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Paper Citation Record · LEDGER

Depth Anything: Unleashing the Power of Large-Scale Unlabeled Data

As of 18 August 2026, this Paper Citation Record lists 0 of 0 outbound references and 49 inbound Pith citation observations for arXiv:2401.10891.

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

pith.paper-citation-record.v1
2401.10891 v2

Coverage vector

measured 0 of 0 reference resolution

Typed states for the displayed outbound observations.

Source: paper_references, paper_reference_links

measured 49 of 49 standing notices

One-hop event checks from named stored sources.

Source: scholarly_work_events, retraction_status_cache, observed 2026-08-18T06:34:40.430872+00:00

measured 49 of 49 inbound itemization

Pith citing papers itemized under the disclosed page cap.

Source: paper_references, paper_reference_links, observed 2026-08-15T23:27:05.298307Z

measured 0 of 1 external citation measurements

A source-named dated measurement, never combined with another source.

Source: pith, observed 2026-07-10T00:06:37.938145Z

Reference resolution

0 of 0 outbound references displayed

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Outbound references

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Pith citing papers

Observation 0cb7c469-983c-4b33-aadc-0fcd59a78d34 · inbound

Hydra-MDP: End-to-end Multimodal Planning with Multi-target Hydra-Distillation cites this paper.

Hydra-MDP: End-to-end Multimodal Planning with Multi-target Hydra-Distillation Depth Anything: Unleashing the Power of Large-Scale Unlabeled Data

Reference 20

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arxiv_id, observed 2026-05-13T23:13:55.743195Z

Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-18T06:34:40.430872+00:00.

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Observation e4b42036-99fd-4194-adb7-8a336829c660 · inbound

Architect: Generating Vivid and Interactive 3D Scenes with Hierarchical 2D Inpainting cites this paper.

Architect: Generating Vivid and Interactive 3D Scenes with Hierarchical 2D Inpainting Depth Anything: Unleashing the Power of Large-Scale Unlabeled Data

Reference 48

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Observation 732490d1-7a9a-4d32-b520-e52044d3a79b · inbound

DissolveStereo: Coarse Depth Injection for Zero-Shot Stereo Video Generation cites this paper.

DissolveStereo: Coarse Depth Injection for Zero-Shot Stereo Video Generation Depth Anything: Unleashing the Power of Large-Scale Unlabeled Data

Reference 42

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arxiv_id, observed 2026-05-23T17:18:13.901834Z

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No event found in the named queried sources as of 2026-08-18T06:34:40.430872+00:00.

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Observation d8caf0c0-9521-4c67-a38b-d3a1b39f78f4 · inbound

AGS-Mesh: Adaptive Gaussian Splatting and Meshing with Geometric Priors for Indoor Room Reconstruction Using Smartphones cites this paper.

AGS-Mesh: Adaptive Gaussian Splatting and Meshing with Geometric Priors for Indoor Room Reconstruction Using Smartphones Depth Anything: Unleashing the Power of Large-Scale Unlabeled Data

Reference 53

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Observation cea09e62-5f0c-458d-9086-83fb262d83a8 · inbound

Amodal Depth Anything: Amodal Depth Estimation in the Wild cites this paper.

Amodal Depth Anything: Amodal Depth Estimation in the Wild Depth Anything: Unleashing the Power of Large-Scale Unlabeled Data

Reference 45

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Observation 88144c07-83ca-4b92-88d4-553546b535c1 · inbound

From an Image to a Scene: Learning to Imagine the World from a Million 360 Videos cites this paper.

From an Image to a Scene: Learning to Imagine the World from a Million 360 Videos Depth Anything: Unleashing the Power of Large-Scale Unlabeled Data

Reference 60

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Observation a1d5f027-a5c3-4a36-9e8e-bdce06b83400 · inbound

T-SVG: Text-Driven Stereoscopic Video Generation cites this paper.

T-SVG: Text-Driven Stereoscopic Video Generation Depth Anything: Unleashing the Power of Large-Scale Unlabeled Data

Reference 27

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source=pdf_text observed=2026-08-11T17:12:17.179527Z digest=sha256:57af1ec7d02ae29374ddde19d6f3e9499ad5cceca2e3105806fe07b329cb00b8

Observation 2032c7a3-4ad7-4ace-81f0-137ae5202f6d · inbound

MambaPro: Multi-Modal Object Re-Identification with Mamba Aggregation and Synergistic Prompt cites this paper.

MambaPro: Multi-Modal Object Re-Identification with Mamba Aggregation and Synergistic Prompt Depth Anything: Unleashing the Power of Large-Scale Unlabeled Data

Reference 57

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source=arxiv_source observed=2026-08-11T15:47:36.598818Z digest=sha256:4d7f6e7059aae302bb49e50a41a63ce35f566e281623d6948372b6232aee4fd4

Observation ae5126b8-d01b-4e76-b15e-40c68ade444d · inbound

RoMeO: Robust Metric Visual Odometry cites this paper.

RoMeO: Robust Metric Visual Odometry Depth Anything: Unleashing the Power of Large-Scale Unlabeled Data

Reference 35

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Observation 831b6978-3596-416b-8af8-79b44efecac4 · inbound

ZenSVI: An Open-Source Software for the Integrated Acquisition, Processing and Analysis of Street View Imagery Towards Scalable Urban Science cites this paper.

ZenSVI: An Open-Source Software for the Integrated Acquisition, Processing and Analysis of Street View Imagery Towards Scalable Urban Science Depth Anything: Unleashing the Power of Large-Scale Unlabeled Data

Reference 141

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Observation ae883fcb-4fa9-4f58-9b55-c06fbbb0f221 · inbound

PatchRefiner V2: Fast and Lightweight Real-Domain High-Resolution Metric Depth Estimation cites this paper.

PatchRefiner V2: Fast and Lightweight Real-Domain High-Resolution Metric Depth Estimation Depth Anything: Unleashing the Power of Large-Scale Unlabeled Data

Reference 71

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Observation 4f032094-54a7-4b91-b588-b8c0430aed81 · inbound

Tech Report: Divide and Conquer 3D Real-Time Reconstruction for Improved IGS cites this paper.

Tech Report: Divide and Conquer 3D Real-Time Reconstruction for Improved IGS Depth Anything: Unleashing the Power of Large-Scale Unlabeled Data

Reference 20

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source=pdf_text observed=2026-08-10T22:51:16.567674Z digest=sha256:498e60e40a1b71aadc0ce60cc5cf51e3042bafac5433a8b848efde0ba771cc7c

Observation bed563df-2163-4585-8102-836709a7dabb · inbound

Generative Physical AI in Vision: A Survey cites this paper.

Generative Physical AI in Vision: A Survey Depth Anything: Unleashing the Power of Large-Scale Unlabeled Data

Reference 236

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Observation 3a41c30f-7322-4835-bfaa-febf22638fc2 · inbound

Enhancing Monocular Depth Estimation with Multi-Source Auxiliary Tasks cites this paper.

Enhancing Monocular Depth Estimation with Multi-Source Auxiliary Tasks Depth Anything: Unleashing the Power of Large-Scale Unlabeled Data

Reference 69

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Observation b8e4e1ee-c8d6-4665-a001-d17ba0dfb875 · inbound

RoboGrasp: A Universal Grasping Policy for Robust Robotic Control cites this paper.

RoboGrasp: A Universal Grasping Policy for Robust Robotic Control Depth Anything: Unleashing the Power of Large-Scale Unlabeled Data

Reference 16

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Observation 6487b03d-0df8-41cb-8ecd-dcae0af56087 · inbound

All-in-One Image Compression and Restoration cites this paper.

All-in-One Image Compression and Restoration Depth Anything: Unleashing the Power of Large-Scale Unlabeled Data

Reference 65

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Observation e77f8d4d-5adf-4bce-bfe7-aca97bd38409 · inbound

LeAP: Consistent multi-domain 3D labeling using Foundation Models cites this paper.

LeAP: Consistent multi-domain 3D labeling using Foundation Models Depth Anything: Unleashing the Power of Large-Scale Unlabeled Data

Reference 11

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Observation fc7f01ee-d954-4836-994a-85a2e3552667 · inbound

Lightweight RGB-D Salient Object Detection from a Speed-Accuracy Tradeoff Perspective cites this paper.

Lightweight RGB-D Salient Object Detection from a Speed-Accuracy Tradeoff Perspective Depth Anything: Unleashing the Power of Large-Scale Unlabeled Data

Reference 5

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Observation 9a002863-f443-4a03-bf99-c4e50ebedfc0 · inbound

Is Semantic SLAM Ready for Embedded Systems ? A Comparative Survey cites this paper.

Is Semantic SLAM Ready for Embedded Systems ? A Comparative Survey Depth Anything: Unleashing the Power of Large-Scale Unlabeled Data

Reference 123

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Observation 97cd2411-8dfd-4713-b1b4-d4c0d274e3f2 · inbound

Towards In-the-wild 3D Plane Reconstruction from a Single Image cites this paper.

Towards In-the-wild 3D Plane Reconstruction from a Single Image Depth Anything: Unleashing the Power of Large-Scale Unlabeled Data

Reference 69

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Observation 6732de36-5603-4a24-8591-10bd181f752a · inbound

Generating 6DoF Object Manipulation Trajectories from Action Description in Egocentric Vision cites this paper.

Generating 6DoF Object Manipulation Trajectories from Action Description in Egocentric Vision Depth Anything: Unleashing the Power of Large-Scale Unlabeled Data

Reference 100

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Observation ec5623ee-2697-4d0a-9f03-2508a90841b1 · inbound

Challenging Vision-Language Models with Surgical Data: A New Dataset and Broad Benchmarking Study cites this paper.

Challenging Vision-Language Models with Surgical Data: A New Dataset and Broad Benchmarking Study Depth Anything: Unleashing the Power of Large-Scale Unlabeled Data

Reference 3

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Observation e32cb9e8-b0ef-4d66-b6cc-7b158b9400bb · inbound

Generalized Trajectory Scoring for End-to-end Multimodal Planning cites this paper.

Generalized Trajectory Scoring for End-to-end Multimodal Planning Depth Anything: Unleashing the Power of Large-Scale Unlabeled Data

Reference 32

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Observation 015d056d-5c13-4196-aea6-d227d4923433 · inbound

Monocular One-Shot Metric-Depth Alignment for RGB-Based Robot Grasping cites this paper.

Monocular One-Shot Metric-Depth Alignment for RGB-Based Robot Grasping Depth Anything: Unleashing the Power of Large-Scale Unlabeled Data

Reference 7

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Observation eed948d9-13f3-4329-89ea-d7e0b5637b04 · inbound

Online Human Action Detection during Escorting cites this paper.

Online Human Action Detection during Escorting Depth Anything: Unleashing the Power of Large-Scale Unlabeled Data

Reference 40

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Observation 7f796b17-4330-4239-b65f-20fa3bcc3bca · inbound

StixelNExT++: Lightweight Monocular Scene Segmentation and Representation for Collective Perception cites this paper.

StixelNExT++: Lightweight Monocular Scene Segmentation and Representation for Collective Perception Depth Anything: Unleashing the Power of Large-Scale Unlabeled Data

Reference 13

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Observation 987f3ed6-fe38-47e6-8a36-81d471dafb96 · inbound

BenchDepth: Are We on the Right Way to Evaluate Depth Foundation Models? cites this paper.

BenchDepth: Are We on the Right Way to Evaluate Depth Foundation Models? Depth Anything: Unleashing the Power of Large-Scale Unlabeled Data

Reference 39

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Observation 09df334c-cc2b-4bca-862e-2c759e2f4329 · inbound

3D Plant Root Skeleton Detection and Extraction cites this paper.

3D Plant Root Skeleton Detection and Extraction Depth Anything: Unleashing the Power of Large-Scale Unlabeled Data

Reference 32

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no resolver link, observed 2026-08-05T21:44:58.287614Z

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Observation 6be93769-8992-4672-b72f-f9a4a8e4ffb0 · inbound

Advances and Trends in the 3D Reconstruction of the Shape and Motion of Animals cites this paper.

Advances and Trends in the 3D Reconstruction of the Shape and Motion of Animals Depth Anything: Unleashing the Power of Large-Scale Unlabeled Data

Reference 18

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source=pdf_text observed=2026-08-05T17:35:44.737792Z digest=sha256:06fc0709db267731f82a54299dde3cee75282da02d790fd75025475ab0d2197f

Observation 8e7c7494-16c5-4190-ac1d-e8f5f586a914 · inbound

Maybe you don't need a U-Net: convolutional feature upsampling for materials micrograph segmentation cites this paper.

Maybe you don't need a U-Net: convolutional feature upsampling for materials micrograph segmentation Depth Anything: Unleashing the Power of Large-Scale Unlabeled Data

Reference 39

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Observation c2bf6f08-0da7-4ba4-bf02-2d7d592c5865 · inbound

Doctoral Thesis: Geometric Deep Learning For Camera Pose Prediction, Registration, Depth Estimation, and 3D Reconstruction cites this paper.

Doctoral Thesis: Geometric Deep Learning For Camera Pose Prediction, Registration, Depth Estimation, and 3D Reconstruction Depth Anything: Unleashing the Power of Large-Scale Unlabeled Data

Reference 267

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source=pdf_text observed=2026-08-05T12:10:09.621591Z digest=sha256:41bf44f57c358d67e505c3641fe621065d985d3db5bae701350aebb4c1bb31ee

Observation 2b759558-6cb2-41ad-8783-5f181454ba98 · inbound

The System Description of CPS Team for Track on Driving with Language of CVPR 2024 Autonomous Grand Challenge cites this paper.

The System Description of CPS Team for Track on Driving with Language of CVPR 2024 Autonomous Grand Challenge Depth Anything: Unleashing the Power of Large-Scale Unlabeled Data

Reference 13

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source=pdf_text observed=2026-08-04T17:11:16.281726Z digest=sha256:a0fb7a4b83319be2cd96e22e095c797f6451d20ba2d743b8e030dfef123721ea

Observation f7d370d4-f307-4cdb-94cf-855746e7c966 · inbound

Zero-Human Demonstration End-to-end Autonomous Driving with Trajectory Scorer cites this paper.

Zero-Human Demonstration End-to-end Autonomous Driving with Trajectory Scorer Depth Anything: Unleashing the Power of Large-Scale Unlabeled Data

Reference 2021

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source=pdf_text observed=2026-08-04T07:54:32.479332Z digest=sha256:b3127506e7ac3de5090420c5ce06e421af933e7b421b1ab347f6a122e5028cbd

Observation 99b395f6-4731-4cdb-a60e-b3616940b4c7 · inbound

CARI4D: Category Agnostic 4D Reconstruction of Human-Object Interaction cites this paper.

CARI4D: Category Agnostic 4D Reconstruction of Human-Object Interaction Depth Anything: Unleashing the Power of Large-Scale Unlabeled Data

Reference 65

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verified exact
arxiv_id, observed 2026-05-16T22:38:37.566266Z

Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-18T06:34:40.430872+00:00.

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Observation 78d406ad-8075-4317-bf3a-8963dcd2322a · inbound

Physics-Grounded Monocular Vehicle Distance Estimation Using Standardized License Plate Typography cites this paper.

Physics-Grounded Monocular Vehicle Distance Estimation Using Standardized License Plate Typography Depth Anything: Unleashing the Power of Large-Scale Unlabeled Data

Reference 11

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arxiv_id, observed 2026-05-11T11:06:03.537404Z

Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-18T06:34:40.430872+00:00.

source=pdf_text observed=2026-05-10T15:09:59.879340Z digest=sha256:517a651c5128c2a00f14d335f7c504dafb35b11a44d95e9d818a076079910893

Observation eaa3d41b-681d-4846-8d7a-73e8c7476824 · inbound

Physics-Grounded Monocular Vehicle Distance Estimation Using Standardized License Plate Typography cites this paper.

Physics-Grounded Monocular Vehicle Distance Estimation Using Standardized License Plate Typography Depth Anything: Unleashing the Power of Large-Scale Unlabeled Data

Reference 11

Resolution
verified exact
arxiv_id, observed 2026-05-21T09:54:05.675501Z

Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-18T06:34:40.430872+00:00.

source=pdf_text observed=2026-05-21T09:52:38.877597Z digest=sha256:937a0972b1be6eb0f0538cf4b8c77708d13ad7321e3a8b4d61c0510869df76b4

Observation 4da39234-24fb-4440-b3b8-f1571c168189 · inbound

Physics-Grounded Monocular Vehicle Distance Estimation Using Standardized License Plate Typography cites this paper.

Physics-Grounded Monocular Vehicle Distance Estimation Using Standardized License Plate Typography Depth Anything: Unleashing the Power of Large-Scale Unlabeled Data

Reference 11

Resolution
unresolved
no resolver link, observed 2026-07-12T21:27:21.397830Z

Source-reported events for the cited work

Unavailable: canonical work link unavailable.

source=pdf_text observed=2026-07-12T21:27:21.397830Z digest=sha256:5aeec5d391c4e715a42746fc3966e1ea448f1baef08b165dd23fd7892a79ac4b

Observation 7e1a7d86-22bf-415a-b957-81e7db26fca1 · inbound

PAT-VCM: Plug-and-Play Auxiliary Tokens for Video Coding for Machines cites this paper.

PAT-VCM: Plug-and-Play Auxiliary Tokens for Video Coding for Machines Depth Anything: Unleashing the Power of Large-Scale Unlabeled Data

Reference 30

Resolution
metadata mismatch
arxiv_id, observed 2026-05-11T09:56:01.865549Z

Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-18T06:34:40.430872+00:00.

source=pdf_text observed=2026-05-10T15:45:09.913980Z digest=sha256:0ea91087b5ec5d817d5701fe26ffd782c10a46be50e704257e64073273ffa840

Observation a4a6de45-4ed5-4e17-97e1-76048193cf55 · inbound

MLG-Stereo: ViT Based Stereo Matching with Multi-Stage Local-Global Enhancement cites this paper.

MLG-Stereo: ViT Based Stereo Matching with Multi-Stage Local-Global Enhancement Depth Anything: Unleashing the Power of Large-Scale Unlabeled Data

Reference 41

Resolution
verified exact
arxiv_id, observed 2026-05-10T00:14:46.652568Z

Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-18T06:34:40.430872+00:00.

source=pdf_text observed=2026-05-10T00:12:33.790071Z digest=sha256:cb824a6623ac57dacacd7de81211af8967342e224b1086c8d0d9f1752cef6f92

Observation f9662716-befe-436a-ad58-71ddb1279dd3 · inbound

No Pose, No Problem in 4D: Feed-Forward Dynamic Gaussians from Unposed Multi-View Videos cites this paper.

No Pose, No Problem in 4D: Feed-Forward Dynamic Gaussians from Unposed Multi-View Videos Depth Anything: Unleashing the Power of Large-Scale Unlabeled Data

Reference 64

Resolution
verified exact
arxiv_id, observed 2026-05-22T06:31:10.145920Z

Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-18T06:34:40.430872+00:00.

source=pdf_text observed=2026-05-22T06:27:21.559658Z digest=sha256:84f7f86471b7970059682ab4bd9ee4c454f499f39c991464cc23ecbb8f87c0aa

Observation b1eeb0ae-41ef-4a83-83b9-fd7764c7e13a · inbound

Sparse-LiDAR Prompting of Monocular Geometry Foundations: An Empirical Study Toward Long-Range Driving Depth cites this paper.

Sparse-LiDAR Prompting of Monocular Geometry Foundations: An Empirical Study Toward Long-Range Driving Depth Depth Anything: Unleashing the Power of Large-Scale Unlabeled Data

Reference 5

Resolution
metadata mismatch
arxiv_id, observed 2026-06-29T18:53:51.040208Z

Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-18T06:34:40.430872+00:00.

source=pdf_text observed=2026-06-29T18:53:02.839184Z digest=sha256:ab48fb2f2eb5939d2432cff11ab966b088fcf441fed03e5f5e0bfcc6444ff5b2

Observation 8b2c0f37-cd7f-461d-9f13-5dfcc415dcb9 · inbound

VEGA: Learning Navigation VLAs from In-the-Wild Egocentric Video with Geometric Trajectory Supervision cites this paper.

VEGA: Learning Navigation VLAs from In-the-Wild Egocentric Video with Geometric Trajectory Supervision Depth Anything: Unleashing the Power of Large-Scale Unlabeled Data

Reference 36

Resolution
verified exact
arxiv_id, observed 2026-07-03T21:38:59.509276Z

Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-18T06:34:40.430872+00:00.

source=pdf_text observed=2026-06-27T00:15:26.619238Z digest=sha256:d7f548cf56f58e04f259eab8206fb184b54ad1422856864fac29014f460a2f81

Observation 157d5b44-c7fb-4046-8b04-fb09a0e06c69 · inbound

VEGA: Learning Navigation VLAs from In-the-Wild Egocentric Video with Geometric Trajectory Supervision cites this paper.

VEGA: Learning Navigation VLAs from In-the-Wild Egocentric Video with Geometric Trajectory Supervision Depth Anything: Unleashing the Power of Large-Scale Unlabeled Data

Reference 35

Resolution
unresolved
no resolver link, observed 2026-08-02T11:03:52.653803Z

Source-reported events for the cited work

Unavailable: canonical work link unavailable.

source=pdf_text observed=2026-08-02T11:03:52.653803Z digest=sha256:534e693bdd8cb0a87dc508cff051eb2f974a0bacc94c9b24a9978680619aeea9

Observation 798e482e-a7b7-4f32-83d6-5fff8b74d9ac · inbound

The Multipath Blind Spot: $K$-Agnostic Robust Calibration for Sparse-Anchor Metric Depth from Frozen Foundations cites this paper.

The Multipath Blind Spot: $K$-Agnostic Robust Calibration for Sparse-Anchor Metric Depth from Frozen Foundations Depth Anything: Unleashing the Power of Large-Scale Unlabeled Data

Reference 9

Resolution
unresolved
no resolver link, observed 2026-07-11T21:42:00.898441Z

Source-reported events for the cited work

Unavailable: canonical work link unavailable.

source=pdf_text observed=2026-07-11T21:42:00.898441Z digest=sha256:5bcdfc091978509284ffa74fb4a3f0517eb6234cdc210e16377f08dbe971926d

Observation b5c17dca-52e7-4dec-aca4-81d6808f3a5c · inbound

SynCity 3000: Bootstrapping Scene-Scale 3D Diffusion cites this paper.

SynCity 3000: Bootstrapping Scene-Scale 3D Diffusion Depth Anything: Unleashing the Power of Large-Scale Unlabeled Data

Reference 64

Resolution
metadata mismatch
local_arxiv, observed 2026-07-07T12:53:50.398627Z

Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-18T06:34:40.430872+00:00.

source=pdf_text observed=2026-07-07T12:45:05.313584Z digest=sha256:2143e3a835a2d5be41c0b2f501e8a27ce787114848f75b79b9c1796d4f8a8cc1

Observation 4954d931-0b2d-4d5a-b0c2-453750186f1b · inbound

Geometric Collapse: When Vision Models Fail to Verify Physical Causality cites this paper.

Geometric Collapse: When Vision Models Fail to Verify Physical Causality Depth Anything: Unleashing the Power of Large-Scale Unlabeled Data

Reference 3

Resolution
metadata mismatch
local_arxiv, observed 2026-07-10T00:06:37.939399Z

Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-18T06:34:40.430872+00:00.

source=arxiv_source observed=2026-07-10T00:03:04.984680Z digest=sha256:9c59eb36f1926cb7a1205fe4d6c721bc45b9112d9a3f69745ea3d052d13fd72c

Observation d6c7d82b-09f9-48de-8798-a770d121f49b · inbound

RoughNet: Mapping Arctic Sea Ice Roughness Using Diffusion-Based Super-Resolution of Satellite Imagery cites this paper.

RoughNet: Mapping Arctic Sea Ice Roughness Using Diffusion-Based Super-Resolution of Satellite Imagery Depth Anything: Unleashing the Power of Large-Scale Unlabeled Data

Reference 16

Resolution
unresolved
no resolver link, observed 2026-08-02T05:24:40.193836Z

Source-reported events for the cited work

Unavailable: canonical work link unavailable.

source=pdf_text observed=2026-08-02T05:24:40.193836Z digest=sha256:1e95e290c0d725847acf27517d7a37ce0c19c467da7494ecb860061b479a972d

Observation 3a97d50e-b18c-40fb-811f-ff676b901c52 · inbound

MoGe-3: Fine-Detail Monocular Geometry Estimation with Self-Guided Sparse Volumetric Refinement cites this paper.

MoGe-3: Fine-Detail Monocular Geometry Estimation with Self-Guided Sparse Volumetric Refinement Depth Anything: Unleashing the Power of Large-Scale Unlabeled Data

Reference 53

Resolution
unresolved
no resolver link, observed 2026-08-01T16:34:24.525121Z

Source-reported events for the cited work

Unavailable: canonical work link unavailable.

source=pdf_text observed=2026-08-01T16:34:24.525121Z digest=sha256:1af5fcb3a5ed1c84ebfcf4fbcf0432df5aee80b952680f7fb4b08f22db5e7cee

Observation d9d972f6-6e6e-49d5-bce4-49a11413deb0 · inbound

Kitchen Robotic Manipulation utilizing Foundation Models cites this paper.

Kitchen Robotic Manipulation utilizing Foundation Models Depth Anything: Unleashing the Power of Large-Scale Unlabeled Data

Reference 22

Resolution
unresolved
no resolver link, observed 2026-08-08T00:49:13.636034Z

Source-reported events for the cited work

Unavailable: canonical work link unavailable.

source=pdf_text observed=2026-08-08T00:49:13.636034Z digest=sha256:c9d56a8ddfd2f15ccaf426c89a45a678a15ee1ca2d7f5f8b6cf1e0526bd2060a