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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 17 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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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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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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Observation 17eef625-3e38-48cf-95bb-ae97dc17dcac · outbound

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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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 7

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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 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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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 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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Observation 86d3520d-7119-4e54-a55a-fbf70fa82201 · outbound

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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

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

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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

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

Reference 44

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

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Reference 47

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

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

Reference 48

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

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

Reference 49

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

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

Reference 56

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

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

Reference 68

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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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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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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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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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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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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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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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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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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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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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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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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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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
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Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-17T06:30:58.91139+00:00.

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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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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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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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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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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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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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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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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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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

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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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Pith citing papers

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