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Paper Citation Record · LEDGER

ORIGAMI: A generative transformer architecture for predictions from semi-structured data

As of 13 August 2026, this Paper Citation Record lists 51 of 51 outbound references and 0 inbound Pith citation observations for arXiv:2412.17348.

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

pith.paper-citation-record.v1
2412.17348 v1

Coverage vector

measured 51 of 51 reference resolution

Typed states for the displayed outbound observations.

Source: paper_references, paper_reference_links, observed 2026-08-11T05:40:05.186144Z

measured 51 of 51 standing notices

One-hop event checks from named stored sources.

Source: scholarly_work_events, retraction_status_cache, observed 2026-08-12T06:34:41.77262+00:00

measured 0 of 0 inbound itemization

Pith citing papers itemized under the disclosed page cap.

Source: paper_references, paper_reference_links

measured 0 of 1 external citation measurements

A source-named dated measurement, never combined with another source.

Source: cited_works

Reference resolution

51 of 51 outbound references displayed

  • verified exact2
  • verified fuzzy25
  • unresolved22
  • parse uncertain0
  • malformed identifier1
  • metadata mismatch1

External citation measurements

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Outbound references

Observation f82aca86-f7d0-49ba-bf1f-f3257c3040fd · outbound

This paper cites The DEformer: An Order-Agnostic Distribution Estimating Transformer.

ORIGAMI: A generative transformer architecture for predictions from semi-structured data The DEformer: An Order-Agnostic Distribution Estimating Transformer

Reference 1

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Observation 34c28268-da31-41a3-a6aa-702e555d1ab3 · outbound

This paper cites Tabnet: Attentive interpretable tabular learning.

ORIGAMI: A generative transformer architecture for predictions from semi-structured data Tabnet: Attentive interpretable tabular learning

Reference 2

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Observation 8934a3b6-f045-4457-b837-07d0f071e250 · outbound

This paper cites Transformers for tabular data representation: A tutorial on models and applications.

ORIGAMI: A generative transformer architecture for predictions from semi-structured data Transformers for tabular data representation: A tutorial on models and applications

Reference 3

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Observation 0d418b85-0b88-4faf-81f3-207ac54cc70a · outbound

This paper cites The JavaScript Object Notation (JSON) Data Interchange Format.

ORIGAMI: A generative transformer architecture for predictions from semi-structured data The JavaScript Object Notation (JSON) Data Interchange Format

Reference 4

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Observation 09b2db56-6c55-4a70-bf41-a152d45670af · outbound

This paper cites XGBoost: A Scalable Tree Boosting System.

ORIGAMI: A generative transformer architecture for predictions from semi-structured data XGBoost: A Scalable Tree Boosting System

Reference 5

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Observation 46141968-9906-4f1b-bd09-b59c932ec839 · outbound

This paper cites TabularNet: A Neural Network Architecture for Understanding Semantic Structures of Tabular Data.

ORIGAMI: A generative transformer architecture for predictions from semi-structured data TabularNet: A Neural Network Architecture for Understanding Semantic Structures of Tabular Data

Reference 6

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Observation 67f8f616-7dc8-4bc2-8389-31099bbb892e · outbound

This paper cites Large language models (LLMs) on tabular data: Prediction, generation, and understanding - a survey.

ORIGAMI: A generative transformer architecture for predictions from semi-structured data Large language models (LLMs) on tabular data: Prediction, generation, and understanding - a survey

Reference 7

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Observation cada8fdf-bfed-436b-b48a-67301ab02a00 · outbound

This paper cites DDXPlus: A new dataset for automatic medical diagnosis.

ORIGAMI: A generative transformer architecture for predictions from semi-structured data DDXPlus: A new dataset for automatic medical diagnosis

Reference 8

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Observation 03816556-7e6c-432b-8528-5aa133b643ba · outbound

This paper cites CodeBERT: A Pre-Trained Model for Programming and Natural Languages.

ORIGAMI: A generative transformer architecture for predictions from semi-structured data CodeBERT: A Pre-Trained Model for Programming and Natural Languages

Reference 9

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Observation 99130209-d165-40b5-9474-62c9c6c99daa · outbound

This paper cites A new algorithm for data compression.

ORIGAMI: A generative transformer architecture for predictions from semi-structured data A new algorithm for data compression

Reference 10

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Observation c1f328b7-63c4-4bd9-8cd6-38b2a641b5e2 · outbound

This paper cites Convolutional Sequence to Sequence Learning.

ORIGAMI: A generative transformer architecture for predictions from semi-structured data Convolutional Sequence to Sequence Learning

Reference 11

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Observation bd1e4853-21c3-4c90-aeab-8712851d193f · outbound

This paper cites Goller and A.

ORIGAMI: A generative transformer architecture for predictions from semi-structured data Goller and A

Reference 12

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Observation 683e7c83-bdb9-4baa-b313-8750dbc7a82b · outbound

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ORIGAMI: A generative transformer architecture for predictions from semi-structured data Unresolved cited work

Reference 13

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Observation 0e0903dd-d0af-43c9-a303-b9f77eb906d8 · outbound

This paper cites Long Short-Term Memory.

ORIGAMI: A generative transformer architecture for predictions from semi-structured data Long Short-Term Memory

Reference 14

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Observation 4b4f2ce2-8d42-455d-8512-745eb29359e4 · outbound

This paper cites TabPFN: A Transformer That Solves Small Tabular Classification Problems in a Second.

ORIGAMI: A generative transformer architecture for predictions from semi-structured data TabPFN: A Transformer That Solves Small Tabular Classification Problems in a Second

Reference 15

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Observation ed95c5a4-b779-41bc-8682-662d991bb22b · outbound

This paper cites Multilayer feedforward networks are uni- versal approximators.

ORIGAMI: A generative transformer architecture for predictions from semi-structured data Multilayer feedforward networks are uni- versal approximators

Reference 16

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Observation d5f29184-d99c-49a7-8794-c90e1fbb0d85 · outbound

This paper cites TabTransformer: Tabular Data Modeling Using Contextual Embeddings.

ORIGAMI: A generative transformer architecture for predictions from semi-structured data TabTransformer: Tabular Data Modeling Using Contextual Embeddings

Reference 17

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Observation 24a3d698-646f-425a-beab-a4221bbddb10 · outbound

This paper cites LightGBM: A Highly Efficient Gradient Boosting Decision Tree.

ORIGAMI: A generative transformer architecture for predictions from semi-structured data LightGBM: A Highly Efficient Gradient Boosting Decision Tree

Reference 18

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Observation 1b65060e-3756-41c8-a5e2-82a239626d02 · outbound

This paper cites Adam: A Method for Stochastic Optimization.

ORIGAMI: A generative transformer architecture for predictions from semi-structured data Adam: A Method for Stochastic Optimization

Reference 19

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Observation 780d062d-01e7-4ed6-94e8-f4049fcd27c9 · outbound

This paper cites Automata-based constraints for language model decoding.

ORIGAMI: A generative transformer architecture for predictions from semi-structured data Automata-based constraints for language model decoding

Reference 20

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Observation ab0ab05d-cbba-47c5-adeb-9841589a102a · outbound

This paper cites TabDDPM: Modelling Tabular Data with Diffusion Models.

ORIGAMI: A generative transformer architecture for predictions from semi-structured data TabDDPM: Modelling Tabular Data with Diffusion Models

Reference 21

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Observation 4c5ddbe7-0120-4c25-87a6-cf5026a5941f · outbound

This paper cites The Neural Autoregressive Distribution Estimator.

ORIGAMI: A generative transformer architecture for predictions from semi-structured data The Neural Autoregressive Distribution Estimator

Reference 22

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Observation 0715b7fd-ac48-48f0-9707-e054ceb16abf · outbound

This paper cites TreeRNN: Topology-preserving deep graph embedding and learning.

ORIGAMI: A generative transformer architecture for predictions from semi-structured data TreeRNN: Topology-preserving deep graph embedding and learning

Reference 23

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Observation 07ac1ea0-fa70-4acd-8298-a0ee9b0959f1 · outbound

This paper cites JsonGrinder.jl: Automated differentiable neural architecture for embedding arbitrary JSON data.

ORIGAMI: A generative transformer architecture for predictions from semi-structured data JsonGrinder.jl: Automated differentiable neural architecture for embedding arbitrary JSON data

Reference 24

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Observation b9068ba9-ce1e-44b2-9b8b-8a25ad212ccb · outbound

This paper cites The UCI Machine Learning Repository.

ORIGAMI: A generative transformer architecture for predictions from semi-structured data The UCI Machine Learning Repository

Reference 25

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Observation 0a156dc9-106e-40fb-9357-b14d9651f4b6 · outbound

This paper cites Pedregosa, G.

ORIGAMI: A generative transformer architecture for predictions from semi-structured data Pedregosa, G

Reference 26

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Observation 9e98d07d-94c7-4a5c-95d0-676708157054 · outbound

This paper cites Approximation capability of neural networks on spaces of probability measures and tree-structured domains, June 2019.

ORIGAMI: A generative transformer architecture for predictions from semi-structured data Approximation capability of neural networks on spaces of probability measures and tree-structured domains, June 2019

Reference 27

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Observation e21fba2e-dd50-44d0-8322-f905dbd3c573 · outbound

This paper cites CatBoost: Unbiased boosting with categorical features.

ORIGAMI: A generative transformer architecture for predictions from semi-structured data CatBoost: Unbiased boosting with categorical features

Reference 28

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Observation 6e8c6723-224b-4a6e-a15a-4c594072f791 · outbound

This paper cites an unresolved cited work.

ORIGAMI: A generative transformer architecture for predictions from semi-structured data Unresolved cited work

Reference 29

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Observation 07a0749d-011b-456f-adb4-ee0d207fd306 · outbound

This paper cites Improving Language Understanding by Generative Pre-Training,.

ORIGAMI: A generative transformer architecture for predictions from semi-structured data Improving Language Understanding by Generative Pre-Training,

Reference 30

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Observation 3a36b6e3-1ecd-4860-b61d-2814e9a9e076 · outbound

This paper cites The graph neural network model.

ORIGAMI: A generative transformer architecture for predictions from semi-structured data The graph neural network model

Reference 31

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Observation 2e72b383-f559-492b-8f13-2ffdfcd9f693 · outbound

This paper cites Novel positional encodings to enable tree-based transformers.

ORIGAMI: A generative transformer architecture for predictions from semi-structured data Novel positional encodings to enable tree-based transformers

Reference 32

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Observation b73e131e-4817-42e4-a77b-66af4da065d3 · outbound

This paper cites Tabular data: Deep learning is not all you need.

ORIGAMI: A generative transformer architecture for predictions from semi-structured data Tabular data: Deep learning is not all you need

Reference 33

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Observation 265c7cb9-5c36-428a-8cbc-d37d40d3a97e · outbound

This paper cites Introduction to the Theory of Computation.

ORIGAMI: A generative transformer architecture for predictions from semi-structured data Introduction to the Theory of Computation

Reference 34

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Observation 794409ce-2016-46d8-a240-d09ffc095e64 · outbound

This paper cites SAINT: Improved Neural Networks for Tabular Data via Row Attention and Contrastive Pre-Training.

ORIGAMI: A generative transformer architecture for predictions from semi-structured data SAINT: Improved Neural Networks for Tabular Data via Row Attention and Contrastive Pre-Training

Reference 35

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Observation 52f71558-fe50-48be-b732-c07f4ff8bf62 · outbound

This paper cites Dropout: A Simple Way to Prevent Neural Networks from Overfitting.

ORIGAMI: A generative transformer architecture for predictions from semi-structured data Dropout: A Simple Way to Prevent Neural Networks from Overfitting

Reference 36

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Source-reported events for the cited work

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Observation 04e21a6e-6991-49f9-ba77-1fb335338dd5 · outbound

This paper cites Roformer: Enhanced transformer with rotary position embedding.

ORIGAMI: A generative transformer architecture for predictions from semi-structured data Roformer: Enhanced transformer with rotary position embedding

Reference 37

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Observation c4f6bdbc-94e6-4325-a626-1c3b50bd89c9 · outbound

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ORIGAMI: A generative transformer architecture for predictions from semi-structured data Unresolved cited work

Reference 38

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Observation 898c2237-8e7b-4a05-b8f1-67f560f8805c · outbound

This paper cites A deep and tractable density estimator.

ORIGAMI: A generative transformer architecture for predictions from semi-structured data A deep and tractable density estimator

Reference 39

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Observation ae390b37-f310-4e5c-8b9e-1f2ef6e7e67a · outbound

This paper cites Gomez, Łukasz Kaiser, and Illia Polosukhin.

ORIGAMI: A generative transformer architecture for predictions from semi-structured data Gomez, Łukasz Kaiser, and Illia Polosukhin

Reference 40

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Observation 6ddcab2d-e959-4269-b06a-79008cd46cbb · outbound

This paper cites Statistical learning theory: Models, concepts, and results.

ORIGAMI: A generative transformer architecture for predictions from semi-structured data Statistical learning theory: Models, concepts, and results

Reference 41

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Observation a49a5a24-6f32-47f1-8bd0-973f8628e298 · outbound

This paper cites A Survey on Self-Supervised Learning for Non-Sequential Tabular Data.

ORIGAMI: A generative transformer architecture for predictions from semi-structured data A Survey on Self-Supervised Learning for Non-Sequential Tabular Data

Reference 42

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No event found in the named queried sources as of 2026-08-12T06:34:41.77262+00:00.

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Observation 5e4fec8c-c53d-49cc-8448-21cfdecf8536 · outbound

This paper cites Willard and Rémi Louf.

ORIGAMI: A generative transformer architecture for predictions from semi-structured data Willard and Rémi Louf

Reference 43

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Observation ef710e74-ce38-461c-883a-e3690c68ecb9 · outbound

This paper cites Deep Learning on Semi-Structured Data and Its Applications to Video-game AI.

ORIGAMI: A generative transformer architecture for predictions from semi-structured data Deep Learning on Semi-Structured Data and Its Applications to Video-game AI

Reference 44

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Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-12T06:34:41.77262+00:00.

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Observation 37d7343d-6b29-413b-adb4-1109ac487d3b · outbound

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ORIGAMI: A generative transformer architecture for predictions from semi-structured data A Framework for End-to-End Learning on Semantic Tree-Structured Data

Reference 45

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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 2026-08-12T06:34:41.77262+00:00.

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Observation dd1ac9c2-ed76-4c76-985f-de20cb56d89a · outbound

This paper cites Google's Neural Machine Translation System: Bridging the Gap between Human and Machine Translation.

ORIGAMI: A generative transformer architecture for predictions from semi-structured data Google's Neural Machine Translation System: Bridging the Gap between Human and Machine Translation

Reference 46

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Source-reported events for the cited work

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Observation a5df16d7-803b-46c1-b160-426d76b4c8d3 · outbound

This paper cites Modeling tabular data using conditional GAN.

ORIGAMI: A generative transformer architecture for predictions from semi-structured data Modeling tabular data using conditional GAN

Reference 47

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verified fuzzy
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Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-12T06:34:41.77262+00:00.

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Observation e7737638-8c3e-4c39-9a0b-31621775c20f · outbound

This paper cites XLNet: Generalized Autoregressive Pretraining for Language Understanding.

ORIGAMI: A generative transformer architecture for predictions from semi-structured data XLNet: Generalized Autoregressive Pretraining for Language Understanding

Reference 48

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Observation c4c894c3-4ede-44f6-83e9-fc52c15b8907 · outbound

This paper cites AGE": 12,.

ORIGAMI: A generative transformer architecture for predictions from semi-structured data AGE": 12,

Reference 49

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Source-reported events for the cited work

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Observation 51aecd0e-7bd4-4c6b-9838-1c80ae7a230d · outbound

This paper cites URL https://cdn.openai.com/research-covers/language-unsupervised/ language_understanding_paper.pdf.

ORIGAMI: A generative transformer architecture for predictions from semi-structured data URL https://cdn.openai.com/research-covers/language-unsupervised/ language_understanding_paper.pdf

Reference 2018

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verified fuzzy
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Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-12T06:34:41.77262+00:00.

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Observation 7405377b-35a3-499f-a8db-04271dbbe39e · outbound

This paper cites Efficient Guided Generation for Large Language Models.

ORIGAMI: A generative transformer architecture for predictions from semi-structured data Efficient Guided Generation for Large Language Models

Reference 2023

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Pith citing papers

No inbound Pith citation observations are available.