Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-08T15:14:22.689279Z
Paper Citation Record · LEDGER
As of 14 August 2026, this Paper Citation Record lists 32 of 32 outbound references and 17 inbound Pith citation observations for arXiv:2502.07825.
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 2026-08-08T15:14:22.689279Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-14T06:32:32.682623+00:00
Pith citing papers itemized under the disclosed page cap.
Source: paper_references, paper_reference_links, observed 2026-08-07T14:03:15.907426Z
A source-named dated measurement, never combined with another source.
Source: arxiv_reference, observed 2026-08-05T02:28:24.338817Z
32 of 32 outbound references displayed
External citation measurements
0
arxiv_reference, observed 2026-08-05T02:28:24.338817Z
Observation ee870583-4950-4112-96ea-2811eb2cbfba · outbound
Pre-Trained Video Generative Models as World Simulators Leveraging procedural generation to benchmark reinforcement learning
Reference 3
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Observation 90e4d933-041a-468f-ba3a-8af6d39daee1 · outbound
Pre-Trained Video Generative Models as World Simulators Unresolved cited work
Reference 4
Source-reported events for the cited work
No event found in the named queried sources as of 2026-08-14T06:32:32.682623+00:00.
Observation 9663e929-9b0a-4cd9-83b4-1766451ae060 · outbound
Pre-Trained Video Generative Models as World Simulators Diffusion World Model: Future Modeling Beyond Step-by-Step Rollout for Offline Reinforcement Learning
Reference 5
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Unavailable: canonical work link unavailable.
Observation 72503797-2ce4-4cca-ac27-8733d13e0d42 · outbound
Pre-Trained Video Generative Models as World Simulators MaskViT: Masked Visual Pre-Training for Video Prediction
Reference 7
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Observation 8bfdd34f-6ae0-47a7-b38c-cc55a8d82e67 · outbound
Pre-Trained Video Generative Models as World Simulators Open-Sora Plan: Open-Source Large Video Generation Model
Reference 10
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Observation d56149ff-b739-429b-ac47-ffd5932096d4 · outbound
Pre-Trained Video Generative Models as World Simulators Flow Straight and Fast: Learning to Generate and Transfer Data with Rectified Flow
Reference 11
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Observation a6b98859-75b8-48a6-b8b8-3ac1bec75311 · outbound
Pre-Trained Video Generative Models as World Simulators Latte: Latent Diffusion Transformer for Video Generation
Reference 12
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Observation 40edee54-cc02-41f5-ba4e-fc10ed38d4b8 · outbound
Pre-Trained Video Generative Models as World Simulators Playing Atari with Deep Reinforcement Learning
Reference 13
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Observation 5ab366d8-1b72-45cc-9dbe-5f16d7401add · outbound
Pre-Trained Video Generative Models as World Simulators AVID: Adapting Video Diffusion Models to World Models
Reference 15
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Observation 680939e0-8980-497a-ba13-e3c4320eaaee · outbound
Pre-Trained Video Generative Models as World Simulators Proximal Policy Optimization Algorithms
Reference 16
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Observation 5a1808cd-0788-4f09-8c14-6d73e8bb92f1 · outbound
Pre-Trained Video Generative Models as World Simulators Very Deep Convolutional Networks for Large-Scale Image Recognition
Reference 17
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Observation dd921605-37e4-42f0-89ed-946fb3b1e98c · outbound
Pre-Trained Video Generative Models as World Simulators LLaMA: Open and Efficient Foundation Language Models
Reference 19
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Observation 77c9f3c2-7c61-47be-90f1-3185a557a1cd · outbound
Pre-Trained Video Generative Models as World Simulators Towards Accurate Generative Models of Video: A New Metric & Challenges
Reference 20
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Observation fa2a7b8e-940e-45cc-baf2-8041ae8be735 · outbound
Pre-Trained Video Generative Models as World Simulators Pandora: Towards General World Model with Natural Language Actions and Video States
Reference 22
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Observation 332417a7-d18f-4d7d-bc51-6eea2aa96452 · outbound
Pre-Trained Video Generative Models as World Simulators VideoGPT: Video Generation using VQ-VAE and Transformers
Reference 23
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Observation baa8a1ec-19ac-41a4-b215-4e9d6c1662b8 · outbound
Pre-Trained Video Generative Models as World Simulators Playable Game Generation
Reference 25
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Observation 60746027-81d9-4eb2-a7d1-62ecc94c5fc5 · outbound
Pre-Trained Video Generative Models as World Simulators Decentralized Transformers with Centralized Aggregation are Sample-Efficient Multi-Agent World Models
Reference 26
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Observation aaf386df-6f94-4e3d-ad18-43773697db6c · outbound
Pre-Trained Video Generative Models as World Simulators Decentralized Multi-Robot Line-of-Sight Connectivity Maintenance under Uncertainty
Reference 27
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Observation 88fc553c-18e6-4734-b55f-578407f7e3af · outbound
Pre-Trained Video Generative Models as World Simulators Unresolved cited work
Reference 28
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Observation 3eee1721-3506-40a8-ab07-51f925605047 · outbound
Pre-Trained Video Generative Models as World Simulators Unresolved cited work
Reference 30
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Observation f38cf5cd-2132-4fdd-a127-95682bdefd78 · outbound
Pre-Trained Video Generative Models as World Simulators For our implementation of DWS, we utilized Open-Sora version 1.2 as our base model
Reference 31
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No event found in the named queried sources as of 2026-08-14T06:32:32.682623+00:00.
Observation fdba8374-4b4b-4d50-82b1-1538230ed792 · outbound
Pre-Trained Video Generative Models as World Simulators In terms of the hyperparameter of DQN, we followed the default setting provided at https://github.com/ vwxyzjn/cleanrl/blob/master/cleanrl/dqn_atari.py
Reference 84
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No event found in the named queried sources as of 2026-08-14T06:32:32.682623+00:00.
Observation 939260c3-2479-44fa-b1c5-9df8e07854eb · outbound
Pre-Trained Video Generative Models as World Simulators DeepMind Control Suite
Reference 1998
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Observation c1ecb83b-8d3f-4f2e-b945-bf911d90bf4c · outbound
Pre-Trained Video Generative Models as World Simulators Stable Video Diffusion: Scaling Latent Video Diffusion Models to Large Datasets
Reference 2013
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Observation 6d765c23-c578-4461-8bd4-e6a6e6b9c902 · outbound
Pre-Trained Video Generative Models as World Simulators The Matrix: Infinite-Horizon World Generation with Real-Time Moving Control
Reference 2017
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Observation c5bae560-1813-43c0-b9a8-a13fbb97552c · outbound
Pre-Trained Video Generative Models as World Simulators Diffusion Models Are Real-Time Game Engines
Reference 2018
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Observation 43d21c00-7ba7-49f9-8db7-404214769029 · outbound
Pre-Trained Video Generative Models as World Simulators Mastering Atari with Discrete World Models
Reference 2019
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Observation 3707742c-cdc3-4651-bb08-faee1c8943ea · outbound
Pre-Trained Video Generative Models as World Simulators Phasic policy gradient
Reference 2020
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Observation 8906ac7b-4bc8-4044-a0a4-e84d29743b69 · outbound
Pre-Trained Video Generative Models as World Simulators Learning Interactive Real-World Simulators
Reference 2021
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Unavailable: canonical work link unavailable.
Observation 6cb7b33f-d77e-4a22-8de2-168511b246ed · outbound
Pre-Trained Video Generative Models as World Simulators https://iclr-blog-track.github.io/2022/03/25/ppo- implementation-details/
Reference 2022
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No event found in the named queried sources as of 2026-08-14T06:32:32.682623+00:00.
Observation 9856ffde-2b26-4825-8889-93ed73b16072 · outbound
Pre-Trained Video Generative Models as World Simulators Movie Gen: A Cast of Media Foundation Models
Reference 2023
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Observation 6873f18a-cb3b-4ab8-bc41-9480163c524d · outbound
Pre-Trained Video Generative Models as World Simulators Diffusion for World Modeling: Visual Details Matter in Atari
Reference 2024
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Observation 8b281877-bc57-4655-8c14-5222c3132691 · inbound
Long-Context State-Space Video World Models Pre-Trained Video Generative Models as World Simulators
Reference 25
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Observation 2ec664b1-d70f-464c-b996-844981a4de2a · inbound
Sparse-vDiT: Unleashing the Power of Sparse Attention to Accelerate Video Diffusion Transformers Pre-Trained Video Generative Models as World Simulators
Reference 10
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Observation ccb6ddd4-fa94-48af-b038-c88b46a2c13b · inbound
WorldVLA: Towards Autoregressive Action World Model Pre-Trained Video Generative Models as World Simulators
Reference 13
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Observation 44bf1fbe-ec70-4b5e-9f81-f11d1edc7221 · inbound
RoboScape: Physics-informed Embodied World Model Pre-Trained Video Generative Models as World Simulators
Reference 53
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Observation a72f13bd-15f5-4954-abc2-fc2f681ef209 · inbound
Can Your Model Separate Yolks with a Water Bottle? Benchmarking Physical Commonsense Understanding in Video Generation Models Pre-Trained Video Generative Models as World Simulators
Reference 13
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Observation 9389cae8-231a-48b5-b0be-e3f2ef303831 · inbound
Ctrl-World: A Controllable Generative World Model for Robot Manipulation Pre-Trained Video Generative Models as World Simulators
Reference 21
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Observation 9ff7b020-b15b-454c-89b4-95c650b2b7f4 · inbound
Co-Evolving Latent Action World Models Pre-Trained Video Generative Models as World Simulators
Reference 16
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Observation 9931c735-97cd-4f46-81fc-c2c37a47fca0 · inbound
Reward Forcing: Efficient Streaming Video Generation with Rewarded Distribution Matching Distillation Pre-Trained Video Generative Models as World Simulators
Reference 22
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No event found in the named queried sources as of 2026-08-14T06:32:32.682623+00:00.
Observation 4fd3a81b-c6f1-4e13-9c4e-7d369e8ca2ba · inbound
End-to-End Training for Autoregressive Video Diffusion via Self-Resampling Pre-Trained Video Generative Models as World Simulators
Reference 28
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Unavailable: canonical work link unavailable.
Observation b1bd8532-1cd8-4084-aab3-8968e0dece78 · inbound
UniDrive-WM: Unified Understanding, Planning and Generation World Model for Autonomous Driving Pre-Trained Video Generative Models as World Simulators
Reference 12
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Unavailable: canonical work link unavailable.
Observation 6a49fd73-fa0e-47c9-a702-09754c141124 · inbound
Are Multimodal LLMs Ready for Surveillance? A Reality Check on Zero-Shot Anomaly Detection in the Wild Pre-Trained Video Generative Models as World Simulators
Reference 40
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Observation 451cbc93-4de4-4b54-85ed-481ef0313753 · inbound
Render, Don't Decode: Weight-Space World Models with Latent Structural Disentanglement Pre-Trained Video Generative Models as World Simulators
Reference 10
Source-reported events for the cited work
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Observation 3b4dc9c1-d2da-4d6d-8d23-86abc5e4610c · inbound
Render, Don't Decode: Weight-Space World Models with Latent Structural Disentanglement Pre-Trained Video Generative Models as World Simulators
Reference 10
Source-reported events for the cited work
No event found in the named queried sources as of 2026-08-14T06:32:32.682623+00:00.
Observation 18da8698-da7c-4f7c-ba0d-8923f9c8c58a · inbound
DiLA: Disentangled Latent Action World Models Pre-Trained Video Generative Models as World Simulators
Reference 14
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Observation 91be3498-76fc-4700-a00a-06b14cba4d1e · inbound
CLAW: Learning Continuous Latent Action World Models via Adversarial Latent Regularization Pre-Trained Video Generative Models as World Simulators
Reference 51
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Observation 1b10620f-daab-4c2f-b89a-4966c21ce3e8 · inbound
World Model Self-Distillation: Training World Models to Solve General Tasks Pre-Trained Video Generative Models as World Simulators
Reference 23
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No event found in the named queried sources as of 2026-08-14T06:32:32.682623+00:00.
Observation dce3e5b2-6690-4974-ba4b-59cdfde4c4c8 · inbound
Masked Diffusion Language Models are Strong and Steerable Text-Based World Models for Agentic RL Pre-Trained Video Generative Models as World Simulators
Reference 40
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Unavailable: canonical work link unavailable.