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Paper Citation Record · LEDGER

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI

As of 9 August 2026, this Paper Citation Record lists 100 of 111 outbound references and 0 inbound Pith citation observations for arXiv:2608.02553.

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

pith.paper-citation-record.v1
2608.02553 v1

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measured 100 of 111 reference resolution

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Source: paper_references, paper_reference_links, observed 2026-08-04T04:53:02.588878Z

measured 100 of 100 standing notices

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measured 0 of 0 inbound itemization

Pith citing papers itemized under the disclosed page cap.

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measured 0 of 1 external citation measurements

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Reference resolution

100 of 111 outbound references displayed

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Outbound references

Observation 96149bc0-8f36-4557-86ce-a167d014284c · outbound

This paper cites Knowledge editing for large language models: A survey,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Knowledge editing for large language models: A survey,

Reference 1

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Observation 4d1c7b17-d832-460b-bf30-7298eea3596e · outbound

This paper cites Agentic large language models, a survey,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Agentic large language models, a survey,

Reference 2

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Observation f8df2635-517c-4893-b2ae-b8f9415097bc · outbound

This paper cites Goal-driven auton- omy for cognitive systems,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Goal-driven auton- omy for cognitive systems,

Reference 3

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Observation 14955cfc-7d78-4d61-a047-3ad6c5c52135 · outbound

This paper cites Belief revision: The adaptability of large language models reasoning,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Belief revision: The adaptability of large language models reasoning,

Reference 4

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Observation edf29243-16e4-4412-9856-de65461e5952 · outbound

This paper cites On the failure of latent state persistence in large language models,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI On the failure of latent state persistence in large language models,

Reference 5

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Observation 78c82b06-9aed-475c-ba8c-a548d812080d · outbound

This paper cites Continual learning of large language models: A comprehensive survey,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Continual learning of large language models: A comprehensive survey,

Reference 6

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Observation a60d1237-ffe4-41c8-a794-01867722ed65 · outbound

This paper cites Continual learning: overcoming catastrophic forgetting for adaptive ai systems,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Continual learning: overcoming catastrophic forgetting for adaptive ai systems,

Reference 7

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Observation dea6563e-a298-4dd7-9feb-3a7d632af954 · outbound

This paper cites ALAS: A Stateful Multi-LLM Agent Framework for Disruption-Aware Planning.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI ALAS: A Stateful Multi-LLM Agent Framework for Disruption-Aware Planning

Reference 8

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Observation 85defeb4-59bf-44d2-8ef2-c90cd292c651 · outbound

This paper cites Adaptation and learning in ai agents,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Adaptation and learning in ai agents,

Reference 9

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Observation 10385ec2-f5a9-4b91-886c-e58a213087fe · outbound

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

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Continual Learning for Large Language Models: A Survey

Reference 10

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Observation bfd165d9-dee6-46c1-8ec1-c827870e0489 · outbound

This paper cites Knowledgesmith: Uncovering knowledge updating in llms with model editing and unlearning,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Knowledgesmith: Uncovering knowledge updating in llms with model editing and unlearning,

Reference 11

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Observation 8e70a732-bb20-4597-935d-512dbd0e187e · outbound

This paper cites The Illusion of Insight in Reasoning Models.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI The Illusion of Insight in Reasoning Models

Reference 12

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Observation ba8704e8-c662-4e56-a25c-5771a8595b59 · outbound

This paper cites When can LLMs actually correct their own mistakes? a critical survey of self-correction of LLMs,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI When can LLMs actually correct their own mistakes? a critical survey of self-correction of LLMs,

Reference 13

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Observation 2232d3e8-db90-4457-8396-f7a8618402a0 · outbound

This paper cites When do llms admit their mistakes? understanding the role of model belief in retraction,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI When do llms admit their mistakes? understanding the role of model belief in retraction,

Reference 14

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Observation f360543a-d238-47dc-892e-0e82a8a323f3 · outbound

This paper cites AriGraph: Learning Knowledge Graph World Models with Episodic Memory for LLM Agents.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI AriGraph: Learning Knowledge Graph World Models with Episodic Memory for LLM Agents

Reference 15

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Observation 3dfc5340-1566-4edb-ad43-437350bc4575 · outbound

This paper cites Technical Report: Evaluating Goal Drift in Language Model Agents.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Technical Report: Evaluating Goal Drift in Language Model Agents

Reference 16

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Observation 864fcbd4-19f4-4ab4-b24c-21d8aab36fba · outbound

This paper cites Towards mitigating LLM hallucination via self reflection,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Towards mitigating LLM hallucination via self reflection,

Reference 17

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Observation 7f8b57a6-a13d-4bb6-b14c-e8b41b084b85 · outbound

This paper cites Unlocking Efficient, Scalable, and Continual Knowledge Editing with Basis-Level Representation Fine-Tuning.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Unlocking Efficient, Scalable, and Continual Knowledge Editing with Basis-Level Representation Fine-Tuning

Reference 18

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Observation 4dc9522d-c2f8-4947-ae5b-dd6761ea2ff1 · outbound

This paper cites Learning to edit: Aligning LLMs with knowledge editing,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Learning to edit: Aligning LLMs with knowledge editing,

Reference 19

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Observation b4dc4cab-d1be-43f2-beca-d200959cd711 · outbound

This paper cites Alleviating hallucinations from knowledge misalignment in large language models via selective abstention learning,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Alleviating hallucinations from knowledge misalignment in large language models via selective abstention learning,

Reference 20

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Observation 8a3a52b7-d12d-4dbc-8a49-d51443b26e75 · outbound

This paper cites A survey on uncertainty quantification methods for deep learning,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI A survey on uncertainty quantification methods for deep learning,

Reference 21

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Observation 2d090a6b-7093-4c9a-b8e4-9d138f62976e · outbound

This paper cites Artificial intelligence: a modern approach by stuart,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Artificial intelligence: a modern approach by stuart,

Reference 22

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Observation 6218ad30-9fe0-42e0-a3c7-14073fa4d455 · outbound

This paper cites Early history of machine learning,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Early history of machine learning,

Reference 23

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Observation e926023f-ab94-4bde-a7de-581464eb8a20 · outbound

This paper cites A survey on deep learning: Algorithms, techniques, and applications,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI A survey on deep learning: Algorithms, techniques, and applications,

Reference 24

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Observation 7205b372-331d-4541-9a11-2311166b1a70 · outbound

This paper cites Paper review:’sparks of artificial general intelligence: Early experiments with gpt-4’,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Paper review:’sparks of artificial general intelligence: Early experiments with gpt-4’,

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Observation 7574acff-f38a-4e7a-9b05-3d92cdf515bf · outbound

This paper cites Agentic ai: Autonomous in- telligence for complex goals—a comprehensive survey,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Agentic ai: Autonomous in- telligence for complex goals—a comprehensive survey,

Reference 26

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Observation 8ca8af7c-ae2e-4107-b690-5ae415e24604 · outbound

This paper cites Bridging the gap: Toward cognitive autonomy in artificial intelligence,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Bridging the gap: Toward cognitive autonomy in artificial intelligence,

Reference 27

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This paper cites Artificial general intelligence: concept, state of the art, and future prospects,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Artificial general intelligence: concept, state of the art, and future prospects,

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Observation 1532e32f-81e7-41ac-b314-d7bd9ca98a63 · outbound

This paper cites On the Opportunities and Risks of Foundation Models.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI On the Opportunities and Risks of Foundation Models

Reference 29

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Observation c01ff8e3-c4e2-4a98-8f00-9d0247027e10 · outbound

This paper cites Generative Agents: Interactive Simulacra of Human Behavior.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Generative Agents: Interactive Simulacra of Human Behavior

Reference 30

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This paper cites Memory in the Age of AI Agents.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Memory in the Age of AI Agents

Reference 31

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This paper cites Transformer-XL: Attentive language models beyond a fixed- length context,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Transformer-XL: Attentive language models beyond a fixed- length context,

Reference 32

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Observation 12359230-a0c2-4073-873b-dd0e93983145 · outbound

This paper cites Compressive Transformers for Long-Range Sequence Modelling.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Compressive Transformers for Long-Range Sequence Modelling

Reference 33

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Observation e7f0caf0-0f43-4a71-9386-20bb50cf9b9b · outbound

This paper cites MemGPT: Towards LLMs as Operating Systems.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI MemGPT: Towards LLMs as Operating Systems

Reference 34

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Observation bfcfe16f-a36d-484c-a99d-bc0e64363a31 · outbound

This paper cites Memorybank: Enhancing large language models with long-term memory,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Memorybank: Enhancing large language models with long-term memory,

Reference 35

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Observation 76efb012-a2ff-4e01-9a45-2204ab9c15a4 · outbound

This paper cites Synapse: Empowering llm agents with episodic-semantic memory via spreading activation,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Synapse: Empowering llm agents with episodic-semantic memory via spreading activation,

Reference 36

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Observation b10b7a7c-6629-4081-ad3b-c91749215b62 · outbound

This paper cites On the Curse of Memory in Recurrent Neural Networks: Approximation and Optimization Analysis.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI On the Curse of Memory in Recurrent Neural Networks: Approximation and Optimization Analysis

Reference 37

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Observation 2f866fad-f954-4686-b91b-0dd21d280791 · outbound

This paper cites To backtrack or not to backtrack: When sequential search limits model reasoning,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI To backtrack or not to backtrack: When sequential search limits model reasoning,

Reference 38

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Observation f0171ccd-5576-42ba-8323-15f70ff92752 · outbound

This paper cites Large language models cannot self-correct reasoning yet,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Large language models cannot self-correct reasoning yet,

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Observation 68a9a467-c37f-425c-a2bd-9bd11b71313d · outbound

This paper cites Reasoning beyond language: A comprehensive survey on latent chain-of-thought reasoning,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Reasoning beyond language: A comprehensive survey on latent chain-of-thought reasoning,

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Observation 6e2a82c9-ed74-44de-8308-92aa8d4d5c0c · outbound

This paper cites Available: https://arxiv.org/abs/2504.07052.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Available: https://arxiv.org/abs/2504.07052

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Observation 076a5a74-de6a-4e01-9faf-629178915ccf · outbound

This paper cites Ctrls: Chain-of-thought reasoning via latent state-transition,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Ctrls: Chain-of-thought reasoning via latent state-transition,

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Observation 1e223d19-f3f9-4466-8bd5-5ac41496a70e · outbound

This paper cites On the relation of state space models and hidden markov models,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI On the relation of state space models and hidden markov models,

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Observation 87c0aded-9c7e-4375-86e3-c405c9fc2aca · outbound

This paper cites Unsupervised methods for subgoal discov- ery during intrinsic motivation in model-free hierarchical reinforcement learning.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Unsupervised methods for subgoal discov- ery during intrinsic motivation in model-free hierarchical reinforcement learning

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Observation abbbaaf1-a74a-46f1-abb6-76add42271b6 · outbound

This paper cites Training Large Language Models to Reason in a Continuous Latent Space.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Training Large Language Models to Reason in a Continuous Latent Space

Reference 45

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Observation d3cb1e0a-f2d8-498c-9b29-9062403a9e16 · outbound

This paper cites Plangenllms: A modern survey of llm planning capabilities,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Plangenllms: A modern survey of llm planning capabilities,

Reference 46

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Observation 8d32f156-c813-4594-9e74-508abf36cc89 · outbound

This paper cites Task planning and decision-making methods for intelligent agents based on large language models,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Task planning and decision-making methods for intelligent agents based on large language models,

Reference 47

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Observation b26fd59e-0e49-4fa9-848f-037500337d9e · outbound

This paper cites Chain-of-Thought Prompting Elicits Reasoning in Large Language Models.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Chain-of-Thought Prompting Elicits Reasoning in Large Language Models

Reference 48

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Observation 593014d5-a44e-4ae8-8734-687b1830cb5a · outbound

This paper cites A brain-inspired agentic architecture to improve planning with LLMs,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI A brain-inspired agentic architecture to improve planning with LLMs,

Reference 49

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Observation a6428e6b-5111-49d3-8b4e-5a2bd73b55db · outbound

This paper cites Graph of thoughts: Solving elaborate problems with large language models,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Graph of thoughts: Solving elaborate problems with large language models,

Reference 50

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Observation 7fb8726e-ab0a-420d-8005-658d14189af9 · outbound

This paper cites HiPlan: Hierarchical Planning for LLM-Based Agents with Adaptive Global-Local Guidance.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI HiPlan: Hierarchical Planning for LLM-Based Agents with Adaptive Global-Local Guidance

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Observation fa1b2b7b-beab-40bf-adbb-ecbbdb191862 · outbound

This paper cites Adaplanner: Adaptive planning from feedback with language models,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Adaplanner: Adaptive planning from feedback with language models,

Reference 52

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Observation 5d9de848-2c23-430b-bebd-84f64bbfccdf · outbound

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

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Tree of Thoughts: Deliberate Problem Solving with Large Language Models

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Observation 900e8cf4-e10b-436b-9cc9-61ac5f76a27c · outbound

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

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Self-Refine: Iterative Refinement with Self-Feedback

Reference 54

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Observation db3ae989-2d5c-4768-9269-3038383785e6 · outbound

This paper cites Coherence-based alignment: A structural architecture for preventing goal drift in agentic ai systems.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Coherence-based alignment: A structural architecture for preventing goal drift in agentic ai systems

Reference 55

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Observation 55ed5599-7069-4c57-8e95-48d53aeb86e4 · outbound

This paper cites PEPA: a Persistently Autonomous Embodied Agent with Personalities.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI PEPA: a Persistently Autonomous Embodied Agent with Personalities

Reference 56

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Observation 65b4cbe2-d035-4709-845b-99b323e3d8b5 · outbound

This paper cites Reflexion: Language Agents with Verbal Reinforcement Learning.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Reflexion: Language Agents with Verbal Reinforcement Learning

Reference 57

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Observation 5536aad7-2628-42ac-ac05-63794a0a96c3 · outbound

This paper cites Inherited goal drift: Contextual pressure can undermine agentic goals,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Inherited goal drift: Contextual pressure can undermine agentic goals,

Reference 58

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Observation c4cafea3-8b84-42f0-8ae5-dc923fc50940 · outbound

This paper cites The metacognitive demands and opportunities of generative ai,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI The metacognitive demands and opportunities of generative ai,

Reference 59

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Observation b2aaa569-6c71-4107-9ffb-941cd6282604 · outbound

This paper cites From human to model overconfidence: Evaluating confidence dynamics in large language models,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI From human to model overconfidence: Evaluating confidence dynamics in large language models,

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Observation 7061f7bc-50bd-4b4e-8e98-c0881ac5c26a · outbound

This paper cites Measuring goal-directedness,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Measuring goal-directedness,

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Observation 424a42cc-4867-47bb-b242-745415c9734f · outbound

This paper cites Do i really know? learning factual self-verification for hallucination reduction,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Do i really know? learning factual self-verification for hallucination reduction,

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Observation c066b229-dacb-4ff8-9280-dd1bfb15ba51 · outbound

This paper cites ProgCo: Program helps self-correction of large language models,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI ProgCo: Program helps self-correction of large language models,

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Observation 1165eaef-4c38-4437-8091-d314f667f722 · outbound

This paper cites Uncertainty quantification and confidence calibration in large language models: A survey,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Uncertainty quantification and confidence calibration in large language models: A survey,

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Observation 8fd8e89b-dc51-4057-8485-53a916d2021e · outbound

This paper cites Large language models can self-correct with minimal effort,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Large language models can self-correct with minimal effort,

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Observation 9f278d43-93b0-4bf5-9ada-99b95f1abc76 · outbound

This paper cites Out-of-distribution detection with positive and negative prompt super- vision using large language models,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Out-of-distribution detection with positive and negative prompt super- vision using large language models,

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Observation 55008ccc-7b4a-4b96-b7dd-a936b56e339a · outbound

This paper cites Revisiting epistemic markers in confidence estimation: Can markers accurately reflect large language models’ uncertainty?.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Revisiting epistemic markers in confidence estimation: Can markers accurately reflect large language models’ uncertainty?

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Observation 8dc41569-4a14-4c28-b41d-63434a7c8636 · outbound

This paper cites Know your limits: A survey of abstention in large language models,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Know your limits: A survey of abstention in large language models,

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Observation ab9261a2-8aa2-4823-95e5-30da6c9ee3af · outbound

This paper cites Envisioning Outlier Exposure by Large Language Models for Out-of-Distribution Detection.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Envisioning Outlier Exposure by Large Language Models for Out-of-Distribution Detection

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Observation 2e086274-48fe-4a1e-bb81-7564c3937b60 · outbound

This paper cites RISAN: Robust Instance Specific Abstention Network.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI RISAN: Robust Instance Specific Abstention Network

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Observation 6e1437e3-dbfc-4d84-876e-7584e1547c2f · outbound

This paper cites R-tuning: Instructing large language models to say ‘i don’t know’,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI R-tuning: Instructing large language models to say ‘i don’t know’,

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Observation e4b78004-8900-4cc1-b9c3-3955e3212b60 · outbound

This paper cites Halluci- nate less by thinking more: Aspect-based causal abstention for large language models,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Halluci- nate less by thinking more: Aspect-based causal abstention for large language models,

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Observation c31d1935-145d-4ddc-ab88-3c8a4fb65cd1 · outbound

This paper cites Selectivenet: A deep neural network with an integrated reject option,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Selectivenet: A deep neural network with an integrated reject option,

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Observation e940476c-546a-42c8-b33a-ac07b5b981d2 · outbound

This paper cites Language Agents Meet Causality -- Bridging LLMs and Causal World Models.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Language Agents Meet Causality -- Bridging LLMs and Causal World Models

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Observation 2d32d6c5-9a88-411c-b50b-570dccc54384 · outbound

This paper cites Language-guided world models: A model-based approach to AI control,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Language-guided world models: A model-based approach to AI control,

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Observation de47047a-be0c-4e31-9a7c-966be949ea0d · outbound

This paper cites Causalarc: Abstract reasoning with causal world models,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Causalarc: Abstract reasoning with causal world models,

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Observation fdbc82cc-b675-4d89-9de5-8acf86066aea · outbound

This paper cites Beyond world models: Rethinking understanding in ai models,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Beyond world models: Rethinking understanding in ai models,

Reference 77

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Observation 36e3c7d0-9307-43fe-9baa-81ef1e8c54e0 · outbound

This paper cites Recthinker: An agentic framework for tool-augmented reasoning in recommendation,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Recthinker: An agentic framework for tool-augmented reasoning in recommendation,

Reference 78

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Observation 037cf6a1-d0fd-464b-aa82-e2f2503ca521 · outbound

This paper cites Evaluating and improving tool-augmented computation-intensive math reasoning,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Evaluating and improving tool-augmented computation-intensive math reasoning,

Reference 79

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Observation 4cbe5bab-82ea-4960-a345-20cdd3dbb983 · outbound

This paper cites Grounding large language models for robot task planning using closed-loop state feedback,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Grounding large language models for robot task planning using closed-loop state feedback,

Reference 80

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Observation 289ee07a-aabf-47e8-94ef-1c1346c063a8 · outbound

This paper cites ChatCoT: Tool-augmented chain-of-thought reasoning on chat- based large language models,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI ChatCoT: Tool-augmented chain-of-thought reasoning on chat- based large language models,

Reference 81

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source=pdf_text observed=2026-08-04T04:53:00.925903Z digest=sha256:506327b5d275474228259af3af5b1ad7c875eceb82c5821f7c6eb2a18b0f4234

Observation edacdbfb-e79b-4769-aa23-bcf4c5e668a1 · outbound

This paper cites Ai for closed- loop control systems: New opportunities for modeling, designing, and tuning control systems,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Ai for closed- loop control systems: New opportunities for modeling, designing, and tuning control systems,

Reference 82

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source=pdf_text observed=2026-08-04T04:53:01.292630Z digest=sha256:814f639653a5c10a9c55a2ffa235117f0f49bf02281a805daca59c450e8f0edb

Observation f5aee199-67ef-42a9-a7a6-65433ac27234 · outbound

This paper cites Available: https://arxiv.org/abs/2603.09843.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Available: https://arxiv.org/abs/2603.09843

Reference 83

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Observation 1f995130-05fd-4020-a390-864fdbd09825 · outbound

This paper cites Building self-evolving agents via experience- driven lifelong learning: A framework and benchmark,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Building self-evolving agents via experience- driven lifelong learning: A framework and benchmark,

Reference 84

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source=pdf_text observed=2026-08-04T04:53:01.456915Z digest=sha256:cd5464c49650f08877f1df576875e4bc492ea5eb1efe0101182a4992e8c3d981

Observation 3b9b4bbb-1f7e-468c-8f02-bbac243a7918 · outbound

This paper cites Deep reinforcement learning for robotics: A survey of real- world successes,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Deep reinforcement learning for robotics: A survey of real- world successes,

Reference 85

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Observation ecca54de-8bf7-450a-abda-622a0ae54894 · outbound

This paper cites A metacognitive architecture for cor- recting llm errors in ai agents,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI A metacognitive architecture for cor- recting llm errors in ai agents,

Reference 86

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source=pdf_text observed=2026-08-04T04:53:01.214961Z digest=sha256:d1d0e89cc3b1b7ea5eb86f2b9ee70280a9d3161bae14fb3f856196f7bad9ce29

Observation 6ecdf8b0-6475-4309-80c2-943e50b64561 · outbound

This paper cites Contrastive test-time adaptation,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Contrastive test-time adaptation,

Reference 87

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Observation cdefaaaf-eb80-484d-bd75-1c331be1ed02 · outbound

This paper cites How human–ai feedback loops alter human perceptual, emotional and social judgements,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI How human–ai feedback loops alter human perceptual, emotional and social judgements,

Reference 88

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source=pdf_text observed=2026-08-04T04:53:01.383791Z digest=sha256:95765dc38e7610cfcc01809d7fe4c352ad5081ba3f4c2f0a133b9e611a397d65

Observation 2ce3cc3a-5cad-4056-8208-3bf5fef146ab · outbound

This paper cites Mitigating the Alignment Tax of RLHF.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Mitigating the Alignment Tax of RLHF

Reference 89

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source=pdf_text observed=2026-08-04T04:53:01.794216Z digest=sha256:7eb7cff9cd283b2a8ca85f7f3dab595326e8e1876c159027f62227fe39dc12a3

Observation 345fc7d4-682c-4c2a-98ff-347a91388e0c · outbound

This paper cites Analyzing and Reducing Catastrophic Forgetting in Parameter Efficient Tuning.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Analyzing and Reducing Catastrophic Forgetting in Parameter Efficient Tuning

Reference 90

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Observation 69f5c273-e230-4a57-a7a8-30eda35f3e99 · outbound

This paper cites A proximal policy optimization-based reinforcement learning framework for real-time personalized endurance training,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI A proximal policy optimization-based reinforcement learning framework for real-time personalized endurance training,

Reference 91

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source=pdf_text observed=2026-08-04T04:53:01.604543Z digest=sha256:b1a2de598b13817f1ff9840ccc5ac4b9d59c03e8cd5269dcca34230ac9457783

Observation 0ead9fed-4014-4658-b18b-db55787a1729 · outbound

This paper cites CURLoRA: Stable LLM Continual Fine-Tuning and Catastrophic Forgetting Mitigation.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI CURLoRA: Stable LLM Continual Fine-Tuning and Catastrophic Forgetting Mitigation

Reference 92

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source=pdf_text observed=2026-08-04T04:53:02.011401Z digest=sha256:941c42af064ddddac585f41100ccd89c78bbc1d0228c12a66d5e39073caee14e

Observation e4e598a8-9282-4fbb-af19-9d38f6e59a17 · outbound

This paper cites Reasoning as meta-learning: An optimization perspective to decipher long cot reasoning in llms.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Reasoning as meta-learning: An optimization perspective to decipher long cot reasoning in llms

Reference 93

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source=pdf_text observed=2026-08-04T04:53:01.717245Z digest=sha256:56e2bf63ef2b0f6d132f4a73131b11e82549a71b3d067117ffc76408cfd61550

Observation 4e40f1ae-c6be-4d98-9823-513233639308 · outbound

This paper cites Locating and editing factual associations in gpt,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Locating and editing factual associations in gpt,

Reference 94

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source=pdf_text observed=2026-08-04T04:53:02.142972Z digest=sha256:02439a9d5ef1306fcbef6ee06195a4c5c1dad5b5621d342e938f64c5fda11998

Observation 95f071de-4879-4b3f-ab27-91e6afe01c3e · outbound

This paper cites Mass-Editing Memory in a Transformer.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Mass-Editing Memory in a Transformer

Reference 95

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source=pdf_text observed=2026-08-04T04:53:02.251420Z digest=sha256:dccfa75b0d4bbed165d101f7c3048d0d9d40535cb2a32a5cff3318c4f2199ecd

Observation 84b200e6-af79-43fd-a871-5af0f0ff091d · outbound

This paper cites Overcoming catastrophic forgetting in neural networks,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Overcoming catastrophic forgetting in neural networks,

Reference 96

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source=pdf_text observed=2026-08-04T04:53:01.936667Z digest=sha256:b0829231037f36b3dc62f764448b99d4ea076fa2c212fb6f79f09a9b186f3d11

Observation 56b5e596-9c13-43da-b46e-41198651db8b · outbound

This paper cites Unveiling the Pitfalls of Knowledge Editing for Large Language Models.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Unveiling the Pitfalls of Knowledge Editing for Large Language Models

Reference 97

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source=pdf_text observed=2026-08-04T04:53:02.392334Z digest=sha256:630021564b9585732303d223f20a589a5550a1554bfea240f533e5e6215b64c9

Observation 0bc26081-1558-4135-8c97-9a41b995cd34 · outbound

This paper cites Eval- uating the ripple effects of knowledge editing in language models,.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Eval- uating the ripple effects of knowledge editing in language models,

Reference 98

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source=pdf_text observed=2026-08-04T04:53:02.081268Z digest=sha256:714f30e4b8ffbd569c1d28352933f4940f26e7326d36a45a0bf142600baa7894

Observation ef2e63cb-77b8-4913-a792-18aae277d869 · outbound

This paper cites Think-in-Memory: Recalling and Post-thinking Enable LLMs with Long-Term Memory.

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Think-in-Memory: Recalling and Post-thinking Enable LLMs with Long-Term Memory

Reference 99

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source=pdf_text observed=2026-08-04T04:53:02.512522Z digest=sha256:38bff462f06b8fd7b845cf62b2d441eafbe582ea003c8e17d58b3e9a73852670

Observation 6babf762-a947-458e-93d8-b58b4c2aa84f · outbound

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

A Taxonomy of Cognitive Capability Gaps in Generative and Agentic AI Training language models to follow instructions with human feedback,

Reference 100

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Pith citing papers

No inbound Pith citation observations are available.