Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-07T14:43:37.886510Z
Paper Citation Record · LEDGER
As of 9 August 2026, this Paper Citation Record lists 60 of 60 outbound references and 1 inbound Pith citation observation for arXiv:2505.17883.
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 2026-08-07T14:43:37.886510Z
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, observed 2026-05-12T05:20:39.978351Z
A source-named dated measurement, never combined with another source.
Source: arxiv_reference, observed 2026-05-12T05:21:23.775165Z
60 of 60 outbound references displayed
External citation measurements
No source-named external measurement is stored.
Observation f82cd527-c9b7-4f68-b415-647aab863dd5 · outbound
FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks write newline
Reference 1
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Observation 3ac98076-51a9-44e8-8d3f-2c4d2357ddac · outbound
FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks Understanding intermediate layers using linear classifier probes
Reference 2
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Observation b2067852-949a-493f-9c90-d5c790fd02a6 · outbound
FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks Perceptual symbol systems
Reference 3
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Observation 5ee2dfa7-1116-41c6-a91f-d6576da45c9b · outbound
FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks Network dissection: Quantifying interpretability of deep visual representations
Reference 4
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Observation 9db0a976-76d4-4229-b621-9c1aa9effff1 · outbound
FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks Understanding the role of individual units in a deep neural network
Reference 5
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FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks Unresolved cited work
Reference 6
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FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks L., Anil, C., Denison, C., Askell, A., et al
Reference 7
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FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks and Lin, C.-J
Reference 8
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FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks Training a support vector machine in the primal
Reference 9
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Observation b7d02a9f-2c7b-485c-9cc0-8c2db60d1671 · outbound
FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks An image is worth 16x16 words: Transformers for image recognition at scale
Reference 10
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Observation 6c1aaa34-2ccd-4fe1-8409-1063afb91dcf · outbound
FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks Toy Models of Superposition
Reference 11
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FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks Liblinear: A library for large linear classification
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Observation 03e7de85-47a7-45f2-ae81-64cab947dd59 · outbound
FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks Eva: Exploring the limits of masked visual representation learning at scale
Reference 13
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Observation 2811e9f9-bebe-48b7-ab39-1fb902cac595 · outbound
FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks Eva-02: A visual representation for neon genesis
Reference 14
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Observation f897b1bb-8e52-44ed-872f-813285e4c05a · outbound
FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks Y., and Kim, B
Reference 15
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Observation a216dc70-95a7-4594-ade8-1a266971e368 · outbound
FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks Distilling blackbox to interpretable models for efficient transfer learning
Reference 16
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Observation e61db2ae-0094-4cce-9d94-d3a6faf3b9d8 · outbound
FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks Decoding the thought vector, 2016
Reference 17
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Observation daefa2cd-5395-407f-bfcd-b0a477d18d67 · outbound
FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks Regression concept vectors for bidirectional explanations in histopathology
Reference 18
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Observation 34eb6cbb-c594-40b3-97d3-59889c63ac23 · outbound
FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks Concept distillation: leveraging human-centered explanations for model improvement
Reference 19
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Observation 0e60f6cf-3eb5-43a8-9149-2faf4d5b959a · outbound
FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks Deep residual learning for image recognition
Reference 20
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Observation b7895419-c4f0-4566-ba6e-736695c22ae2 · outbound
FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks On the proliferation of support vectors in high dimensions
Reference 21
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Observation 192e48fe-3897-4a0e-9e2d-f7e5f38d7e21 · outbound
FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks Unresolved cited work
Reference 22
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Observation b3ebaf48-5ddb-478b-b7b2-0f1619437a7f · outbound
FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks LG-CAV: Train Any Concept Activation Vector with Language Guidance
Reference 23
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Observation b491b28c-2bf6-4682-bb6b-e779d41fbd31 · outbound
FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks Timm leaderboard, 2025
Reference 24
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Observation 7b0e3785-65d9-42da-8886-edb23a52b164 · outbound
FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks Chexpert: A large chest radiograph dataset with uncertainty labels and expert comparison
Reference 25
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Observation c5439913-9b85-4544-a531-20ef23670578 · outbound
FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks MIMIC-CXR-JPG, a large publicly available database of labeled chest radiographs
Reference 26
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Observation 70609089-422e-4f3e-9505-0ff70547d452 · outbound
FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks Visualizing and Understanding Recurrent Networks
Reference 27
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Observation 0881812f-d35e-4b7f-832e-d44ebf7a40f9 · outbound
FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks Interpretability Beyond Feature Attribution: Quantitative Testing with Concept Activation Vectors (TCAV)
Reference 28
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Observation 98aeef18-11a7-46a7-abb4-3bb90d93313e · outbound
FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks A convnet for the 2020s
Reference 29
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Observation 6610fb77-8af5-4fdc-8acb-1796eb0aa6c5 · outbound
FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks Decoupled Weight Decay Regularization
Reference 30
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Observation 2a82a3e2-1902-4138-a320-dd653fe3bebe · outbound
FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks Text2concept: Concept activation vectors directly from text
Reference 31
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Observation 3e8adfa5-0ed7-456e-a67b-a6e0f7168554 · outbound
FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks Classification vs regression in overparameterized regimes: Does the loss function matter? Journal of Machine Learning Research, 22 0 (222): 0 1--69, 2021
Reference 32
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Observation 2603edbc-7c3e-47f6-86e0-52534daf5a17 · outbound
FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks Explaining Explainability: Recommendations for Effective Use of Concept Activation Vectors
Reference 33
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Observation c0497548-ea4d-4a3c-9ef6-aa9d6d5c5071 · outbound
FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks CLIP-Dissect: Automatic Description of Neuron Representations in Deep Vision Networks
Reference 34
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Observation cdd343f1-c47a-4b35-a8b2-3b18e41af229 · outbound
FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks Linear Explanations for Individual Neurons
Reference 35
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FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks Feature visualization
Reference 36
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Observation 88209a91-d188-49f2-a371-4147c02e26c5 · outbound
FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks Zoom in: An introduction to circuits
Reference 37
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Observation 3631515e-e6e3-44cd-9cad-0a6ff2c01b41 · outbound
FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks J., Wiegand, T., Samek, W., and Lapuschkin, S
Reference 38
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Observation 57886075-1e6d-4d71-b7dd-411e19679782 · outbound
FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks Pytorch: An imperative style, high-performance deep learning library
Reference 39
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Observation 0fdb58c9-ab09-4f65-ad08-be2c2a477a0a · outbound
FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks Scikit-learn: Machine learning in python
Reference 40
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FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks Investigating neural network training on a feature level using conditional independence
Reference 41
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FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks Robust Semantic Interpretability: Revisiting Concept Activation Vectors
Reference 42
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Observation 50cc36bb-e030-498e-8e22-93809ff09b89 · outbound
FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks Unresolved cited work
Reference 43
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Observation 1cd8b21f-d708-43a9-9ade-a08cb4271547 · outbound
FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks W., Hallacy, C., Ramesh, A., Goh, G., Agarwal, S., Sastry, G., Askell, A., Mishkin, P., Clark, J., et al
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Observation 252facf4-0d63-44b8-a68e-866a2995caaa · outbound
FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks Imagenet large scale visual recognition challenge
Reference 45
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Observation 6dc13274-3ee2-4d4d-b291-29effe4d3cc5 · outbound
FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks Best of both worlds: local and global explanations with human-understandable concepts
Reference 46
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Observation 0dcedaf1-7693-4ad0-bdf3-8fa1fe67d779 · outbound
FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks On the relationship between the support vector machine for classification and sparsified fisher's linear discriminant
Reference 47
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Observation 8e3837a2-953b-4c09-af03-d19bb401b719 · outbound
FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks Opening the Black Box of Deep Neural Networks via Information
Reference 48
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Observation 07d3cb9e-ef9e-4f61-911a-a0e464249c2e · outbound
FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks Unresolved cited work
Reference 49
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Observation 94f7eec5-9ea7-4088-a92d-6b06bc684544 · outbound
FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks Using causal analysis for conceptual deep learning explanation
Reference 50
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Observation 01ee34d4-d230-475b-b36d-2b9313efdde7 · outbound
FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks Intriguing properties of neural networks
Reference 51
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FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks Going deeper with convolutions
Reference 52
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FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks Rethinking the inception architecture for computer vision
Reference 53
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FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks Scaling monosemanticity: Extracting interpretable features from claude 3 sonnet
Reference 54
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Observation 65f1f4fe-d36c-4df3-9bce-148b0befd6b7 · outbound
FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks Statistical learning theory
Reference 55
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FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks Pytorch image models
Reference 56
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FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks HuggingFace's Transformers: State-of-the-art Natural Language Processing
Reference 57
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FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks On completeness-aware concept-based explanations in deep neural networks
Reference 58
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FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks A., Shechtman, E., and Wang, O
Reference 59
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FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks A., and Rubinstein, B
Reference 60
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E-TCAV: Formalizing Penultimate Proxies for Efficient Concept Based Interpretability FastCAV: Efficient Computation of Concept Activation Vectors for Explaining Deep Neural Networks
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