucination in large language models: Principles, taxonomy, challenges, and open questions.ACM Transactions on Information Systems, 43(2):1–55, January 2025

Reference 38

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Observation 29ff7218-41f0-44af-b04f-d711ceec1c53 · outbound

This paper cites Approximation to bayes risk in repeated play, 1957.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Approximation to bayes risk in repeated play, 1957

Reference 39

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source=pdf_text observed=2026-08-05T17:39:21.593893Z digest=sha256:97874e7700fd201ed5430a26067cc34f5d9cc2971f15ff76fe1ea9710889130a

Observation 2ab2ae41-7435-4679-8227-0b7df1b7e8b2 · outbound

This paper cites Towards mitigating LLM hallucination via self reflection.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Towards mitigating LLM hallucination via self reflection

Reference 40

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source=pdf_text observed=2026-08-05T17:39:22.019801Z digest=sha256:6b3a68555ea8f7b745913635fbfcbe3d2afeb305ba3ef30e3741dae0c9cdd2cf

Observation 13022928-b69a-49c9-9fd6-2151ebc62a2f · outbound

This paper cites Towards mitigating hallucination in large language models via self-reflection, 2023.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Towards mitigating hallucination in large language models via self-reflection, 2023

Reference 41

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source=pdf_text observed=2026-08-05T17:39:22.144522Z digest=sha256:8b014bdcb4dbcf51c03e7843c30706d98bd8a764b95a2c90aaad99402fb730cf

Observation a50026f2-3946-4563-a8c4-4e0bca440f0f · outbound

This paper cites FollowBench: A Multi-level Fine-grained Constraints Following Benchmark for Large Language Models.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting FollowBench: A Multi-level Fine-grained Constraints Following Benchmark for Large Language Models

Reference 42

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source=pdf_text observed=2026-08-05T17:39:22.252419Z digest=sha256:d8d61094fa1d260f8daed864c82ca4b9b769ab7a9a81d4c6df5913445aa87520

Observation e1789b62-5738-4b25-9a28-c9fdd484c21b · outbound

This paper cites Adaptive-RAG: Learning to adapt retrieval-augmented large language models through question complexity.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Adaptive-RAG: Learning to adapt retrieval-augmented large language models through question complexity

Reference 43

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source=pdf_text observed=2026-08-05T17:39:21.978752Z digest=sha256:a0e2c388efe55cf05eee83759117279d11cbdf6ee96d5fb3c5677ab155f9dad6

Observation cc0ae814-9971-4b11-8f5b-74ab260a4347 · outbound

This paper cites TriviaQA: A Large Scale Distantly Supervised Challenge Dataset for Reading Comprehension.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting TriviaQA: A Large Scale Distantly Supervised Challenge Dataset for Reading Comprehension

Reference 44

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source=pdf_text observed=2026-08-05T17:39:22.417385Z digest=sha256:45a4f247f548f16eaa497523c6b5da9c566266e8d080f9017d607bb9628b4ba3

Observation bb37ee1d-acf3-4fda-a6d5-3a43def8d8ef · outbound

This paper cites doi: 10.18653/v1/2023.findings-emnlp.123.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting doi: 10.18653/v1/2023.findings-emnlp.123

Reference 45

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source=pdf_text observed=2026-08-05T17:39:22.074483Z digest=sha256:29720f9dbc9e55c6a779653bbdcb5e00046496119fd0eb79e85787b85f57bf4d

Observation c110759d-f20f-42c1-b7dd-8e1079e4bf60 · outbound

This paper cites Scope ambiguities in large language models.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Scope ambiguities in large language models

Reference 46

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source=pdf_text observed=2026-08-05T17:39:22.525120Z digest=sha256:efb058118f88448f4671677bf63a386b6da551aa2fbefb71c101725d4632cdd8

Observation 2d85da35-3c60-45c3-8c87-dac29e0057e9 · outbound

This paper cites Presupposition: What went wrong?, 2016.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Presupposition: What went wrong?, 2016

Reference 47

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source=pdf_text observed=2026-08-05T17:39:22.598934Z digest=sha256:2c9b381f6003a13773de6ab46c38607d024a118a47d3dd157f4ec11f25543254

Observation 607a298f-2bc2-49b1-a434-6fb0103bd366 · outbound

This paper cites an unresolved cited work.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Unresolved cited work

Reference 48

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source=pdf_text observed=2026-08-05T17:39:22.355525Z digest=sha256:81c0c9218b59a2bfdaad74615d35c2ebfa5b783517cd024a1904fb68e86c2fa3

Observation 54178fd2-ca88-4281-88ae-2039f32215e9 · outbound

This paper cites Enriching rare word representations in neural language models by embedding matrix augmentation.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Enriching rare word representations in neural language models by embedding matrix augmentation

Reference 49

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source=pdf_text observed=2026-08-05T17:39:22.756044Z digest=sha256:67a29be58034eddd234bddb9101d6aa594b14737f9bc2746183300dd2f63abcb

Observation d3ee4595-f4e2-48bc-9179-9fbea772de6e · outbound

This paper cites Efficient algorithms for online decision problems.Journal of Computer and System Sciences, 71(3):291–307, 2005.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Efficient algorithms for online decision problems.Journal of Computer and System Sciences, 71(3):291–307, 2005

Reference 50

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source=pdf_text observed=2026-08-05T17:39:22.478506Z digest=sha256:a480dfa71942d1b6009552719d2e7737105038d821181dcc0c98e489fe529dd6

Observation e6a9b0f0-5647-4b9b-a459-d7bde0ce0e91 · outbound

This paper cites an unresolved cited work.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Unresolved cited work

Reference 51

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source=pdf_text observed=2026-08-05T17:39:22.885738Z digest=sha256:251dc483c9cb428312f6de70e5829b07ca646cc58c5587e4159084a04439089a

Observation cd187c17-0a12-4971-bdb1-13dc04f6b5e7 · outbound

This paper cites Bandit algorithms.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Bandit algorithms

Reference 52

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source=pdf_text observed=2026-08-05T17:39:22.930731Z digest=sha256:004d877ae560c3ecb3b156437e5df86833f2164aa8c7017a66cb405f456acdff

Observation 5915e119-1083-448c-924d-86b6df2f5ebf · outbound

This paper cites Negated and misprimed probes for pretrained language models: Birds can talk, but cannot fly.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Negated and misprimed probes for pretrained language models: Birds can talk, but cannot fly

Reference 53

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source=pdf_text observed=2026-08-05T17:39:22.680466Z digest=sha256:b21199cc56c92748eb20f702ee79e13730532adeb04a33b30e52f3b37b3daeb2

Observation c3202d8a-5122-4333-bd42-8945237118f7 · outbound

This paper cites Factuality Enhanced Language Models for Open-Ended Text Generation.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Factuality Enhanced Language Models for Open-Ended Text Generation

Reference 54

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source=pdf_text observed=2026-08-05T17:39:23.081971Z digest=sha256:8ba64f0d794b206328ced1249f11fda91437059bb752d3bc6b2384c222f07a51

Observation c3df1684-876a-4abe-800b-3d3d39376b89 · outbound

This paper cites Aligning language models to explicitly handle ambiguity.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Aligning language models to explicitly handle ambiguity

Reference 55

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source=pdf_text observed=2026-08-05T17:39:22.835975Z digest=sha256:cff49100897eaa23443cf13992f117911ad2a68e531491b9730c5f164e2079b8

Observation 5daa8cc4-1a7d-4408-8687-d715c3702d38 · outbound

This paper cites Retrieval-Augmented Generation for Knowledge-Intensive NLP Tasks.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Retrieval-Augmented Generation for Knowledge-Intensive NLP Tasks

Reference 56

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source=pdf_text observed=2026-08-05T17:39:23.217040Z digest=sha256:f6162a30b28d20dcbe104a2958109d64e91fa19191132512927dc07553fbd51b

Observation 3234a85f-b5c8-493c-96b9-98b49a9c935c · outbound

This paper cites Long-context LLMs Struggle with Long In-context Learning.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Long-context LLMs Struggle with Long In-context Learning

Reference 57

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source=pdf_text observed=2026-08-05T17:39:23.292009Z digest=sha256:b0f9f99150ebcf852d262bee9ddf225316c101d9cab97578b059891c98a1c7a2

Observation 1fefe458-6400-437f-b0d9-872d7f588894 · outbound

This paper cites RLAIF vs. RLHF: Scaling Reinforcement Learning from Human Feedback with AI Feedback.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting RLAIF vs. RLHF: Scaling Reinforcement Learning from Human Feedback with AI Feedback

Reference 58

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source=pdf_text observed=2026-08-05T17:39:23.007769Z digest=sha256:b9d7e43b748a40a49b3f30d23a84fc5953deedb506b4d84a2a4ae9bd971c50a4

Observation 0300c5ee-f256-4ad7-997a-c9d94cc08b40 · outbound

This paper cites A comparison of most-to-least and least-to-most prompting on the acquisition of solitary play skills, 2008.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting A comparison of most-to-least and least-to-most prompting on the acquisition of solitary play skills, 2008

Reference 59

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source=pdf_text observed=2026-08-05T17:39:23.422411Z digest=sha256:2a869ef4f31d7538166fede55269818c87e485ccee1c38aa7f344b051d456722

Observation 6e9d043e-2990-401e-8d52-d80b23ed5dad · outbound

This paper cites Levinson.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Levinson

Reference 60

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source=pdf_text observed=2026-08-05T17:39:23.143599Z digest=sha256:7eb84ab3ca9c141017e431d7d12c7ef44cb2231a9823cbb48540195a1353d5b2

Observation 9b85b626-2ed9-44b4-a9ed-d7141cf3f416 · outbound

This paper cites ORANGE: a method for evaluating automatic evaluation metrics for machine translation.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting ORANGE: a method for evaluating automatic evaluation metrics for machine translation

Reference 61

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source=pdf_text observed=2026-08-05T17:39:23.541308Z digest=sha256:fa0e6a82f382458da5d09909c07242ff0407f75605a93fe58f9aa6151ecb1316

Observation f7dbcc78-4476-4eda-905b-956286c4ab1a · outbound

This paper cites TruthfulQA: Measuring how models mimic human falsehoods.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting TruthfulQA: Measuring how models mimic human falsehoods

Reference 62

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source=pdf_text observed=2026-08-05T17:39:23.630297Z digest=sha256:b69b95580134ab6cf95e0edecc1d18ae5d1dcafec377bbd9d1f4343ca5301fce

Observation b485999e-b648-4a9f-9df2-dd6221a6a049 · outbound

This paper cites ReMax: A Simple, Effective, and Efficient Reinforcement Learning Method for Aligning Large Language Models.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting ReMax: A Simple, Effective, and Efficient Reinforcement Learning Method for Aligning Large Language Models

Reference 63

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source=pdf_text observed=2026-08-05T17:39:23.364289Z digest=sha256:37f4f6d1e7f248dc04c3582983fc3ca58fa774a87d99eea18951ad6fb8ca5762

Observation 25da9c17-4c3c-41b7-b4b9-4a59e3bbb75a · outbound

This paper cites Query rewriting via large language models, 2024.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Query rewriting via large language models, 2024

Reference 64

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source=pdf_text observed=2026-08-05T17:39:23.772748Z digest=sha256:4d699fb248c1aed76842803e5f78527eaa29211b2039f196e38ddd5d3e1d858c

Observation ed22c21f-2da6-42b7-9066-eb2cc02017c6 · outbound

This paper cites ROUGE: A package for automatic evaluation of summaries.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting ROUGE: A package for automatic evaluation of summaries

Reference 65

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source=pdf_text observed=2026-08-05T17:39:23.487144Z digest=sha256:c50cb8e131c4e92f18f34cfa12250693da6b73d4cac378ade3570fe2e5350e80

Observation 10dc90c6-5468-49f5-97d6-16b592e6b486 · outbound

This paper cites G-eval: Nlg evaluation using gpt-4 with better human alignment, 2023.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting G-eval: Nlg evaluation using gpt-4 with better human alignment, 2023

Reference 66

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source=pdf_text observed=2026-08-05T17:39:23.914501Z digest=sha256:ea18daf557d3919d64c9ac37c54da729851caff07aa7837fe71fcb0cbcd56973

Observation 64974af3-e44d-4121-be78-84edcb189180 · outbound

This paper cites Subjective topic meets LLMs: Unleashing comprehensive, reflective and creative thinking through the negation of negation.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Subjective topic meets LLMs: Unleashing comprehensive, reflective and creative thinking through the negation of negation

Reference 67

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Observation 620c84be-c632-46e4-a7bd-e324b066a0d4 · outbound

This paper cites We‘re afraid language models aren‘t modeling ambiguity.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting We‘re afraid language models aren‘t modeling ambiguity

Reference 68

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source=pdf_text observed=2026-08-05T17:39:23.701499Z digest=sha256:2520f7bebe4f6213408ecb91223a0e74e0cfde99ca1548f7921e8cf4116ba332

Observation 0a4daa08-e612-4192-ad78-81d8f9984de2 · outbound

This paper cites Self-Refine: Iterative Refinement with Self-Feedback.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Self-Refine: Iterative Refinement with Self-Feedback

Reference 69

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source=pdf_text observed=2026-08-05T17:39:24.158300Z digest=sha256:bc7c880441a72faf84d5a38ca2aee371dfbfef056e86e61f8434c6fd26f13cb4

Observation 659dda07-5c23-4d30-90e9-dc5560f6b3c6 · outbound

This paper cites Lost in the Middle: How Language Models Use Long Contexts.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Lost in the Middle: How Language Models Use Long Contexts

Reference 70

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source=pdf_text observed=2026-08-05T17:39:23.841547Z digest=sha256:57788f1095227fb2c95fd4424f64ad4847dff7b9b32931802727e656add3386f

Observation a2dd490d-3cca-4dd1-a32d-0a9d138e49ab · outbound

This paper cites A Survey of Algorithms and Analysis for Adaptive Online Learning.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting A Survey of Algorithms and Analysis for Adaptive Online Learning

Reference 71

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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=2026-08-05T17:39:24.362913Z digest=sha256:6a7c11dd4ae8217e729e97cd66b3f797065697fe4c8fcd9c9dc1b08b22852a3b

Observation aa22a312-f91d-45dd-90a4-821ca35fb469 · outbound

This paper cites Can a suit of armor conduct electricity? a new dataset for open book question answering.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Can a suit of armor conduct electricity? a new dataset for open book question answering

Reference 72

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source=pdf_text observed=2026-08-05T17:39:24.467282Z digest=sha256:73d5fded6b9623fa7a14552d075aa9f5a849ccc7b80837f2f63e781100e6f9e0

Observation 50b772a0-7df5-49dd-ae53-36e7f4c11f3b · outbound

This paper cites Query Rewriting for Retrieval-Augmented Large Language Models.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Query Rewriting for Retrieval-Augmented Large Language Models

Reference 73

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Observation 8f3d7f38-714f-4d09-b8d0-dcee71b7aa0d · outbound

This paper cites Efficient and robust algorithms for adversarial linear contextual bandits.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Efficient and robust algorithms for adversarial linear contextual bandits

Reference 74

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Observation b091dda1-68c7-4a15-b1ff-c9615815a608 · outbound

This paper cites RaFe: Ranking feedback improves query rewriting for RAG.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting RaFe: Ranking feedback improves query rewriting for RAG

Reference 75

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Observation 04b5c7c5-cddd-4b04-8a40-12f8c0c9bcc4 · outbound

This paper cites Openai o3 and o4-mini system card, 2025.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Openai o3 and o4-mini system card, 2025

Reference 76

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source=pdf_text observed=2026-08-05T17:39:24.803329Z digest=sha256:5a1caf2075f486d737ad803170e8df22e3039ede28703185c3be410eebe1854d

Observation 188f59cd-661b-47ea-bbd3-f55b756191d3 · outbound

This paper cites (more) efficient reinforcement learning via posterior sampling.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting (more) efficient reinforcement learning via posterior sampling

Reference 77

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source=pdf_text observed=2026-08-05T17:39:24.889250Z digest=sha256:0cf4676b5fe70ec234bf7e16d17e04823dd16a426f4be02b0a70db7820f64ee7

Observation ee886ae3-9d53-4f56-9063-a1adf05750c3 · outbound

This paper cites Controlled Decoding from Language Models.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Controlled Decoding from Language Models

Reference 78

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source=pdf_text observed=2026-08-05T17:39:24.553946Z digest=sha256:08946dba468fc358620d837414523964781601f00a9ec4a00f69805010813761

Observation 44421041-f878-42e6-a327-f5741790aea0 · outbound

This paper cites Bleu: a method for automatic evaluation of machine translation.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Bleu: a method for automatic evaluation of machine translation

Reference 79

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source=pdf_text observed=2026-08-05T17:39:25.110036Z digest=sha256:a96119a08b4f4ae06ab0a4b98ae4a72c60338cf64ad928375415b0971c352b9a

Observation 7909356c-8ae8-42b0-8f80-029be448788b · outbound

This paper cites Task-oriented query reformulation with reinforcement learn- ing.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Task-oriented query reformulation with reinforcement learn- ing

Reference 80

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Observation 5cb4a37e-ead7-4565-bd1e-30204632d991 · outbound

This paper cites Superlatives in Context: Modeling the Implicit Semantics of Superlatives.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Superlatives in Context: Modeling the Implicit Semantics of Superlatives

Reference 81

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Observation febe31af-9e87-41d2-838b-15f8858ab3c3 · outbound

This paper cites Mutual-enhanced incongruity learning network for multi-modal sarcasm detection.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Mutual-enhanced incongruity learning network for multi-modal sarcasm detection

Reference 82

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Observation aab209c7-7c02-4474-9782-98b1f961922d · outbound

This paper cites Training language models to follow instructions with human feedback.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Training language models to follow instructions with human feedback

Reference 83

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source=pdf_text observed=2026-08-05T17:39:25.023047Z digest=sha256:1d42a39df928fcc8341f1dbfd584a5d02092bbf93cc172489f9dfe2bbae27bd3

Observation dd104a64-f63c-4797-bc01-311bb323449a · outbound

This paper cites Squad: 100,000+ questions for machine comprehension of text, 2016.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Squad: 100,000+ questions for machine comprehension of text, 2016

Reference 84

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source=pdf_text observed=2026-08-05T17:39:25.554375Z digest=sha256:976c0ba071376b32fd0be0e2684c7451ebf02edcd17dd18593eeb8885b3bac91

Observation 219666c5-dcfa-4806-a9c6-edd302189d00 · outbound

This paper cites Peters, Mark Neumann, Mohit Iyyer, Matt Gardner, Christopher Clark, Kenton Lee, and Luke Zettlemoyer.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Peters, Mark Neumann, Mohit Iyyer, Matt Gardner, Christopher Clark, Kenton Lee, and Luke Zettlemoyer

Reference 85

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source=pdf_text observed=2026-08-05T17:39:25.199857Z digest=sha256:4d4f9be3fdbdc66b09a499e07a56e9d7ac0edfb93c620770dfccea2ee0fce296

Observation 49159a76-f277-4627-9d5f-e47f2db93759 · outbound

This paper cites Continual learning in environments with polynomial mixing times.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Continual learning in environments with polynomial mixing times

Reference 86

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source=pdf_text observed=2026-08-05T17:39:25.753685Z digest=sha256:287021f1250bb02cf358d0ffd2426610924d9fe719024a52d229363bfceddb6e

Observation 9282f575-03b4-4e31-9e75-a28f85d08d26 · outbound

This paper cites Improving word sense disambiguation in neural machine translation with salient document context, 2023.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Improving word sense disambiguation in neural machine translation with salient document context, 2023

Reference 87

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source=pdf_text observed=2026-08-05T17:39:25.865349Z digest=sha256:7ede1390a2ad9a92530c994e9cc24bd82be30ac50505c2029009572f5332f70d

Observation 0fef88f5-2c2b-4e3e-b0e4-542ca84b09d3 · outbound

This paper cites Language models are unsupervised multitask learners.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Language models are unsupervised multitask learners

Reference 88

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source=pdf_text observed=2026-08-05T17:39:25.447077Z digest=sha256:52d605b9b3f3b6aad29931c80e17f735ca339e2fdf26fc7a1207b7ce009c4ebf

Observation c3a0bbc9-293a-4529-b790-72a209d2d462 · outbound

This paper cites Sadock and Arnold M.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Sadock and Arnold M

Reference 89

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source=pdf_text observed=2026-08-05T17:39:26.009087Z digest=sha256:ad6c665971212bd387e6bbeeee5bdf593d03ffff2db4f5cb80e8ee3d950bfd0e

Observation e4f20eac-bf6e-4de0-a6a9-d3294c8a19ea · outbound

This paper cites Know what you don’t know: Unanswerable questions for squad, 2018.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Know what you don’t know: Unanswerable questions for squad, 2018

Reference 90

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source=pdf_text observed=2026-08-05T17:39:25.639311Z digest=sha256:96c9bcd66f7c6a3cb9e4569b77941fb09f1a926d8648c0aa05afcd1d0742216e

Observation b421ab36-cfb3-4a9e-a3b2-65de25e6ac2b · outbound

This paper cites Rare Words: A Major Problem for Contextualized Embeddings And How to Fix it by Attentive Mimicking.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Rare Words: A Major Problem for Contextualized Embeddings And How to Fix it by Attentive Mimicking

Reference 91

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Observation 62dda5f6-2cdb-497c-908c-c15ed8b1e970 · outbound

This paper cites Monotone operators and the proximal point algorithm.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Monotone operators and the proximal point algorithm

Reference 93

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source=pdf_text observed=2026-08-05T17:39:25.952113Z digest=sha256:446fce5fbbe1241e59aba34eaad31edbdb723f9f52fcef18a11adb2d7ab5481e

Observation ae30aacf-ff62-473b-9001-bdb4cb481525 · outbound

This paper cites Anaphoric reference to events and actions: A representation and its advantages.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Anaphoric reference to events and actions: A representation and its advantages

Reference 94

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source=pdf_text observed=2026-08-05T17:39:26.415782Z digest=sha256:5d127cd10583d2f3d567832ec1fba6aeeeefb3a503c6911b3d92d4fddf826ba6

Observation b83584fd-7cc9-4b41-b709-5d77904f6c8e · outbound

This paper cites Van Der Sandt.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Van Der Sandt

Reference 95

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source=pdf_text observed=2026-08-05T17:39:26.077225Z digest=sha256:2895ea6f4f78a502077175e76ea7b3ba4ffb70a36bf6b8f1ba11826da31014c7

Observation 0412d25d-b093-4145-86cf-13940b831981 · outbound

This paper cites Online learning and online convex optimization.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Online learning and online convex optimization

Reference 96

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source=pdf_text observed=2026-08-05T17:39:26.559529Z digest=sha256:47256435ccbedea7655aa4631a9cdbfa203c0a6a3d090d33dcd38796da2834c5

Observation 02379f27-dd18-4737-8aad-85ad0e5e3291 · outbound

This paper cites DeepSeekMath: Pushing the Limits of Mathematical Reasoning in Open Language Models.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting DeepSeekMath: Pushing the Limits of Mathematical Reasoning in Open Language Models

Reference 97

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source=pdf_text observed=2026-08-05T17:39:26.622903Z digest=sha256:0c917546e64b7f27daa984034964e248b706249ceb8d53af65916043b540c97a

Observation 6f4536d9-99af-491f-9e13-44329c25cf12 · outbound

This paper cites Proximal Policy Optimization Algorithms.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Proximal Policy Optimization Algorithms

Reference 98

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source=pdf_text observed=2026-08-05T17:39:26.337112Z digest=sha256:548640b05275f39d800c64480e16df612eb7a55ec0a593dc4886d4cd88e958a8

Observation 51bd7ba4-fe5a-4f8a-a648-68fb37e1d9c6 · outbound

This paper cites Follow the Perturbed Leader: Optimism and Fast Parallel Algorithms for Smooth Minimax Games.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Follow the Perturbed Leader: Optimism and Fast Parallel Algorithms for Smooth Minimax Games

Reference 99

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Observation d3d89d0c-f1eb-4bd3-9dad-92c0a07d17d7 · outbound

This paper cites Entity-aware ELMo: Learning Contextual Entity Representation for Entity Disambiguation.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Entity-aware ELMo: Learning Contextual Entity Representation for Entity Disambiguation

Reference 100

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source=pdf_text observed=2026-08-05T17:39:26.499653Z digest=sha256:a46860d7cbac605f0da281d7e5c92bd559fe9048cb929062ddcb581a7c1b27f4

Observation a4fadbc2-4881-4e56-8415-0d17a88005d9 · outbound

This paper cites Thompson.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Thompson

Reference 101

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source=pdf_text observed=2026-08-05T17:39:26.999593Z digest=sha256:3c696bf85f4b7b3796b2974f35a55b215a2bc09f76139caa349bf1821cfe5f59

Observation dd06d9fa-a88b-429c-a706-b71a3951a4ae · outbound

This paper cites Ai hallucinations: Chatgpt and google’s challenges.

QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting Ai hallucinations: Chatgpt and google’s challenges

Reference 102

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source=pdf_text observed=2026-08-05T17:39:27.082552Z digest=sha256:9bf10b2ba6e09829ed51bb56e29c0e470675c8932b789e9132b191099254e5b2

Pith citing papers

Observation 8a817b18-f6c0-4bfe-a4f5-3c781ad1ee16 · inbound

Diagnosing and Repairing Factual Errors in RAG under Budget Constraints cites this paper.

Diagnosing and Repairing Factual Errors in RAG under Budget Constraints QueryBandits for Hallucination Mitigation: Exploiting Semantic Features for No-Regret Rewriting

Reference 7

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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=2026-06-30T07:18:20.092121Z digest=sha256:67cc0278bf8415141840bd4927e1e65c88cfe58d1540f7273958dce3bfd534df