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Paper Citation Record · LEDGER

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors

As of 7 August 2026, this Paper Citation Record lists 72 of 72 outbound references and 0 inbound Pith citation observations for arXiv:2607.18770.

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

pith.paper-citation-record.v1
2607.18770 v1

Coverage vector

measured 72 of 72 reference resolution

Typed states for the displayed outbound observations.

Source: paper_references, paper_reference_links, observed 2026-08-01T14:29:55.845414Z

measured 72 of 72 standing notices

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Source: scholarly_work_events, retraction_status_cache, observed 2026-08-07T06:34:17.273281+00:00

measured 0 of 0 inbound itemization

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Reference resolution

72 of 72 outbound references displayed

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Outbound references

Observation 09b1dbd8-dda2-4f41-877c-c77751092bdf · outbound

This paper cites Generative adversarial nets.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors Generative adversarial nets

Reference 1

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Observation c5332b14-7fce-4f59-afef-0e7db65d6f4b · outbound

This paper cites A style-based generator architecture for generative adversarial networks.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors A style-based generator architecture for generative adversarial networks

Reference 2

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Observation ea395529-2360-40d9-9e07-57c229c1835b · outbound

This paper cites Analyzing and improving the image quality of StyleGAN.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors Analyzing and improving the image quality of StyleGAN

Reference 3

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Observation cca521a6-b265-47c7-addd-c7387cdf0fc7 · outbound

This paper cites Denoising diffusion probabilistic models.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors Denoising diffusion probabilistic models

Reference 4

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Observation bcb98d69-91c5-449e-a81c-8d6866d0a508 · outbound

This paper cites Diffusion models beat GANs on image synthesis.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors Diffusion models beat GANs on image synthesis

Reference 5

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Observation 756aa1ae-8f41-4dd2-b7f7-02ddbfa9683a · outbound

This paper cites High- resolution image synthesis with latent diffusion models.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors High- resolution image synthesis with latent diffusion models

Reference 6

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Observation 2e491179-418f-4f3e-a6ed-f886aafba415 · outbound

This paper cites Learning transferable visual models from natural language supervision.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors Learning transferable visual models from natural language supervision

Reference 7

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Observation 45c997a5-3242-4b0f-828a-fb0525610711 · outbound

This paper cites FaceForensics++: Learning to detect manipulated facial images.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors FaceForensics++: Learning to detect manipulated facial images

Reference 8

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Observation 94648a4e-bb09-40d9-89cd-cebdb86939e8 · outbound

This paper cites Orthogonal subspace decomposition for generalizable AI-generated image detection.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors Orthogonal subspace decomposition for generalizable AI-generated image detection

Reference 9

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Observation 6031dccb-836f-417a-b9d2-645c0dc6ed14 · outbound

This paper cites Towards universal fake image detectors that generalize across generative models.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors Towards universal fake image detectors that generalize across generative models

Reference 10

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Observation 16f02f86-9f40-4870-a202-81158840a27c · outbound

This paper cites an unresolved cited work.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors Unresolved cited work

Reference 11

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Observation c6c65c0e-5716-46d6-8e95-d9bb14ec4a80 · outbound

This paper cites When Detectors Forget Forensics: Blocking Semantic Shortcuts for Generalizable AI-Generated Image Detection.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors When Detectors Forget Forensics: Blocking Semantic Shortcuts for Generalizable AI-Generated Image Detection

Reference 12

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Observation 15b096a1-6554-4656-89bb-454173b46de8 · outbound

This paper cites DINOv3.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors DINOv3

Reference 13

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source=pdf_text observed=2026-08-01T14:29:50.880319Z digest=sha256:a7d8706bf75c58eba9806854018f77ae5ed4c77e9cfeeb1bd804a0c73052d5a4

Observation 21608b02-8758-455c-a2ee-5a82c3b35e3f · outbound

This paper cites MesoNet: A compact facial video forgery detection network.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors MesoNet: A compact facial video forgery detection network

Reference 14

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Observation a60cd5e3-1e99-4156-993d-244f040a9106 · outbound

This paper cites Thinking in frequency: Face forgery detection by mining frequency-aware clues.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors Thinking in frequency: Face forgery detection by mining frequency-aware clues

Reference 15

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Observation f4a8e78a-2740-4f62-968a-3d8335cbf66e · outbound

This paper cites Spatial-phase shallow learning: Rethinking face forgery detection in fre- quency domain.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors Spatial-phase shallow learning: Rethinking face forgery detection in fre- quency domain

Reference 16

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Observation aff7dc69-65c0-4e21-8a47-96b9d4b6edb8 · outbound

This paper cites Face X-ray for more general face forgery detection.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors Face X-ray for more general face forgery detection

Reference 17

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Observation bcc1a5ad-d5f8-4ec0-88aa-47c209283af2 · outbound

This paper cites What makes fake images detectable? Understanding properties that generalize.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors What makes fake images detectable? Understanding properties that generalize

Reference 18

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Observation ebb9012c-c61b-4482-8b6a-7786c9894bba · outbound

This paper cites Leveraging representations from intermediate encoder-blocks for synthetic image detection.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors Leveraging representations from intermediate encoder-blocks for synthetic image detection

Reference 19

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Observation 1681b635-8212-4ebb-84f1-37edec15d803 · outbound

This paper cites Detecting deepfakes with self-blended images.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors Detecting deepfakes with self-blended images

Reference 20

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Observation 83b472a6-4f04-4e77-b00b-7e7d89b70dbd · outbound

This paper cites Lips don’t lie: A generalisable and robust approach to face forgery detection.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors Lips don’t lie: A generalisable and robust approach to face forgery detection

Reference 21

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source=pdf_text observed=2026-08-01T14:29:51.539213Z digest=sha256:21446609f35e6959622a4d68f448a988ae9347577d78af62db7c736f104df6e1

Observation 04465163-1140-44a3-89c6-95bb6e8fa80a · outbound

This paper cites Exploring temporal coherence for more general video face forgery detection.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors Exploring temporal coherence for more general video face forgery detection

Reference 22

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Observation 9d861906-8511-412c-9337-e26ea052417a · outbound

This paper cites Leveraging real talking faces via self-supervision for robust forgery detection.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors Leveraging real talking faces via self-supervision for robust forgery detection

Reference 23

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source=pdf_text observed=2026-08-01T14:29:51.718983Z digest=sha256:a25bbc69e67fe06e3804c155cd71768ca6eb0cfca8ba82add62ab55ad2171e72

Observation 8db2d223-226e-4306-9083-fb6b3247a3e3 · outbound

This paper cites Rethinking the up-sampling operations in CNN-based generative network for generalizable deepfake detection.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors Rethinking the up-sampling operations in CNN-based generative network for generalizable deepfake detection

Reference 24

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Observation 6bf810c9-15b8-489a-85fc-002bb6a9e3f0 · outbound

This paper cites DIRE for diffusion-generated image detection.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors DIRE for diffusion-generated image detection

Reference 25

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Observation ba7cab43-db21-4f35-84fc-b3b3c394d880 · outbound

This paper cites Exposing the Fake: Effective Diffusion-Generated Images Detection.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors Exposing the Fake: Effective Diffusion-Generated Images Detection

Reference 26

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source=pdf_text observed=2026-08-01T14:29:52.001178Z digest=sha256:44613f6b909d58674574a161deb0ad966c6909bbe6e7bd1e44bf1ff0828efa61

Observation f3ba6dc4-967c-4c17-953a-08d7255e3a3d · outbound

This paper cites LaRE 2: Latent reconstruction error based method for diffusion-generated image detection.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors LaRE 2: Latent reconstruction error based method for diffusion-generated image detection

Reference 27

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Observation 6eaff946-6949-44c7-a185-8ff9cc1a61d4 · outbound

This paper cites AEROBLADE: Training-free detection of latent diffusion images using autoencoder reconstruction error.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors AEROBLADE: Training-free detection of latent diffusion images using autoencoder reconstruction error

Reference 28

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source=pdf_text observed=2026-08-01T14:29:52.183436Z digest=sha256:787ce03ee6c2a5af30481b963c610be7952781ac2601fc10399f9cad2ad4831c

Observation ae675d92-98c2-40f5-9f75-d54d2b275866 · outbound

This paper cites RIGID: A Training-free and Model-Agnostic Framework for Robust AI-Generated Image Detection.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors RIGID: A Training-free and Model-Agnostic Framework for Robust AI-Generated Image Detection

Reference 29

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Observation 2bf48227-4e13-4905-9765-a52dfbe035a7 · outbound

This paper cites Understanding and Improving Training-Free AI-Generated Image Detections with Vision Foundation Models.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors Understanding and Improving Training-Free AI-Generated Image Detections with Vision Foundation Models

Reference 30

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Observation bcbcb762-be98-4d0f-b08f-8f8bff99ccc2 · outbound

This paper cites Manifold induced biases for zero-shot and few-shot detection of generated images.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors Manifold induced biases for zero-shot and few-shot detection of generated images

Reference 31

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Observation 27dbda00-b63d-47b5-bee8-0310165e2d77 · outbound

This paper cites Dimensional Coactivation for Representational Consistency in Frozen Vision Foundation Models.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors Dimensional Coactivation for Representational Consistency in Frozen Vision Foundation Models

Reference 32

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Observation 2d0f9285-8c9f-4aaa-9e94-ec8aff29ee89 · outbound

This paper cites SPLIT: Training-Free AI-Generated and Partially Edited Video Detection via Spatial Patch-Level Incoherence and Temporal Roughness.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors SPLIT: Training-Free AI-Generated and Partially Edited Video Detection via Spatial Patch-Level Incoherence and Temporal Roughness

Reference 33

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Observation 98a25c3f-d58b-42b3-afb3-c4f04eb1896f · outbound

This paper cites Rethinking cross-generator image forgery detection through DINOv3.arXiv preprint arXiv:2511.22471, 2025.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors Rethinking cross-generator image forgery detection through DINOv3.arXiv preprint arXiv:2511.22471, 2025

Reference 34

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Observation fa53dc28-ce66-49ff-b305-59d5979a9d1d · outbound

This paper cites How Fragile Are Training-Free AI-Generated Image Detectors? A Controlled Audit of Score Direction, Preprocessing, and Compression.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors How Fragile Are Training-Free AI-Generated Image Detectors? A Controlled Audit of Score Direction, Preprocessing, and Compression

Reference 35

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source=pdf_text observed=2026-08-01T14:29:52.777265Z digest=sha256:624b5b4ccd9dd6ea2ff3a15586918956e04ba26f3ddb35bc9df6f97926403b1e

Observation d5ac794d-3c2a-4cda-a475-d78e2b6120f6 · outbound

This paper cites Estimating the intrinsic dimension of datasets by a minimal neighborhood information.Scientific Reports, 7:12140, 2017.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors Estimating the intrinsic dimension of datasets by a minimal neighborhood information.Scientific Reports, 7:12140, 2017

Reference 36

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source=pdf_text observed=2026-08-01T14:29:52.897270Z digest=sha256:9e483b3531e65b2de2ecedae86fbd539cc276058280db29911179757ab7d0b39

Observation 1f893577-f409-4004-8315-4788bba89375 · outbound

This paper cites Intrinsic Dimensionality Estimation within Tight Localities: A Theoretical and Experimental Analysis.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors Intrinsic Dimensionality Estimation within Tight Localities: A Theoretical and Experimental Analysis

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source=pdf_text observed=2026-08-01T14:29:52.969554Z digest=sha256:d8b933297f64139a0addb7a4d8e62a21c01a871070b61e3eb3c659a3ccc5a774

Observation ebe2e855-3bd6-426c-b743-d14fcb6e569c · outbound

This paper cites Macke, and Davide Zoccolan.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors Macke, and Davide Zoccolan

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source=pdf_text observed=2026-08-01T14:29:53.056225Z digest=sha256:07005156853876ab5129c5da6702f14286e6f01b1d927eefaa91c562c33ca69b

Observation 1db31497-9e82-4a34-b051-4dcc6ddec606 · outbound

This paper cites The intrinsic dimension of images and its impact on learning.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors The intrinsic dimension of images and its impact on learning

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source=pdf_text observed=2026-08-01T14:29:53.178401Z digest=sha256:d3027e28791c674ba60e01be6dbfa680b0de2d89f48f2d0a05e9e6e0a1ac2180

Observation b50b2af1-de17-4e17-ab77-22e863e4df51 · outbound

This paper cites Erfani, Sudanthi Wijewickrema, Grant Schoenebeck, Dawn Song, Michael E.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors Erfani, Sudanthi Wijewickrema, Grant Schoenebeck, Dawn Song, Michael E

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source=pdf_text observed=2026-08-01T14:29:53.327960Z digest=sha256:b2adcf957178e6febc8920cb14d9bc17e2d85a627c0a0726a7e19b701a198e6c

Observation 4fb9a104-dfa2-4a62-8b8a-2be6b60ee796 · outbound

This paper cites Unfolding Local Growth Rate Estimates for (Almost) Perfect Adversarial Detection.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors Unfolding Local Growth Rate Estimates for (Almost) Perfect Adversarial Detection

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source=pdf_text observed=2026-08-01T14:29:53.477625Z digest=sha256:dfbfbb608767ea6e8a7266b93a78a77d569cab84d92fd7df98295f31cbcfd4d5

Observation 3c51967b-caae-4774-9f92-ee6df22a18ab · outbound

This paper cites Intrinsic dimension estimation for robust detection of AI-generated texts.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors Intrinsic dimension estimation for robust detection of AI-generated texts

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source=pdf_text observed=2026-08-01T14:29:53.567430Z digest=sha256:90c17f23097e51181e90a97de515952dd93391ef32015a4a11f8b919de37d6e3

Observation bd015e5a-7d2b-49ec-b663-2910f2d61bd9 · outbound

This paper cites Detecting Images Generated by Deep Diffusion Models using their Local Intrinsic Dimensionality.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors Detecting Images Generated by Deep Diffusion Models using their Local Intrinsic Dimensionality

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source=pdf_text observed=2026-08-01T14:29:53.697713Z digest=sha256:3cf0c64a187a7f952857f3804f6e89103403c0bb1e3f6594e6918b7796c276cd

Observation 7fc2376f-cfc1-4171-978b-08147f805fdd · outbound

This paper cites Generative image inpainting with submanifold alignment.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors Generative image inpainting with submanifold alignment

Reference 44

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source=pdf_text observed=2026-08-01T14:29:53.794599Z digest=sha256:3b46227376dcb6b1b4b0358fdbd40983cce708c8696804bce28afae223ff5225

Observation b8c1c85d-8952-40ac-a0c9-f5fda66f21da · outbound

This paper cites Rethinking the use of vision transformers for AI-generated image detection.arXiv preprint arXiv:2512.04969, 2025.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors Rethinking the use of vision transformers for AI-generated image detection.arXiv preprint arXiv:2512.04969, 2025

Reference 45

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source=pdf_text observed=2026-08-01T14:29:53.859154Z digest=sha256:d8ebf1c63d0f8dddb3a1e24a97252e45cdc47cbffb1aa6ccae778cb196a16467

Observation 4ed493aa-d67f-48a7-b933-88cfff72a7d5 · outbound

This paper cites Intermediate Representations are Strong AI-Generated Image Detectors.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors Intermediate Representations are Strong AI-Generated Image Detectors

Reference 46

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source=pdf_text observed=2026-08-01T14:29:53.907924Z digest=sha256:0c707adf87676db3afcbd66d0e92e2242731bd61472128ab93df173a5336a440

Observation 61510ce5-14f2-4875-ad1e-cd43877f1d5d · outbound

This paper cites When semantics regulate: Rethinking patch shuffle and internal bias for generated image detection with CLIP.arXiv preprint arXiv:2511.19126, 2025.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors When semantics regulate: Rethinking patch shuffle and internal bias for generated image detection with CLIP.arXiv preprint arXiv:2511.19126, 2025

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source=pdf_text observed=2026-08-01T14:29:53.951374Z digest=sha256:3ef27734d66ece5e3f3fca99100a05479d32f1ea4b66159ea81ff9398663e1c7

Observation d8066b30-7737-4f7f-8387-f0e4b128efd7 · outbound

This paper cites An image is worth 16x16 words: Transformers for image recognition at scale.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors An image is worth 16x16 words: Transformers for image recognition at scale

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source=pdf_text observed=2026-08-01T14:29:54.015104Z digest=sha256:afa36c3f28782d99ec01afe3895b2c0c676319ae4092d28c93d3581550243342

Observation d8c4326c-c870-4689-a951-cbc3aa04d3dd · outbound

This paper cites YuNet: A tiny millisecond-level face detector.Machine Intelligence Research, 20(5):656–665, 2023.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors YuNet: A tiny millisecond-level face detector.Machine Intelligence Research, 20(5):656–665, 2023

Reference 49

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source=pdf_text observed=2026-08-01T14:29:54.071004Z digest=sha256:998b264e31302b2f11d1d91deb2adc8f847edeac99bb19a71b3b552c8c75df52

Observation 96145e14-01d7-4ac5-8dd3-3ddfad1040e1 · outbound

This paper cites SDXL: Improving Latent Diffusion Models for High-Resolution Image Synthesis.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors SDXL: Improving Latent Diffusion Models for High-Resolution Image Synthesis

Reference 50

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source=pdf_text observed=2026-08-01T14:29:54.187892Z digest=sha256:4132002ecbb737d4c2b8bcf14b285661c6420075d2144f542dbd43a6df4ccb50

Observation 52d9d352-928a-48b6-a08c-7fa10647d41d · outbound

This paper cites Deep learning face attributes in the wild.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors Deep learning face attributes in the wild

Reference 51

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source=pdf_text observed=2026-08-01T14:29:54.237537Z digest=sha256:a8cca746c6031028fe904acff1fb1bd7a92d2f369529ef8f3371c318df340956

Observation f4e1f6ef-7923-4913-8463-a11b3c2f7950 · outbound

This paper cites Celeb-DF: A large-scale challeng- ing dataset for DeepFake forensics.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors Celeb-DF: A large-scale challeng- ing dataset for DeepFake forensics

Reference 52

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source=pdf_text observed=2026-08-01T14:29:54.293153Z digest=sha256:a22e9e863395e567472cbbaa8fa9d37a17d26f56c2d224f766d72c1e5da768cf

Observation 52160961-3415-44df-9519-572a7ed9cb66 · outbound

This paper cites DF40: Toward next-generation deepfake detection.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors DF40: Toward next-generation deepfake detection

Reference 53

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source=pdf_text observed=2026-08-01T14:29:54.353658Z digest=sha256:08c6c882cbcfd63050c9e596a3d3b21d27195a23747b825219ef3729299a7672

Observation 6d8f0e20-f1cb-4481-be07-7040eb691bf5 · outbound

This paper cites SimSwap: An efficient framework for high fidelity face swapping.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors SimSwap: An efficient framework for high fidelity face swapping

Reference 54

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source=pdf_text observed=2026-08-01T14:29:54.402385Z digest=sha256:560c1540f380ef1b8d05d49e9c0dfbcd77fee65443648c3f09747fc714790bb4

Observation 05a07cfc-ca13-4fe9-a2db-91331faaf944 · outbound

This paper cites BlendFace: Re-designing identity encoders for face-swapping.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors BlendFace: Re-designing identity encoders for face-swapping

Reference 55

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source=pdf_text observed=2026-08-01T14:29:54.550136Z digest=sha256:7edea32b27fe1459cb2c208f36fcac3476a559ae17cc6e63cecc12671a69a554

Observation 4fb5031b-29a1-4d74-839e-9921184b1a6f · outbound

This paper cites First order motion model for image animation.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors First order motion model for image animation

Reference 56

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source=pdf_text observed=2026-08-01T14:29:54.618897Z digest=sha256:24ad0d4092fd5aa10208b4777a6c4061c19a2da599f842c0994b9e20b551c392

Observation 75c4b748-7dd1-4dee-a237-0bbae4b994a3 · outbound

This paper cites SadTalker: Learning realistic 3D motion coefficients for stylized audio-driven single image talking face animation.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors SadTalker: Learning realistic 3D motion coefficients for stylized audio-driven single image talking face animation

Reference 57

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source=pdf_text observed=2026-08-01T14:29:54.739648Z digest=sha256:9578dc143d2a6a21afd9609ec963816385e9cc9c83c7948e81f8d1e43955ab60

Observation ac046c62-f5b5-4f4c-8a18-9471306f3125 · outbound

This paper cites an unresolved cited work.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors Unresolved cited work

Reference 58

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source=pdf_text observed=2026-08-01T14:29:54.823180Z digest=sha256:d3c34e126586d7d5bac5b0dfe2d6c0eb017f6bb261f6c15721e6b495391c5584

Observation 89a3827c-27f4-47c8-b79a-d74adc21337f · outbound

This paper cites Thin-plate spline motion model for image animation.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors Thin-plate spline motion model for image animation

Reference 59

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source=pdf_text observed=2026-08-01T14:29:54.894167Z digest=sha256:2f9adf697ce6a5078edc1a85ddedb2bf16e99d700869b3761a102ee4bed0f4b1

Observation f6820c90-6346-4fb9-b0ce-8f4678fa9aca · outbound

This paper cites The DeepFake Detection Challenge (DFDC) Dataset.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors The DeepFake Detection Challenge (DFDC) Dataset

Reference 60

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source=pdf_text observed=2026-08-01T14:29:54.947851Z digest=sha256:d78555dbe36daa83cbf1abe08a52e7d0cc5e137e44a62515e0fd81c350a9d377

Observation 86f79653-b844-4e89-873c-2ddf572bb4cc · outbound

This paper cites WildDeepfake: A challenging real-world dataset for deepfake detection.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors WildDeepfake: A challenging real-world dataset for deepfake detection

Reference 61

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source=pdf_text observed=2026-08-01T14:29:55.038974Z digest=sha256:9ac97037dbfd527e442a93bdb8930e5d97549cd19b40f6c125949c3883512afa

Observation 00176763-e4c5-4a59-be15-b245b822597e · outbound

This paper cites V o, Marc Szafraniec, Vasil Khalidov, Pierre Fernandez, Daniel Haziza, et al.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors V o, Marc Szafraniec, Vasil Khalidov, Pierre Fernandez, Daniel Haziza, et al

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source=pdf_text observed=2026-08-01T14:29:55.100936Z digest=sha256:425bbb5b4bf2d7531f1601be073f17db97c48c8d79ffd02af85470816dbaf545

Observation 4b2f4329-ac50-48e5-acea-85b2c797891e · outbound

This paper cites EVA-02: A Visual Representation for Neon Genesis.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors EVA-02: A Visual Representation for Neon Genesis

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source=pdf_text observed=2026-08-01T14:29:55.183097Z digest=sha256:8f12952d4dfd77f0486032da343b23cd19b9b0832b16e5fca32e7e3db49b4a23

Observation 87d558dc-e124-488e-b454-4424af3b1e69 · outbound

This paper cites Fine-tuning can distort pretrained features and underperform out-of-distribution.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors Fine-tuning can distort pretrained features and underperform out-of-distribution

Reference 64

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source=pdf_text observed=2026-08-01T14:29:55.238334Z digest=sha256:ff9e39640a12f89b2036479b14be52ebdff79db9a8bfe4a1cf97788cb47ee8f3

Observation c12fcca0-9786-4224-bc2b-e220d736e637 · outbound

This paper cites Gradient starvation: A learning proclivity in neural networks.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors Gradient starvation: A learning proclivity in neural networks

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source=pdf_text observed=2026-08-01T14:29:55.297477Z digest=sha256:1b60861c2f02b21410a0c1dc000189818cac0bc57b134082ffc53514379e5dac

Observation 6c1edd63-7c26-47f7-a22b-012ebc321f04 · outbound

This paper cites Progressive growing of GANs for improved quality, stability, and variation.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors Progressive growing of GANs for improved quality, stability, and variation

Reference 66

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source=pdf_text observed=2026-08-01T14:29:55.350578Z digest=sha256:f729625e5efbc361bd897cecafbc30cdfacf47f14d9860659f5fd4a79433e12c

Observation 9bd6dac9-a72c-44c3-a7e5-eae12c1a3167 · outbound

This paper cites an unresolved cited work.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors Unresolved cited work

Reference 67

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source=pdf_text observed=2026-08-01T14:29:55.411508Z digest=sha256:5698045b796925cc8e4aeace8a49dce997d9fcb4d8d11cfdd3106425ef13560c

Observation 327cda00-6098-4d06-a2c1-bc2cf7c22b65 · outbound

This paper cites On the stability of fine- tuning BERT: Misconceptions, explanations, and strong baselines.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors On the stability of fine- tuning BERT: Misconceptions, explanations, and strong baselines

Reference 68

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source=pdf_text observed=2026-08-01T14:29:55.529202Z digest=sha256:c7259c18a060d7bf0df0f00f1f6490dcdeaa6dd67938287d79012d6821a71082

Observation 5751f1c2-e360-4468-8265-cd588822b662 · outbound

This paper cites Torch.manual_seed(3407) is all you need: On the influence of random seeds in deep learning architectures for computer vision.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors Torch.manual_seed(3407) is all you need: On the influence of random seeds in deep learning architectures for computer vision

Reference 69

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source=pdf_text observed=2026-08-01T14:29:55.587246Z digest=sha256:d05af523b104de17876087f098eaf8fe4ee213a5d4ac05e740c0c5441cf7016e

Observation 30e26e14-68ad-42be-beb0-fd040d90b228 · outbound

This paper cites Weinberger.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors Weinberger

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source=pdf_text observed=2026-08-01T14:29:55.671091Z digest=sha256:0fa5948254cc13d216476092410f17ce4bee4a16552de1dd8d96e2daed63eb5e

Observation b35cbfed-be5d-4610-8ee1-e01d330355a9 · outbound

This paper cites Reti- naFace: Single-stage dense face localisation in the wild.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors Reti- naFace: Single-stage dense face localisation in the wild

Reference 71

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source=pdf_text observed=2026-08-01T14:29:55.762604Z digest=sha256:7c4302456b6f8e8acaa60a6adbea0e793ea9aa0dafa3548c0a231bd873665834

Observation a1a42431-ee0b-4ccc-8ce3-99f27ed8503e · outbound

This paper cites General facial representation learning in a visual- linguistic manner.

GLID: Gated Local Intrinsic Dimension Repairs the Blind Spots of Face-Forgery Detectors General facial representation learning in a visual- linguistic manner

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source=pdf_text observed=2026-08-01T14:29:55.845414Z digest=sha256:148cb58f0acfdb448a473838cebb12f32178db0bac4e1a6a2fa75b71a2c22c4c

Pith citing papers

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