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Paper Citation Record · LEDGER

How LLM Task-Adaptation Reshapes Alignment: A Multi-dimensional Study of Behavioral and Representational Drift

As of 9 August 2026, this Paper Citation Record lists 48 of 48 outbound references and 0 inbound Pith citation observations for arXiv:2607.22676.

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

pith.paper-citation-record.v1
2607.22676 v1

Coverage vector

measured 48 of 48 reference resolution

Typed states for the displayed outbound observations.

Source: paper_references, paper_reference_links, observed 2026-08-02T07:44:12.908742Z

measured 48 of 48 standing notices

One-hop event checks from named stored sources.

Source: scholarly_work_events, retraction_status_cache, observed 2026-08-09T06:31:02.800959+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

48 of 48 outbound references displayed

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External citation measurements

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Outbound references

Observation 15c20bf2-6b42-4332-97ca-365fa69fed23 · outbound

This paper cites Training Verifiers to Solve Math Word Problems.

How LLM Task-Adaptation Reshapes Alignment: A Multi-dimensional Study of Behavioral and Representational Drift Training Verifiers to Solve Math Word Problems

Reference 4

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source=pdf_text observed=2026-08-02T07:44:08.300365Z digest=sha256:2061d627626d3893a3dc2c1f6d5b256ac10ce76a734c76ac94b07545238aa551

Observation 0b9ed988-c8cd-455e-86de-0ffd23a790bc · outbound

This paper cites A Survey of Self-Evolving Agents: What, When, How, and Where to Evolve on the Path to Artificial Super Intelligence.

How LLM Task-Adaptation Reshapes Alignment: A Multi-dimensional Study of Behavioral and Representational Drift A Survey of Self-Evolving Agents: What, When, How, and Where to Evolve on the Path to Artificial Super Intelligence

Reference 5

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source=pdf_text observed=2026-08-02T07:44:08.456270Z digest=sha256:de20811f34704e2d35973073f0b307f4927cdabaf906e498aa27a6fab04075d4

Observation 4db81838-fe98-44f2-b42a-6cf38c5448e7 · outbound

This paper cites Shashwat Goel, Rishi Hazra, Dulhan Jayalath, Timon Willi, Parag Jain, William F Shen, Ilias Leontiadis, Francesco Barbieri, Yoram Bachrach, Jonas Geiping, et al.

How LLM Task-Adaptation Reshapes Alignment: A Multi-dimensional Study of Behavioral and Representational Drift Shashwat Goel, Rishi Hazra, Dulhan Jayalath, Timon Willi, Parag Jain, William F Shen, Ilias Leontiadis, Francesco Barbieri, Yoram Bachrach, Jonas Geiping, et al

Reference 6

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Observation e1d13e2b-96d8-4e02-8bde-7704aebf7b2f · outbound

This paper cites Towards an AI co-scientist.

How LLM Task-Adaptation Reshapes Alignment: A Multi-dimensional Study of Behavioral and Representational Drift Towards an AI co-scientist

Reference 7

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source=pdf_text observed=2026-08-02T07:44:08.709873Z digest=sha256:8351b2b74e84a0e296d123ecd776b409d0a20a983b60b18b64834b351dd49e91

Observation 893a902e-5c71-448f-b6ab-b9601a943054 · outbound

This paper cites The Llama 3 Herd of Models.

How LLM Task-Adaptation Reshapes Alignment: A Multi-dimensional Study of Behavioral and Representational Drift The Llama 3 Herd of Models

Reference 8

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source=pdf_text observed=2026-08-02T07:44:08.843992Z digest=sha256:09080d1e4ee837ab54e11aaa35c9f5be29e32d54935cea898448d7c71c040209

Observation f1c8b897-c2c1-455b-bbcd-af557fd70f26 · outbound

This paper cites Alignment faking in large language models.

How LLM Task-Adaptation Reshapes Alignment: A Multi-dimensional Study of Behavioral and Representational Drift Alignment faking in large language models

Reference 9

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source=pdf_text observed=2026-08-02T07:44:08.964328Z digest=sha256:3666d0647bfdff4a8aa91560f38afb89a769be26760732a25b04b3dd393a218f

Observation b686f350-5d9c-45fd-b691-3b5b48c10978 · outbound

This paper cites Rubrics as Rewards: Reinforcement Learning Beyond Verifiable Domains.

How LLM Task-Adaptation Reshapes Alignment: A Multi-dimensional Study of Behavioral and Representational Drift Rubrics as Rewards: Reinforcement Learning Beyond Verifiable Domains

Reference 10

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source=pdf_text observed=2026-08-02T07:44:09.041384Z digest=sha256:8a26d98aeb4d774c77679f5847238ea295f7f46694c5e6bf98d6de524345a0ec

Observation 67bbd316-71c9-4e0c-aa08-37a9e75ccdb4 · outbound

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

How LLM Task-Adaptation Reshapes Alignment: A Multi-dimensional Study of Behavioral and Representational Drift DeepSeek-R1: Incentivizing Reasoning Capability in LLMs via Reinforcement Learning

Reference 11

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source=pdf_text observed=2026-08-02T07:44:09.145063Z digest=sha256:729e8e59aa83b1a3e38800da20fa7b18af642f17868e4880f6d836b8de3e9efb

Observation a95bba1c-e718-4851-bb67-d551f67aa950 · outbound

This paper cites Val-bench: Measuring value alignment in language models.arXiv preprint arXiv:2510.05465,.

How LLM Task-Adaptation Reshapes Alignment: A Multi-dimensional Study of Behavioral and Representational Drift Val-bench: Measuring value alignment in language models.arXiv preprint arXiv:2510.05465,

Reference 12

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source=pdf_text observed=2026-08-02T07:44:09.221267Z digest=sha256:c3fe2ccdc22dfd2bdc42ddd3376a29bb567f2cd72b6c831c85035e4e94cafc62

Observation 60817586-e035-49c2-9647-8334b689781a · outbound

This paper cites What is in Your Safe Data? Identifying Benign Data that Breaks Safety.

How LLM Task-Adaptation Reshapes Alignment: A Multi-dimensional Study of Behavioral and Representational Drift What is in Your Safe Data? Identifying Benign Data that Breaks Safety

Reference 13

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source=pdf_text observed=2026-08-02T07:44:09.310328Z digest=sha256:e51993e783f155be428a222acfe590a0a00ddf7a0c8f752cee19053f75e76ef7

Observation 93edbb92-ec61-45e5-a8d3-97889d1de0cf · outbound

This paper cites Understanding catastrophic forgetting in language models via implicit inference.

How LLM Task-Adaptation Reshapes Alignment: A Multi-dimensional Study of Behavioral and Representational Drift Understanding catastrophic forgetting in language models via implicit inference

Reference 14

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Observation ed4e70e1-67fb-424a-937f-79b556eadb57 · outbound

This paper cites LoRA Fine-tuning Efficiently Undoes Safety Training in Llama 2-Chat 70B.

How LLM Task-Adaptation Reshapes Alignment: A Multi-dimensional Study of Behavioral and Representational Drift LoRA Fine-tuning Efficiently Undoes Safety Training in Llama 2-Chat 70B

Reference 16

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source=pdf_text observed=2026-08-02T07:44:09.563432Z digest=sha256:c80d19254419893fd58c216c24012b718c025d4537d2364ec10bf09e57eabb03

Observation cd3fdea8-e9d5-448b-8413-30ca16bb3482 · outbound

This paper cites Holistic Evaluation of Language Models.

How LLM Task-Adaptation Reshapes Alignment: A Multi-dimensional Study of Behavioral and Representational Drift Holistic Evaluation of Language Models

Reference 18

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source=pdf_text observed=2026-08-02T07:44:09.803411Z digest=sha256:d0b388d5f77146007b203c27d5b63a111e4a7a9597e527cbb6fba096f08a9811

Observation fa646ea2-3a36-4082-bb39-13ac93b65480 · outbound

This paper cites TruthfulQA: Measuring How Models Mimic Human Falsehoods.

How LLM Task-Adaptation Reshapes Alignment: A Multi-dimensional Study of Behavioral and Representational Drift TruthfulQA: Measuring How Models Mimic Human Falsehoods

Reference 19

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source=pdf_text observed=2026-08-02T07:44:09.929971Z digest=sha256:3262c7c8375bfea3bd2d0fab1c28cee6ea51c4d8049dea1e1c43c2b31c506b44

Observation 7f1373da-6470-4aa8-8236-455916a01d57 · outbound

This paper cites Natural emergent misalignment from reward hacking in production RL.arXiv preprint arXiv:2511.18397,.

How LLM Task-Adaptation Reshapes Alignment: A Multi-dimensional Study of Behavioral and Representational Drift Natural emergent misalignment from reward hacking in production RL.arXiv preprint arXiv:2511.18397,

Reference 20

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source=pdf_text observed=2026-08-02T07:44:10.066489Z digest=sha256:f44938883ee727bb0e9709c5e0c1f6c8c4457e7629aa6bdf2ef97e4e01867db8

Observation ac092efd-0bf9-41b7-8ef4-d2f87a8cea56 · outbound

This paper cites HarmBench: A Standardized Evaluation Framework for Automated Red Teaming and Robust Refusal.

How LLM Task-Adaptation Reshapes Alignment: A Multi-dimensional Study of Behavioral and Representational Drift HarmBench: A Standardized Evaluation Framework for Automated Red Teaming and Robust Refusal

Reference 21

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source=pdf_text observed=2026-08-02T07:44:10.182971Z digest=sha256:56d8ad722eb71de12bb33b8754e49479a6668914e6743a3ec185f6c9605a5028

Observation da97eac8-1fb3-4ae9-8c6b-0d23d3ed6c0e · outbound

This paper cites CrowS-Pairs: A Challenge Dataset for Measuring Social Biases in Masked Language Models.

How LLM Task-Adaptation Reshapes Alignment: A Multi-dimensional Study of Behavioral and Representational Drift CrowS-Pairs: A Challenge Dataset for Measuring Social Biases in Masked Language Models

Reference 23

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source=pdf_text observed=2026-08-02T07:44:10.447865Z digest=sha256:19ccf316966d4da03e8ae1c787074cc19e597448ea34d0ee3ed44d532c63e070

Observation 18ae449e-e1b3-4d26-bef0-54597ca2b9c6 · outbound

This paper cites Steering Llama 2 via Contrastive Activation Addition.

How LLM Task-Adaptation Reshapes Alignment: A Multi-dimensional Study of Behavioral and Representational Drift Steering Llama 2 via Contrastive Activation Addition

Reference 24

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source=pdf_text observed=2026-08-02T07:44:10.618734Z digest=sha256:60e8e8634533ae49306364982b078b82ebe17c7314ead972d5c167c9c93dc07c

Observation 2a7d4085-942d-4811-a70d-16f853adca04 · outbound

This paper cites BBQ: A Hand-Built Bias Benchmark for Question Answering.

How LLM Task-Adaptation Reshapes Alignment: A Multi-dimensional Study of Behavioral and Representational Drift BBQ: A Hand-Built Bias Benchmark for Question Answering

Reference 25

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source=pdf_text observed=2026-08-02T07:44:10.724281Z digest=sha256:385bb638320dc262f2054571e8d3147f71b9fe5a6145c0bffb2f299a4a401887

Observation e611791f-350a-4d55-914d-eda50aacda53 · outbound

This paper cites Evaluating Frontier Models for Stealth and Situational Awareness.

How LLM Task-Adaptation Reshapes Alignment: A Multi-dimensional Study of Behavioral and Representational Drift Evaluating Frontier Models for Stealth and Situational Awareness

Reference 26

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source=pdf_text observed=2026-08-02T07:44:10.876626Z digest=sha256:27aea35838e1d758e2f032c078efe8a2344d63caae81e82a2f916808b1dc5946

Observation a909cb6d-3143-4ced-a1df-19e32ac9708d · outbound

This paper cites Fine-tuning Aligned Language Models Compromises Safety, Even When Users Do Not Intend To!.

How LLM Task-Adaptation Reshapes Alignment: A Multi-dimensional Study of Behavioral and Representational Drift Fine-tuning Aligned Language Models Compromises Safety, Even When Users Do Not Intend To!

Reference 27

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source=pdf_text observed=2026-08-02T07:44:10.978883Z digest=sha256:af68a9af329275efa54ab136ab16990ed5e7ef79a2edb7051189a9de7de3ed4c

Observation 2d90204a-e197-4ddb-829f-a2dc575a1c93 · outbound

This paper cites Proximal Policy Optimization Algorithms.

How LLM Task-Adaptation Reshapes Alignment: A Multi-dimensional Study of Behavioral and Representational Drift Proximal Policy Optimization Algorithms

Reference 28

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source=pdf_text observed=2026-08-02T07:44:11.097152Z digest=sha256:7d148fc935acb5a9f1f10184ff0658447d1e9adfa9ea2c34c8dc68a3c50c360c

Observation faa928a4-7c31-4015-a6e7-8f38383d3c1d · outbound

This paper cites Towards understanding sycophancy in language models.

How LLM Task-Adaptation Reshapes Alignment: A Multi-dimensional Study of Behavioral and Representational Drift Towards understanding sycophancy in language models

Reference 30

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source=pdf_text observed=2026-08-02T07:44:11.291461Z digest=sha256:f03f7b31f7aece1cc4267b7862a1775ccfff2b2609d8897f40e321d9ffc46869

Observation 9799853d-1213-49ec-9fed-4a72e5596838 · outbound

This paper cites SEAT: Sparse Entity-Aware Tuning for Knowledge Adaptation while Preserving Epistemic Abstention.

How LLM Task-Adaptation Reshapes Alignment: A Multi-dimensional Study of Behavioral and Representational Drift SEAT: Sparse Entity-Aware Tuning for Knowledge Adaptation while Preserving Epistemic Abstention

Reference 31

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source=pdf_text observed=2026-08-02T07:44:11.373496Z digest=sha256:296cb5158c373de067582cab2d837ae818388e7be6c13c989eb22c1dbe8ca227

Observation ecc72661-25ad-4704-bebd-5a06674b1d0d · outbound

This paper cites Rethinking rubric generation for improving llm judge and reward modeling for open-ended tasks.arXiv preprint arXiv:2602.05125, 2026b.

How LLM Task-Adaptation Reshapes Alignment: A Multi-dimensional Study of Behavioral and Representational Drift Rethinking rubric generation for improving llm judge and reward modeling for open-ended tasks.arXiv preprint arXiv:2602.05125, 2026b

Reference 32

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source=pdf_text observed=2026-08-02T07:44:11.472483Z digest=sha256:8795fe1f38b83865e87928a9dd670e3ee1d186563e8820b7fa3170560666206a

Observation f4383b94-2b9f-4d14-9b4a-b5ffc5bd0505 · outbound

This paper cites Efficiency vs.

How LLM Task-Adaptation Reshapes Alignment: A Multi-dimensional Study of Behavioral and Representational Drift Efficiency vs

Reference 33

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source=pdf_text observed=2026-08-02T07:44:11.574118Z digest=sha256:93afdf63e090f1c13813c5fa44668026c9001db269abefd03cbf9b0754ca04d8

Observation 2a576681-4e36-4855-a189-130589f46210 · outbound

This paper cites Scaling Monosemanticity: Extracting Interpretable Features from Claude 3 Sonnet.

How LLM Task-Adaptation Reshapes Alignment: A Multi-dimensional Study of Behavioral and Representational Drift Scaling Monosemanticity: Extracting Interpretable Features from Claude 3 Sonnet

Reference 34

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source=pdf_text observed=2026-08-02T07:44:11.683306Z digest=sha256:d3cd2d455f1eb71d3522374d128aee75fc23350b96173723f663055462c1e2f2

Observation 2ccb2f31-6291-4be4-81d2-34523d9259e8 · outbound

This paper cites Reinforcement Learning with Verifiable Rewards Implicitly Incentivizes Correct Reasoning in Base LLMs.

How LLM Task-Adaptation Reshapes Alignment: A Multi-dimensional Study of Behavioral and Representational Drift Reinforcement Learning with Verifiable Rewards Implicitly Incentivizes Correct Reasoning in Base LLMs

Reference 36

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source=pdf_text observed=2026-08-02T07:44:11.904578Z digest=sha256:04c7cf4f2a41220928227586ae9cea4733c8eb53e0fffa0a1b5b9f8123c3570f

Observation 44ce3f33-e5bb-444d-b68f-21fc76dd0456 · outbound

This paper cites Continual Learning for Large Language Models: A Survey.

How LLM Task-Adaptation Reshapes Alignment: A Multi-dimensional Study of Behavioral and Representational Drift Continual Learning for Large Language Models: A Survey

Reference 37

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Observation c758f0d3-8683-4048-894a-f186754125ba · outbound

This paper cites Qwen2.5 Technical Report.

How LLM Task-Adaptation Reshapes Alignment: A Multi-dimensional Study of Behavioral and Representational Drift Qwen2.5 Technical Report

Reference 38

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source=pdf_text observed=2026-08-02T07:44:12.128064Z digest=sha256:a236a93740c79d029cd3f48e282bb045028e297e4ed886308ac5624317d017de

Observation 3282e5e5-ac55-46e1-aca2-a48f7d1b8956 · outbound

This paper cites Qwen3 Technical Report.

How LLM Task-Adaptation Reshapes Alignment: A Multi-dimensional Study of Behavioral and Representational Drift Qwen3 Technical Report

Reference 39

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source=pdf_text observed=2026-08-02T07:44:12.204085Z digest=sha256:fd3fc8ecb4aed6251173b08f6a63710ca01a2a49901c85092fc9d98f9dc11271

Observation 6dc0aa6b-640a-4bd9-8fbc-554c13c04373 · outbound

This paper cites Shadow Alignment: The Ease of Subverting Safely-Aligned Language Models.

How LLM Task-Adaptation Reshapes Alignment: A Multi-dimensional Study of Behavioral and Representational Drift Shadow Alignment: The Ease of Subverting Safely-Aligned Language Models

Reference 40

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source=pdf_text observed=2026-08-02T07:44:12.284016Z digest=sha256:0f11b7de0dbf30af2f38ce84d7de2a5bc628d1594d8eb9e5ec1e66c9545e7fce

Observation 0bc464dc-398e-45a6-a3c0-388d06036cc7 · outbound

This paper cites Removing RLHF Protections in GPT-4 via Fine-Tuning.

How LLM Task-Adaptation Reshapes Alignment: A Multi-dimensional Study of Behavioral and Representational Drift Removing RLHF Protections in GPT-4 via Fine-Tuning

Reference 41

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source=pdf_text observed=2026-08-02T07:44:12.338931Z digest=sha256:43b88d5c0098f5cce88344deb921b4063f8b439a2dfee62b5cdc377bc8725fc8

Observation af3ebd5a-7c02-4ae3-8603-1ef177ca39df · outbound

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

How LLM Task-Adaptation Reshapes Alignment: A Multi-dimensional Study of Behavioral and Representational Drift Instruction-Following Evaluation for Large Language Models

Reference 42

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source=pdf_text observed=2026-08-02T07:44:12.407447Z digest=sha256:7f3970d6d92ef7410f2e7ae857b24b0b32423a9f6bb134687c0cf77a465859ee

Observation 67ea0e6d-4bc8-479c-8011-a47dc483ee69 · outbound

This paper cites The path not taken: RLVR provably learns off the principals.arXiv preprint arXiv:2511.08567,.

How LLM Task-Adaptation Reshapes Alignment: A Multi-dimensional Study of Behavioral and Representational Drift The path not taken: RLVR provably learns off the principals.arXiv preprint arXiv:2511.08567,

Reference 43

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source=pdf_text observed=2026-08-02T07:44:12.507333Z digest=sha256:9683a78e53c0a5dcd404edd4ab52384e2e29b5a4c295c69d2bad6c0da715c4fc

Observation dd97763e-1c09-4b9f-824d-79d1451e595e · outbound

This paper cites Representation Engineering: A Top-Down Approach to AI Transparency.

How LLM Task-Adaptation Reshapes Alignment: A Multi-dimensional Study of Behavioral and Representational Drift Representation Engineering: A Top-Down Approach to AI Transparency

Reference 44

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source=pdf_text observed=2026-08-02T07:44:12.594577Z digest=sha256:09baa4f31ac0dfd1d7d0941a4a77fb9bf90e6a543eb78f8b46c509b8fb44b52a

Observation 0bb0f0b0-23d6-40c2-a88b-c47c2bfe9f17 · outbound

This paper cites 15 A.2 KL-Regularized SFT.

How LLM Task-Adaptation Reshapes Alignment: A Multi-dimensional Study of Behavioral and Representational Drift 15 A.2 KL-Regularized SFT

Reference 45

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source=pdf_text observed=2026-08-02T07:44:12.714401Z digest=sha256:151782494652fd62c6a233ecb17421cc310d22f75fad103abf4da4280db7efa6

Observation 29f6243c-f362-4ae0-8bd9-ab00a9b7110f · outbound

This paper cites GRPO-based RLVR is trained to a fixed number of steps with almost all reaching reward saturation, while SFT and KL-SFT use the fixed epoch budgets in Table.

How LLM Task-Adaptation Reshapes Alignment: A Multi-dimensional Study of Behavioral and Representational Drift GRPO-based RLVR is trained to a fixed number of steps with almost all reaching reward saturation, while SFT and KL-SFT use the fixed epoch budgets in Table

Reference 46

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source=pdf_text observed=2026-08-02T07:44:12.794413Z digest=sha256:3e07d994ab5495e8f68c4a7c3b4e3ee216dada65ab59e46566ea1409e5d67acb

Observation 21c96e9d-c54a-45a6-873c-e0280e23026d · outbound

This paper cites an unresolved cited work.

How LLM Task-Adaptation Reshapes Alignment: A Multi-dimensional Study of Behavioral and Representational Drift Unresolved cited work

Reference 47

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source=pdf_text observed=2026-08-02T07:44:12.861870Z digest=sha256:a6f00db7dca4d4b585144fef9923830065a239c68b8758bf119d4d0af3ebf6c1

Observation 240f51fc-e227-4227-86ff-10f2289e7486 · outbound

This paper cites We report the headline metric, the preferred direction, and the aggregation procedure used when benchmarks contain multiple subtasks.

How LLM Task-Adaptation Reshapes Alignment: A Multi-dimensional Study of Behavioral and Representational Drift We report the headline metric, the preferred direction, and the aggregation procedure used when benchmarks contain multiple subtasks

Reference 48

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source=pdf_text observed=2026-08-02T07:44:12.908742Z digest=sha256:0f931d1ceca70253cc2592fb64274a7dbc4c8d6d369cdafe4753cff74c62a688

Observation e9305019-ea83-44a8-a90a-13cdd5fe1d29 · outbound

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

How LLM Task-Adaptation Reshapes Alignment: A Multi-dimensional Study of Behavioral and Representational Drift DeepSeekMath: Pushing the Limits of Mathematical Reasoning in Open Language Models

Reference 2017

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source=pdf_text observed=2026-08-02T07:44:11.200447Z digest=sha256:c4eb9b7cfa28ae1bfbc0a5adcf1f54bf15e56ab7100695a547e03c94733304d4

Observation 47ed0b9f-43c9-4d4a-b30e-33b65240793b · outbound

This paper cites an unresolved cited work.

How LLM Task-Adaptation Reshapes Alignment: A Multi-dimensional Study of Behavioral and Representational Drift Unresolved cited work

Reference 2020

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source=pdf_text observed=2026-08-02T07:44:10.281592Z digest=sha256:0ef3e5a0f2668d0508ae44132007215dd257f56129044efc205021554f2fd8e2

Observation 53feb5b4-32ca-43f4-b1cf-38789ac341f3 · outbound

This paper cites Breaking the safety-capability tradeoff: Reinforcement learning with verifiable rewards maintains safety guardrails in LLMs.arXiv preprint arXiv:2511.21050,.

How LLM Task-Adaptation Reshapes Alignment: A Multi-dimensional Study of Behavioral and Representational Drift Breaking the safety-capability tradeoff: Reinforcement learning with verifiable rewards maintains safety guardrails in LLMs.arXiv preprint arXiv:2511.21050,

Reference 2021

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source=pdf_text observed=2026-08-02T07:44:08.124547Z digest=sha256:26dbf917522ac735526897d2e6d10ad0019b5fa0ed0afdea72cd8ec91ad8d99b

Observation 2f170256-bcb4-45cb-b0a5-042892823d5f · outbound

This paper cites TACO: Topics in Algorithmic COde generation dataset.

How LLM Task-Adaptation Reshapes Alignment: A Multi-dimensional Study of Behavioral and Representational Drift TACO: Topics in Algorithmic COde generation dataset

Reference 2022

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source=pdf_text observed=2026-08-02T07:44:09.658983Z digest=sha256:d71ccdbcb02fc2b4dd418db61365cb8161a4eb9d874eb3c24e2def808657935c

Observation 715f6f3d-a357-440f-8bbd-1efd2c690acf · outbound

This paper cites Reinforcement Fine-Tuning Naturally Mitigates Forgetting in Continual Post-Training.

How LLM Task-Adaptation Reshapes Alignment: A Multi-dimensional Study of Behavioral and Representational Drift Reinforcement Fine-Tuning Naturally Mitigates Forgetting in Continual Post-Training

Reference 2023

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source=pdf_text observed=2026-08-02T07:44:09.499800Z digest=sha256:7cc11cb7a8f835ab8e9939b4edeeb61ee91a0685b3afb7419c0bc991195c907a

Observation c2b3e20b-dbc5-4ab0-8f0f-77258d1ed2fb · outbound

This paper cites Program Synthesis with Large Language Models.

How LLM Task-Adaptation Reshapes Alignment: A Multi-dimensional Study of Behavioral and Representational Drift Program Synthesis with Large Language Models

Reference 2024

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source=pdf_text observed=2026-08-02T07:44:07.870753Z digest=sha256:a2f861a19913d5a69d66e71a1a2998d2ebc6c72f74c71d6a42717c3fac91cba0

Observation be94e655-cd29-4999-9bef-8b9fb268711a · outbound

This paper cites Evaluating Large Language Models Trained on Code.

How LLM Task-Adaptation Reshapes Alignment: A Multi-dimensional Study of Behavioral and Representational Drift Evaluating Large Language Models Trained on Code

Reference 2025

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source=pdf_text observed=2026-08-02T07:44:07.946955Z digest=sha256:d9eb8a916e635156efb785f2e8c9f097378458f0710eff3b17aec847f98429d6

Observation ca54fa19-a4f1-410c-986d-48769cb5dcee · outbound

This paper cites Persona features control emergent misalignment.arXiv preprint arXiv:2506.19823,.

How LLM Task-Adaptation Reshapes Alignment: A Multi-dimensional Study of Behavioral and Representational Drift Persona features control emergent misalignment.arXiv preprint arXiv:2506.19823,

Reference 2026

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source=pdf_text observed=2026-08-02T07:44:11.838709Z digest=sha256:8edd5bbd93893412df966bb564489b02e1587a59151736ca64deb07b60416b72

Pith citing papers

No inbound Pith citation observations are available.