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Paper Citation Record · LEDGER

Quantitative and Qualitative Comparison of Generative Models for Subject-Specific Gaze Synthesis: Diffusion vs GANs

As of 10 August 2026, this Paper Citation Record lists 51 of 51 outbound references and 1 inbound Pith citation observation for arXiv:2511.09867.

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

pith.paper-citation-record.v1
2511.09867 v2

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measured 51 of 51 reference resolution

Typed states for the displayed outbound observations.

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measured 1 of 1 inbound itemization

Pith citing papers itemized under the disclosed page cap.

Source: paper_references, paper_reference_links, observed 2026-08-03T07:10:36.316701Z

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51 of 51 outbound references displayed

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Outbound references

Observation d5d62d6f-50d2-42aa-8eb2-48a0a816329f · outbound

This paper cites Advances in eye tracking technology: theory, algorithms, and applications.Computational intelligence and neuroscience, 2016:7831469, 2016.

Quantitative and Qualitative Comparison of Generative Models for Subject-Specific Gaze Synthesis: Diffusion vs GANs Advances in eye tracking technology: theory, algorithms, and applications.Computational intelligence and neuroscience, 2016:7831469, 2016

Reference 1

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Observation cb51d5ec-1626-42b5-b37e-377f90c45d42 · outbound

This paper cites Eye-tracking in ar/vr: A technological review and future directions.IEEE Open Journal on Immersive Displays, 2024.

Quantitative and Qualitative Comparison of Generative Models for Subject-Specific Gaze Synthesis: Diffusion vs GANs Eye-tracking in ar/vr: A technological review and future directions.IEEE Open Journal on Immersive Displays, 2024

Reference 2

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Observation a93d4b80-78b0-45d0-b87f-6122db922cbe · outbound

This paper cites Gazebase, a large-scale, multi-stimulus, longitudinal eye movement dataset.Scientific Data, 8(1):184, 2021.

Quantitative and Qualitative Comparison of Generative Models for Subject-Specific Gaze Synthesis: Diffusion vs GANs Gazebase, a large-scale, multi-stimulus, longitudinal eye movement dataset.Scientific Data, 8(1):184, 2021

Reference 3

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Observation 563c4d6e-99c3-452f-9bbe-3d98cab4b009 · outbound

This paper cites The promise of eye-tracking methodology in organizational research: A taxonomy, review, and future avenues.Organizational Research Methods, 22(2):590–617, 2019.

Quantitative and Qualitative Comparison of Generative Models for Subject-Specific Gaze Synthesis: Diffusion vs GANs The promise of eye-tracking methodology in organizational research: A taxonomy, review, and future avenues.Organizational Research Methods, 22(2):590–617, 2019

Reference 4

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Observation 74284fa7-6faa-4c9f-bf38-6fc2b652c18c · outbound

This paper cites Eye-tracking based classification of Mandarin Chinese readers with and without dyslexia using neural sequence models.

Quantitative and Qualitative Comparison of Generative Models for Subject-Specific Gaze Synthesis: Diffusion vs GANs Eye-tracking based classification of Mandarin Chinese readers with and without dyslexia using neural sequence models

Reference 5

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Observation 88ec8dae-3578-45fb-a4f0-89d3817cddc8 · outbound

This paper cites Eye-tracking based autism spectrum disorder diagnosis using chaotic butterfly optimization with deep learning model.Computers, Materials & Continua, 76(2), 2023.

Quantitative and Qualitative Comparison of Generative Models for Subject-Specific Gaze Synthesis: Diffusion vs GANs Eye-tracking based autism spectrum disorder diagnosis using chaotic butterfly optimization with deep learning model.Computers, Materials & Continua, 76(2), 2023

Reference 6

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Observation cf7d485d-609e-45a2-81c2-7a2e05279a79 · outbound

This paper cites Eye know you too: Toward viable end-to-end eye movement biometrics for user authentication.IEEE Transactions on Information Forensics and Security, 17:3151–3164, 2022.

Quantitative and Qualitative Comparison of Generative Models for Subject-Specific Gaze Synthesis: Diffusion vs GANs Eye know you too: Toward viable end-to-end eye movement biometrics for user authentication.IEEE Transactions on Information Forensics and Security, 17:3151–3164, 2022

Reference 7

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Observation d71c0f01-154a-4e3a-923d-8a9182c147fa · outbound

This paper cites Gaze authentication: Factors influencing authentication performance.arXiv preprint arXiv:2509.10969, 2025.

Quantitative and Qualitative Comparison of Generative Models for Subject-Specific Gaze Synthesis: Diffusion vs GANs Gaze authentication: Factors influencing authentication performance.arXiv preprint arXiv:2509.10969, 2025

Reference 8

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Observation 4d6b3cf0-767a-467d-812f-a182f54978b7 · outbound

This paper cites Person identification using ocular biometrics with liveness detection, July 14 2015.

Quantitative and Qualitative Comparison of Generative Models for Subject-Specific Gaze Synthesis: Diffusion vs GANs Person identification using ocular biometrics with liveness detection, July 14 2015

Reference 9

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Observation 1cdc6c97-759c-4793-b215-275bd397a949 · outbound

This paper cites Iris print attack detection using eye movement signals.

Quantitative and Qualitative Comparison of Generative Models for Subject-Specific Gaze Synthesis: Diffusion vs GANs Iris print attack detection using eye movement signals

Reference 10

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Observation f3925c24-9701-418e-9aa5-19798c2ee1a5 · outbound

This paper cites Towards foveated rendering for gaze-tracked virtual reality.ACM Transactions On Graphics (TOG), 35 (6):1–12, 2016.

Quantitative and Qualitative Comparison of Generative Models for Subject-Specific Gaze Synthesis: Diffusion vs GANs Towards foveated rendering for gaze-tracked virtual reality.ACM Transactions On Graphics (TOG), 35 (6):1–12, 2016

Reference 11

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Observation b612b30b-45a5-46b9-b8e2-b182fe48a02a · outbound

This paper cites Improving user experience of eye tracking-based interaction: Introspecting and adapting interfaces.ACM Transactions on Computer-Human Interaction (TOCHI), 26(6):1–46, 2019.

Quantitative and Qualitative Comparison of Generative Models for Subject-Specific Gaze Synthesis: Diffusion vs GANs Improving user experience of eye tracking-based interaction: Introspecting and adapting interfaces.ACM Transactions on Computer-Human Interaction (TOCHI), 26(6):1–46, 2019

Reference 12

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Observation 0e3603ee-ad45-4f4d-ad53-acb61881ac18 · outbound

This paper cites Brockmole, and Sidney K.

Quantitative and Qualitative Comparison of Generative Models for Subject-Specific Gaze Synthesis: Diffusion vs GANs Brockmole, and Sidney K

Reference 13

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Observation c2a55cc3-7554-4586-a81e-6a3340c8fd55 · outbound

This paper cites A new comprehensive eye-tracking test battery concurrently evaluating the pupil labs glasses and the eyelink 1000.PeerJ, 7:e7086, 2019.

Quantitative and Qualitative Comparison of Generative Models for Subject-Specific Gaze Synthesis: Diffusion vs GANs A new comprehensive eye-tracking test battery concurrently evaluating the pupil labs glasses and the eyelink 1000.PeerJ, 7:e7086, 2019

Reference 14

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Observation 632579fc-d4ae-4f61-a99c-23a2caf9c93e · outbound

This paper cites Biometric verification via complex eye movements: The effects of environment and stimulus.

Quantitative and Qualitative Comparison of Generative Models for Subject-Specific Gaze Synthesis: Diffusion vs GANs Biometric verification via complex eye movements: The effects of environment and stimulus

Reference 15

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Observation 99eab054-5422-4c9c-bf66-fd2de688b592 · outbound

This paper cites an unresolved cited work.

Quantitative and Qualitative Comparison of Generative Models for Subject-Specific Gaze Synthesis: Diffusion vs GANs Unresolved cited work

Reference 16

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Observation 22f4f55b-dfa0-4fba-bdbc-00fea0347f15 · outbound

This paper cites Supreyes: Super resolutin for eyes using implicit neural representation learning.

Quantitative and Qualitative Comparison of Generative Models for Subject-Specific Gaze Synthesis: Diffusion vs GANs Supreyes: Super resolutin for eyes using implicit neural representation learning

Reference 17

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Observation 2d651dd6-2fbd-4609-bc29-2c6bc186e891 · outbound

This paper cites A survey of advances in vision-based vehicle re-identification.Computer Vision and Image Understanding, 182:50–63, 2019.

Quantitative and Qualitative Comparison of Generative Models for Subject-Specific Gaze Synthesis: Diffusion vs GANs A survey of advances in vision-based vehicle re-identification.Computer Vision and Image Understanding, 182:50–63, 2019

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Observation 673e5727-9b6e-48cf-958a-957c098f3058 · outbound

This paper cites Privacy-aware eye tracking using differential privacy.

Quantitative and Qualitative Comparison of Generative Models for Subject-Specific Gaze Synthesis: Diffusion vs GANs Privacy-aware eye tracking using differential privacy

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Observation 42502c30-7f3f-4bd1-82a9-afa9f0ff81b4 · outbound

This paper cites Preserving privacy in healthcare: A systematic review of deep learning approaches for synthetic data generation.Computer Methods and Programs in Biomedicine, 260: 108571, 2025.

Quantitative and Qualitative Comparison of Generative Models for Subject-Specific Gaze Synthesis: Diffusion vs GANs Preserving privacy in healthcare: A systematic review of deep learning approaches for synthetic data generation.Computer Methods and Programs in Biomedicine, 260: 108571, 2025

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Observation 303cac78-3bc8-4e97-b8a6-4b12f8c3e393 · outbound

This paper cites Eyes alive.

Quantitative and Qualitative Comparison of Generative Models for Subject-Specific Gaze Synthesis: Diffusion vs GANs Eyes alive

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Observation aa3775c8-8c5e-4f11-b734-711327d77182 · outbound

This paper cites Eyesyn: Psychology-inspired eye movement synthesis for gaze-based activity recognition.

Quantitative and Qualitative Comparison of Generative Models for Subject-Specific Gaze Synthesis: Diffusion vs GANs Eyesyn: Psychology-inspired eye movement synthesis for gaze-based activity recognition

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Observation ce3d0786-fb15-415d-916e-792494f0e38e · outbound

This paper cites Generative adversarial networks.Communications of the ACM, 63(11):139–144, 2020.

Quantitative and Qualitative Comparison of Generative Models for Subject-Specific Gaze Synthesis: Diffusion vs GANs Generative adversarial networks.Communications of the ACM, 63(11):139–144, 2020

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Observation 4d21baec-158f-4679-b2fd-e3a53d86275c · outbound

This paper cites Sp-eyegan: Generating synthetic eye movement data with generative adversarial networks.

Quantitative and Qualitative Comparison of Generative Models for Subject-Specific Gaze Synthesis: Diffusion vs GANs Sp-eyegan: Generating synthetic eye movement data with generative adversarial networks

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Observation 5c51f420-52e6-4610-bee0-5b1ed9c104eb · outbound

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

Quantitative and Qualitative Comparison of Generative Models for Subject-Specific Gaze Synthesis: Diffusion vs GANs Denoising diffusion probabilistic models.Advances in neural information processing systems, 33:6840–6851, 2020

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Observation 42c2e42f-05ef-426f-9582-d6a477373c2e · outbound

This paper cites DiffEyeSyn: Diffusion-based User-specific Eye Movement Synthesis.

Quantitative and Qualitative Comparison of Generative Models for Subject-Specific Gaze Synthesis: Diffusion vs GANs DiffEyeSyn: Diffusion-based User-specific Eye Movement Synthesis

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Observation 8e163dc2-e6bb-45e3-be8a-9111059917ed · outbound

This paper cites Determining which sine wave frequencies correspond to signal and which correspond to noise in eye-tracking time-series.Journal of Eye Movement Research, 14(3):16, 2021.

Quantitative and Qualitative Comparison of Generative Models for Subject-Specific Gaze Synthesis: Diffusion vs GANs Determining which sine wave frequencies correspond to signal and which correspond to noise in eye-tracking time-series.Journal of Eye Movement Research, 14(3):16, 2021

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Observation 605d0c0e-d8ce-458a-82af-7df3900127f9 · outbound

This paper cites Evaluation of eye tracking signal quality for virtual reality applications: A case study in the meta quest pro.

Quantitative and Qualitative Comparison of Generative Models for Subject-Specific Gaze Synthesis: Diffusion vs GANs Evaluation of eye tracking signal quality for virtual reality applications: A case study in the meta quest pro

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Observation 447c76db-57d8-4d1e-9527-d901e46f959b · outbound

This paper cites Modeling physiologically plausible eye rotations.

Quantitative and Qualitative Comparison of Generative Models for Subject-Specific Gaze Synthesis: Diffusion vs GANs Modeling physiologically plausible eye rotations

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Observation 12fab32c-2365-4a21-a956-ed47bd68a65e · outbound

This paper cites Eye movement synthesis.

Quantitative and Qualitative Comparison of Generative Models for Subject-Specific Gaze Synthesis: Diffusion vs GANs Eye movement synthesis

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Observation bb0530a7-9e2c-44da-bbbd-075146ae430b · outbound

This paper cites Natural eye motion synthesis by modeling gaze-head coupling.

Quantitative and Qualitative Comparison of Generative Models for Subject-Specific Gaze Synthesis: Diffusion vs GANs Natural eye motion synthesis by modeling gaze-head coupling

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Observation fe3c7d21-8790-49ee-ba8a-3824826a0428 · outbound

This paper cites Rendering of eyes for eye-shape registration and gaze estimation.

Quantitative and Qualitative Comparison of Generative Models for Subject-Specific Gaze Synthesis: Diffusion vs GANs Rendering of eyes for eye-shape registration and gaze estimation

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Observation 9496aaed-dd69-463b-951a-e6572bcaf04f · outbound

This paper cites Live speech driven head-and-eye motion generators.IEEE transactions on visualization and computer graphics, 18(11):1902–1914, 2012.

Quantitative and Qualitative Comparison of Generative Models for Subject-Specific Gaze Synthesis: Diffusion vs GANs Live speech driven head-and-eye motion generators.IEEE transactions on visualization and computer graphics, 18(11):1902–1914, 2012

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Observation fca4d0ef-e93b-4ca0-a8a9-2df97a2d9428 · outbound

This paper cites Eye movement velocity and gaze data generator for evaluation, robustness testing and assess of eye tracking software and visualization tools.

Quantitative and Qualitative Comparison of Generative Models for Subject-Specific Gaze Synthesis: Diffusion vs GANs Eye movement velocity and gaze data generator for evaluation, robustness testing and assess of eye tracking software and visualization tools

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source=pdf_text observed=2026-08-03T22:36:33.598450Z digest=sha256:b813c103ac9d66ea408dc632a9eefda6318100eb5132a3734756f34579283045

Observation bb977b19-6b5a-4438-8a55-15b896425fd0 · outbound

This paper cites Eye movement simulation and detector creation to reduce laborious parameter adjustments.

Quantitative and Qualitative Comparison of Generative Models for Subject-Specific Gaze Synthesis: Diffusion vs GANs Eye movement simulation and detector creation to reduce laborious parameter adjustments

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source=pdf_text observed=2026-08-03T22:36:33.604140Z digest=sha256:691b10a8df3aab2dc06fbe4b4cb227d9540dcf245dfdfbd29cc078aeb9400876

Observation 1b20af68-7363-4743-abf4-acbd4d63d50b · outbound

This paper cites Eyecatch: Simulating visuomotor coordination for object interception.ACM Transactions on Graphics (TOG), 31(4):1–10, 2012.

Quantitative and Qualitative Comparison of Generative Models for Subject-Specific Gaze Synthesis: Diffusion vs GANs Eyecatch: Simulating visuomotor coordination for object interception.ACM Transactions on Graphics (TOG), 31(4):1–10, 2012

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source=pdf_text observed=2026-08-03T22:36:33.608946Z digest=sha256:28839f78195031f8d71d00b845693d013e12402d27caa525f6b09dd067181a96

Observation b6d76c1a-6717-47c8-a9e1-d43d6e74251c · outbound

This paper cites An introduction to the kalman filter.

Quantitative and Qualitative Comparison of Generative Models for Subject-Specific Gaze Synthesis: Diffusion vs GANs An introduction to the kalman filter

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source=pdf_text observed=2026-08-03T22:36:33.613767Z digest=sha256:16df836fdb13534f2b6f2124037273cd1404be4960ef7e415e967f5b2f4f561a

Observation 9523959a-2d10-44f1-8f7e-7530a1f57349 · outbound

This paper cites Automatic scanpath generation with deep recurrent neural networks.

Quantitative and Qualitative Comparison of Generative Models for Subject-Specific Gaze Synthesis: Diffusion vs GANs Automatic scanpath generation with deep recurrent neural networks

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source=pdf_text observed=2026-08-03T22:36:33.618047Z digest=sha256:ae88dafb78d630a61ddb63b32cbad9672125c76ac15854e2397ebd6a280265a0

Observation 46f5566b-322c-4d7a-986a-9f365988561d · outbound

This paper cites Pathgan: Visual scanpath prediction with generative adversarial networks.

Quantitative and Qualitative Comparison of Generative Models for Subject-Specific Gaze Synthesis: Diffusion vs GANs Pathgan: Visual scanpath prediction with generative adversarial networks

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source=pdf_text observed=2026-08-03T22:36:33.622065Z digest=sha256:89f4c7b4a72b3481993aa1bd0b1a49509e49a3246a4d31abf0e9900834477f97

Observation daf8f368-584d-4a73-9139-b4fd477922a0 · outbound

This paper cites Eyegan: Gaze-preserving, mask-mediated eye image synthesis.

Quantitative and Qualitative Comparison of Generative Models for Subject-Specific Gaze Synthesis: Diffusion vs GANs Eyegan: Gaze-preserving, mask-mediated eye image synthesis

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source=pdf_text observed=2026-08-03T22:36:33.626083Z digest=sha256:123c8f37ed7740ab6c88d21755092569c049952496a44e0007b9d9c4fc4c635b

Observation cd097d62-fe03-46b2-aecb-65eaa636e8a7 · outbound

This paper cites Fully convolutional neural networks for raw eye tracking data segmentation, generation, and reconstruction.

Quantitative and Qualitative Comparison of Generative Models for Subject-Specific Gaze Synthesis: Diffusion vs GANs Fully convolutional neural networks for raw eye tracking data segmentation, generation, and reconstruction

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source=pdf_text observed=2026-08-03T22:36:33.630410Z digest=sha256:3dee59cb39c02ce38057396c33852b35cd6a8397ac192c47a1186a5ba97bb9cb

Observation aee8b480-a1a9-473d-b11e-142f284f81d0 · outbound

This paper cites Next-generation deep learning based on simulators and synthetic data.Trends in cognitive sciences, 26(2):174–187, 2022.

Quantitative and Qualitative Comparison of Generative Models for Subject-Specific Gaze Synthesis: Diffusion vs GANs Next-generation deep learning based on simulators and synthetic data.Trends in cognitive sciences, 26(2):174–187, 2022

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source=pdf_text observed=2026-08-03T22:36:33.634492Z digest=sha256:ccdcdc432a1d3907d3fce4d4c9e03bb19f673b51f731dbd35375f41a7f806c2d

Observation 360f7655-0a54-45a8-a49b-e4eeb452a1c1 · outbound

This paper cites Hpcgen: Hierarchical k-means clustering and level based principal components for scan path genaration.

Quantitative and Qualitative Comparison of Generative Models for Subject-Specific Gaze Synthesis: Diffusion vs GANs Hpcgen: Hierarchical k-means clustering and level based principal components for scan path genaration

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source=pdf_text observed=2026-08-03T22:36:33.638480Z digest=sha256:c7d8b3d58e05fe21ab2266e4f66b26cc247fcc8ee46896bf92699d9f5e235312

Observation a70d49ee-9cd7-4d1f-9a96-2b2d642d6c97 · outbound

This paper cites Improved denoising diffusion probabilistic models.

Quantitative and Qualitative Comparison of Generative Models for Subject-Specific Gaze Synthesis: Diffusion vs GANs Improved denoising diffusion probabilistic models

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source=pdf_text observed=2026-08-03T22:36:33.642868Z digest=sha256:f8f608bf8c5e49d7f134f4c68bc35c16335b9847a5b7d49129e1249a2b991cc2

Observation a451adfd-c081-4778-948a-fda323c93115 · outbound

This paper cites Diffgaze: A diffusion model for modelling fine-grained human gaze behaviour on 360° images.ACM Transactions on Interactive Intelligent Systems, 2025.

Quantitative and Qualitative Comparison of Generative Models for Subject-Specific Gaze Synthesis: Diffusion vs GANs Diffgaze: A diffusion model for modelling fine-grained human gaze behaviour on 360° images.ACM Transactions on Interactive Intelligent Systems, 2025

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source=pdf_text observed=2026-08-03T22:36:33.648169Z digest=sha256:067189cc7bab1665be390665a988e25f3c782b39cef575d014294b65e830b2ab

Observation 73bda3f9-d978-40e4-932e-be8075e2652e · outbound

This paper cites Adding conditional control to text-to-image diffusion models.

Quantitative and Qualitative Comparison of Generative Models for Subject-Specific Gaze Synthesis: Diffusion vs GANs Adding conditional control to text-to-image diffusion models

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source=pdf_text observed=2026-08-03T22:36:33.652291Z digest=sha256:7c99c20a064376132082ebe0fe853e84bf0df58187565c9592d505e9bf9759dd

Observation 5a49db44-da4e-4fc9-af21-9e6b5d516c5c · outbound

This paper cites DiffWave: A Versatile Diffusion Model for Audio Synthesis.

Quantitative and Qualitative Comparison of Generative Models for Subject-Specific Gaze Synthesis: Diffusion vs GANs DiffWave: A Versatile Diffusion Model for Audio Synthesis

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source=pdf_text observed=2026-08-03T22:36:33.656438Z digest=sha256:588958397f146be14b5b8f7c83d3fa198f8879bc1a6074be1d011ed9900ce5b3

Observation 0a1b4bbe-7d63-4f5c-a6e5-33716d5319a8 · outbound

This paper cites Smoothing and differentiation of data by simplified least squares procedures.Analytical chemistry, 36(8):1627–1639, 1964.

Quantitative and Qualitative Comparison of Generative Models for Subject-Specific Gaze Synthesis: Diffusion vs GANs Smoothing and differentiation of data by simplified least squares procedures.Analytical chemistry, 36(8):1627–1639, 1964

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source=pdf_text observed=2026-08-03T22:36:33.661417Z digest=sha256:3ae2ac8addd7f1318e51c5b0c0dd8e9c70db4088571eef29678751d7fa4c0079

Observation 8f083c65-9033-475d-b753-805b5d1c0f5c · outbound

This paper cites Identifying fixations and saccades in eye-tracking protocols.

Quantitative and Qualitative Comparison of Generative Models for Subject-Specific Gaze Synthesis: Diffusion vs GANs Identifying fixations and saccades in eye-tracking protocols

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source=pdf_text observed=2026-08-03T22:36:33.665996Z digest=sha256:64483ad1c3805a28cce47baea0cf70bce253bbc5bae6090b775a0fdf83b1d0e6

Observation 6d13e648-c7c3-4622-8519-87c0f1acbb7d · outbound

This paper cites Adam: A Method for Stochastic Optimization.

Quantitative and Qualitative Comparison of Generative Models for Subject-Specific Gaze Synthesis: Diffusion vs GANs Adam: A Method for Stochastic Optimization

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source=pdf_text observed=2026-08-03T22:36:33.670187Z digest=sha256:07675a6e3469fbb6cf63a6c115d42475eda801aac887074816ae7db9f5cdb32d

Observation 71111d4a-1c71-4d07-81d5-32684c8a4e7d · outbound

This paper cites Evaluating the Data Quality of Eye Tracking Signals from a Virtual Reality System: Case Study using SMI's Eye-Tracking HTC Vive.

Quantitative and Qualitative Comparison of Generative Models for Subject-Specific Gaze Synthesis: Diffusion vs GANs Evaluating the Data Quality of Eye Tracking Signals from a Virtual Reality System: Case Study using SMI's Eye-Tracking HTC Vive

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source=pdf_text observed=2026-08-03T22:36:33.675765Z digest=sha256:16908fd70b182eeeebd578273f6c505c2870cba65e88dc6beac98501d1c7afdb

Pith citing papers

Observation 028e9353-76c2-4568-9986-c04041a4133c · inbound

Privatization of Synthetic Gaze: Attenuating State Signatures in Diffusion-Generated Eye Movements cites this paper.

Privatization of Synthetic Gaze: Attenuating State Signatures in Diffusion-Generated Eye Movements Quantitative and Qualitative Comparison of Generative Models for Subject-Specific Gaze Synthesis: Diffusion vs GANs

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source=pdf_text observed=2026-08-03T07:10:36.316701Z digest=sha256:710ceba7633cf7fb4e62e29c451bc85e25ec7d3acd0345d900a7c041a7944fe3