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Paper Citation Record · LEDGER

Improving LLMs via Validator-to-Generator Alignment

As of 23 August 2026, this Paper Citation Record lists 86 of 86 outbound references and 0 inbound Pith citation observations for arXiv:2607.02668.

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

pith.paper-citation-record.v1
2607.02668 v1

Coverage vector

measured 86 of 86 reference resolution

Typed states for the displayed outbound observations.

Source: paper_references, paper_reference_links, observed 2026-07-12T07:52:00.900202Z

measured 86 of 86 standing notices

One-hop event checks from named stored sources.

Source: scholarly_work_events, retraction_status_cache, observed 2026-08-23T06:30:58.430688+00:00

measured 0 of 0 inbound itemization

Pith citing papers itemized under the disclosed page cap.

Source: paper_references, paper_reference_links

measured 0 of 1 external citation measurements

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

Source: cited_works

Reference resolution

86 of 86 outbound references displayed

  • verified exact0
  • verified fuzzy0
  • unresolved85
  • parse uncertain0
  • malformed identifier1
  • metadata mismatch0

External citation measurements

No source-named external measurement is stored.

Outbound references

Observation dd351bd6-d2ee-438c-8d69-e46974e6710d · outbound

This paper cites Tree of Thoughts: Deliberate Problem Solving with Large Language Models , booktitle =.

Improving LLMs via Validator-to-Generator Alignment Tree of Thoughts: Deliberate Problem Solving with Large Language Models , booktitle =

Reference 1

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:f5ebe481aea133b95fa9f03a3e9c9b22890daf055cb1c25de29854bba460488a

Observation edac1b2e-e389-4b8d-8ffa-050d50913610 · outbound

This paper cites The Tenth International Conference on Learning Representations,.

Improving LLMs via Validator-to-Generator Alignment The Tenth International Conference on Learning Representations,

Reference 2

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:fbfb2b49d55c37ceddbdc0a536345692dcee1b536fef1bcacdf8bfca3ef92243

Observation e9f6cf9f-d7a8-458a-8e94-a802318a8e1d · outbound

This paper cites The Thirteenth International Conference on Learning Representations,.

Improving LLMs via Validator-to-Generator Alignment The Thirteenth International Conference on Learning Representations,

Reference 4

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:ee823dba3dba810be9c3fbe5268cfcc6637571b5ad347e7f96aaf58c30cdaff3

Observation 76c2a2a9-ec42-4618-82ab-19387ef1fb5c · outbound

This paper cites Contrastive Preference Optimization: Pushing the Boundaries of.

Improving LLMs via Validator-to-Generator Alignment Contrastive Preference Optimization: Pushing the Boundaries of

Reference 5

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:5f8315cc9ac0a9b105df34853962279cc4f129c568e9b891e8f3602e7865cd8e

Observation 07429360-1aba-4954-a9b0-8f96b4a729e2 · outbound

This paper cites Behavior Research Methods , volume=.

Improving LLMs via Validator-to-Generator Alignment Behavior Research Methods , volume=

Reference 6

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:ae74bcbebda432a42fa914e6db4dd9e8c1aa663ef1ab5c6b59858a9debf83d9f

Observation 30903384-858d-43ad-ac60-797bc4cba5f7 · outbound

This paper cites Behavior Research Methods , volume=.

Improving LLMs via Validator-to-Generator Alignment Behavior Research Methods , volume=

Reference 7

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:b52e34e747b1f47f9f21922f8c3f60e7b7ed3248f0098ed161c7b25dd8d56dcf

Observation 006fe07d-6a7c-4ace-8ea3-3dac3c86ea0b · outbound

This paper cites Behavior research methods , volume=.

Improving LLMs via Validator-to-Generator Alignment Behavior research methods , volume=

Reference 8

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:ef8d9eddf1a582e40e87982563dd606ca03a4922e8b5c5b8cad4a083740df886

Observation e1af0d82-61f3-452d-9a73-31a824aabc8d · outbound

This paper cites Journal of memory and language , volume=.

Improving LLMs via Validator-to-Generator Alignment Journal of memory and language , volume=

Reference 9

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:bb2cc12f35a000eef9b2c812c26cb7a57b9f5fbf757f43e1ecc3b291801197ea

Observation 9c18e259-13af-438d-86ed-3194bfe9aefc · outbound

This paper cites Behavior Research Methods & Instrumentation , volume=.

Improving LLMs via Validator-to-Generator Alignment Behavior Research Methods & Instrumentation , volume=

Reference 10

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:f53d74cfb56b7df36e617405d8583f6a2eb6d9ce52a83181fdb4c3e39c55dc0c

Observation 99512131-f211-43b0-ae55-99646ce99a34 · outbound

This paper cites Hwang and Liwei Jiang and Jillian Fisher and Abhilasha Ravichander and Khyathi Raghavi Chandu and Benjamin Newman and Pang Wei Koh and Allyson Ettinger and Yejin Choi , title =.

Improving LLMs via Validator-to-Generator Alignment Hwang and Liwei Jiang and Jillian Fisher and Abhilasha Ravichander and Khyathi Raghavi Chandu and Benjamin Newman and Pang Wei Koh and Allyson Ettinger and Yejin Choi , title =

Reference 11

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:1b80ebebb5b0c80ab7770e61c5c4bed173634dbea2c8b787ec940278127d94ee

Observation 1465a2f6-3549-4b49-8bea-a61bb8dfbcd8 · outbound

This paper cites an unresolved cited work.

Improving LLMs via Validator-to-Generator Alignment Unresolved cited work

Reference 12

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:94b5457711721f02461ea8f7d4f7dc3b3dff3d1d5d3f58db0d017cd69d7e3870

Observation abcf3c91-c96b-4c3c-b3bc-e58dc6d48103 · outbound

This paper cites Proceedings of the Conference on Language Modeling (COLM) , year =.

Improving LLMs via Validator-to-Generator Alignment Proceedings of the Conference on Language Modeling (COLM) , year =

Reference 13

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:139205ba87c4a913dd10a2f6cb8ac16cbd909268c20e8e04da06d5241778aecf

Observation bf6029e0-8ffc-41de-b108-877feb2e884a · outbound

This paper cites The Twelfth International Conference on Learning Representations,.

Improving LLMs via Validator-to-Generator Alignment The Twelfth International Conference on Learning Representations,

Reference 17

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:71c24616a215a83897646b8effb5ea5c4ce601a2f754eb535aba563eebbd7133

Observation 65f0f663-8e69-4375-8226-657c54e14206 · outbound

This paper cites , author=.

Improving LLMs via Validator-to-Generator Alignment , author=

Reference 18

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:1a48692792c9c6e3e6b8c03ea170d3a62ce98f02d26ba3a8f3d8d7ca63835ebd

Observation 0e8cf02b-9f9a-4e35-8824-106191cbed0e · outbound

This paper cites Pattern Recognit.

Improving LLMs via Validator-to-Generator Alignment Pattern Recognit

Reference 19

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:2843fb3ca7a93d67a5f79c0f61f4f49586cad62088214f418a310cc9c8f35ae9

Observation 3d7f0ce8-a2f8-4e60-a5e7-0f278e3cdd23 · outbound

This paper cites A mbig QA : Answering Ambiguous Open-domain Questions.

Improving LLMs via Validator-to-Generator Alignment A mbig QA : Answering Ambiguous Open-domain Questions

Reference 20

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:fab161de6e9a81487692a9340f708da255f7a34b7d6d8e30efe31ea6ed07d362

Observation 8892eb72-c96b-403b-9227-04d8b20873dd · outbound

This paper cites an unresolved cited work.

Improving LLMs via Validator-to-Generator Alignment Unresolved cited work

Reference 23

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:52d5f0b259295e4ae10b8dd9e5a75b1aa876e4fd83a3159d69c30d9cf6bb28cd

Observation b5970559-0b72-4041-b0f9-9f8bfdb30ce6 · outbound

This paper cites Journal of experimental psychology: General , volume=.

Improving LLMs via Validator-to-Generator Alignment Journal of experimental psychology: General , volume=

Reference 24

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:a7db25e0e6c51bf9c349230ee07a27e8298bae92cc005ac871c3b14ca0c6afeb

Observation d3594ba9-5f2f-4ad6-9607-ae7dbdf13e77 · outbound

This paper cites Hanjie and Runzhe Yang and Karthik R.

Improving LLMs via Validator-to-Generator Alignment Hanjie and Runzhe Yang and Karthik R

Reference 25

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:b0171ca4cafa6725c07acc65fedc974205e3d2dfc08cae42a45b083da98bb4f8

Observation f35f491c-fb87-4f2c-be80-2e989aa0fb9e · outbound

This paper cites Manning and Stefano Ermon and Chelsea Finn , editor =.

Improving LLMs via Validator-to-Generator Alignment Manning and Stefano Ermon and Chelsea Finn , editor =

Reference 26

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:2ec6eb383371f6cf205998206d666aea3a79872ae4c881749c0cfad1e97bf4dd

Observation e0214fce-f6ea-40f5-a84b-2900844358ba · outbound

This paper cites an unresolved cited work.

Improving LLMs via Validator-to-Generator Alignment Unresolved cited work

Reference 27

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:1ea2966044ee99bf153658b585cde32aa27b63bf6b450c9d64d2ce4bf43ea908

Observation a95d61a8-9094-428e-b3e5-5526d8e79eda · outbound

This paper cites Hu and Yelong Shen and Phillip Wallis and Zeyuan Allen.

Improving LLMs via Validator-to-Generator Alignment Hu and Yelong Shen and Phillip Wallis and Zeyuan Allen

Reference 28

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:d5cb27b3d337af4d8217c95fe13b8eeed3e74061b258a6fa1fb635d6692c1515

Observation 7bb83bd1-b720-4f10-97e2-fe883a152a15 · outbound

This paper cites Ziegler and Ryan Lowe and Chelsea Voss and Alec Radford and Dario Amodei and Paul F.

Improving LLMs via Validator-to-Generator Alignment Ziegler and Ryan Lowe and Chelsea Voss and Alec Radford and Dario Amodei and Paul F

Reference 29

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:f2b1fec9479b844f78560aeb835337acdcaacdd516ab5511ad1b9275199b241a

Observation 5a25d0fb-ac4f-4839-ac27-08724052243f · outbound

This paper cites Fine-Tuning Language Models from Human Preferences.

Improving LLMs via Validator-to-Generator Alignment Fine-Tuning Language Models from Human Preferences

Reference 30

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:49b93d1877d446ce14f90de781902b27d47d1e4512ea8ca284cd7a403435a17c

Observation f5d5c59c-4e2d-47ac-8110-56383a505aea · outbound

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

Improving LLMs via Validator-to-Generator Alignment Language Models (Mostly) Know What They Know

Reference 31

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:b8a24380ac60fffdcde9d664237f34060be15983064a23683713ea13a9388852

Observation 0b0ec883-fc7b-4ba4-89b1-7282eef8c260 · outbound

This paper cites Gemma 2: Improving Open Language Models at a Practical Size.

Improving LLMs via Validator-to-Generator Alignment Gemma 2: Improving Open Language Models at a Practical Size

Reference 32

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:e4c649828f5db49091b5e763dacdb432d9059e95f62e3812a3615f0a316f0610

Observation 92d3390d-01e1-4071-b4c1-7e4ead0aba4b · outbound

This paper cites Proceedings of the Conference on Language Modeling (COLM) , url=.

Improving LLMs via Validator-to-Generator Alignment Proceedings of the Conference on Language Modeling (COLM) , url=

Reference 33

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:aaeadb60c1c58af0396548231569c957709353a088d4ced704260f3c7eee3ce0

Observation 3daca1ff-3c09-4cc6-b342-438b8dfa841f · outbound

This paper cites The Twelfth International Conference on Learning Representations,.

Improving LLMs via Validator-to-Generator Alignment The Twelfth International Conference on Learning Representations,

Reference 34

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:20667f5dcaff47a6e0035be68b25cba5ed9f7e905d44cb748346df7ddb5e64be

Observation c634fd4b-ff2c-4706-b7ca-66c13103884f · outbound

This paper cites Inside-Out: Hidden Factual Knowledge in LLMs , booktitle =.

Improving LLMs via Validator-to-Generator Alignment Inside-Out: Hidden Factual Knowledge in LLMs , booktitle =

Reference 35

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:5e4604eb4ed7f350a40adca9e8df41897f2a64cf925de378e157570b979856ff

Observation f11bc678-2518-4305-832a-54546e94018f · outbound

This paper cites The Curious Case of Neural Text Degeneration.

Improving LLMs via Validator-to-Generator Alignment The Curious Case of Neural Text Degeneration

Reference 37

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:ae30b03e98f293644aa7a07a673b28b2f665b75d01a5bc3dea10be0178abddf8

Observation 3ea32063-7211-42ee-9526-4332b37aa201 · outbound

This paper cites A Diversity-Promoting Objective Function for Neural Conversation Models.

Improving LLMs via Validator-to-Generator Alignment A Diversity-Promoting Objective Function for Neural Conversation Models

Reference 39

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:5f8428f0ece03b635d18d026bb93c0e56201e865f406b17a12026a31c1b0a4e2

Observation 29ff7228-b563-4d63-9d2f-10a38ffa302e · outbound

This paper cites Calibrate Before Use: Improving Few-shot Performance of Language Models , booktitle =.

Improving LLMs via Validator-to-Generator Alignment Calibrate Before Use: Improving Few-shot Performance of Language Models , booktitle =

Reference 41

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:2448c61d845163b238521d703ac3b3540ff4e9a4e31e56c520ca2e3844942b57

Observation fc0d2459-ff0d-4bb1-a9ae-0f4f33724650 · outbound

This paper cites Computational Linguistics , volume=.

Improving LLMs via Validator-to-Generator Alignment Computational Linguistics , volume=

Reference 42

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:46459a6dfa0aeb694d629d72d532f33ae9b01ef6b40f4513a6b50ac93f08e322

Observation 81d437fc-e393-40f4-9457-71a3df8724c6 · outbound

This paper cites Wrong Answers Can Also Be Useful: PlausibleQA -- A Large-Scale QA Dataset with Answer Plausibility Scores.

Improving LLMs via Validator-to-Generator Alignment Wrong Answers Can Also Be Useful: PlausibleQA -- A Large-Scale QA Dataset with Answer Plausibility Scores

Reference 43

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:6679e3a9f26eac60a0af168f4f5ef5078d0dbc819e144af16cf0118378bb52c5

Observation b09e7997-e640-40c1-ae4f-7399f551032b · outbound

This paper cites R ank G en: Improving Text Generation with Large Ranking Models.

Improving LLMs via Validator-to-Generator Alignment R ank G en: Improving Text Generation with Large Ranking Models

Reference 44

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:aea0fa6143e68271ed0aa00a6462b4741a2918821d5f551a4a8629baa443acab

Observation 530be9af-9b05-45a5-8276-f01ace178b6b · outbound

This paper cites Contrastive Decoding Improves Reasoning in Large Language Models.

Improving LLMs via Validator-to-Generator Alignment Contrastive Decoding Improves Reasoning in Large Language Models

Reference 45

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:a546f70ca5c0eefb96f2d32f9f58256094d4b41c25471e528607b74080389ff9

Observation 937d47ce-6e18-4bdf-b76d-7161e7d2516b · outbound

This paper cites Speculative Contrastive Decoding.

Improving LLMs via Validator-to-Generator Alignment Speculative Contrastive Decoding

Reference 46

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:3969b1513153ab613ca0e1fcf7df58b5017f2f6b5d5fbc2b0d6c9d04657d3e78

Observation 5406ac55-dc5a-4bb6-80d5-6c153de14c7d · outbound

This paper cites Distillation Contrastive Decoding: Improving LLMs Reasoning with Contrastive Decoding and Distillation.

Improving LLMs via Validator-to-Generator Alignment Distillation Contrastive Decoding: Improving LLMs Reasoning with Contrastive Decoding and Distillation

Reference 47

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:db585966158e0002f24d10ba05281f7672109f661aa4feb51f8ff5e0bfaf9f61

Observation 3d7b7a9e-71a8-46c1-b2cb-81b248062e29 · outbound

This paper cites Identifying Weaknesses in Machine Translation Metrics Through Minimum Bayes Risk Decoding:.

Improving LLMs via Validator-to-Generator Alignment Identifying Weaknesses in Machine Translation Metrics Through Minimum Bayes Risk Decoding:

Reference 48

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:8c184be35c55e09f567ff3c3194f03d6466ee338b21713d9ff484ce376869262

Observation df1c2b37-2069-4ce3-adeb-43ae0cbaccf0 · outbound

This paper cites Centroid-Based Efficient Minimum B ayes Risk Decoding.

Improving LLMs via Validator-to-Generator Alignment Centroid-Based Efficient Minimum B ayes Risk Decoding

Reference 49

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:38e3101e72c3a964e6d24e7acded26a09a41db8cffe6e28c4182904a4c69acbc

Observation 9b95dea8-4ea5-4c48-9f26-673ac88ac959 · outbound

This paper cites Linear-time Minimum B ayes Risk Decoding with Reference Aggregation.

Improving LLMs via Validator-to-Generator Alignment Linear-time Minimum B ayes Risk Decoding with Reference Aggregation

Reference 50

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:202f0924613adccd003eb1ac4d41e1b5c7d7b37cdc3d9d34d03b367473bfaf07

Observation 5bda33ef-539f-4ba6-91e0-4e8fdcf3c10f · outbound

This paper cites Improving Minimum B ayes Risk Decoding with Multi-Prompt.

Improving LLMs via Validator-to-Generator Alignment Improving Minimum B ayes Risk Decoding with Multi-Prompt

Reference 51

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:b2b02e5dbad84b573595c902c23c6f6e476b246156ec92e71368ab6df0d79911

Observation 0146e974-3575-44b0-80c1-a6c9a826b3af · outbound

This paper cites Filtered Direct Preference Optimization.

Improving LLMs via Validator-to-Generator Alignment Filtered Direct Preference Optimization

Reference 52

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:edf0b6f43c27166e7730fb8195e5d6874fd1eda79aa9ade326530ad84a6fb1e8

Observation f57e2d58-ce66-4686-ba4c-9634c737eebd · outbound

This paper cites Uncertainty-Penalized Direct Preference Optimization.

Improving LLMs via Validator-to-Generator Alignment Uncertainty-Penalized Direct Preference Optimization

Reference 53

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:df13f62b8fddbccff692a39c0ba5d3667a5ec58c29f1c2f5d7c82ab52148331e

Observation a14e8611-e790-44c2-a7be-a995c32c2f0a · outbound

This paper cites Le and Ed H.

Improving LLMs via Validator-to-Generator Alignment Le and Ed H

Reference 54

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:5cc08fd1b2cfe906b588d679c34902572a2050f0b0b6224bc4534ead737b7461

Observation 098f21c3-d84f-4e8a-a487-5ea86ca77707 · outbound

This paper cites International Conference on Learning Representations , volume=.

Improving LLMs via Validator-to-Generator Alignment International Conference on Learning Representations , volume=

Reference 55

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:89c4ad00565f193110e37105c0aeabb0b132b132467ba358460a10c6f430d405

Observation b2e104ad-aa68-4bd7-b4fa-e05b67bb8319 · outbound

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

Improving LLMs via Validator-to-Generator Alignment Self-Refine: Iterative Refinement with Self-Feedback , booktitle =

Reference 57

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:d63eea713279fd4fadb025d2bf32ba7421a284595afc9b1eef8a654624396e8c

Observation 5b122346-115a-4f5e-bb10-0cf9836c1307 · outbound

This paper cites Self-Rewarding Language Models , booktitle =.

Improving LLMs via Validator-to-Generator Alignment Self-Rewarding Language Models , booktitle =

Reference 58

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:6e196e239716cd3239d0e83e10bd2882b51cc9d71a483b10244e902c95bf4654

Observation 0754a431-3e16-47c4-9d7d-d8d97e351080 · outbound

This paper cites Weak-to-Strong Generalization: Eliciting Strong Capabilities With Weak Supervision , booktitle =.

Improving LLMs via Validator-to-Generator Alignment Weak-to-Strong Generalization: Eliciting Strong Capabilities With Weak Supervision , booktitle =

Reference 59

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:3fcdd1989fc2ed33b5a45085d84bbd460b32535713f1d4a75c4d3cdb003d64af

Observation 009bab3a-3bee-451e-8af7-0950030c7cbf · outbound

This paper cites Constitutional AI: Harmlessness from AI Feedback.

Improving LLMs via Validator-to-Generator Alignment Constitutional AI: Harmlessness from AI Feedback

Reference 60

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:398e0d970810bbc1890d50c63ceaa7a6329deab5b6d8062ff5d7cac84664e1d2

Observation c9638501-64ab-40c1-8bfe-ea7662c7e556 · outbound

This paper cites Scaling Laws for Reward Model Overoptimization , booktitle =.

Improving LLMs via Validator-to-Generator Alignment Scaling Laws for Reward Model Overoptimization , booktitle =

Reference 61

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:9b21c8a69eaeb7035d34d88116cd44e892494c2bdf63de3cdb04e1bceb25912f

Observation 35905184-9a24-4c4b-be20-3102f3234b9c · outbound

This paper cites Chain-of-Verification Reduces Hallucination in Large Language Models.

Improving LLMs via Validator-to-Generator Alignment Chain-of-Verification Reduces Hallucination in Large Language Models

Reference 62

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:2807b2d8af547da24beac566a2ab5096c65f6d493328bdc75dfe79c35dd5f58f

Observation e7b0dce6-fc28-421c-8228-8d8343a32f27 · outbound

This paper cites Proceedings of the Conference on Language Modeling (COLM) , url=.

Improving LLMs via Validator-to-Generator Alignment Proceedings of the Conference on Language Modeling (COLM) , url=

Reference 63

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:8d638944b80673e09b49a901027fd3493d9e0a4f20826f797893a92f0dca404b

Observation 94d8d889-e1b4-4ec8-b779-a63e12e6520b · outbound

This paper cites an unresolved cited work.

Improving LLMs via Validator-to-Generator Alignment Unresolved cited work

Reference 66

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:4dccff172427037d2916d917348b3eef1169cee48b73dfbf20e4d981e39b1b6c

Observation 00568e43-d5fc-4b83-9831-46a084fce6e5 · outbound

This paper cites Lessons from the Trenches on Reproducible Evaluation of Language Models.

Improving LLMs via Validator-to-Generator Alignment Lessons from the Trenches on Reproducible Evaluation of Language Models

Reference 67

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:99b65995f66f86f4ae1a82a4edae913440178c6c3e40b7f6df262b32218fccbd

Observation ce7b94f8-c641-402b-8de2-22763805384a · outbound

This paper cites an unresolved cited work.

Improving LLMs via Validator-to-Generator Alignment Unresolved cited work

Reference 68

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:705430f03739327177f47cc094ec3698d580aaba6790244102c0b5f534edab5a

Observation 091e6bd2-3813-4fff-b0e7-7ee2e01b36e7 · outbound

This paper cites an unresolved cited work.

Improving LLMs via Validator-to-Generator Alignment Unresolved cited work

Reference 69

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:e9b6a09b98117ae9a2c4c2540178a3ba8561d847da28128797ebb33fe992e8e5

Observation d676a959-3f50-47f5-8936-685e7a4a7b3c · outbound

This paper cites Evaluating Large Language Models Trained on Code.

Improving LLMs via Validator-to-Generator Alignment Evaluating Large Language Models Trained on Code

Reference 70

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:491d3ac891942761c33d4cee06b68e6eb550d66b11f5b052080207eca8e11b82

Observation 9950ac5a-3a21-4e5d-978b-afa156f96015 · outbound

This paper cites Training Verifiers to Solve Math Word Problems.

Improving LLMs via Validator-to-Generator Alignment Training Verifiers to Solve Math Word Problems

Reference 71

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:c25c44ea16f4d7219e001e94e559106b7854e08bfaead8b399f130c85cc14c84

Observation 4aceec08-8c44-490b-b815-388a6cca5bea · outbound

This paper cites Inside-Out: Hidden Factual Knowledge in LLMs.

Improving LLMs via Validator-to-Generator Alignment Inside-Out: Hidden Factual Knowledge in LLMs

Reference 72

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:cca6b68c78f8c7b7e3d02f4ba5b9575c194511e309f28273a995b5ddc86d0943

Observation 87d6ce08-c527-4ea7-a17f-fa50e173ac76 · outbound

This paper cites an unresolved cited work.

Improving LLMs via Validator-to-Generator Alignment Unresolved cited work

Reference 73

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:420842c4df9df32f8861b2eca200e7097f47628e070bdb57cb942994a6f43353

Observation fa4e0059-981c-4a09-98e5-2a1466b13767 · outbound

This paper cites an unresolved cited work.

Improving LLMs via Validator-to-Generator Alignment Unresolved cited work

Reference 74

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:bfa327d3f362fba71ba2d0e6d4f132f5d2342336094316449b27b28064163767

Observation 3ced216a-753d-40f4-87d5-c49386c2d569 · outbound

This paper cites an unresolved cited work.

Improving LLMs via Validator-to-Generator Alignment Unresolved cited work

Reference 75

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:60cb22f5b302c042cf6f12ed85e1519f9d2e3aaa37eafaa5fa53b4dfce49433d

Observation e392ce08-c626-40ad-b1b3-fbae9392fe3b · outbound

This paper cites an unresolved cited work.

Improving LLMs via Validator-to-Generator Alignment Unresolved cited work

Reference 76

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:75eaffa600d48a8883d8642f6615c2656613a37e5fa54da6264ba296a7cd9824

Observation 15719df8-5749-42b1-9904-87d240e78314 · outbound

This paper cites an unresolved cited work.

Improving LLMs via Validator-to-Generator Alignment Unresolved cited work

Reference 77

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:f29847743a69d7fdb5b486beb3536a1e4a4c582e385f071dd4d8c7a7aca4172e

Observation 72e288fe-88f1-47cf-802d-33fd18b4156c · outbound

This paper cites Smith, and Yejin Choi.

Improving LLMs via Validator-to-Generator Alignment Smith, and Yejin Choi

Reference 78

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:ebce88d51fa0433c4afc59f041447c403a0a3b950320356bd844a7e197310ed4

Observation 4b379655-72d3-4da0-8ee6-4526af5fedb9 · outbound

This paper cites an unresolved cited work.

Improving LLMs via Validator-to-Generator Alignment Unresolved cited work

Reference 79

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:9b63d8cd4b3b809bd4a5abf345875883bc32b9fa5a992fccd7f10412ff6d1d60

Observation 53467cc5-3217-45aa-8d01-690a454af082 · outbound

This paper cites an unresolved cited work.

Improving LLMs via Validator-to-Generator Alignment Unresolved cited work

Reference 80

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:d3e2c009d084b03dc18596be7686228fbc992e7640017782e9451234d72dbc7e

Observation e652d8c0-665d-49f0-923e-2e40048d33fd · outbound

This paper cites an unresolved cited work.

Improving LLMs via Validator-to-Generator Alignment Unresolved cited work

Reference 81

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:b5dad55e11bf6183df439c144f242759fd9709b1bcf04c88022b40f58125db32

Observation 0d20643b-d8b7-4698-996e-799251d6796c · outbound

This paper cites Manning, Stefano Ermon, and Chelsea Finn.

Improving LLMs via Validator-to-Generator Alignment Manning, Stefano Ermon, and Chelsea Finn

Reference 82

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:daef5aaa11fbadb30930c50f1ad86e9d3bb7504b12bc034d501a51910869e536

Observation 0809667e-bb54-493d-bc2c-ec64b3f7d311 · outbound

This paper cites an unresolved cited work.

Improving LLMs via Validator-to-Generator Alignment Unresolved cited work

Reference 83

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:ac931e835f84668606abe96081643d6e48db2ec48784381d2b7ac26eefc60b49

Observation a5720bcc-7a27-4363-bb05-cdfb2048991c · outbound

This paper cites RankAlign: A Ranking View of the Generator-Validator Gap in Large Language Models.

Improving LLMs via Validator-to-Generator Alignment RankAlign: A Ranking View of the Generator-Validator Gap in Large Language Models

Reference 84

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:5712807a5b86704fdab3d3a5afc837e4fb3c885318ceaee5fee409e5f7df0e37

Observation b3b2a7ea-f2d1-4cfb-bbff-4e5a2766b4fe · outbound

This paper cites an unresolved cited work.

Improving LLMs via Validator-to-Generator Alignment Unresolved cited work

Reference 85

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:03f82ce9090138e66edcc2ee1e19ed3c305d3c1e4ef062a1c94c0723296e1f33

Observation 18394257-35a1-4409-9db0-40c01cd84b73 · outbound

This paper cites an unresolved cited work.

Improving LLMs via Validator-to-Generator Alignment Unresolved cited work

Reference 86

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:cf40ac7d619ce43f563102373178f347da43192c932681f5247371903771ba60

Observation 7338ad18-a7ff-4708-bb58-a07b6ad33313 · outbound

This paper cites a ger, and Stephan G \.

Improving LLMs via Validator-to-Generator Alignment a ger, and Stephan G \

Reference 87

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:0b39c294490ccc934486d2f9426a368fb31ecbb679e1873f2b51f543ee2a3561

Observation 030e6a2c-13c5-4bb3-bdab-10972e556667 · outbound

This paper cites an unresolved cited work.

Improving LLMs via Validator-to-Generator Alignment Unresolved cited work

Reference 88

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:5356c815720c3c7d6d92c6807b76621c9b485c3a23296d66bd718fb0455dd473

Observation 300bdb0d-5588-4d48-b74a-4584dd74b117 · outbound

This paper cites an unresolved cited work.

Improving LLMs via Validator-to-Generator Alignment Unresolved cited work

Reference 89

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:d9d67ae690273b0c310c5cb4b8fcc4ba8e6e18527f6611b58129cd637cb416ae

Observation 4eb40bf2-6250-4348-b0b5-e8248413dc27 · outbound

This paper cites an unresolved cited work.

Improving LLMs via Validator-to-Generator Alignment Unresolved cited work

Reference 90

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:9f1a7550123f3b2995f3b98e9a4d9347b10bf2ae935bf82e29115e3119342c4f

Observation 90ab8c10-c6a4-4103-b7d6-c19a11517ec1 · outbound

This paper cites What It Can Create, It May Not Understand.

Improving LLMs via Validator-to-Generator Alignment What It Can Create, It May Not Understand

Reference 91

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:0464167ffa0b756053e80d55820ae6d2b37ce758d8d575baa7c01827803247ad

Observation 5dc36879-488f-4020-9ec9-c68642e58146 · outbound

This paper cites an unresolved cited work.

Improving LLMs via Validator-to-Generator Alignment Unresolved cited work

Reference 92

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source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:1ab49f9da3d07140df4e4edd0693c09a05e2fcad19350060fd27fa4526151d4c

Observation eb9cb974-5651-4771-84e6-297d16d81686 · outbound

This paper cites an unresolved cited work.

Improving LLMs via Validator-to-Generator Alignment Unresolved cited work

Reference 93

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Source-reported events for the cited work

Unavailable: canonical work link unavailable.

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Observation 473e0ec0-2a5f-4cf9-b749-fda8038fb0f8 · outbound

This paper cites an unresolved cited work.

Improving LLMs via Validator-to-Generator Alignment Unresolved cited work

Reference 94

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unresolved
no resolver link, observed 2026-07-12T07:52:00.900202Z

Source-reported events for the cited work

Unavailable: canonical work link unavailable.

source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:bdbb01d39372279b299961b7dae96e5ca3dc2cb606d54775fa51d3c930669217

Observation 2da22486-bd04-4749-9498-9553f8099e72 · outbound

This paper cites an unresolved cited work.

Improving LLMs via Validator-to-Generator Alignment Unresolved cited work

Reference 95

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unresolved
no resolver link, observed 2026-07-12T07:52:00.900202Z

Source-reported events for the cited work

Unavailable: canonical work link unavailable.

source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:535db80b90355e2319eb9a514bf936b27cdde20a1b1e05dfaa9019e9bd7a5dc2

Observation 3b594db5-f635-4e9f-9f5f-9657aff90f0f · outbound

This paper cites NoveltyBench: Evaluating Language Models for Humanlike Diversity.

Improving LLMs via Validator-to-Generator Alignment NoveltyBench: Evaluating Language Models for Humanlike Diversity

Reference 96

Resolution
unresolved
no resolver link, observed 2026-07-12T07:52:00.900202Z

Source-reported events for the cited work

Unavailable: canonical work link unavailable.

source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:25876f01c5f69c99fba11473ea5e09f6b0111c17866bb44421a5428f09f2ed60

Observation f22a2529-ac87-4bf7-ae46-56cf0ab0ebdb · outbound

This paper cites Forcing Diffuse Distributions out of Language Models.

Improving LLMs via Validator-to-Generator Alignment Forcing Diffuse Distributions out of Language Models

Reference 97

Resolution
unresolved
no resolver link, observed 2026-07-12T07:52:00.900202Z

Source-reported events for the cited work

Unavailable: canonical work link unavailable.

source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:c437f655c0e7b04d4b0b4f622884dc993d38fbf3566f03936047cc091bf7dbbb

Observation 080d6866-201b-4c07-b67c-9607f4c2bf82 · outbound

This paper cites Instruction-Following Evaluation for Large Language Models.

Improving LLMs via Validator-to-Generator Alignment Instruction-Following Evaluation for Large Language Models

Reference 98

Resolution
unresolved
no resolver link, observed 2026-07-12T07:52:00.900202Z

Source-reported events for the cited work

Unavailable: canonical work link unavailable.

source=arxiv_source observed=2026-07-12T07:52:00.900202Z digest=sha256:47509f5fdd22d2014e3956c9868fd0056b87a0a13c9e9a22d9d67d7dd6d5f8be

Pith citing papers

No inbound Pith citation observations are available.