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Paper Citation Record · LEDGER

Variable-Length Generative Protein Design via Generalized Poisson Flow

As of 8 August 2026, this Paper Citation Record lists 59 of 59 outbound references and 0 inbound Pith citation observations for arXiv:2607.09039.

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pith.paper-citation-record.v1
2607.09039 v1

Coverage vector

measured 59 of 59 reference resolution

Typed states for the displayed outbound observations.

Source: paper_references, paper_reference_links, observed 2026-07-13T00:48:08.651522Z

measured 59 of 59 standing notices

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measured 0 of 0 inbound itemization

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measured 0 of 1 external citation measurements

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59 of 59 outbound references displayed

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Outbound references

Observation 53bac1b2-63e6-496c-8797-e57192baeb0c · outbound

This paper cites Lu, Nicolo Fusi, Ava P.

Variable-Length Generative Protein Design via Generalized Poisson Flow Lu, Nicolo Fusi, Ava P

Reference 1

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Observation 54ee6b7c-0f6c-4fb0-ac29-469d6a3c8ebb · outbound

This paper cites Structured denoising diffusion models in discrete state-spaces.Advances in neural information processing systems, 34:17981–17993, 2021.

Variable-Length Generative Protein Design via Generalized Poisson Flow Structured denoising diffusion models in discrete state-spaces.Advances in neural information processing systems, 34:17981–17993, 2021

Reference 2

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Observation c16812bc-5b23-47c3-afb2-25e81cb7a5ea · outbound

This paper cites Accurate prediction of protein structures and interactions using a three-track neural network.Science, 373(6557):871–876, 2021.

Variable-Length Generative Protein Design via Generalized Poisson Flow Accurate prediction of protein structures and interactions using a three-track neural network.Science, 373(6557):871–876, 2021

Reference 3

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Observation 4c0ef153-1d83-4f3a-80a6-0328707a173c · outbound

This paper cites Amin, Ruben Weitzman, Debora Marks, and Andrew Gordon Wilson.

Variable-Length Generative Protein Design via Generalized Poisson Flow Amin, Ruben Weitzman, Debora Marks, and Andrew Gordon Wilson

Reference 4

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Observation 40f3d3bb-e4e6-4158-a594-a58d649f036c · outbound

This paper cites The protein data bank.Nucleic acids research, 28(1):235–242, 2000.

Variable-Length Generative Protein Design via Generalized Poisson Flow The protein data bank.Nucleic acids research, 28(1):235–242, 2000

Reference 5

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Observation 4bd0fa96-7044-4d0f-8d75-fadf8a07d3bc · outbound

This paper cites An extension of watanabe’s theorem of characterization of poisson processes over the positive real half line.Journal of Applied Probability, 12(2):396–399, 1975.

Variable-Length Generative Protein Design via Generalized Poisson Flow An extension of watanabe’s theorem of characterization of poisson processes over the positive real half line.Journal of Applied Probability, 12(2):396–399, 1975

Reference 6

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Observation df112d5b-7652-44f5-aa75-33a71283ea6f · outbound

This paper cites Point processes and queues.Springer, 1981.

Variable-Length Generative Protein Design via Generalized Poisson Flow Point processes and queues.Springer, 1981

Reference 7

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Observation 2d5dedd9-6955-4b29-be5c-784de28e73ba · outbound

This paper cites De novo design of all-atom biomolecular interactions with rfdiffusion3.bioRxiv, 2025.

Variable-Length Generative Protein Design via Generalized Poisson Flow De novo design of all-atom biomolecular interactions with rfdiffusion3.bioRxiv, 2025

Reference 8

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Observation 2caeafef-10f9-4c87-a0af-0660bac59ac2 · outbound

This paper cites Trans-dimensional generative modeling via jump diffusion models.

Variable-Length Generative Protein Design via Generalized Poisson Flow Trans-dimensional generative modeling via jump diffusion models

Reference 9

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Observation 1daac3ec-d93c-4d81-b695-60ad03a12fe6 · outbound

This paper cites Pyrosetta: a script-based interface for implementing molecular modeling algorithms using rosetta.Bioinformatics, 26(5):689–691, 2010.

Variable-Length Generative Protein Design via Generalized Poisson Flow Pyrosetta: a script-based interface for implementing molecular modeling algorithms using rosetta.Bioinformatics, 26(5):689–691, 2010

Reference 10

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Observation 30fa9af4-aafe-4687-8314-21beb1219e23 · outbound

This paper cites Flow matching on general geometries.

Variable-Length Generative Protein Design via Generalized Poisson Flow Flow matching on general geometries

Reference 11

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Observation 5ca59f1a-a144-42b4-9cc1-2444e7c72bad · outbound

This paper cites Categorical flow matching on statistical manifolds.Advances in Neural Information Processing Systems, 37:54787–54819, 2024.

Variable-Length Generative Protein Design via Generalized Poisson Flow Categorical flow matching on statistical manifolds.Advances in Neural Information Processing Systems, 37:54787–54819, 2024

Reference 12

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Observation d26bf328-f78c-4c8b-9af8-806fdf93fa55 · outbound

This paper cites $\alpha$-Flow: A Unified Framework for Continuous-State Discrete Flow Matching Models.

Variable-Length Generative Protein Design via Generalized Poisson Flow $\alpha$-Flow: A Unified Framework for Continuous-State Discrete Flow Matching Models

Reference 13

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Observation 85924ab6-9b67-4b9a-bfde-d5ff31c28cc5 · outbound

This paper cites Springer, 2003.

Variable-Length Generative Protein Design via Generalized Poisson Flow Springer, 2003

Reference 14

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Observation b5334aa0-ce47-45ea-a385-9a1605e14c32 · outbound

This paper cites Robust deep learning–based protein sequence design using proteinmpnn.Science, 378(6615):49–56, 2022.

Variable-Length Generative Protein Design via Generalized Poisson Flow Robust deep learning–based protein sequence design using proteinmpnn.Science, 378(6615):49–56, 2022

Reference 15

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Observation bf420c55-4510-4595-8d36-96325343937d · outbound

This paper cites Mixed continuous and categorical flow matching for 3d de novo molecule generation.ArXiv, pages arXiv–2404, 2024.

Variable-Length Generative Protein Design via Generalized Poisson Flow Mixed continuous and categorical flow matching for 3d de novo molecule generation.ArXiv, pages arXiv–2404, 2024

Reference 16

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Observation 26477083-6131-4d01-94f0-3f03d49d1528 · outbound

This paper cites Discrete flow matching.Advances in Neural Information Processing Systems, 37:133345–133385, 2024.

Variable-Length Generative Protein Design via Generalized Poisson Flow Discrete flow matching.Advances in Neural Information Processing Systems, 37:133345–133385, 2024

Reference 17

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Observation 7a502c08-d913-4fb8-912e-f7a90f60e1d3 · outbound

This paper cites Proteina: Scaling Flow-based Protein Structure Generative Models.

Variable-Length Generative Protein Design via Generalized Poisson Flow Proteina: Scaling Flow-based Protein Structure Generative Models

Reference 18

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Observation 16fac3e2-9c16-43c1-bb09-18e3e549e252 · outbound

This paper cites Approximate accelerated stochastic simulation of chemically reacting systems.The Journal of chemical physics, 115(4):1716–1733, 2001.

Variable-Length Generative Protein Design via Generalized Poisson Flow Approximate accelerated stochastic simulation of chemically reacting systems.The Journal of chemical physics, 115(4):1716–1733, 2001

Reference 19

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Observation 56aa05ff-3212-4862-82f5-0057a3572723 · outbound

This paper cites Edit flows: Flow matching with edit operations.arXiv preprint arXiv:2506.09018, 2025.

Variable-Length Generative Protein Design via Generalized Poisson Flow Edit flows: Flow matching with edit operations.arXiv preprint arXiv:2506.09018, 2025

Reference 20

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Observation be54601a-61d3-4788-ab14-0c94d85e1678 · outbound

This paper cites Sofroniew, Deniz Oktay, Zeming Lin, Robert Verkuil, Vincent Q.

Variable-Length Generative Protein Design via Generalized Poisson Flow Sofroniew, Deniz Oktay, Zeming Lin, Robert Verkuil, Vincent Q

Reference 21

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Observation deae6e3d-d8fe-44eb-a86b-0932c7bfd83a · outbound

This paper cites Denoising diffusion probabilistic models.Advances in neural information processing systems, 33:6840–6851, 2020.

Variable-Length Generative Protein Design via Generalized Poisson Flow Denoising diffusion probabilistic models.Advances in neural information processing systems, 33:6840–6851, 2020

Reference 22

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Observation 792d62da-e0a9-4b7b-94eb-ffc4d7226c4f · outbound

This paper cites Generator Matching: Generative modeling with arbitrary Markov processes.

Variable-Length Generative Protein Design via Generalized Poisson Flow Generator Matching: Generative modeling with arbitrary Markov processes

Reference 23

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Observation 9b14fed6-f80c-4c85-8132-489dbfea1872 · outbound

This paper cites Argmax flows and multinomial diffusion: Learning categorical distributions.Advances in neural information processing systems, 34:12454–12465, 2021.

Variable-Length Generative Protein Design via Generalized Poisson Flow Argmax flows and multinomial diffusion: Learning categorical distributions.Advances in neural information processing systems, 34:12454–12465, 2021

Reference 24

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Observation 3b4d5385-59ea-4e5f-b81d-6b387f7eb285 · outbound

This paper cites Highly accurate protein structure prediction with alphafold.nature, 596(7873):583–589, 2021.

Variable-Length Generative Protein Design via Generalized Poisson Flow Highly accurate protein structure prediction with alphafold.nature, 596(7873):583–589, 2021

Reference 25

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Observation 02f17ae2-ddac-4806-aaa8-46e90f7f81a4 · outbound

This paper cites Dictionary of protein secondary structure: Pattern recognition of hydrogen-bonded and geometrical features.Biopolymers, 22(12):2577–2637,.

Variable-Length Generative Protein Design via Generalized Poisson Flow Dictionary of protein secondary structure: Pattern recognition of hydrogen-bonded and geometrical features.Biopolymers, 22(12):2577–2637,

Reference 26

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Observation b0a5c1b9-8f60-4b80-beae-f50b721df445 · outbound

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Variable-Length Generative Protein Design via Generalized Poisson Flow Unresolved cited work

Reference 27

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Observation 6f483bde-1578-4521-831f-8af8748f8d3a · outbound

This paper cites Kingma and Jimmy Ba.

Variable-Length Generative Protein Design via Generalized Poisson Flow Kingma and Jimmy Ba

Reference 28

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Observation cab9df82-be7a-4a58-863c-4ad9c156a2cc · outbound

This paper cites Adam: A Method for Stochastic Optimization.

Variable-Length Generative Protein Design via Generalized Poisson Flow Adam: A Method for Stochastic Optimization

Reference 29

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Observation ac8a7ea7-8cbb-4aad-a655-0e70a307c00d · outbound

This paper cites Biotite: a unifying open source computational biology framework in Python.BMC Bioinformatics, 19(1):346, 2018.

Variable-Length Generative Protein Design via Generalized Poisson Flow Biotite: a unifying open source computational biology framework in Python.BMC Bioinformatics, 19(1):346, 2018

Reference 30

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Observation 14a8ec3b-9f06-41f1-b693-40c19212223a · outbound

This paper cites Full-Atom Peptide Design based on Multi-modal Flow Matching.

Variable-Length Generative Protein Design via Generalized Poisson Flow Full-Atom Peptide Design based on Multi-modal Flow Matching

Reference 31

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Observation 46d100c4-e6da-4564-b9b9-bcd927b3bf99 · outbound

This paper cites Analysis of explicit tau-leaping schemes for simulating chemically reacting systems.

Variable-Length Generative Protein Design via Generalized Poisson Flow Analysis of explicit tau-leaping schemes for simulating chemically reacting systems

Reference 32

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Observation bac450ba-9740-487a-b9bc-a85d8cba6d8e · outbound

This paper cites Out of Many, One: Designing and Scaffolding Proteins at the Scale of the Structural Universe with Genie 2.

Variable-Length Generative Protein Design via Generalized Poisson Flow Out of Many, One: Designing and Scaffolding Proteins at the Scale of the Structural Universe with Genie 2

Reference 33

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Observation a08be0e5-fb4b-40d7-a3a4-bd8946444d1a · outbound

This paper cites Evolutionary-scale prediction of atomic- level protein structure with a language model.Science, 379(6637):1123–1130, 2023.

Variable-Length Generative Protein Design via Generalized Poisson Flow Evolutionary-scale prediction of atomic- level protein structure with a language model.Science, 379(6637):1123–1130, 2023

Reference 34

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Observation 1c94ecf8-9d50-4675-9ede-5fd581c309d3 · outbound

This paper cites Evolutionary-scale prediction of atomic-level protein structure with a language model.Science, 379(6637):1123–1130, 2023.

Variable-Length Generative Protein Design via Generalized Poisson Flow Evolutionary-scale prediction of atomic-level protein structure with a language model.Science, 379(6637):1123–1130, 2023

Reference 35

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Observation 9342474b-a7fd-4207-a4c8-adb944569f8c · outbound

This paper cites Flow Matching for Generative Modeling.

Variable-Length Generative Protein Design via Generalized Poisson Flow Flow Matching for Generative Modeling

Reference 36

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source=pdf_text observed=2026-07-13T00:48:08.651522Z digest=sha256:95ca98ee41be611b9f850d6998a9c48acf9b3bd587cba4b530adf626ef2766cc

Observation a83e324c-7814-4ce1-8bdf-1670f13ec42d · outbound

This paper cites Multistate and functional protein design using rosettafold sequence space diffusion.Nature biotechnology, 43(8):1288–1298, 2025.

Variable-Length Generative Protein Design via Generalized Poisson Flow Multistate and functional protein design using rosettafold sequence space diffusion.Nature biotechnology, 43(8):1288–1298, 2025

Reference 37

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source=pdf_text observed=2026-07-13T00:48:08.651522Z digest=sha256:17957cbd060dc8217550297068f63fe44220ee719962e04164ec99237ddb98a5

Observation d61d1359-0cee-4ed0-b7de-9ace8a86a543 · outbound

This paper cites Rosetta flex- pepdock web server—high resolution modeling of peptide–protein interactions.Nucleic acids research, 39(suppl_2):W249–W253, 2011.

Variable-Length Generative Protein Design via Generalized Poisson Flow Rosetta flex- pepdock web server—high resolution modeling of peptide–protein interactions.Nucleic acids research, 39(suppl_2):W249–W253, 2011

Reference 38

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source=pdf_text observed=2026-07-13T00:48:08.651522Z digest=sha256:ea4b4f99d286735792f00ca285ae7859f91754e0caf6d3972f40666c97a56b53

Observation e34fd0c2-5671-421f-bbb5-c915c6460914 · outbound

This paper cites lDDT: A local superposition-free score for comparing protein structures and models using distance difference tests.Bioinformatics, 29(21):2722–2728, 2013.

Variable-Length Generative Protein Design via Generalized Poisson Flow lDDT: A local superposition-free score for comparing protein structures and models using distance difference tests.Bioinformatics, 29(21):2722–2728, 2013

Reference 39

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source=pdf_text observed=2026-07-13T00:48:08.651522Z digest=sha256:c825c86b46c576c96223df97c6a44c16d2df4aaa863912eff7b76a51bd96d7ad

Observation c21f67c5-f5a9-413a-b4ed-7a220836eb6d · outbound

This paper cites Scalable Diffusion Models with Transformers.

Variable-Length Generative Protein Design via Generalized Poisson Flow Scalable Diffusion Models with Transformers

Reference 40

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source=pdf_text observed=2026-07-13T00:48:08.651522Z digest=sha256:1cd64ee1dcb39c5b2161567cc2abe9b6adde075b99fb52388e3f9b1f344ef7e5

Observation 061fb3de-cb49-40ff-a019-cfba1204c403 · outbound

This paper cites Rosetta flexpepdock ab-initio: simultaneous folding, docking and refinement of peptides onto their receptors.PloS one, 6(4):e18934, 2011.

Variable-Length Generative Protein Design via Generalized Poisson Flow Rosetta flexpepdock ab-initio: simultaneous folding, docking and refinement of peptides onto their receptors.PloS one, 6(4):e18934, 2011

Reference 41

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source=pdf_text observed=2026-07-13T00:48:08.651522Z digest=sha256:c0543cf2e53a8d3cdc78c8f83880179aaf8c45626d0faa4efac0b6ccd436fb19

Observation d6bd53c1-5fe1-4bf7-a1c9-e26ea645dc01 · outbound

This paper cites Fast solvers for discrete diffusion models: Theory and applications of high-order algorithms.arXiv preprint arXiv:2502.00234, 2025.

Variable-Length Generative Protein Design via Generalized Poisson Flow Fast solvers for discrete diffusion models: Theory and applications of high-order algorithms.arXiv preprint arXiv:2502.00234, 2025

Reference 42

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no resolver link, observed 2026-07-13T00:48:08.651522Z

Source-reported events for the cited work

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source=pdf_text observed=2026-07-13T00:48:08.651522Z digest=sha256:86e601c6dd3233701ca530654cff3a49bb2e21ba4606916ab9c51cf5a0f8bb1b

Observation 24c44213-f39b-44d1-84fd-9c1d80dd6470 · outbound

This paper cites Simple and effective masked diffusion language models.Advances in Neural Information Processing Systems, 37:130136–130184, 2024.

Variable-Length Generative Protein Design via Generalized Poisson Flow Simple and effective masked diffusion language models.Advances in Neural Information Processing Systems, 37:130136–130184, 2024

Reference 43

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no resolver link, observed 2026-07-13T00:48:08.651522Z

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source=pdf_text observed=2026-07-13T00:48:08.651522Z digest=sha256:3ecf9c6b62f350cacc2faf2445407fd40779e777d3f3d82af7f59c2a84ffc4ba

Observation a27c69d7-6db0-4e4c-b555-ec8d187b038f · outbound

This paper cites Generative modeling by estimating gradients of the data distribution.Advances in neural information processing systems, 32, 2019.

Variable-Length Generative Protein Design via Generalized Poisson Flow Generative modeling by estimating gradients of the data distribution.Advances in neural information processing systems, 32, 2019

Reference 44

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source=pdf_text observed=2026-07-13T00:48:08.651522Z digest=sha256:e6629a2b726c24a7bba4f3f8eccde23c161d358f1fa6c225d3b8dd351bd99266

Observation 09630efa-0b5b-4214-82bc-99be3af41098 · outbound

This paper cites Mmseqs2 enables sensitive protein sequence searching for the analysis of massive data sets.Nature biotechnology, 35(11):1026–1028, 2017.

Variable-Length Generative Protein Design via Generalized Poisson Flow Mmseqs2 enables sensitive protein sequence searching for the analysis of massive data sets.Nature biotechnology, 35(11):1026–1028, 2017

Reference 45

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source=pdf_text observed=2026-07-13T00:48:08.651522Z digest=sha256:59cdbd2285fadb10a31c6643ca5c63c4571a86af938b95bec14e6f46ce8aac18

Observation fa405688-c4f8-46d9-baa6-466d793092ae · outbound

This paper cites Suzek, Hongzhan Huang, Peter McGarvey, Raja Mazumder, and Cathy H.

Variable-Length Generative Protein Design via Generalized Poisson Flow Suzek, Hongzhan Huang, Peter McGarvey, Raja Mazumder, and Cathy H

Reference 46

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no resolver link, observed 2026-07-13T00:48:08.651522Z

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source=pdf_text observed=2026-07-13T00:48:08.651522Z digest=sha256:8d42ed34ca5cea073c9200e57f58cc3d419fa9c838a63fd61070d515360dad56

Observation 7bc7cebd-d352-4f4f-a693-77d5aa599e09 · outbound

This paper cites UniProt: the Universal Protein Knowledgebase in 2023.Nucleic Acids Research, 51(D1):D523–D531, January 2023.

Variable-Length Generative Protein Design via Generalized Poisson Flow UniProt: the Universal Protein Knowledgebase in 2023.Nucleic Acids Research, 51(D1):D523–D531, January 2023

Reference 47

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no resolver link, observed 2026-07-13T00:48:08.651522Z

Source-reported events for the cited work

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source=pdf_text observed=2026-07-13T00:48:08.651522Z digest=sha256:c78fee5e62e4cb67f5dc25c59d84b30b27aa3968ce740d7f1aeca0322d7d0579

Observation b3503fd9-c4c9-422d-ab7a-05c88e6bf762 · outbound

This paper cites Fast and accurate protein structure search with foldseek.Nature biotechnology, 42(2):243–246, 2024.

Variable-Length Generative Protein Design via Generalized Poisson Flow Fast and accurate protein structure search with foldseek.Nature biotechnology, 42(2):243–246, 2024

Reference 48

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source=pdf_text observed=2026-07-13T00:48:08.651522Z digest=sha256:e8116c5d309f8c12db52b2d926df125eb9a18ae26e26f157d0a2908d653b660a

Observation b2895b3d-195a-4315-9541-e90f20a91c83 · outbound

This paper cites A Comprehensive Review of Protein Language Models.

Variable-Length Generative Protein Design via Generalized Poisson Flow A Comprehensive Review of Protein Language Models

Reference 49

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Source-reported events for the cited work

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source=pdf_text observed=2026-07-13T00:48:08.651522Z digest=sha256:ba8011410053f4c0bb146d03a82e8f6a3ea266d042bafb416d30e8c464a75796

Observation c799a3af-23b6-42a2-ab99-5ca6526e9a9f · outbound

This paper cites Diffusion Language Models Are Versatile Protein Learners.

Variable-Length Generative Protein Design via Generalized Poisson Flow Diffusion Language Models Are Versatile Protein Learners

Reference 50

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Source-reported events for the cited work

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source=pdf_text observed=2026-07-13T00:48:08.651522Z digest=sha256:ce2f3c279be5b92b4b24b4629d309c9f2f3ec0625cd83de0b770c87e6a3ed60f

Observation 03b2cf08-6b6f-486e-aa34-e2cdc7d2a1d5 · outbound

This paper cites De novo design of protein structure and function with rfdiffusion.Nature, 620(7976):1089–1100, 2023.

Variable-Length Generative Protein Design via Generalized Poisson Flow De novo design of protein structure and function with rfdiffusion.Nature, 620(7976):1089–1100, 2023

Reference 51

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source=pdf_text observed=2026-07-13T00:48:08.651522Z digest=sha256:0e28183a8a8fcf996b1d634cc1149d8ffab17866404c29ced3b4a5d31624fbee

Observation 7d010ebd-0063-4c56-be89-4d681d2fcd10 · outbound

This paper cites Fast protein backbone generation with SE(3) flow matching.

Variable-Length Generative Protein Design via Generalized Poisson Flow Fast protein backbone generation with SE(3) flow matching

Reference 52

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no resolver link, observed 2026-07-13T00:48:08.651522Z

Source-reported events for the cited work

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source=pdf_text observed=2026-07-13T00:48:08.651522Z digest=sha256:f5c0250df94a9b8f8bf03296d47d7df08e78a88a58927d38743ac2f3a9b01fcc

Observation 8083735b-6bba-4c69-929d-fda73d380fcc · outbound

This paper cites SE(3) diffusion model with application to protein backbone generation.

Variable-Length Generative Protein Design via Generalized Poisson Flow SE(3) diffusion model with application to protein backbone generation

Reference 53

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no resolver link, observed 2026-07-13T00:48:08.651522Z

Source-reported events for the cited work

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source=pdf_text observed=2026-07-13T00:48:08.651522Z digest=sha256:bd14da7c71a1ae2c1dc5636553569dc64e52bae01eec82bbdb9b26bcc989ec7a

Observation bd236ad4-c7fc-41ee-9732-9b61e21e95a6 · outbound

This paper cites Scoring function for automated assessment of protein structure template quality.Proteins: Structure, Function, and Bioinformatics, 57(4):702–710,.

Variable-Length Generative Protein Design via Generalized Poisson Flow Scoring function for automated assessment of protein structure template quality.Proteins: Structure, Function, and Bioinformatics, 57(4):702–710,

Reference 54

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Source-reported events for the cited work

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source=pdf_text observed=2026-07-13T00:48:08.651522Z digest=sha256:0b4aa0ca05618caaaf0e8eee0fc5b6904bb16aaa511098f993edc3639b2855ee

Observation 763f0e86-9a4d-4cd2-af80-d20700e1f4cd · outbound

This paper cites an unresolved cited work.

Variable-Length Generative Protein Design via Generalized Poisson Flow Unresolved cited work

Reference 55

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Source-reported events for the cited work

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source=pdf_text observed=2026-07-13T00:48:08.651522Z digest=sha256:69672e5836748b9df72ce254d635ade2077fc69e154493135a21560b4103ca58

Observation 175a2a2e-8e2d-4f0a-868d-039ad47762f8 · outbound

This paper cites ut(x)· ∇logf(x) + 1 2 σ2 t ∇ · ∇logf(x) + Z [logf(y)−logf(x)]Q(dy|x) −˜ut(x)· ∇f(x) f(x) − 1 2 σ2 t ∇ · ∇f(x) f(x) − Z f(y) f(x) −1 ˜Q(dy|x) # (55) =E x∼pt.

Variable-Length Generative Protein Design via Generalized Poisson Flow ut(x)· ∇logf(x) + 1 2 σ2 t ∇ · ∇logf(x) + Z [logf(y)−logf(x)]Q(dy|x) −˜ut(x)· ∇f(x) f(x) − 1 2 σ2 t ∇ · ∇f(x) f(x) − Z f(y) f(x) −1 ˜Q(dy|x) # (55) =E x∼pt

Reference 56

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source=pdf_text observed=2026-07-13T00:48:08.651522Z digest=sha256:9c5b2e7e1eeda88a67b95a16ca874636425cde0fb014a078fbdc9bfb3014b49e

Observation 09237833-d78b-4ac3-90e8-baee608812b5 · outbound

This paper cites an unresolved cited work.

Variable-Length Generative Protein Design via Generalized Poisson Flow Unresolved cited work

Reference 57

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source=pdf_text observed=2026-07-13T00:48:08.651522Z digest=sha256:675170772988a19a45710182c7606c96dadb2e1e190967ff279a5093fff585ce

Observation 8aa26a6d-2802-40ae-88ca-c15268ad9ddd · outbound

This paper cites Inserted token identities are drawn from Qins tk,i(·|Xtk).

Variable-Length Generative Protein Design via Generalized Poisson Flow Inserted token identities are drawn from Qins tk,i(·|Xtk)

Reference 58

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Source-reported events for the cited work

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source=pdf_text observed=2026-07-13T00:48:08.651522Z digest=sha256:32c44db6515f04278cb316815d20758da38ce29658772276700924c378767744

Observation ef957939-2de7-4bf2-8805-581db438e0bd · outbound

This paper cites XtX i=0 λi t − XtX i=0 X k∈Ωi λeff k,t logλ i t # ,(98) and the modified reconstruction loss is: Lloc rec =E Y1,Yt.

Variable-Length Generative Protein Design via Generalized Poisson Flow XtX i=0 λi t − XtX i=0 X k∈Ωi λeff k,t logλ i t # ,(98) and the modified reconstruction loss is: Lloc rec =E Y1,Yt

Reference 59

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Source-reported events for the cited work

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source=pdf_text observed=2026-07-13T00:48:08.651522Z digest=sha256:59f0741649463a5ef68e81e2f69d04940d8721b0ef9cbb55a0a45e3cc70b2756

Pith citing papers

No inbound Pith citation observations are available.