Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-03T14:33:57.296757Z
Paper Citation Record · LEDGER
As of 9 August 2026, this Paper Citation Record lists 54 of 54 outbound references and 0 inbound Pith citation observations for arXiv:2512.20105.
A citation records a reference. It does not transfer a finding from one paper to another.
Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-03T14:33:57.296757Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-08T06:32:00.761636+00:00
Pith citing papers itemized under the disclosed page cap.
Source: paper_references, paper_reference_links
A source-named dated measurement, never combined with another source.
Source: cited_works
54 of 54 outbound references displayed
External citation measurements
No source-named external measurement is stored.
Observation d1bf755e-76c4-4499-b735-790daca98fa3 · outbound
LiDARDraft: Generating LiDAR Point Cloud from Versatile Inputs GzScenic: Automatic Scene Generation for Gazebo Simulator
Reference 1
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Observation 47d3dc5a-9ed5-4ea5-89c3-413ae4b43e6f · outbound
LiDARDraft: Generating LiDAR Point Cloud from Versatile Inputs Vista 2.0: An open, data-driven simulator for multimodal sensing and policy learning for autonomous vehicles
Reference 2
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Observation e763f8e3-5906-4383-a489-63217682b6f1 · outbound
LiDARDraft: Generating LiDAR Point Cloud from Versatile Inputs Se- mantickitti: A dataset for semantic scene understanding of lidar sequences
Reference 3
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Observation bde239c8-f8c3-48e7-a0d0-afb7f8199ef6 · outbound
LiDARDraft: Generating LiDAR Point Cloud from Versatile Inputs Stable Video Diffusion: Scaling Latent Video Diffusion Models to Large Datasets
Reference 4
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Observation 661705ef-4d40-4d27-a463-68fca05967b4 · outbound
LiDARDraft: Generating LiDAR Point Cloud from Versatile Inputs Efficient online seg- mentation for sparse 3d laser scans.PFG–Journal of Pho- togrammetry, Remote Sensing and Geoinformation Science, 85:41–52, 2017
Reference 5
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Observation 3343737d-ca64-4a03-ad3e-19389c12b559 · outbound
LiDARDraft: Generating LiDAR Point Cloud from Versatile Inputs Brown, Benjamin Mann, Nick Ryder, Melanie Sub- biah, Jared Kaplan, Prafulla Dhariwal, Arvind Neelakantan, Pranav Shyam, Girish Sastry, Amanda Askell, et al
Reference 6
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Observation 3c258b79-2c03-488f-930f-1757b9f9dcbc · outbound
LiDARDraft: Generating LiDAR Point Cloud from Versatile Inputs Deep generative modeling of lidar data
Reference 7
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Observation 54df1a54-8dd6-40c5-aef7-f06ab6ae0a76 · outbound
LiDARDraft: Generating LiDAR Point Cloud from Versatile Inputs nuscenes: A mul- timodal dataset for autonomous driving
Reference 8
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Observation 43e4da29-12ab-490f-8536-761447d8e7aa · outbound
LiDARDraft: Generating LiDAR Point Cloud from Versatile Inputs Unresolved cited work
Reference 9
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Observation 43af85f3-c088-4028-87b1-8d1524c07536 · outbound
LiDARDraft: Generating LiDAR Point Cloud from Versatile Inputs Part-aware data augmentation for 3d object detection in point cloud
Reference 10
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Observation d5b13ba1-bbe0-44e1-a856-bd16789af0f3 · outbound
LiDARDraft: Generating LiDAR Point Cloud from Versatile Inputs Understanding of blender software.Models and methods in modern science, 2(13):40–45, 2023
Reference 11
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Observation 103ef51e-e7ea-4045-a13f-6b13969f3504 · outbound
LiDARDraft: Generating LiDAR Point Cloud from Versatile Inputs Carla: An open urban driv- ing simulator
Reference 12
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Observation 5f2cc27e-163c-41c4-acfb-3f4c76d7e1bc · outbound
LiDARDraft: Generating LiDAR Point Cloud from Versatile Inputs Generative adversarial nets.Advances in neural information processing systems, 27, 2014
Reference 13
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Observation 15440754-6fee-4482-a6a7-f8f4492652d4 · outbound
LiDARDraft: Generating LiDAR Point Cloud from Versatile Inputs Lidar snowfall simulation for robust 3d object detection
Reference 14
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Observation b90dea9b-594d-4e94-b07f-98c112621ecd · outbound
LiDARDraft: Generating LiDAR Point Cloud from Versatile Inputs Classifier-Free Diffusion Guidance
Reference 15
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Observation 2dc23d2c-02e9-47ad-b15f-7d0955b6c402 · outbound
LiDARDraft: Generating LiDAR Point Cloud from Versatile Inputs Denoising dif- fusion probabilistic models.Advances in neural information processing systems, 33:6840–6851, 2020
Reference 16
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Observation 5ad50da5-796e-4f68-bb0a-c10e499ed313 · outbound
LiDARDraft: Generating LiDAR Point Cloud from Versatile Inputs Imagen Video: High Definition Video Generation with Diffusion Models
Reference 17
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Observation a8e93b2e-b8d1-4b6c-b760-f499e7f08c6b · outbound
LiDARDraft: Generating LiDAR Point Cloud from Versatile Inputs Context-aware data augmentation for lidar 3d object detection
Reference 18
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Observation 9ec023eb-13a5-4185-bed7-b05a419416d5 · outbound
LiDARDraft: Generating LiDAR Point Cloud from Versatile Inputs Neural lidar fields for novel view synthesis
Reference 19
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Observation 8ef78bf7-a445-4c52-b552-a44d63aa1c6e · outbound
LiDARDraft: Generating LiDAR Point Cloud from Versatile Inputs Auto-Encoding Variational Bayes
Reference 20
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Observation e13b0d5b-9405-43c1-b877-527b9a83ff95 · outbound
LiDARDraft: Generating LiDAR Point Cloud from Versatile Inputs Berg, Wan-Yen Lo, Piotr Dollar, and Ross Girshick
Reference 21
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Observation 2693fa4d-368a-4f55-9dc5-3660f2bc7559 · outbound
LiDARDraft: Generating LiDAR Point Cloud from Versatile Inputs Kitti-360: A novel dataset and benchmarks for urban scene understanding in 2d and 3d.IEEE Transactions on Pattern Analysis and Machine Intelligence, 45(3):3292–3310, 2022
Reference 22
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Observation 3fbb3186-450d-4b2c-8f82-b84399825ff9 · outbound
LiDARDraft: Generating LiDAR Point Cloud from Versatile Inputs A Conditional Point Diffusion-Refinement Paradigm for 3D Point Cloud Completion
Reference 23
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Observation a70f4100-8410-4f24-98ac-99e3252dec2c · outbound
LiDARDraft: Generating LiDAR Point Cloud from Versatile Inputs Robot operating system 2: Design, architecture, and uses in the wild.Science robotics, 7(66):eabm6074, 2022
Reference 24
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Observation 91e42697-5e69-456c-bc5a-bae3bd313af6 · outbound
LiDARDraft: Generating LiDAR Point Cloud from Versatile Inputs Lidarsim: Realistic lidar simulation by leveraging the real world
Reference 25
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Observation 66d76463-b631-41db-91e9-6d6016437fdf · outbound
LiDARDraft: Generating LiDAR Point Cloud from Versatile Inputs SDEdit: Guided Image Synthesis and Editing with Stochastic Differential Equations
Reference 26
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Observation a2714c32-9c09-4e70-83a3-26265740a903 · outbound
LiDARDraft: Generating LiDAR Point Cloud from Versatile Inputs Rangenet++: Fast and accurate lidar semantic segmentation
Reference 27
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Observation 3ec259fb-2e29-4627-a2b3-cf083953ea54 · outbound
LiDARDraft: Generating LiDAR Point Cloud from Versatile Inputs LiDAR Data Synthesis with Denoising Diffusion Probabilistic Models
Reference 28
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Observation 228a2eab-b0de-4b37-9987-9f793dde9829 · outbound
LiDARDraft: Generating LiDAR Point Cloud from Versatile Inputs Generative range imaging for learning scene priors of 3d li- dar data
Reference 29
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Observation 3c1a3b1a-3319-46ee-a1ad-4c8f88f5ec15 · outbound
LiDARDraft: Generating LiDAR Point Cloud from Versatile Inputs Gpt-5 technical report.https://openai.com,
Reference 30
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Observation daae846c-54d8-4f47-a5d1-62b6a7273572 · outbound
LiDARDraft: Generating LiDAR Point Cloud from Versatile Inputs SDXL: Improving Latent Diffusion Models for High-Resolution Image Synthesis
Reference 31
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Observation ad2d1a8f-e694-4086-9ad9-7b707f31e811 · outbound
LiDARDraft: Generating LiDAR Point Cloud from Versatile Inputs Towards realistic scene generation with lidar diffusion models
Reference 32
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Observation b5206238-6085-4216-bf37-459cd1b0704d · outbound
LiDARDraft: Generating LiDAR Point Cloud from Versatile Inputs lhigh-resolution image synthesis with latent diffusion modelsl
Reference 33
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Observation 28572dfc-cfc4-4f2e-a5ad-659a9397fb49 · outbound
LiDARDraft: Generating LiDAR Point Cloud from Versatile Inputs Projected gans converge faster.Advances in Neural Information Processing Systems, 34:17480–17492, 2021
Reference 34
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Observation 766674e5-048f-47dc-b79a-a63d43d1b425 · outbound
LiDARDraft: Generating LiDAR Point Cloud from Versatile Inputs Airsim: High-fidelity visual and physical simulation for autonomous vehicles
Reference 35
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Observation 6aedcef2-962a-4eff-9e23-e998832ad9a6 · outbound
LiDARDraft: Generating LiDAR Point Cloud from Versatile Inputs Generative modeling by esti- mating gradients of the data distribution.Advances in neural information processing systems, 32, 2019
Reference 36
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Observation ebf6bec5-f9f4-401d-948a-ef8dfc50701a · outbound
LiDARDraft: Generating LiDAR Point Cloud from Versatile Inputs Improved techniques for training score-based generative models.Advances in neural information processing systems, 33:12438–12448, 2020
Reference 37
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Observation 5a2e67ba-4eda-44dd-b919-034c15ff1195 · outbound
LiDARDraft: Generating LiDAR Point Cloud from Versatile Inputs LiDAR-NeRF: Novel LiDAR View Synthesis via Neural Radiance Fields
Reference 38
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Observation 60266507-661d-4995-8321-363d1434ca09 · outbound
LiDARDraft: Generating LiDAR Point Cloud from Versatile Inputs Lion: Latent point dif- fusion models for 3d shape generation.Advances in Neural Information Processing Systems, 35:10021–10039, 2022
Reference 39
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Observation 33a58f1e-8e97-48cd-9646-1bd133f40790 · outbound
LiDARDraft: Generating LiDAR Point Cloud from Versatile Inputs Neural discrete representation learning.Advances in neural information pro- cessing systems, 30, 2017
Reference 40
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Observation 78bb4ad7-e602-4419-87cb-dc451cdbf533 · outbound
LiDARDraft: Generating LiDAR Point Cloud from Versatile Inputs Learn- ing interactive driving policies via data-driven simulation
Reference 41
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Observation eaa79e6c-e31e-45c6-be65-deb3da802293 · outbound
LiDARDraft: Generating LiDAR Point Cloud from Versatile Inputs Prolificdreamer: High-fidelity and diverse text-to-3d generation with variational score distilla- tion.Advances in Neural Information Processing Systems, 36, 2024
Reference 42
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Observation db17c190-01f3-4ef1-9a41-c1a1f57cea12 · outbound
LiDARDraft: Generating LiDAR Point Cloud from Versatile Inputs Text2LiDAR: Text-guided LiDAR Point Cloud Generation via Equirectangular Transformer
Reference 43
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Observation 423672cd-2c93-41ae-bffa-6c9cfe342bf8 · outbound
LiDARDraft: Generating LiDAR Point Cloud from Versatile Inputs OmniGen: Unified Image Generation
Reference 44
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Observation 8817d1ef-250a-499a-b74f-929c9c2516fd · outbound
LiDARDraft: Generating LiDAR Point Cloud from Versatile Inputs Learning compact representations for lidar com- pletion and generation
Reference 45
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Observation 2f7e4346-dd1c-4238-8514-4ab5b5d159b1 · outbound
LiDARDraft: Generating LiDAR Point Cloud from Versatile Inputs GeoNLF: Geometry guided Pose-Free Neural LiDAR Fields
Reference 46
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Observation 59b4ea63-efe8-42ad-bb8e-21870a83dfae · outbound
LiDARDraft: Generating LiDAR Point Cloud from Versatile Inputs Depth anything: Unleashing the power of large-scale unlabeled data
Reference 47
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Observation 5039218b-50b2-4828-97d0-6704b341ed59 · outbound
LiDARDraft: Generating LiDAR Point Cloud from Versatile Inputs Routledge,
Reference 48
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Observation a19c038f-66ae-4255-8900-3970d563c714 · outbound
LiDARDraft: Generating LiDAR Point Cloud from Versatile Inputs Gaussiandreamer: Fast generation from text to 3d gaussians by bridging 2d and 3d diffusion models
Reference 49
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Observation 3c41fca8-bae5-47d6-82cb-6e4b2a930072 · outbound
LiDARDraft: Generating LiDAR Point Cloud from Versatile Inputs Adding conditional control to text-to-image diffusion models
Reference 50
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Observation f40611bd-8110-45b3-9cc0-8e357f2b0ed3 · outbound
LiDARDraft: Generating LiDAR Point Cloud from Versatile Inputs Lidar4d: Dynamic neural fields for novel space-time view lidar synthesis
Reference 51
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Observation c86931c8-7686-4a67-a73e-9b988027800d · outbound
LiDARDraft: Generating LiDAR Point Cloud from Versatile Inputs Learning to generate realistic lidar point clouds
Reference 52
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Observation 3434343c-7c02-4940-be9c-7c8c2e4cab4e · outbound
LiDARDraft: Generating LiDAR Point Cloud from Versatile Inputs Lidardm: Generative lidar simulation in a generated world
Reference 53
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Observation 956012a6-254f-4230-8014-9d34a55aa978 · outbound
LiDARDraft: Generating LiDAR Point Cloud from Versatile Inputs Unresolved cited work
Reference 2024
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No inbound Pith citation observations are available.