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Paper Citation Record · LEDGER

GUST: Quantifying Free-Form Geometric Uncertainty of Metamaterials Using Small Data

As of 8 August 2026, this Paper Citation Record lists 50 of 50 outbound references and 0 inbound Pith citation observations for arXiv:2506.12051.

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pith.paper-citation-record.v1
2506.12051 v2

Coverage vector

measured 50 of 50 reference resolution

Typed states for the displayed outbound observations.

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One-hop event checks from named stored sources.

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Pith citing papers itemized under the disclosed page cap.

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Reference resolution

50 of 50 outbound references displayed

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External citation measurements

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Outbound references

Observation 1399adfe-72f1-4ca7-8f20-e244858910aa · outbound

This paper cites Optimization of fused filament fabrication process parameters under uncertainty to maximize part geometry accuracy.

GUST: Quantifying Free-Form Geometric Uncertainty of Metamaterials Using Small Data Optimization of fused filament fabrication process parameters under uncertainty to maximize part geometry accuracy

Reference 1

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Observation 96f8262d-a5d9-46d0-90c6-454fa39f8c75 · outbound

This paper cites Haberman, and Carolyn C.

GUST: Quantifying Free-Form Geometric Uncertainty of Metamaterials Using Small Data Haberman, and Carolyn C

Reference 2

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Observation fb5f4ca9-9b1a-4a64-8b5a-f171635270cb · outbound

This paper cites Haberman.

GUST: Quantifying Free-Form Geometric Uncertainty of Metamaterials Using Small Data Haberman

Reference 3

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Observation ec9ebef6-6b13-4f09-8861-c6ee8b4e8347 · outbound

This paper cites Level set based robust shape and topology optimization under random field uncertainties.

GUST: Quantifying Free-Form Geometric Uncertainty of Metamaterials Using Small Data Level set based robust shape and topology optimization under random field uncertainties

Reference 4

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Observation b0e99eae-ef2b-4bcd-bd6a-fdf2c96765ad · outbound

This paper cites A new level-set based approach to shape and topology optimization under geometric uncertainty.

GUST: Quantifying Free-Form Geometric Uncertainty of Metamaterials Using Small Data A new level-set based approach to shape and topology optimization under geometric uncertainty

Reference 5

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Observation 415dd5ea-d781-4384-821c-60db215e57ee · outbound

This paper cites Wang, David Sell, Thaibao Phan, and Jonathan A.

GUST: Quantifying Free-Form Geometric Uncertainty of Metamaterials Using Small Data Wang, David Sell, Thaibao Phan, and Jonathan A

Reference 6

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Observation 5c533794-3762-4e4c-9514-d1baba26d3db · outbound

This paper cites Uncertainty quantification of microstructure variability and mechanical behavior of additively manufactured lattice structures.

GUST: Quantifying Free-Form Geometric Uncertainty of Metamaterials Using Small Data Uncertainty quantification of microstructure variability and mechanical behavior of additively manufactured lattice structures

Reference 7

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Observation 7227ce57-9f40-437e-8837-c243417f93f9 · outbound

This paper cites GAN-DUF: Hierarchical Deep Generative Models for Design Under Free-Form Geometric Uncertainty.

GUST: Quantifying Free-Form Geometric Uncertainty of Metamaterials Using Small Data GAN-DUF: Hierarchical Deep Generative Models for Design Under Free-Form Geometric Uncertainty

Reference 8

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This paper cites Generative adversarial nets.

GUST: Quantifying Free-Form Geometric Uncertainty of Metamaterials Using Small Data Generative adversarial nets

Reference 9

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Source-reported events for the cited work

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Observation 1009cdb3-734a-4c14-acfa-c4dd719d5397 · outbound

This paper cites Denoising diffusion probabilistic models.

GUST: Quantifying Free-Form Geometric Uncertainty of Metamaterials Using Small Data Denoising diffusion probabilistic models

Reference 10

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Observation 212c1f61-aad9-40b4-b3ef-f3f6d7eed347 · outbound

This paper cites Maximum likelihood training of score-based diffusion models.

GUST: Quantifying Free-Form Geometric Uncertainty of Metamaterials Using Small Data Maximum likelihood training of score-based diffusion models

Reference 11

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Observation 6f72a84a-55f9-4bb1-9d9f-5de3d46ab2b0 · outbound

This paper cites Elucidating the design space of diffusion-based generative models.

GUST: Quantifying Free-Form Geometric Uncertainty of Metamaterials Using Small Data Elucidating the design space of diffusion-based generative models

Reference 12

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This paper cites Diffusion models beat gans on image synthesis.

GUST: Quantifying Free-Form Geometric Uncertainty of Metamaterials Using Small Data Diffusion models beat gans on image synthesis

Reference 13

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Observation 3077db1e-f159-410a-b764-f99e902991d2 · outbound

This paper cites Deep unsupervised learning using nonequilibrium thermodynamics.

GUST: Quantifying Free-Form Geometric Uncertainty of Metamaterials Using Small Data Deep unsupervised learning using nonequilibrium thermodynamics

Reference 14

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Observation 37c6b065-4444-4fc1-8d95-92096f1b5f60 · outbound

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

GUST: Quantifying Free-Form Geometric Uncertainty of Metamaterials Using Small Data High-resolution image synthesis with latent diffusion models

Reference 15

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Observation 55f1b4b0-3b53-4d25-a7f5-60d201d11daa · outbound

This paper cites Palette: Image-to-image diffusion models.

GUST: Quantifying Free-Form Geometric Uncertainty of Metamaterials Using Small Data Palette: Image-to-image diffusion models

Reference 16

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This paper cites Cnn features off-the-shelf: an astounding baseline for recognition.

GUST: Quantifying Free-Form Geometric Uncertainty of Metamaterials Using Small Data Cnn features off-the-shelf: an astounding baseline for recognition

Reference 17

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Observation f0602776-1b15-45c3-91f0-1950c6255ae2 · outbound

This paper cites How transferable are features in deep neural networks? Advances in neural information processing systems, 27, 2014.

GUST: Quantifying Free-Form Geometric Uncertainty of Metamaterials Using Small Data How transferable are features in deep neural networks? Advances in neural information processing systems, 27, 2014

Reference 18

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Observation 7851410a-b7e9-41a8-9d94-63cf4a7f63e5 · outbound

This paper cites Transfer Learning for Diffusion Models.

GUST: Quantifying Free-Form Geometric Uncertainty of Metamaterials Using Small Data Transfer Learning for Diffusion Models

Reference 19

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Observation cc503cff-fa2f-4745-a8f8-1adce06ff9ea · outbound

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GUST: Quantifying Free-Form Geometric Uncertainty of Metamaterials Using Small Data Fine-tuning diffusion models with limited data

Reference 20

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Observation ebb98adf-23b2-4284-a0be-89d4aefb3e7b · outbound

This paper cites Difffit: Unlocking transferability of large diffusion models via simple parameter-efficient fine-tuning.

GUST: Quantifying Free-Form Geometric Uncertainty of Metamaterials Using Small Data Difffit: Unlocking transferability of large diffusion models via simple parameter-efficient fine-tuning

Reference 21

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Observation ef78e659-0c2e-4ea4-9cfa-79ba24a0e676 · outbound

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GUST: Quantifying Free-Form Geometric Uncertainty of Metamaterials Using Small Data One-shot generative domain adaptation

Reference 22

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Observation 1005d1b4-3d35-4f61-bf3d-2545cf30dfcc · outbound

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GUST: Quantifying Free-Form Geometric Uncertainty of Metamaterials Using Small Data Few-shot Image Generation with Diffusion Models

Reference 23

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Observation e5f1d97c-1ea2-4a2a-9aeb-2fcf629ca6d0 · outbound

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GUST: Quantifying Free-Form Geometric Uncertainty of Metamaterials Using Small Data Generalized one-shot domain adaptation of generative adversarial networks

Reference 24

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GUST: Quantifying Free-Form Geometric Uncertainty of Metamaterials Using Small Data A closer look at few-shot image generation

Reference 25

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GUST: Quantifying Free-Form Geometric Uncertainty of Metamaterials Using Small Data Explicit inductive bias for transfer learning with convolutional networks

Reference 26

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GUST: Quantifying Free-Form Geometric Uncertainty of Metamaterials Using Small Data Provable sample-efficient transfer learning conditional diffusion models via representation learning

Reference 27

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GUST: Quantifying Free-Form Geometric Uncertainty of Metamaterials Using Small Data Transfer learning for diffusion models

Reference 28

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GUST: Quantifying Free-Form Geometric Uncertainty of Metamaterials Using Small Data Denoising diffusion probabilistic models for addressing data limitations in chest x-ray classification

Reference 29

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GUST: Quantifying Free-Form Geometric Uncertainty of Metamaterials Using Small Data Semantic image synthesis with spatially-adaptive normalization

Reference 30

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GUST: Quantifying Free-Form Geometric Uncertainty of Metamaterials Using Small Data Mechanical cloak via data- driven aperiodic metamaterial design

Reference 31

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GUST: Quantifying Free-Form Geometric Uncertainty of Metamaterials Using Small Data Freeu: Free lunch in diffusion u-net

Reference 32

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GUST: Quantifying Free-Form Geometric Uncertainty of Metamaterials Using Small Data Kingma and Jimmy Ba

Reference 33

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GUST: Quantifying Free-Form Geometric Uncertainty of Metamaterials Using Small Data Differential evolution–a simple and efficient heuristic for global optimization over continuous spaces

Reference 34

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GUST: Quantifying Free-Form Geometric Uncertainty of Metamaterials Using Small Data Statistical modeling of images with fields of gaussian scale mixtures

Reference 35

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This paper cites Improved precision and recall metric for assessing generative models.

GUST: Quantifying Free-Form Geometric Uncertainty of Metamaterials Using Small Data Improved precision and recall metric for assessing generative models

Reference 36

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This paper cites Reliable fidelity and diversity metrics for generative models.

GUST: Quantifying Free-Form Geometric Uncertainty of Metamaterials Using Small Data Reliable fidelity and diversity metrics for generative models

Reference 37

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This paper cites Design of materials using topology optimization and energy-based homogenization approach in matlab.

GUST: Quantifying Free-Form Geometric Uncertainty of Metamaterials Using Small Data Design of materials using topology optimization and energy-based homogenization approach in matlab

Reference 38

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This paper cites Optimal transport: old and new, volume 338.

GUST: Quantifying Free-Form Geometric Uncertainty of Metamaterials Using Small Data Optimal transport: old and new, volume 338

Reference 39

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This paper cites A Scaling Law for Synthetic-to-Real Transfer: How Much Is Your Pre-training Effective?.

GUST: Quantifying Free-Form Geometric Uncertainty of Metamaterials Using Small Data A Scaling Law for Synthetic-to-Real Transfer: How Much Is Your Pre-training Effective?

Reference 40

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Observation e23148dd-2f43-4e5d-b54c-d5abbd92d352 · outbound

This paper cites An Empirical Study of Scaling Laws for Transfer.

GUST: Quantifying Free-Form Geometric Uncertainty of Metamaterials Using Small Data An Empirical Study of Scaling Laws for Transfer

Reference 41

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This paper cites Scaling Laws for Transfer.

GUST: Quantifying Free-Form Geometric Uncertainty of Metamaterials Using Small Data Scaling Laws for Transfer

Reference 42

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Source-reported events for the cited work

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Observation 789ac328-2252-4a53-b2a5-d5611e986a4c · outbound

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GUST: Quantifying Free-Form Geometric Uncertainty of Metamaterials Using Small Data Big transfer (bit): General visual representation learning

Reference 43

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Observation 6537f478-6821-488b-981a-50a8269f1c0d · outbound

This paper cites Revisiting unreasonable effectiveness of data in deep learning era.

GUST: Quantifying Free-Form Geometric Uncertainty of Metamaterials Using Small Data Revisiting unreasonable effectiveness of data in deep learning era

Reference 44

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Source-reported events for the cited work

Unavailable: canonical work link unavailable.

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Observation b552cc86-5fc6-40c9-a5ee-62f0479f0ffe · outbound

This paper cites What makes ImageNet good for transfer learning?.

GUST: Quantifying Free-Form Geometric Uncertainty of Metamaterials Using Small Data What makes ImageNet good for transfer learning?

Reference 45

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Source-reported events for the cited work

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Observation a49bc180-6e21-4441-917f-a3abfc6edbbc · outbound

This paper cites Lora: Low-rank adaptation of large language models.

GUST: Quantifying Free-Form Geometric Uncertainty of Metamaterials Using Small Data Lora: Low-rank adaptation of large language models

Reference 46

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Observation 3ebb40dd-7bba-407c-98a2-29f2de760e61 · outbound

This paper cites Parameter-Efficient Fine-Tuning of 3D DDPM for MRI Image Generation Using Tensor Networks.

GUST: Quantifying Free-Form Geometric Uncertainty of Metamaterials Using Small Data Parameter-Efficient Fine-Tuning of 3D DDPM for MRI Image Generation Using Tensor Networks

Reference 47

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Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-07T06:34:17.273281+00:00.

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Observation a49da357-769d-4291-a856-4c167501f13e · outbound

This paper cites One-shot generative domain adaptation.

GUST: Quantifying Free-Form Geometric Uncertainty of Metamaterials Using Small Data One-shot generative domain adaptation

Reference 49

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verified fuzzy
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Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-07T06:34:17.273281+00:00.

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Observation 9a99cf3c-862c-4b91-8b63-22453af17150 · outbound

This paper cites Image synthesis under limited data: A survey and taxonomy.

GUST: Quantifying Free-Form Geometric Uncertainty of Metamaterials Using Small Data Image synthesis under limited data: A survey and taxonomy

Reference 50

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verified fuzzy
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Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-07T06:34:17.273281+00:00.

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Observation 533bd285-9852-49c2-9505-5e9cb7b7962c · outbound

This paper cites as-fabricated.

GUST: Quantifying Free-Form Geometric Uncertainty of Metamaterials Using Small Data as-fabricated

Reference 51

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verified fuzzy
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Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-07T06:34:17.273281+00:00.

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Pith citing papers

No inbound Pith citation observations are available.