Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-07-11T17:41:06.399906Z
Paper Citation Record · LEDGER
As of 10 August 2026, this Paper Citation Record lists 57 of 57 outbound references and 0 inbound Pith citation observations for arXiv:2607.04541.
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 2026-07-11T17:41:06.399906Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-09T06:31:02.800959+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
57 of 57 outbound references displayed
External citation measurements
No source-named external measurement is stored.
Observation 062fba49-2154-4252-83a3-581a32873d73 · outbound
CRISP: A Spatiotemporal Camera-Radar Backbone for Driving via Forecasting-Based World-Model Pretraining nuscenes: A multi- modal dataset for autonomous driving,
Reference 1
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Unavailable: canonical work link unavailable.
Observation 7ecf7c28-bd24-49b1-8165-d411f97e777a · outbound
CRISP: A Spatiotemporal Camera-Radar Backbone for Driving via Forecasting-Based World-Model Pretraining Scalability in perception for autonomous driving: Waymo open dataset,
Reference 2
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Observation e751352a-7adf-40a6-8a8e-0edc9b70dfb5 · outbound
CRISP: A Spatiotemporal Camera-Radar Backbone for Driving via Forecasting-Based World-Model Pretraining Planning-oriented autonomous driving,
Reference 3
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Observation 1564b81e-4c0c-400d-9309-016e581a3306 · outbound
CRISP: A Spatiotemporal Camera-Radar Backbone for Driving via Forecasting-Based World-Model Pretraining Multi-modal 3d object detection in autonomous driving: A survey and taxonomy,
Reference 4
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Observation cb2a1b19-dbb0-4122-b56e-3ea5ffb96dc5 · outbound
CRISP: A Spatiotemporal Camera-Radar Backbone for Driving via Forecasting-Based World-Model Pretraining Deep learning-based perception systems for autonomous driving: A comprehensive survey,
Reference 5
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Observation 3e2c7ddb-e386-4aa1-a736-d739c4624cf5 · outbound
CRISP: A Spatiotemporal Camera-Radar Backbone for Driving via Forecasting-Based World-Model Pretraining Towards deep radar perception for autonomous driving: Datasets, methods, and challenges,
Reference 6
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Unavailable: canonical work link unavailable.
Observation 4af08331-9973-44cd-afc5-64b636825662 · outbound
CRISP: A Spatiotemporal Camera-Radar Backbone for Driving via Forecasting-Based World-Model Pretraining Crkd: Enhanced camera-radar object detection with cross-modality knowledge distillation,
Reference 7
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Observation fcf1dbb4-ef65-4bee-a573-a9f8fa714553 · outbound
CRISP: A Spatiotemporal Camera-Radar Backbone for Driving via Forecasting-Based World-Model Pretraining Multi-modal 3d object detection in autonomous driving: a survey,
Reference 8
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Unavailable: canonical work link unavailable.
Observation 934cff3c-d8f9-4df0-9063-6e9481f8daee · outbound
CRISP: A Spatiotemporal Camera-Radar Backbone for Driving via Forecasting-Based World-Model Pretraining Vision meets robotics: The kitti dataset,
Reference 9
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Observation 7fc45cef-bd46-4528-a107-612ff3885da5 · outbound
CRISP: A Spatiotemporal Camera-Radar Backbone for Driving via Forecasting-Based World-Model Pretraining Unifying voxel-based representation with transformer for 3d object detection,
Reference 10
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Unavailable: canonical work link unavailable.
Observation 0a0b34e7-1b7f-4baa-877f-4f9515664ecf · outbound
CRISP: A Spatiotemporal Camera-Radar Backbone for Driving via Forecasting-Based World-Model Pretraining Bevfusion: Multi-task multi-sensor fusion with unified bird’s-eye view representation,
Reference 11
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Observation ac29c394-c801-4c6a-9e0d-fa7f5075a35d · outbound
CRISP: A Spatiotemporal Camera-Radar Backbone for Driving via Forecasting-Based World-Model Pretraining Futr3d: A unified sensor fusion framework for 3d detection,
Reference 12
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Unavailable: canonical work link unavailable.
Observation e0d4e467-6f96-413a-8252-193e487885c0 · outbound
CRISP: A Spatiotemporal Camera-Radar Backbone for Driving via Forecasting-Based World-Model Pretraining Radar and Camera Fusion for Object Detection and Tracking: A Comprehensive Survey
Reference 13
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Unavailable: canonical work link unavailable.
Observation cebbb4c0-49ea-43e3-b4e2-1bff689c94d5 · outbound
CRISP: A Spatiotemporal Camera-Radar Backbone for Driving via Forecasting-Based World-Model Pretraining Centerfusion: Center-based radar and camera fusion for 3d object detection,
Reference 14
Source-reported events for the cited work
Unavailable: canonical work link unavailable.
Observation 91ed6553-2435-4bef-b91c-60a6528c5093 · outbound
CRISP: A Spatiotemporal Camera-Radar Backbone for Driving via Forecasting-Based World-Model Pretraining BEV-Guided Multi-Modality Fusion for Driving Perception,
Reference 15
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Unavailable: canonical work link unavailable.
Observation 05fc51d7-13d8-450b-8862-2b020a608998 · outbound
CRISP: A Spatiotemporal Camera-Radar Backbone for Driving via Forecasting-Based World-Model Pretraining Crn: Camera radar net for accurate, robust, efficient 3d perception,
Reference 16
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Unavailable: canonical work link unavailable.
Observation 8eb52c3c-7d2f-4fa3-b1d9-d7514f081be3 · outbound
CRISP: A Spatiotemporal Camera-Radar Backbone for Driving via Forecasting-Based World-Model Pretraining Bevcar: Camera-radar fusion for bev map and object segmentation,
Reference 17
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Unavailable: canonical work link unavailable.
Observation 00c05714-2f14-47c4-ae52-4f2d43ce85ff · outbound
CRISP: A Spatiotemporal Camera-Radar Backbone for Driving via Forecasting-Based World-Model Pretraining Licrocc: Teach radar for accurate semantic occupancy prediction using lidar and camera,
Reference 18
Source-reported events for the cited work
Unavailable: canonical work link unavailable.
Observation 0800e28f-1b25-4abc-81db-b4d3728d8380 · outbound
CRISP: A Spatiotemporal Camera-Radar Backbone for Driving via Forecasting-Based World-Model Pretraining Lift, splat, shoot: Encoding images from arbitrary camera rigs by implicitly unprojecting to 3d,
Reference 19
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Unavailable: canonical work link unavailable.
Observation 304d7ce1-644c-4537-a69a-4da10459b167 · outbound
CRISP: A Spatiotemporal Camera-Radar Backbone for Driving via Forecasting-Based World-Model Pretraining Bevformer: Learning bird’s-eye-view representation from multi-camera images via spatiotemporal transformers,
Reference 20
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Unavailable: canonical work link unavailable.
Observation 322f5d86-c684-4336-8869-f8b90eacf7b6 · outbound
CRISP: A Spatiotemporal Camera-Radar Backbone for Driving via Forecasting-Based World-Model Pretraining Gd-mae: generative decoder for mae pre-training on lidar point clouds,
Reference 21
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Unavailable: canonical work link unavailable.
Observation bba2c985-3fbe-442e-9e91-0468e4c85a60 · outbound
CRISP: A Spatiotemporal Camera-Radar Backbone for Driving via Forecasting-Based World-Model Pretraining Unipad: A universal pre-training paradigm for autonomous driving,
Reference 22
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Unavailable: canonical work link unavailable.
Observation 4d58cf56-2753-4e0f-baef-b3eb90f5f726 · outbound
CRISP: A Spatiotemporal Camera-Radar Backbone for Driving via Forecasting-Based World-Model Pretraining Visual point cloud forecasting enables scalable autonomous driving,
Reference 23
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Unavailable: canonical work link unavailable.
Observation 99b02e2e-4e30-4fe4-b256-2aa84fdd1ce2 · outbound
CRISP: A Spatiotemporal Camera-Radar Backbone for Driving via Forecasting-Based World-Model Pretraining Forging spatial intelligence: A roadmap of multi-modal data pre- training for autonomous systems,
Reference 24
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Unavailable: canonical work link unavailable.
Observation c6898dc8-6f24-495a-a8b0-c1e20098a62c · outbound
CRISP: A Spatiotemporal Camera-Radar Backbone for Driving via Forecasting-Based World-Model Pretraining Masked autoencoder for self-supervised pre-training on lidar point clouds,
Reference 25
Source-reported events for the cited work
Unavailable: canonical work link unavailable.
Observation 0006f65d-dda1-4cf4-8d34-f402a52157d9 · outbound
CRISP: A Spatiotemporal Camera-Radar Backbone for Driving via Forecasting-Based World-Model Pretraining Bev-mae: Bird’s eye view masked autoencoders for point cloud pre-training in autonomous driving scenarios,
Reference 26
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Unavailable: canonical work link unavailable.
Observation cd5233cc-fe29-4734-a119-42b6ef0e4f4d · outbound
CRISP: A Spatiotemporal Camera-Radar Backbone for Driving via Forecasting-Based World-Model Pretraining Is pseudo- lidar needed for monocular 3d object detection?
Reference 27
Source-reported events for the cited work
Unavailable: canonical work link unavailable.
Observation 39df89d9-ffd3-4f4f-ad55-a2d23c765896 · outbound
CRISP: A Spatiotemporal Camera-Radar Backbone for Driving via Forecasting-Based World-Model Pretraining Pimae: Point cloud and image interactive masked autoencoders for 3d object detection,
Reference 28
Source-reported events for the cited work
Unavailable: canonical work link unavailable.
Observation 2324b04e-cca9-4898-ac0a-ecbfbe070659 · outbound
CRISP: A Spatiotemporal Camera-Radar Backbone for Driving via Forecasting-Based World-Model Pretraining Point cloud forecasting as a proxy for 4d occupancy forecasting,
Reference 29
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Unavailable: canonical work link unavailable.
Observation db276bf3-a01a-4839-a03c-3a972a2ae897 · outbound
CRISP: A Spatiotemporal Camera-Radar Backbone for Driving via Forecasting-Based World-Model Pretraining UniWorld: Autonomous Driving Pre-training via World Models
Reference 30
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Observation 964ab74a-477c-4f8b-90ce-6a789f4a4b70 · outbound
CRISP: A Spatiotemporal Camera-Radar Backbone for Driving via Forecasting-Based World-Model Pretraining Driveworld: 4d pre- trained scene understanding via world models for autonomous driving,
Reference 31
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Observation 72006e77-9a10-44b5-93c6-7e6a66738a99 · outbound
CRISP: A Spatiotemporal Camera-Radar Backbone for Driving via Forecasting-Based World-Model Pretraining Crt-fusion: Camera, radar, temporal fusion using motion information for 3d object detection,
Reference 32
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Unavailable: canonical work link unavailable.
Observation 5879092a-c1fe-49cc-bba2-38b39952cabe · outbound
CRISP: A Spatiotemporal Camera-Radar Backbone for Driving via Forecasting-Based World-Model Pretraining Cross-modality knowledge distillation network for monocular 3d object detection,
Reference 33
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Unavailable: canonical work link unavailable.
Observation 00c5814f-4724-4f08-80c1-d6b99386c498 · outbound
CRISP: A Spatiotemporal Camera-Radar Backbone for Driving via Forecasting-Based World-Model Pretraining X-align: Cross-modal cross-view alignment for bird’s-eye-view segmentation,
Reference 34
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Unavailable: canonical work link unavailable.
Observation e81bfd8c-db19-4058-84e6-365b16beb067 · outbound
CRISP: A Spatiotemporal Camera-Radar Backbone for Driving via Forecasting-Based World-Model Pretraining Unifying voxel-based representation with transformer for 3d object detection,
Reference 35
Source-reported events for the cited work
Unavailable: canonical work link unavailable.
Observation e85eebda-ed7d-4620-9866-de419687b7aa · outbound
CRISP: A Spatiotemporal Camera-Radar Backbone for Driving via Forecasting-Based World-Model Pretraining Masked au- toencoders are scalable vision learners,
Reference 36
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Unavailable: canonical work link unavailable.
Observation bf3b9b43-17d9-4164-a122-d06db045b272 · outbound
CRISP: A Spatiotemporal Camera-Radar Backbone for Driving via Forecasting-Based World-Model Pretraining Point-bert: Pre-training 3d point cloud transformers with masked point modeling,
Reference 37
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Unavailable: canonical work link unavailable.
Observation 858884ce-d266-417c-b1e8-613a285df5d9 · outbound
CRISP: A Spatiotemporal Camera-Radar Backbone for Driving via Forecasting-Based World-Model Pretraining Masked autoencoders for point cloud self-supervised learning,
Reference 38
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Unavailable: canonical work link unavailable.
Observation 335f2fe5-99c6-4d37-ba35-5f8495595ff1 · outbound
CRISP: A Spatiotemporal Camera-Radar Backbone for Driving via Forecasting-Based World-Model Pretraining Exploring geometry-aware contrast and clustering harmonization for self-supervised 3d object detection,
Reference 39
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Observation 2e94a117-8695-4af8-ab03-802e1e9a4554 · outbound
CRISP: A Spatiotemporal Camera-Radar Backbone for Driving via Forecasting-Based World-Model Pretraining Visionpad: A vision-centric pre-training paradigm for autonomous driving,
Reference 40
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Unavailable: canonical work link unavailable.
Observation 28933d85-e0ad-426d-bae8-c298d908c191 · outbound
CRISP: A Spatiotemporal Camera-Radar Backbone for Driving via Forecasting-Based World-Model Pretraining Bootstrapping autonomous driving radars with self-supervised learn- ing,
Reference 41
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Observation 807615f1-767c-4ceb-8282-76bb6c1003ea · outbound
CRISP: A Spatiotemporal Camera-Radar Backbone for Driving via Forecasting-Based World-Model Pretraining Self-supervised sparse sensor fusion for long range percep- tion,
Reference 42
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Observation d7015175-c733-4c9a-9618-126bff329aed · outbound
CRISP: A Spatiotemporal Camera-Radar Backbone for Driving via Forecasting-Based World-Model Pretraining Multi-sensor fusion in automated driving: A survey,
Reference 43
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Observation 16b50faf-2f58-4de9-914b-88ca657d651c · outbound
CRISP: A Spatiotemporal Camera-Radar Backbone for Driving via Forecasting-Based World-Model Pretraining Radar-camera fusion for object detection and semantic segmentation in autonomous driving: A comprehensive review,
Reference 44
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Unavailable: canonical work link unavailable.
Observation 738ddddb-499d-4da1-b27d-e84f6200fbef · outbound
CRISP: A Spatiotemporal Camera-Radar Backbone for Driving via Forecasting-Based World-Model Pretraining Cramnet: Camera-radar fusion with ray-constrained cross-attention for robust 3d object detection,
Reference 45
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Unavailable: canonical work link unavailable.
Observation d961c668-6e69-4e39-98f3-7095d73fff3f · outbound
CRISP: A Spatiotemporal Camera-Radar Backbone for Driving via Forecasting-Based World-Model Pretraining Mvfusion: Multi-view 3d object detection with semantic-aligned radar and camera fusion,
Reference 46
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Observation d29ed390-1250-4158-97ab-2fb5bea753df · outbound
CRISP: A Spatiotemporal Camera-Radar Backbone for Driving via Forecasting-Based World-Model Pretraining EA-LSS: Edge-aware Lift-splat-shot Framework for 3D BEV Object Detection
Reference 47
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Observation c4536b1d-f098-4986-8599-9a7a7c43c7ce · outbound
CRISP: A Spatiotemporal Camera-Radar Backbone for Driving via Forecasting-Based World-Model Pretraining Rcbevdet: Radar-camera fusion in bird’s eye view for 3d object detection,
Reference 48
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Observation a09c2691-f83a-41ed-aad7-ab5317dbfa52 · outbound
CRISP: A Spatiotemporal Camera-Radar Backbone for Driving via Forecasting-Based World-Model Pretraining Sparc-ad: A baseline for radar-camera fusion in end-to-end autonomous driving,
Reference 49
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Observation adf4a1c5-6851-4433-b54b-8de23a192288 · outbound
CRISP: A Spatiotemporal Camera-Radar Backbone for Driving via Forecasting-Based World-Model Pretraining HERMES: A Unified Self-Driving World Model for Simultaneous 3D Scene Understanding and Generation
Reference 50
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Observation 69a3f444-99c5-4e16-83bc-76bdc7d437b3 · outbound
CRISP: A Spatiotemporal Camera-Radar Backbone for Driving via Forecasting-Based World-Model Pretraining Gated attention for large language models: Non-linearity, sparsity, and attention-sink-free,
Reference 51
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Observation cc6822de-a09a-403d-bcdd-e6c34f84ac4b · outbound
CRISP: A Spatiotemporal Camera-Radar Backbone for Driving via Forecasting-Based World-Model Pretraining Deep residual learning for image recognition,
Reference 52
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Observation 01de08d9-d58c-4beb-b7ed-b19f3705b91f · outbound
CRISP: A Spatiotemporal Camera-Radar Backbone for Driving via Forecasting-Based World-Model Pretraining Fcos3d: Fully convolutional one- stage monocular 3d object detection,
Reference 53
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Observation db2f2d82-e78a-4425-bcee-6e01fdc81182 · outbound
CRISP: A Spatiotemporal Camera-Radar Backbone for Driving via Forecasting-Based World-Model Pretraining Feature pyramid networks for object detection,
Reference 54
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Observation b9176a1c-c29d-4909-bd7f-019569d38310 · outbound
CRISP: A Spatiotemporal Camera-Radar Backbone for Driving via Forecasting-Based World-Model Pretraining Pointpillars: Fast encoders for object detection from point clouds,
Reference 55
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Observation 6d3aa147-eb36-428a-b164-6ce086c0082b · outbound
CRISP: A Spatiotemporal Camera-Radar Backbone for Driving via Forecasting-Based World-Model Pretraining Bevformer: learning bird’s-eye-view representation from lidar-camera JOURNAL OF LATEX CLASS FILES, VOL. 14, NO. 8, AUGUST 2021 17 via spatiotemporal transformers,
Reference 56
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Observation d98dfb6f-0704-49f5-928d-b13aab3f06ca · outbound
CRISP: A Spatiotemporal Camera-Radar Backbone for Driving via Forecasting-Based World-Model Pretraining NuPlan: A closed-loop ML-based planning benchmark for autonomous vehicles
Reference 57
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Unavailable: canonical work link unavailable.
No inbound Pith citation observations are available.