Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-07-11T05:41:50.671046Z
Paper Citation Record · LEDGER
As of 7 August 2026, this Paper Citation Record lists 45 of 45 outbound references and 0 inbound Pith citation observations for arXiv:2607.05568.
A citation records a reference. It does not transfer a finding from one paper to another.
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Source: paper_references, paper_reference_links, observed 2026-07-11T05:41:50.671046Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-07T06:34:17.273281+00:00
Pith citing papers itemized under the disclosed page cap.
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Source: cited_works
45 of 45 outbound references displayed
External citation measurements
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Observation 4560de9e-fcb0-40a8-aba9-820921d98e8e · outbound
Harnessing Generative Image Models for Training-Free Primitive Shape Abstraction GPT-4 Technical Report
Reference 1
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Observation 41b24766-a9a7-4130-8180-fb06a59e7017 · outbound
Harnessing Generative Image Models for Training-Free Primitive Shape Abstraction : Iterative superquadric recomposition of 3D objects
Reference 2
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Observation 56c88fe8-c2ca-416b-b426-894667ea6ea5 · outbound
Harnessing Generative Image Models for Training-Free Primitive Shape Abstraction https://artificialanalysis.ai/image/leaderboard/editing, 2026
Reference 3
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Observation 31eab53a-d595-46c5-8ef1-0a42e6a196fb · outbound
Harnessing Generative Image Models for Training-Free Primitive Shape Abstraction Unresolved cited work
Reference 4
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Observation 59f50118-2ae3-432b-8a61-0a8d2c0fc52d · outbound
Harnessing Generative Image Models for Training-Free Primitive Shape Abstraction : Efficiently approximating the minimum-volume bounding box of a point set in three dimensions
Reference 5
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Observation 32cf53f2-1161-4606-bd24-6ba142f3d795 · outbound
Harnessing Generative Image Models for Training-Free Primitive Shape Abstraction ShapeNet: An Information-Rich 3D Model Repository
Reference 6
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Observation 811df8a1-9b93-4e4b-a96d-200d6f1f3128 · outbound
Harnessing Generative Image Models for Training-Free Primitive Shape Abstraction : SuperDec : 3D scene decomposition with superquadric primitives
Reference 7
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Observation d317a658-8102-4a0e-8237-93a5f0295b1c · outbound
Harnessing Generative Image Models for Training-Free Primitive Shape Abstraction : Image generators are generalist vision learners
Reference 8
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Observation 60218f13-bc2f-408e-a937-c412973f85f7 · outbound
Harnessing Generative Image Models for Training-Free Primitive Shape Abstraction Gemini: A Family of Highly Capable Multimodal Models
Reference 9
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Observation 8a8d8ba8-e749-4b8f-84d2-def8325fa79e · outbound
Harnessing Generative Image Models for Training-Free Primitive Shape Abstraction : Residual primitive fitting of 3D shapes with SuperFrusta
Reference 10
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Observation 0cddc0e4-085e-47d8-825e-db263bc1279d · outbound
Harnessing Generative Image Models for Training-Free Primitive Shape Abstraction https://blog.google/innovation-and-ai/technology/ai/nano-banana-2/, 2025
Reference 11
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Observation ba07174e-1b3e-4324-84f1-dd32934b95c2 · outbound
Harnessing Generative Image Models for Training-Free Primitive Shape Abstraction : 3D part segmentation via geometric aggregation of 2D visual features
Reference 12
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Observation 6ea2f135-e994-4c3b-960b-d2f8a4c55d64 · outbound
Harnessing Generative Image Models for Training-Free Primitive Shape Abstraction : Self-supervised learning of hybrid part-aware 3D representations of 2D Gaussians and superquadrics
Reference 13
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Observation 4e73b423-367e-4073-921e-c807c0ad2217 · outbound
Harnessing Generative Image Models for Training-Free Primitive Shape Abstraction : Segmentation and Recovery of Superquadrics
Reference 14
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Observation 33a5d2f8-0b38-4798-91b8-fb5e87970403 · outbound
Harnessing Generative Image Models for Training-Free Primitive Shape Abstraction : Learning fine-to-coarse cuboid shape abstraction
Reference 15
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Observation 308d835d-b352-473e-9b5e-ed8e2112cd7b · outbound
Harnessing Generative Image Models for Training-Free Primitive Shape Abstraction C., Lo W.-Y., Doll \'a r P., Girshick R
Reference 16
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Observation 1f8466ae-b234-4755-ac72-8e170f1643eb · outbound
Harnessing Generative Image Models for Training-Free Primitive Shape Abstraction PASTA: Controllable Part-Aware Shape Generation with Autoregressive Transformers
Reference 17
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Observation 8cc779cf-c667-44c8-a4da-f1215a375035 · outbound
Harnessing Generative Image Models for Training-Free Primitive Shape Abstraction : P3-SAM : Native 3D part segmentation
Reference 18
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Observation 936d3cb9-030b-45bf-8cec-0ef2ebec473c · outbound
Harnessing Generative Image Models for Training-Free Primitive Shape Abstraction : PartField : Learning part field representations for generalizable 3D part segmentation
Reference 19
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Observation eca2cd31-a196-4aea-bf3c-26460e610deb · outbound
Harnessing Generative Image Models for Training-Free Primitive Shape Abstraction SegviGen: Repurposing 3D Generative Model for Part Segmentation
Reference 20
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Observation 734be800-e045-4219-a6c9-2b9f15e797b9 · outbound
Harnessing Generative Image Models for Training-Free Primitive Shape Abstraction : Superquadrics for segmenting and modeling range data
Reference 21
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Observation 5baadd93-9a46-46b3-b272-ca433b4794c3 · outbound
Harnessing Generative Image Models for Training-Free Primitive Shape Abstraction C., Nocedal J
Reference 22
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Observation a5460f7e-697f-4212-beea-61934a225f2d · outbound
Harnessing Generative Image Models for Training-Free Primitive Shape Abstraction Unresolved cited work
Reference 23
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Observation f2ec2d59-bd0c-438a-ab3f-f055a17dc05e · outbound
Harnessing Generative Image Models for Training-Free Primitive Shape Abstraction Unresolved cited work
Reference 24
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Observation 471a3d0a-8146-4978-9663-c4cee723d56b · outbound
Harnessing Generative Image Models for Training-Free Primitive Shape Abstraction : PartSLIP : Low-shot part segmentation for 3D point clouds via pretrained image-language models
Reference 25
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Observation a06fae78-2a19-418c-9d19-5de24695c56e · outbound
Harnessing Generative Image Models for Training-Free Primitive Shape Abstraction A., Aubry M
Reference 26
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Observation 81988054-8080-4fbb-8648-50534929ca74 · outbound
Harnessing Generative Image Models for Training-Free Primitive Shape Abstraction X., Yi L., Tripathi S., Guibas L
Reference 27
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Observation 6181f85a-e0be-44cf-8f29-59c7b784e79e · outbound
Harnessing Generative Image Models for Training-Free Primitive Shape Abstraction Unresolved cited work
Reference 28
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Observation 657dfb5c-e4d7-42e3-8339-186254b31c26 · outbound
Harnessing Generative Image Models for Training-Free Primitive Shape Abstraction O., Geiger A
Reference 29
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Observation 5f916d91-02c5-41b0-9c9d-d3727ba9d558 · outbound
Harnessing Generative Image Models for Training-Free Primitive Shape Abstraction : Neural parts: Learning expressive deformable geometry with invertible neural networks
Reference 30
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Observation bb6ea5cd-ab8a-41ea-a691-59a47c9f9d10 · outbound
Harnessing Generative Image Models for Training-Free Primitive Shape Abstraction Exploiting GPT-4 Vision for Zero-shot Point Cloud Understanding
Reference 31
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Observation 7ff52667-f688-4bd4-980a-e9410c92f752 · outbound
Harnessing Generative Image Models for Training-Free Primitive Shape Abstraction : Recovery of parametric models from range images: The case for superquadrics with global deformations
Reference 32
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Observation d0933075-ee7a-44eb-814f-6b263db7dd20 · outbound
Harnessing Generative Image Models for Training-Free Primitive Shape Abstraction Unresolved cited work
Reference 33
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Observation c2252cc7-b5e4-4de6-b1ba-9ed547498040 · outbound
Harnessing Generative Image Models for Training-Free Primitive Shape Abstraction : Learning adaptive hierarchical cuboid abstractions of 3D shape collections
Reference 34
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Observation b02894d5-9ad8-4a31-aefa-50250754b5d6 · outbound
Harnessing Generative Image Models for Training-Free Primitive Shape Abstraction : Llm-primitives: Large language model for 3D reconstruction with primitives
Reference 35
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Observation bb9fb91e-eefd-4b42-9e36-1041ee27f6ed · outbound
Harnessing Generative Image Models for Training-Free Primitive Shape Abstraction J., Efros A
Reference 36
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Observation 59f0edff-77eb-483b-a6e1-53b3d8d1f47c · outbound
Harnessing Generative Image Models for Training-Free Primitive Shape Abstraction : Light-SQ : Structure-aware shape abstraction with superquadrics for generated meshes
Reference 37
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Observation 7b878315-6b61-4328-9134-9d265efb19d4 · outbound
Harnessing Generative Image Models for Training-Free Primitive Shape Abstraction MeshSegmenter: Zero-Shot Mesh Semantic Segmentation via Texture Synthesis
Reference 38
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Observation a6c393c3-ad64-4698-a98f-0b90f4966bdb · outbound
Harnessing Generative Image Models for Training-Free Primitive Shape Abstraction : Unsupervised learning of fine structure generation for 3D point clouds by 2D projection matching
Reference 39
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Observation 65a6ed6f-8c0b-4ae1-bf60-699e6034b292 · outbound
Harnessing Generative Image Models for Training-Free Primitive Shape Abstraction SAMPart3D: Segment Any Part in 3D Objects
Reference 40
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Observation b882f9e9-12e4-4f25-be2f-5254ba94ea90 · outbound
Harnessing Generative Image Models for Training-Free Primitive Shape Abstraction : PrimitiveAnything : Human-crafted 3D primitive assembly generation with auto-regressive transformer
Reference 41
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Observation 90cc0ec9-c5c4-4346-88ec-a7ae85cc72e0 · outbound
Harnessing Generative Image Models for Training-Free Primitive Shape Abstraction A., Han J., Thomas R., Zhang H., Du Y., Chen H., Engelmann F., You S., Guibas L
Reference 42
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Observation 284688fb-f89f-437c-a894-0959710f8603 · outbound
Harnessing Generative Image Models for Training-Free Primitive Shape Abstraction : SweepNet : Unsupervised shape abstraction via neural sweeping
Reference 43
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Observation a66cf0a3-b859-41e0-b010-f2d777cd0c22 · outbound
Harnessing Generative Image Models for Training-Free Primitive Shape Abstraction : Point- SAM : Promptable 3D segmentation model for point clouds
Reference 44
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Observation 0639ffaa-ca5d-4a72-a630-27d4940db673 · outbound
Harnessing Generative Image Models for Training-Free Primitive Shape Abstraction : 3D-PRNN : Generating shape primitives with recurrent neural networks
Reference 45
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No inbound Pith citation observations are available.