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Paper Citation Record · LEDGER

Machine learning methods for spectroscopic information recovery under ultrafast photon pileup

As of 15 August 2026, this Paper Citation Record lists 51 of 51 outbound references and 0 inbound Pith citation observations for arXiv:2608.10143.

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pith.paper-citation-record.v1
2608.10143 v1

Coverage vector

measured 51 of 51 reference resolution

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Pith citing papers itemized under the disclosed page cap.

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Reference resolution

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External citation measurements

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Outbound references

Observation 36831726-33da-4d1f-9841-d5f88923925a · outbound

This paper cites The BELLA Center hundred terawatt laser system for photon sources and user experiments,.

Machine learning methods for spectroscopic information recovery under ultrafast photon pileup The BELLA Center hundred terawatt laser system for photon sources and user experiments,

Reference 1

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This paper cites Development of the MeV Thomson-scattered gamma ray source using laser plasma accelerators at the BELLA Center,.

Machine learning methods for spectroscopic information recovery under ultrafast photon pileup Development of the MeV Thomson-scattered gamma ray source using laser plasma accelerators at the BELLA Center,

Reference 2

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This paper cites Principles and applications of x-ray light sources driven by laser wakefield acceleration,.

Machine learning methods for spectroscopic information recovery under ultrafast photon pileup Principles and applications of x-ray light sources driven by laser wakefield acceleration,

Reference 3

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Observation 92c70ff0-f7fd-45e2-86c5-f1d410ab6536 · outbound

This paper cites Impact of monoenergetic photon sources on nonproliferation applications final report,.

Machine learning methods for spectroscopic information recovery under ultrafast photon pileup Impact of monoenergetic photon sources on nonproliferation applications final report,

Reference 4

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Observation 6e0304e5-59c3-4c6d-a653-caa55817357b · outbound

This paper cites Resonance fluorescence in nuclei,.

Machine learning methods for spectroscopic information recovery under ultrafast photon pileup Resonance fluorescence in nuclei,

Reference 5

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Observation ae5be606-dc9c-44e9-9e48-5a690596011c · outbound

This paper cites Investigation of nuclear structure by resonance fluorescence scattering,.

Machine learning methods for spectroscopic information recovery under ultrafast photon pileup Investigation of nuclear structure by resonance fluorescence scattering,

Reference 6

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Observation 2e1d2fbd-2ac0-41ab-a036-be62d474ab83 · outbound

This paper cites Transmission-based detection of nuclides with nuclear resonance fluorescence using a quasimonoener- getic photon source,.

Machine learning methods for spectroscopic information recovery under ultrafast photon pileup Transmission-based detection of nuclides with nuclear resonance fluorescence using a quasimonoener- getic photon source,

Reference 7

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Observation 0203b688-b48f-4cdf-aa30-dccb74e8b3dd · outbound

This paper cites Nuclear resonance fluorescence for nuclear materials assay,.

Machine learning methods for spectroscopic information recovery under ultrafast photon pileup Nuclear resonance fluorescence for nuclear materials assay,

Reference 8

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Observation 3c4ff34a-f1ef-4e8d-90a0-b8bdd450077e · outbound

This paper cites Physical cryptographic verification of nuclear warheads,.

Machine learning methods for spectroscopic information recovery under ultrafast photon pileup Physical cryptographic verification of nuclear warheads,

Reference 9

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Observation 70110ecf-7a7d-474c-a5a2-2be6a1c8d212 · outbound

This paper cites Experimental demonstration of an isotope-sensitive warhead verification technique using nuclear resonance fluorescence,.

Machine learning methods for spectroscopic information recovery under ultrafast photon pileup Experimental demonstration of an isotope-sensitive warhead verification technique using nuclear resonance fluorescence,

Reference 10

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Observation 62e076a5-2669-44f0-acb5-f6075f383f1a · outbound

This paper cites Rapid interrogation of special nuclear materials by combining scattering and transmission nuclear resonance fluorescence spectroscopy,.

Machine learning methods for spectroscopic information recovery under ultrafast photon pileup Rapid interrogation of special nuclear materials by combining scattering and transmission nuclear resonance fluorescence spectroscopy,

Reference 11

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Observation d9adc877-5371-4784-bc44-3a6ba0f913c7 · outbound

This paper cites Isotope-sensitive imaging of special nuclear materials using computer tomography based on scattering nuclear resonance fluorescence,.

Machine learning methods for spectroscopic information recovery under ultrafast photon pileup Isotope-sensitive imaging of special nuclear materials using computer tomography based on scattering nuclear resonance fluorescence,

Reference 12

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Observation e531b32a-88ac-4e27-8918-f7d818f5bd9e · outbound

This paper cites Review of high energy x- ray computed tomography for non-destructive dimensional metrology of large metallic advanced manufactured components,.

Machine learning methods for spectroscopic information recovery under ultrafast photon pileup Review of high energy x- ray computed tomography for non-destructive dimensional metrology of large metallic advanced manufactured components,

Reference 13

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This paper cites The Next Generation of MeV Energy X-ray Sources for use in the Inspection of Additively Manufactured Parts for Industry.

Machine learning methods for spectroscopic information recovery under ultrafast photon pileup The Next Generation of MeV Energy X-ray Sources for use in the Inspection of Additively Manufactured Parts for Industry

Reference 14

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Observation 238b7c4d-666f-4aaa-9024-514c83e2bfe4 · outbound

This paper cites Fundamental limitations of dual energy x-ray scanners for cargo content atomic number discrimination,.

Machine learning methods for spectroscopic information recovery under ultrafast photon pileup Fundamental limitations of dual energy x-ray scanners for cargo content atomic number discrimination,

Reference 15

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Observation c0bd180b-c4eb-4bae-8d2f-0e10941bbe1b · outbound

This paper cites Aγ-ray tracking algorithm for the GRETA spectrometer,.

Machine learning methods for spectroscopic information recovery under ultrafast photon pileup Aγ-ray tracking algorithm for the GRETA spectrometer,

Reference 16

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Observation 9ec18634-820e-4a41-9e84-53c87d72c93a · outbound

This paper cites Bayesian reconstruction of photon interaction sequences for high-resolution PET detectors,.

Machine learning methods for spectroscopic information recovery under ultrafast photon pileup Bayesian reconstruction of photon interaction sequences for high-resolution PET detectors,

Reference 17

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Observation d578e8dc-73b3-42f2-a08b-ade0936b9928 · outbound

This paper cites Pileup mitigation with machine learning (PUMML),.

Machine learning methods for spectroscopic information recovery under ultrafast photon pileup Pileup mitigation with machine learning (PUMML),

Reference 18

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Observation 6d0591c6-311c-4c9d-8db8-5df1010117f5 · outbound

This paper cites A deep learning approach to correctly identify the sequence of coincidences in cross-strip CZT detectors,.

Machine learning methods for spectroscopic information recovery under ultrafast photon pileup A deep learning approach to correctly identify the sequence of coincidences in cross-strip CZT detectors,

Reference 19

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Observation ac09da19-64fe-4200-986e-f60092ca1a4c · outbound

This paper cites Experimental evaluation of convolutional neural network-based inter-crystal scattering recovery for high-resolution PET detectors,.

Machine learning methods for spectroscopic information recovery under ultrafast photon pileup Experimental evaluation of convolutional neural network-based inter-crystal scattering recovery for high-resolution PET detectors,

Reference 20

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Observation 7234acf5-3d2b-4973-a061-0f1f22677d59 · outbound

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Machine learning methods for spectroscopic information recovery under ultrafast photon pileup Classical and machine learning methods for event reconstruction in NeuLAND,

Reference 21

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Observation 334eb24c-0aee-4784-a701-c02281183c50 · outbound

This paper cites Low activity tritium detection in CCDs using deep learning techniques,.

Machine learning methods for spectroscopic information recovery under ultrafast photon pileup Low activity tritium detection in CCDs using deep learning techniques,

Reference 22

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Observation ed8408cf-5989-46e3-8b85-a58f500bd8a6 · outbound

This paper cites Geant4—a simulation toolkit,.

Machine learning methods for spectroscopic information recovery under ultrafast photon pileup Geant4—a simulation toolkit,

Reference 23

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This paper cites Imaging and radiography with nuclear resonance fluorescence and effective-Z (EZ-3D™) determination; SNM detection using prompt neutrons from photon induced fission,.

Machine learning methods for spectroscopic information recovery under ultrafast photon pileup Imaging and radiography with nuclear resonance fluorescence and effective-Z (EZ-3D™) determination; SNM detection using prompt neutrons from photon induced fission,

Reference 24

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Observation 01d1bf04-36b2-4f20-9cd2-5f4851193986 · outbound

This paper cites M400 base specifications,.

Machine learning methods for spectroscopic information recovery under ultrafast photon pileup M400 base specifications,

Reference 25

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Observation 573171b8-02a9-4edf-af16-e6be3cbeec78 · outbound

This paper cites Large-volume cad- mium zinc telluride modules for safeguards verification of unirradiated nuclear material,.

Machine learning methods for spectroscopic information recovery under ultrafast photon pileup Large-volume cad- mium zinc telluride modules for safeguards verification of unirradiated nuclear material,

Reference 26

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This paper cites Many-electron singularity in x-ray photoe- mission and x-ray line spectra from metals,.

Machine learning methods for spectroscopic information recovery under ultrafast photon pileup Many-electron singularity in x-ray photoe- mission and x-ray line spectra from metals,

Reference 27

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Observation c6faa27b-0318-4630-8b23-8e447e7580ab · outbound

This paper cites Gamma-ray peak shapes from cadmium zinc telluride detectors,.

Machine learning methods for spectroscopic information recovery under ultrafast photon pileup Gamma-ray peak shapes from cadmium zinc telluride detectors,

Reference 28

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Observation 111a3139-9149-4d8b-9751-2ba31bb56d7c · outbound

This paper cites A peak shape function building and comparison of cadmium zinc telluride detector for gamma-ray spectrum,.

Machine learning methods for spectroscopic information recovery under ultrafast photon pileup A peak shape function building and comparison of cadmium zinc telluride detector for gamma-ray spectrum,

Reference 29

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Observation f14a915b-1f5f-4f30-a8e6-a69087d31ae5 · outbound

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Machine learning methods for spectroscopic information recovery under ultrafast photon pileup Charge sharing in common-grid pixelated CdZnTe detectors,

Reference 30

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Observation 8744fac0-0bd4-4cf8-a20a-1395f50bbc24 · outbound

This paper cites Signal modeling of charge sharing effect in simple pixelated CdZnTe detector,.

Machine learning methods for spectroscopic information recovery under ultrafast photon pileup Signal modeling of charge sharing effect in simple pixelated CdZnTe detector,

Reference 31

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Observation 68962681-c72c-43d2-b092-d076dff97b97 · outbound

This paper cites PointNet: Deep learning on point sets for 3D classification and segmentation,.

Machine learning methods for spectroscopic information recovery under ultrafast photon pileup PointNet: Deep learning on point sets for 3D classification and segmentation,

Reference 32

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Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-15T06:32:42.880941+00:00.

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Observation 67b6a7ee-a9bc-4884-aba1-4de090fafde5 · outbound

This paper cites PointNet++: Deep hierarchical feature learning on point sets in a metric space,.

Machine learning methods for spectroscopic information recovery under ultrafast photon pileup PointNet++: Deep hierarchical feature learning on point sets in a metric space,

Reference 33

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Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-15T06:32:42.880941+00:00.

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Observation 6de9b483-5c2a-43b9-8ef1-41ae58bff59f · outbound

This paper cites On the representation power of set pooling networks,.

Machine learning methods for spectroscopic information recovery under ultrafast photon pileup On the representation power of set pooling networks,

Reference 34

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This paper cites How Powerful are Graph Neural Networks?.

Machine learning methods for spectroscopic information recovery under ultrafast photon pileup How Powerful are Graph Neural Networks?

Reference 35

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This paper cites eqnn-jax,.

Machine learning methods for spectroscopic information recovery under ultrafast photon pileup eqnn-jax,

Reference 36

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Machine learning methods for spectroscopic information recovery under ultrafast photon pileup JAX: composable transformations of Python+NumPy programs,

Reference 37

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Machine learning methods for spectroscopic information recovery under ultrafast photon pileup Compiling machine learning programs via high-level tracing,

Reference 38

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This paper cites Adam: A method for stochastic optimization,.

Machine learning methods for spectroscopic information recovery under ultrafast photon pileup Adam: A method for stochastic optimization,

Reference 39

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Machine learning methods for spectroscopic information recovery under ultrafast photon pileup Axiomatic attribution for deep networks,

Reference 40

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Machine learning methods for spectroscopic information recovery under ultrafast photon pileup Data-driven performance optimization of gamma spectrometers with many channels,

Reference 41

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Machine learning methods for spectroscopic information recovery under ultrafast photon pileup Entry A002866 in the on-line encyclopedia of integer sequences,

Reference 42

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Machine learning methods for spectroscopic information recovery under ultrafast photon pileup Entry A000670 in the on-line encyclopedia of integer sequences,

Reference 43

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Machine learning methods for spectroscopic information recovery under ultrafast photon pileup Entry A000262 in the on-line encyclopedia of integer sequences,

Reference 44

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Machine learning methods for spectroscopic information recovery under ultrafast photon pileup Entry A000110 in the on-line encyclopedia of integer sequences,

Reference 45

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Machine learning methods for spectroscopic information recovery under ultrafast photon pileup Dropout as a Bayesian approximation: Representing model uncertainty in deep learning,

Reference 46

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This paper cites Evaluating and calibrating uncertainty prediction in regression tasks,.

Machine learning methods for spectroscopic information recovery under ultrafast photon pileup Evaluating and calibrating uncertainty prediction in regression tasks,

Reference 47

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Machine learning methods for spectroscopic information recovery under ultrafast photon pileup Accurate uncertainties for deep learning using calibrated regression,

Reference 48

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This paper cites Uncertainty quantification in scientific machine learning: Methods, 14 metrics, and comparisons,.

Machine learning methods for spectroscopic information recovery under ultrafast photon pileup Uncertainty quantification in scientific machine learning: Methods, 14 metrics, and comparisons,

Reference 49

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Machine learning methods for spectroscopic information recovery under ultrafast photon pileup Simple and scalable predictive uncertainty estimation using deep ensembles,

Reference 50

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This paper cites Adam: A Method for Stochastic Optimization.

Machine learning methods for spectroscopic information recovery under ultrafast photon pileup Adam: A Method for Stochastic Optimization

Reference 2017

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