Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-04T13:54:30.464863Z
Paper Citation Record · LEDGER
As of 8 August 2026, this Paper Citation Record lists 54 of 54 outbound references and 0 inbound Pith citation observations for arXiv:2509.24808.
A citation records a reference. It does not transfer a finding from one paper to another.
Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-04T13:54:30.464863Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-08T06:32:00.761636+00:00
Pith citing papers itemized under the disclosed page cap.
Source: paper_references, paper_reference_links
A source-named dated measurement, never combined with another source.
Source: cited_works
54 of 54 outbound references displayed
External citation measurements
No source-named external measurement is stored.
Observation f4d4d839-6272-4587-a212-76821e6a22eb · outbound
Query Circuits: Explaining How Language Models Answer User Prompts write newline
Reference 1
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Observation 79a915e4-0095-4b8b-80f3-7b45132bf767 · outbound
Query Circuits: Explaining How Language Models Answer User Prompts Explainability for artificial intelligence in healthcare: a multidisciplinary perspective
Reference 2
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Observation 6e7e68a2-11f7-4059-8117-4234e91c3f35 · outbound
Query Circuits: Explaining How Language Models Answer User Prompts Circuit tracing: Revealing computational graphs in language models
Reference 3
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Observation f352892a-fd39-498a-8b45-e364f14f061b · outbound
Query Circuits: Explaining How Language Models Answer User Prompts Claude 3.5 sonnet
Reference 4
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Observation 04c45940-a176-44d6-a3ab-989bc0cb15c7 · outbound
Query Circuits: Explaining How Language Models Answer User Prompts Mechanistic interpretability for AI safety - a review
Reference 5
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Observation 2382c8b9-f57a-405b-92e7-d25e4f6755ae · outbound
Query Circuits: Explaining How Language Models Answer User Prompts Building and evaluating alignment auditing agents
Reference 6
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Observation ae9dfe80-c2ae-42a9-97ae-962424258fcb · outbound
Query Circuits: Explaining How Language Models Answer User Prompts How people use chatgpt
Reference 7
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Observation e1d850d3-47ad-48f4-b2c6-5d2b92a2824b · outbound
Query Circuits: Explaining How Language Models Answer User Prompts Selfie: self-interpretation of large language model embeddings
Reference 8
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Observation e2d5e69d-65a0-4a74-ad3f-9a993e98964f · outbound
Query Circuits: Explaining How Language Models Answer User Prompts Think you have Solved Question Answering? Try ARC, the AI2 Reasoning Challenge
Reference 9
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Observation a962c681-15dc-442b-9f2b-b58e0fa4f7cb · outbound
Query Circuits: Explaining How Language Models Answer User Prompts Towards automated circuit discovery for mechanistic interpretability
Reference 10
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Observation 734ddd38-48ec-4d8e-b833-4b99e23159e1 · outbound
Query Circuits: Explaining How Language Models Answer User Prompts The llama 3 herd of models
Reference 11
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Observation 212102ca-af1e-487d-8a3c-9e10e97a3216 · outbound
Query Circuits: Explaining How Language Models Answer User Prompts A mathematical framework for transformer circuits
Reference 12
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Observation e0f01576-1489-4645-ba66-5a063e51d9fe · outbound
Query Circuits: Explaining How Language Models Answer User Prompts N2g: A SCALABLE APPROACH FOR QUANTIFYING INTERPRETABLE NEURON REPRESENTATION IN LLMS
Reference 13
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Observation 5109528e-e556-4cfc-bb5b-a1e8bea33e74 · outbound
Query Circuits: Explaining How Language Models Answer User Prompts The lottery ticket hypothesis: Finding sparse, trainable neural networks
Reference 14
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Observation 029231fb-37f2-493e-a778-02f823316d25 · outbound
Query Circuits: Explaining How Language Models Answer User Prompts Patchscopes: A unifying framework for inspecting hidden representations of language models
Reference 15
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Observation 70707aba-a473-4ea2-bb89-dda20dc8e339 · outbound
Query Circuits: Explaining How Language Models Answer User Prompts How does GPT -2 compute greater-than?: Interpreting mathematical abilities in a pre-trained language model
Reference 16
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Observation cbb6ef4b-b766-4792-9a15-0ec4c2aeea68 · outbound
Query Circuits: Explaining How Language Models Answer User Prompts Have faith in faithfulness: Going beyond circuit overlap when finding model mechanisms
Reference 17
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Observation b8c3d170-45c6-4798-9b63-d4cd2f086b7d · outbound
Query Circuits: Explaining How Language Models Answer User Prompts Measuring massive multitask language understanding
Reference 19
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Observation 1133d2ac-0a7b-469a-8e54-6dd4cfaa6a72 · outbound
Query Circuits: Explaining How Language Models Answer User Prompts Sparse autoencoders find highly interpretable features in language models
Reference 20
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Observation eb71268b-6f96-4dc3-8987-cd13e78e5771 · outbound
Query Circuits: Explaining How Language Models Answer User Prompts GPT-4o System Card
Reference 21
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Observation 3e21beb9-6e37-49e0-82e8-4cc58c786beb · outbound
Query Circuits: Explaining How Language Models Answer User Prompts Guided integrated gradients: An adaptive path method for removing noise
Reference 22
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Observation 05566e26-9d60-4170-9610-d5891fc0f97b · outbound
Query Circuits: Explaining How Language Models Answer User Prompts Scaling sparse feature circuit finding for in-context learning
Reference 23
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Observation e3f2e374-e8f8-442d-bb18-1a9c22984bce · outbound
Query Circuits: Explaining How Language Models Answer User Prompts Why are saliency maps noisy? cause of and solution to noisy saliency maps
Reference 24
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Observation 3f73ce20-d180-4d8b-8191-84152e1ff8af · outbound
Query Circuits: Explaining How Language Models Answer User Prompts Granular concept circuits: Toward a fine-grained circuit discovery for concept representations
Reference 25
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Observation 97483b6c-6363-4de4-b00d-cc98d40802e6 · outbound
Query Circuits: Explaining How Language Models Answer User Prompts Towards interpretable sequence continuation: Analyzing shared circuits in large language models
Reference 26
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Observation 81a801a7-2116-4e0d-b55a-c55772cad573 · outbound
Query Circuits: Explaining How Language Models Answer User Prompts Reddi, Ke Ye, Felix Chern, Felix Yu, Ruiqi Guo, and Sanjiv Kumar
Reference 27
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Observation e3f8437e-b39d-4465-b3c2-b446672c0bad · outbound
Query Circuits: Explaining How Language Models Answer User Prompts Unresolved cited work
Reference 28
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Observation 30ed61c6-7e98-4eff-9fe6-9eb58c54c8fc · outbound
Query Circuits: Explaining How Language Models Answer User Prompts Sparse crosscoders for cross-layer features and model diffing
Reference 29
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Observation c416d55d-9250-4fbd-8b81-3e9fd141cdcc · outbound
Query Circuits: Explaining How Language Models Answer User Prompts Lundberg and Su-In Lee
Reference 30
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Observation 588a5a40-fcbb-44db-97e7-6ee30c0ec064 · outbound
Query Circuits: Explaining How Language Models Answer User Prompts Enhancing Neural Network Interpretability with Feature-Aligned Sparse Autoencoders
Reference 31
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Observation 2de75ddd-d452-4f1a-9219-90f138154d0d · outbound
Query Circuits: Explaining How Language Models Answer User Prompts Sparse feature circuits: Discovering and editing interpretable causal graphs in language models
Reference 32
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Observation 9d10b0ac-e141-4765-918a-d5130f039198 · outbound
Query Circuits: Explaining How Language Models Answer User Prompts Transformer circuit evaluation metrics are not robust
Reference 33
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Observation 933f0a15-6036-4547-9c0a-8ed70f903cfa · outbound
Query Circuits: Explaining How Language Models Answer User Prompts MIB : A mechanistic interpretability benchmark
Reference 34
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Observation 5350bdad-f499-48bf-8345-ef6805f21605 · outbound
Query Circuits: Explaining How Language Models Answer User Prompts Transformerlens
Reference 35
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Observation 45efce2f-4452-4411-990c-9b7f6648d357 · outbound
Query Circuits: Explaining How Language Models Answer User Prompts A toy model of mechanistic (un)faithfulness
Reference 36
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Observation 17e702b3-8f86-40ab-82c1-01b8ed397f78 · outbound
Query Circuits: Explaining How Language Models Answer User Prompts Explanations in autonomous driving: A survey
Reference 37
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Observation 487767cb-4588-47d7-a3a5-96094e7962f3 · outbound
Query Circuits: Explaining How Language Models Answer User Prompts Understanding addition in transformers
Reference 38
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Observation 1720b02c-9d6b-4550-955b-20e497f08752 · outbound
Query Circuits: Explaining How Language Models Answer User Prompts Language models are unsupervised multitask learners
Reference 39
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Observation 4d620e14-f234-490e-9d2d-e7cb44c9be74 · outbound
Query Circuits: Explaining How Language Models Answer User Prompts A multimodal automated interpretability agent
Reference 40
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Observation 5c86b015-dbff-4b1c-8127-6e11c328f34f · outbound
Query Circuits: Explaining How Language Models Answer User Prompts A value for n-person games
Reference 41
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Observation 54031f87-3184-4e11-8f72-2eb92d2e75e3 · outbound
Query Circuits: Explaining How Language Models Answer User Prompts SmoothGrad: removing noise by adding noise
Reference 42
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Observation 4693b4e5-cf4e-4eda-acce-e135201a7363 · outbound
Query Circuits: Explaining How Language Models Answer User Prompts Axiomatic attribution for deep networks
Reference 43
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Observation 3ba73055-919d-461a-9921-e115c2357340 · outbound
Query Circuits: Explaining How Language Models Answer User Prompts Attribution patching outperforms automated circuit discovery
Reference 44
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Observation 6cd0ff9c-bed0-48e6-af08-769458b88b8b · outbound
Query Circuits: Explaining How Language Models Answer User Prompts Universal properties of activation sparsity in modern large language models
Reference 45
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Observation 627eb20d-080c-45ad-90de-ab701a6c96e4 · outbound
Query Circuits: Explaining How Language Models Answer User Prompts Daniel Freeman, Theodore R
Reference 46
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Observation 615a725f-6b9d-40c1-9a6c-28caabc9835a · outbound
Query Circuits: Explaining How Language Models Answer User Prompts Investigating gender bias in language models using causal mediation analysis
Reference 47
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Observation c4e1f734-d0bb-4a0d-a48f-b5ccf8da2a98 · outbound
Query Circuits: Explaining How Language Models Answer User Prompts Interpretability in the wild: a circuit for indirect object identification in GPT -2 small
Reference 48
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Observation d43e82cf-b025-441d-bf40-f6904e5edaef · outbound
Query Circuits: Explaining How Language Models Answer User Prompts Do LLM s overcome shortcut learning? an evaluation of shortcut challenges in large language models
Reference 49
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Observation 83748693-4fae-4d0e-ba4e-3534a98052bf · outbound
Query Circuits: Explaining How Language Models Answer User Prompts Towards best practices of activation patching in language models: Metrics and methods
Reference 50
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Observation f3c46278-2027-4a37-9d16-ccf65a3ffe56 · outbound
Query Circuits: Explaining How Language Models Answer User Prompts EAP-GP: Mitigating Saturation Effect in Gradient-based Automated Circuit Identification
Reference 51
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Observation dd0d2b73-2332-4bfe-a8a1-17d71037c653 · outbound
Query Circuits: Explaining How Language Models Answer User Prompts Large language models are not robust multiple choice selectors
Reference 52
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Observation 1aee4008-8888-4965-bb36-84c2ae6e05f4 · outbound
Query Circuits: Explaining How Language Models Answer User Prompts @esa (Ref
Reference 53
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Observation 0daa7992-1641-4828-9198-d9111ae502de · outbound
Query Circuits: Explaining How Language Models Answer User Prompts Unresolved cited work
Reference 54
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Observation 32f82c2f-ab88-4407-bc38-3cb9444e6596 · outbound
Query Circuits: Explaining How Language Models Answer User Prompts How to use and interpret activation patching
Reference 55
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No inbound Pith citation observations are available.