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Paper Citation Record · LEDGER

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning

As of 16 August 2026, this Paper Citation Record lists 93 of 93 outbound references and 0 inbound Pith citation observations for arXiv:2607.18092.

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

pith.paper-citation-record.v1
2607.18092 v1

Coverage vector

measured 93 of 93 reference resolution

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Source: paper_references, paper_reference_links, observed 2026-08-01T16:13:40.576352Z

measured 93 of 93 standing notices

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Source: scholarly_work_events, retraction_status_cache, observed 2026-08-16T06:30:59.297886+00:00

measured 0 of 0 inbound itemization

Pith citing papers itemized under the disclosed page cap.

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measured 0 of 1 external citation measurements

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Reference resolution

93 of 93 outbound references displayed

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External citation measurements

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Outbound references

Observation fdd787a5-c03d-48f1-9b50-f4cb033d7a90 · outbound

This paper cites an unresolved cited work.

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Unresolved cited work

Reference 1

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This paper cites Uhrin, S.

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Uhrin, S

Reference 2

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Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Unresolved cited work

Reference 3

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Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Unresolved cited work

Reference 4

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This paper cites Mathew, J.

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Mathew, J

Reference 5

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This paper cites Ganose, J.

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Ganose, J

Reference 6

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Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Unresolved cited work

Reference 7

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Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Unresolved cited work

Reference 8

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Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Unresolved cited work

Reference 9

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This paper cites Kirklin, J.

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Kirklin, J

Reference 10

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This paper cites Curtarolo, W.

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Curtarolo, W

Reference 11

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This paper cites Curtarolo, W.

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Curtarolo, W

Reference 12

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Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Unresolved cited work

Reference 13

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Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Schmidt, N

Reference 14

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Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Schmidt, H.-C

Reference 15

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Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Schmidt, T

Reference 16

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Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Unresolved cited work

Reference 17

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Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Talirz, S

Reference 18

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Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Hohenberg and W

Reference 19

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Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Kohn and L

Reference 20

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Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning AI-Driven Expansion and Application of the Alexandria Database

Reference 21

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Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Unresolved cited work

Reference 22

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Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Unresolved cited work

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Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Unresolved cited work

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Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Unresolved cited work

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Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Unresolved cited work

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Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Unresolved cited work

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Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Unresolved cited work

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Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Zhang, D

Reference 29

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Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Kingsbury, A

Reference 30

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Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Unresolved cited work

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Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Unresolved cited work

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Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Unresolved cited work

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Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Unresolved cited work

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Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Unresolved cited work

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Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Malosso, F

Reference 36

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Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Unresolved cited work

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Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Bosoni, L

Reference 38

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Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Prandini, A

Reference 39

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Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Grindy, B

Reference 40

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Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Unresolved cited work

Reference 41

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Observation d11c346e-2ab6-460d-b186-e2287f6c0015 · outbound

This paper cites Stevanovi´ c, S.

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Stevanovi´ c, S

Reference 42

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Observation 1237ef74-636e-4f13-b17c-67dcae8e7d81 · outbound

This paper cites an unresolved cited work.

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Unresolved cited work

Reference 43

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Observation 7a331fb7-dba8-4711-98e0-b3fbe8eef183 · outbound

This paper cites Friedrich, D.

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Friedrich, D

Reference 44

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source=pdf_text observed=2026-08-01T16:13:34.732473Z digest=sha256:c41856f8dee188de159a3e29e8278285961ea6925a8f559755080d121180db28

Observation 1943188d-38fb-4b53-8d53-d2856a8376d1 · outbound

This paper cites Friedrich and S.

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Friedrich and S

Reference 45

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Observation fcbdcfb8-73d5-40db-b46c-f63fd33986e9 · outbound

This paper cites Hautier, S.

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Hautier, S

Reference 46

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source=pdf_text observed=2026-08-01T16:13:34.973946Z digest=sha256:040ea2fc6145e565d2fa22065e439f6b652249e41e45b9a33f57d5bbec36cbc4

Observation 80df137a-f750-4240-b49d-805a4af134b2 · outbound

This paper cites an unresolved cited work.

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Unresolved cited work

Reference 47

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source=pdf_text observed=2026-08-01T16:13:35.152592Z digest=sha256:dfff26108dd91531ac5deed75b260dc4bdcfbf6f2bf877d1d626340d4cf55aec

Observation 68cd1238-648e-4007-bcf6-636803c0a01f · outbound

This paper cites an unresolved cited work.

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Unresolved cited work

Reference 48

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source=pdf_text observed=2026-08-01T16:13:35.249922Z digest=sha256:9e359c86ea8a550e6d017a8aad238c29cfe61ccac9fcddabdaab714f2bf6c7ea

Observation 81d4a79f-8fc7-4085-9101-65e938a1364a · outbound

This paper cites an unresolved cited work.

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Unresolved cited work

Reference 49

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source=pdf_text observed=2026-08-01T16:13:35.371240Z digest=sha256:43bfe485e4ca5801dcace10db20271badb3d2d05ac105633d87718d0f0ef4d71

Observation 3b7dda2f-09b9-4c68-99e7-d5de10c7a928 · outbound

This paper cites an unresolved cited work.

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Unresolved cited work

Reference 50

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source=pdf_text observed=2026-08-01T16:13:35.555551Z digest=sha256:cd8f64f5642f4d3c7bfc731e9cfa23e67522ef2d4fc840bac62e73a2af67d1b0

Observation 6cd7a6ab-a63b-40a7-9af0-1fc316342799 · outbound

This paper cites an unresolved cited work.

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Unresolved cited work

Reference 51

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source=pdf_text observed=2026-08-01T16:13:35.682222Z digest=sha256:53ff65952be0b4cae69153e0e9ab1fbc1ce49874622709893ef285ff9fd3f909

Observation fae50c1c-4821-46a4-810b-b43b7121fa63 · outbound

This paper cites an unresolved cited work.

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Unresolved cited work

Reference 52

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source=pdf_text observed=2026-08-01T16:13:35.797055Z digest=sha256:770f2bffce099b7372ebe15d87be37fa0607df1934b94ac3e5bbda9cb4ea1ed8

Observation 71262025-aa2c-4ab7-9f65-8f093731c8dd · outbound

This paper cites Interpretable machine learning to understand the performance of semi local density functionals for materials thermochemistry.

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Interpretable machine learning to understand the performance of semi local density functionals for materials thermochemistry

Reference 53

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source=pdf_text observed=2026-08-01T16:13:35.930981Z digest=sha256:0b5199e48bc0b02174772f998793ceb73143ad28574927b8d958dc7c1d8cdb3e

Observation 9ebdf7f0-1b52-4e75-9449-a9dca681f02e · outbound

This paper cites an unresolved cited work.

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Unresolved cited work

Reference 54

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source=pdf_text observed=2026-08-01T16:13:36.058491Z digest=sha256:f756f31a8fb389593797e4e59c16cec7f850a850784ac57f4024f3b085911c4f

Observation 595bf28f-e44c-4113-a62c-b57be0ec40e5 · outbound

This paper cites an unresolved cited work.

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Unresolved cited work

Reference 55

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source=pdf_text observed=2026-08-01T16:13:36.201360Z digest=sha256:26a68a0b727a5d8b5c285a3a02ffd1534bd4b46f96d771d80823ea8fc15f29b9

Observation aaa0852b-1c89-4667-a76a-049ceb5c6151 · outbound

This paper cites Priya and N.

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Priya and N

Reference 56

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source=pdf_text observed=2026-08-01T16:13:36.301063Z digest=sha256:27e91d2fdfaef4979d895b005caeb134a970c39fadd196aa964f77f0c3ce85e6

Observation 8c7c8947-c992-40c4-805f-e42f3b02aa89 · outbound

This paper cites Woods-Robinson, D.

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Woods-Robinson, D

Reference 57

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source=pdf_text observed=2026-08-01T16:13:36.413114Z digest=sha256:fcb2ebddc2cba65609cd20bf4fb5c523525b656a32244b3043b8b0b2153eaca5

Observation c32aacc3-47a7-4e9c-be5f-c18f9a023288 · outbound

This paper cites Mueller, G.

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Mueller, G

Reference 58

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source=pdf_text observed=2026-08-01T16:13:36.534766Z digest=sha256:38311e531f3aa37630dea601cbabdb388a7860062989082956ccadfe19ca3a18

Observation 93d73c60-e09a-41ab-b6b9-1efa19755b9b · outbound

This paper cites Kirklin, J.

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Kirklin, J

Reference 59

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source=pdf_text observed=2026-08-01T16:13:36.647621Z digest=sha256:f219cf43ab4d918ac8f6cdf29f58042ddd23ffcc8e882d62b2ad0b96e2e3ab4f

Observation 51ef7bfb-477a-47a0-81a6-9d931672d9e3 · outbound

This paper cites Aykol, S.

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Aykol, S

Reference 60

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source=pdf_text observed=2026-08-01T16:13:36.744648Z digest=sha256:bc8c07f359864dcf61582a6769ede13426c792eb611f21c225634d7389752419

Observation b1cc26fd-4207-40a9-8415-e55819baf210 · outbound

This paper cites Warford, F.

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Warford, F

Reference 61

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source=pdf_text observed=2026-08-01T16:13:36.858567Z digest=sha256:bc4a39a80bba7e059099099b617ef7e86c01d8dfb26a1153ab528b3fd402626d

Observation 73682b09-ca52-49e3-9cc7-f1bf96a951af · outbound

This paper cites an unresolved cited work.

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Unresolved cited work

Reference 62

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source=pdf_text observed=2026-08-01T16:13:37.027727Z digest=sha256:cec414933c721e01822cb02b8312bf45e87bf9b45be0ed0f995927959cc793ca

Observation 03346160-a477-4aa4-b0c6-1b58a48ed8f0 · outbound

This paper cites Smooth, exact rotational symmetrization for deep learning on point clouds.

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Smooth, exact rotational symmetrization for deep learning on point clouds

Reference 63

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source=pdf_text observed=2026-08-01T16:13:37.210404Z digest=sha256:61f3062eaa0cf97ec3cd2dfc91bf129e48710e9763e591852cbc57fd8375fa5b

Observation 60b6195f-75e8-4372-8f9e-ac8a39f529e5 · outbound

This paper cites Pushing the limits of unconstrained machine-learned interatomic potentials.

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Pushing the limits of unconstrained machine-learned interatomic potentials

Reference 64

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source=pdf_text observed=2026-08-01T16:13:37.324630Z digest=sha256:eccb20e5b8ecb9294e51416256101eea39d6bbeedb0d98cf9750f0062699ab75

Observation 63157853-594b-48d7-935b-ff53e03ff555 · outbound

This paper cites Riebesell, R.

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Riebesell, R

Reference 65

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source=pdf_text observed=2026-08-01T16:13:37.495466Z digest=sha256:c01d334770d934f365473bf8dc38a6fb5fab2ec19cb3c01901607792dc80507c

Observation dbdc95e7-6a74-492b-bb57-f8483768a740 · outbound

This paper cites Open Materials 2024 (OMat24) Inorganic Materials Dataset and Models.

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Open Materials 2024 (OMat24) Inorganic Materials Dataset and Models

Reference 66

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source=pdf_text observed=2026-08-01T16:13:37.670300Z digest=sha256:1f65ae3eab66ca3971a0f297438b952489846dfdd4e0f0c82e7bb1e189a432cc

Observation cd23d93e-7b2c-4796-9ed6-cdbe6905d3f4 · outbound

This paper cites an unresolved cited work.

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Unresolved cited work

Reference 67

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source=pdf_text observed=2026-08-01T16:13:37.826540Z digest=sha256:bd77912b374bffcf3d3bb0275eb8671d35676049cacd819cf25f26ca90f0cf89

Observation ca18d280-81c7-4f2c-b50a-ba5a03108aa8 · outbound

This paper cites Chorna, D.

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Chorna, D

Reference 68

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verified exact
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Observation 26ac3d36-50fd-4c6e-b08e-866e654ddbfa · outbound

This paper cites Breiman, Machine Learning45, 5 (2001).

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Breiman, Machine Learning45, 5 (2001)

Reference 69

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source=pdf_text observed=2026-08-01T16:13:38.139728Z digest=sha256:a328fa07c0728f3fd4571bf11f67fdf84df374ba950faf79aba92012dc810d76

Observation 7ba24896-f17b-4baf-89c1-0eec39a77936 · outbound

This paper cites an unresolved cited work.

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Unresolved cited work

Reference 70

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source=pdf_text observed=2026-08-01T16:13:38.267834Z digest=sha256:e52eeef050ad34bb3b933ecaf089d484db88672f4ac06b48920fe4d809cf13e3

Observation eb8a79cf-a1a2-4756-aa81-41a7202fe8e3 · outbound

This paper cites an unresolved cited work.

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Unresolved cited work

Reference 71

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source=pdf_text observed=2026-08-01T16:13:38.386047Z digest=sha256:b7dc6bc7228579984ff6cbef7ff484c5af3c542d325b960b1d1fb7821ac97ac5

Observation ad735d63-d706-40e0-8a7f-f7b7b496f914 · outbound

This paper cites an unresolved cited work.

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Unresolved cited work

Reference 72

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source=pdf_text observed=2026-08-01T16:13:38.520873Z digest=sha256:60ec30e2ad59a985ee8d14b9c4719269a7658b730bbb7a11c90ae3e54b73171f

Observation 13fa4cec-9ffd-4cbe-8d07-b28839a36d4f · outbound

This paper cites an unresolved cited work.

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Unresolved cited work

Reference 73

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source=pdf_text observed=2026-08-01T16:13:38.644394Z digest=sha256:f5795356db3d86de838775b92646e3e7afd26cf66aa4a27ec39142d30c3e0ea9

Observation 8b44861d-c18c-4d85-a7ce-cb5b4215eda0 · outbound

This paper cites an unresolved cited work.

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Unresolved cited work

Reference 74

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source=pdf_text observed=2026-08-01T16:13:38.851064Z digest=sha256:4e38e27f4c4e740baf825bc58a323647538e4d7477b629afdc981851f23b5baa

Observation 8fea11f5-7542-4c02-95b6-bd69c8922eb3 · outbound

This paper cites Lejaeghere, G.

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Lejaeghere, G

Reference 75

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source=pdf_text observed=2026-08-01T16:13:39.047286Z digest=sha256:fbbad82e063d5613d48da2ccf31d85a30a27db78a61443f6c3d5643c39e69051

Observation 8e5a9d40-e065-4c9d-b683-c62b04a048f2 · outbound

This paper cites Kozhevnikov, M.

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Kozhevnikov, M

Reference 76

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source=pdf_text observed=2026-08-01T16:13:39.155868Z digest=sha256:d73e7dfe6d0abd7e50963e87f70b317c28d6902de8ed0b798cd188de2ee2edc3

Observation fcad3186-2a59-4638-832c-d546d2053866 · outbound

This paper cites Giannozzi, S.

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Giannozzi, S

Reference 77

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source=pdf_text observed=2026-08-01T16:13:39.260092Z digest=sha256:d39474a4213277cb5e81081f15d9fc5cce10c528d598bcbb9b082465345be0df

Observation c2628a1a-b3e3-44fe-b1da-2b49b3932c16 · outbound

This paper cites Giannozzi, O.

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Giannozzi, O

Reference 78

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no resolver link, observed 2026-08-01T16:13:39.378951Z

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source=pdf_text observed=2026-08-01T16:13:39.378951Z digest=sha256:d9f2f95ca3878afed53c84e7c0e7c91669c658c74f51be801f08232d76b80c4e

Observation cde203b3-78ce-4aa7-b5a1-89d48c26a915 · outbound

This paper cites an unresolved cited work.

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Unresolved cited work

Reference 79

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source=pdf_text observed=2026-08-01T16:13:39.553041Z digest=sha256:404adb8b357f0b5c71dec503095baaa4cc9bbd36caeb19ff161c844a85692d54

Observation 201267d6-5bf8-4994-bd55-74a0e16408c9 · outbound

This paper cites de Miranda Nascimento, F.

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning de Miranda Nascimento, F

Reference 80

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verified exact
doi, observed 2026-08-01T16:19:08.308519Z

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Observation 34042e2e-d57a-43d8-b2bd-a733a07a5ff6 · outbound

This paper cites an unresolved cited work.

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Unresolved cited work

Reference 81

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verified exact
doi, observed 2026-08-01T16:19:08.297054Z

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No event found in the named queried sources as of 2026-08-16T06:30:59.297886+00:00.

source=pdf_text observed=2026-08-01T16:13:39.744772Z digest=sha256:61a891855371b3e47b95d2a33a53da1c7bee65d9d622ef7b9b70c800bbc5ee02

Observation 7492975d-f255-4b83-8305-08810d7a7c98 · outbound

This paper cites an unresolved cited work.

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Unresolved cited work

Reference 82

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Observation 522db53a-25ca-45a0-aab6-089c89e23f16 · outbound

This paper cites Kubaschewski, C.

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Kubaschewski, C

Reference 83

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Observation e0b32dc4-2639-4779-b8d2-d40e33b16413 · outbound

This paper cites an unresolved cited work.

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Unresolved cited work

Reference 84

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Observation 6d41e140-8136-48b6-8b0e-5f515bd4bf4d · outbound

This paper cites Rzyman, Z.

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Rzyman, Z

Reference 85

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Observation 2eeb6e17-83a9-4744-a880-2830652d960c · outbound

This paper cites (CRC Press, 2007).

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning (CRC Press, 2007)

Reference 86

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Observation 46e40ddf-e0ce-438f-ae63-093992a7e850 · outbound

This paper cites Grindy, B.

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Grindy, B

Reference 87

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no resolver link, observed 2026-08-01T16:13:40.172302Z

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This paper cites Kresse and J.

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Kresse and J

Reference 88

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Observation 01769c0f-3e53-42a5-8473-1f4683ce5839 · outbound

This paper cites Kresse and J.

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Kresse and J

Reference 89

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no resolver link, observed 2026-08-01T16:13:40.310985Z

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Observation b2742c80-871b-4541-ab03-6167d14f0421 · outbound

This paper cites an unresolved cited work.

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Unresolved cited work

Reference 90

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Observation eb94768c-6c0b-4598-8847-9f8c58339ce4 · outbound

This paper cites an unresolved cited work.

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning Unresolved cited work

Reference 91

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source=pdf_text observed=2026-08-01T16:13:40.466932Z digest=sha256:6d4c828f2ef24338c569aa9ce03da538ae8c1fc1547ed246cac171fe97cd0249

Observation cd591f9a-e5e0-4a15-a5a1-3496f84ea2e3 · outbound

This paper cites In contrast to these constant cutoffs, the MC3D follows the SSSP [39] protocol where a set of recommended cutoffs for each element were established.

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning In contrast to these constant cutoffs, the MC3D follows the SSSP [39] protocol where a set of recommended cutoffs for each element were established

Reference 92

Resolution
unresolved
no resolver link, observed 2026-08-01T16:13:40.523244Z

Source-reported events for the cited work

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source=pdf_text observed=2026-08-01T16:13:40.523244Z digest=sha256:f8fcada5d3929e5a08f28eb818cc43897c3d96ceb920b7346adbb40ff007a7cc

Observation ffeb69ef-3185-4bc8-9c25-0d08b9b44749 · outbound

This paper cites calc” to calculate formation energies are “Pure DFT.

Correcting DFT formation energies towards experimental accuracy using foundational MLIPs and latent-feature delta-learning calc” to calculate formation energies are “Pure DFT

Reference 93

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Source-reported events for the cited work

Unavailable: canonical work link unavailable.

source=pdf_text observed=2026-08-01T16:13:40.576352Z digest=sha256:aab8d2939da4fce1972f0c80425c4ea99b8d22d34a473128a86f76e2defc8c7e

Pith citing papers

No inbound Pith citation observations are available.