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Paper Citation Record · LEDGER

Physics-Guided Interpretable Machine Learning Framework for Anomalous Transport in Crowded Media with Tunable Flexibility

As of 15 August 2026, this Paper Citation Record lists 53 of 53 outbound references and 0 inbound Pith citation observations for arXiv:2607.25827.

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

pith.paper-citation-record.v1
2607.25827 v1

Coverage vector

measured 53 of 53 reference resolution

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measured 53 of 53 standing notices

One-hop event checks from named stored sources.

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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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Source: cited_works

Reference resolution

53 of 53 outbound references displayed

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Outbound references

Observation 54572254-2f8b-4f08-9c5f-8dfdac0e868e · outbound

This paper cites Physics reports , volume=.

Physics-Guided Interpretable Machine Learning Framework for Anomalous Transport in Crowded Media with Tunable Flexibility Physics reports , volume=

Reference 1

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Observation 44b96720-2afd-4473-bf12-ffff3767c8ef · outbound

This paper cites Reports on Progress in Physics , volume=.

Physics-Guided Interpretable Machine Learning Framework for Anomalous Transport in Crowded Media with Tunable Flexibility Reports on Progress in Physics , volume=

Reference 2

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Observation 4e18c4bf-f74d-4bfd-ad24-c98191274c3c · outbound

This paper cites Biophysical journal , volume=.

Physics-Guided Interpretable Machine Learning Framework for Anomalous Transport in Crowded Media with Tunable Flexibility Biophysical journal , volume=

Reference 3

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This paper cites Biophysical journal , volume=.

Physics-Guided Interpretable Machine Learning Framework for Anomalous Transport in Crowded Media with Tunable Flexibility Biophysical journal , volume=

Reference 4

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Observation 4670499f-411f-4c74-b25c-37a29ecaba39 · outbound

This paper cites Biophysical journal , volume=.

Physics-Guided Interpretable Machine Learning Framework for Anomalous Transport in Crowded Media with Tunable Flexibility Biophysical journal , volume=

Reference 5

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This paper cites ACS biomaterials science & engineering , volume=.

Physics-Guided Interpretable Machine Learning Framework for Anomalous Transport in Crowded Media with Tunable Flexibility ACS biomaterials science & engineering , volume=

Reference 6

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This paper cites Proceedings of the National Academy of Sciences , volume=.

Physics-Guided Interpretable Machine Learning Framework for Anomalous Transport in Crowded Media with Tunable Flexibility Proceedings of the National Academy of Sciences , volume=

Reference 7

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Observation 25d46eeb-9d2c-4cb0-bed8-7f81e735b65c · outbound

This paper cites The journal of physical chemistry letters , volume=.

Physics-Guided Interpretable Machine Learning Framework for Anomalous Transport in Crowded Media with Tunable Flexibility The journal of physical chemistry letters , volume=

Reference 8

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Observation 0dcda188-2ee9-487d-a5b1-9aecfa775847 · outbound

This paper cites New Journal of Physics , volume=.

Physics-Guided Interpretable Machine Learning Framework for Anomalous Transport in Crowded Media with Tunable Flexibility New Journal of Physics , volume=

Reference 9

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Observation f1c3e515-5e7c-4d99-838d-5594542d5d9d · outbound

This paper cites Journal of Physics: Condensed Matter , volume=.

Physics-Guided Interpretable Machine Learning Framework for Anomalous Transport in Crowded Media with Tunable Flexibility Journal of Physics: Condensed Matter , volume=

Reference 10

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Observation ce98bd16-fd46-4bd2-9bef-3427309d808d · outbound

This paper cites Nature , volume=.

Physics-Guided Interpretable Machine Learning Framework for Anomalous Transport in Crowded Media with Tunable Flexibility Nature , volume=

Reference 11

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Observation b925e6f8-3f8f-497f-a67c-6957c7c25d7e · outbound

This paper cites Nature communications , volume=.

Physics-Guided Interpretable Machine Learning Framework for Anomalous Transport in Crowded Media with Tunable Flexibility Nature communications , volume=

Reference 12

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Observation 6e50ec64-dea6-4a87-bc22-10c8a56a5637 · outbound

This paper cites The European Physical Journal Plus , volume=.

Physics-Guided Interpretable Machine Learning Framework for Anomalous Transport in Crowded Media with Tunable Flexibility The European Physical Journal Plus , volume=

Reference 13

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Observation c89c4d80-c7e3-4661-86e8-a8a9f67dd5e8 · outbound

This paper cites Biophysical journal , volume=.

Physics-Guided Interpretable Machine Learning Framework for Anomalous Transport in Crowded Media with Tunable Flexibility Biophysical journal , volume=

Reference 14

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This paper cites Nature computational science , volume=.

Physics-Guided Interpretable Machine Learning Framework for Anomalous Transport in Crowded Media with Tunable Flexibility Nature computational science , volume=

Reference 15

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Observation 30f6783b-9dd8-470b-a9c9-dea0580a26ac · outbound

This paper cites The Journal of Chemical Physics , volume=.

Physics-Guided Interpretable Machine Learning Framework for Anomalous Transport in Crowded Media with Tunable Flexibility The Journal of Chemical Physics , volume=

Reference 16

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Observation ce3052c2-88a7-4b29-987a-9472a69b9da6 · outbound

This paper cites Physical Review E , volume=.

Physics-Guided Interpretable Machine Learning Framework for Anomalous Transport in Crowded Media with Tunable Flexibility Physical Review E , volume=

Reference 17

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Observation 5cff1e19-20fd-4345-9f8a-d6f1c5e67ba4 · outbound

This paper cites Reviews of modern physics , volume=.

Physics-Guided Interpretable Machine Learning Framework for Anomalous Transport in Crowded Media with Tunable Flexibility Reviews of modern physics , volume=

Reference 18

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This paper cites Physical review letters , volume=.

Physics-Guided Interpretable Machine Learning Framework for Anomalous Transport in Crowded Media with Tunable Flexibility Physical review letters , volume=

Reference 19

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Physics-Guided Interpretable Machine Learning Framework for Anomalous Transport in Crowded Media with Tunable Flexibility ACS nano , volume=

Reference 20

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This paper cites The Journal of Chemical Physics , volume=.

Physics-Guided Interpretable Machine Learning Framework for Anomalous Transport in Crowded Media with Tunable Flexibility The Journal of Chemical Physics , volume=

Reference 21

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Physics-Guided Interpretable Machine Learning Framework for Anomalous Transport in Crowded Media with Tunable Flexibility National Science Review , volume=

Reference 22

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Physics-Guided Interpretable Machine Learning Framework for Anomalous Transport in Crowded Media with Tunable Flexibility The Journal of Physical Chemistry B , volume=

Reference 23

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Physics-Guided Interpretable Machine Learning Framework for Anomalous Transport in Crowded Media with Tunable Flexibility Europhysics Letters , volume=

Reference 24

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This paper cites The Journal of Physical Chemistry B , volume=.

Physics-Guided Interpretable Machine Learning Framework for Anomalous Transport in Crowded Media with Tunable Flexibility The Journal of Physical Chemistry B , volume=

Reference 25

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Physics-Guided Interpretable Machine Learning Framework for Anomalous Transport in Crowded Media with Tunable Flexibility Physical Review E , volume=

Reference 26

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Physics-Guided Interpretable Machine Learning Framework for Anomalous Transport in Crowded Media with Tunable Flexibility The Journal of Chemical Physics , volume=

Reference 27

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Physics-Guided Interpretable Machine Learning Framework for Anomalous Transport in Crowded Media with Tunable Flexibility Science advances , volume=

Reference 28

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Observation 5949f28f-7b01-4d6c-aaa1-cabad6ba277a · outbound

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Physics-Guided Interpretable Machine Learning Framework for Anomalous Transport in Crowded Media with Tunable Flexibility The Journal of Chemical Physics , volume=

Reference 29

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Physics-Guided Interpretable Machine Learning Framework for Anomalous Transport in Crowded Media with Tunable Flexibility Advances in neural information processing systems , volume=

Reference 30

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Observation 41cb3306-e648-46db-9858-c2156772d70d · outbound

This paper cites Consistent Individualized Feature Attribution for Tree Ensembles.

Physics-Guided Interpretable Machine Learning Framework for Anomalous Transport in Crowded Media with Tunable Flexibility Consistent Individualized Feature Attribution for Tree Ensembles

Reference 31

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Physics-Guided Interpretable Machine Learning Framework for Anomalous Transport in Crowded Media with Tunable Flexibility Chemical Science , volume=

Reference 32

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Physics-Guided Interpretable Machine Learning Framework for Anomalous Transport in Crowded Media with Tunable Flexibility Soft Matter , volume=

Reference 33

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Physics-Guided Interpretable Machine Learning Framework for Anomalous Transport in Crowded Media with Tunable Flexibility Journal of Fluid Mechanics , volume=

Reference 34

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Physics-Guided Interpretable Machine Learning Framework for Anomalous Transport in Crowded Media with Tunable Flexibility Machine learning , volume=

Reference 35

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Physics-Guided Interpretable Machine Learning Framework for Anomalous Transport in Crowded Media with Tunable Flexibility Unresolved cited work

Reference 36

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Physics-Guided Interpretable Machine Learning Framework for Anomalous Transport in Crowded Media with Tunable Flexibility Physical Review E , volume=

Reference 37

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Physics-Guided Interpretable Machine Learning Framework for Anomalous Transport in Crowded Media with Tunable Flexibility Physical Review Letters , volume=

Reference 38

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Physics-Guided Interpretable Machine Learning Framework for Anomalous Transport in Crowded Media with Tunable Flexibility Physical Review Letters , volume=

Reference 39

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Observation 3bb55229-8254-42ac-b846-c9d8b6607401 · outbound

This paper cites The Journal of chemical physics , volume=.

Physics-Guided Interpretable Machine Learning Framework for Anomalous Transport in Crowded Media with Tunable Flexibility The Journal of chemical physics , volume=

Reference 40

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Observation be8305ae-4921-409c-b92e-3c7d754f58fb · outbound

This paper cites Proceedings of the National Academy of Sciences , volume=.

Physics-Guided Interpretable Machine Learning Framework for Anomalous Transport in Crowded Media with Tunable Flexibility Proceedings of the National Academy of Sciences , volume=

Reference 41

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This paper cites Proceedings of the National Academy of Sciences , volume=.

Physics-Guided Interpretable Machine Learning Framework for Anomalous Transport in Crowded Media with Tunable Flexibility Proceedings of the National Academy of Sciences , volume=

Reference 42

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Observation 2efa6a0d-e6ac-4b60-993a-fb5180ceac85 · outbound

This paper cites Reports on progress in Physics , volume=.

Physics-Guided Interpretable Machine Learning Framework for Anomalous Transport in Crowded Media with Tunable Flexibility Reports on progress in Physics , volume=

Reference 43

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Observation b648196b-e7f4-4536-9ef2-936e0752d5e5 · outbound

This paper cites Soft Matter , volume=.

Physics-Guided Interpretable Machine Learning Framework for Anomalous Transport in Crowded Media with Tunable Flexibility Soft Matter , volume=

Reference 44

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Observation eaed522b-0fd1-46db-8383-4a6a780f9e5c · outbound

This paper cites Soft Matter , volume=.

Physics-Guided Interpretable Machine Learning Framework for Anomalous Transport in Crowded Media with Tunable Flexibility Soft Matter , volume=

Reference 45

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Observation 023a951c-ba76-4009-8898-1682db29646b · outbound

This paper cites The Journal of Chemical Physics , volume=.

Physics-Guided Interpretable Machine Learning Framework for Anomalous Transport in Crowded Media with Tunable Flexibility The Journal of Chemical Physics , volume=

Reference 46

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Observation 15124363-4620-44c2-a33c-5644716fa395 · outbound

This paper cites Macromolecular Theory and Simulations , volume=.

Physics-Guided Interpretable Machine Learning Framework for Anomalous Transport in Crowded Media with Tunable Flexibility Macromolecular Theory and Simulations , volume=

Reference 47

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Observation c487276f-d10b-4a11-9cb3-d958e11b6350 · outbound

This paper cites Computational Materials Science , volume=.

Physics-Guided Interpretable Machine Learning Framework for Anomalous Transport in Crowded Media with Tunable Flexibility Computational Materials Science , volume=

Reference 48

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Observation 3c2ef585-4090-4192-88d9-ad8e31ad634b · outbound

This paper cites The Journal of Chemical Physics , volume=.

Physics-Guided Interpretable Machine Learning Framework for Anomalous Transport in Crowded Media with Tunable Flexibility The Journal of Chemical Physics , volume=

Reference 49

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Observation a9b3832a-9f71-4a18-8760-2fb5ddd1c0d1 · outbound

This paper cites Soft matter , volume=.

Physics-Guided Interpretable Machine Learning Framework for Anomalous Transport in Crowded Media with Tunable Flexibility Soft matter , volume=

Reference 50

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Observation 3b5b1012-ac26-4706-9061-f28018ceb391 · outbound

This paper cites ACS omega , volume=.

Physics-Guided Interpretable Machine Learning Framework for Anomalous Transport in Crowded Media with Tunable Flexibility ACS omega , volume=

Reference 51

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source=arxiv_source observed=2026-08-01T01:25:40.978648Z digest=sha256:467f6cff908f466db035011568c150ee518ab59fccc57f270241bd52dfb8d862

Observation 3050aa1e-b1e2-4d03-b078-baabea236bfc · outbound

This paper cites The Journal of Chemical Physics , volume=.

Physics-Guided Interpretable Machine Learning Framework for Anomalous Transport in Crowded Media with Tunable Flexibility The Journal of Chemical Physics , volume=

Reference 52

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no resolver link, observed 2026-08-01T01:25:40.980561Z

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source=arxiv_source observed=2026-08-01T01:25:40.980561Z digest=sha256:2aa45596f607f3f509a032a66cde6554469c4a08c8e21f74674560977eccfed5

Observation d213ca6a-1378-410e-80d7-9a323cfa9480 · outbound

This paper cites Science , volume=.

Physics-Guided Interpretable Machine Learning Framework for Anomalous Transport in Crowded Media with Tunable Flexibility Science , volume=

Reference 53

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Pith citing papers

No inbound Pith citation observations are available.