Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-09T11:55:40.903075Z
Paper Citation Record · LEDGER
As of 10 August 2026, this Paper Citation Record lists 48 of 48 outbound references and 1 inbound Pith citation observation for arXiv:2502.02537.
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 2026-08-09T11:55:40.903075Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-10T06:31:04.303077+00:00
Pith citing papers itemized under the disclosed page cap.
Source: paper_references, paper_reference_links, observed 2026-05-21T04:59:24.293335Z
A source-named dated measurement, never combined with another source.
Source: arxiv_reference, observed 2026-05-21T04:59:36.234700Z
48 of 48 outbound references displayed
External citation measurements
No source-named external measurement is stored.
Observation e4b98466-ab09-4b26-8447-40abcb2d46a3 · outbound
Uncertainty Quantification for Collaborative Object Detection Under Adversarial Attacks Lidar spoofing attack detection in autonomous vehicles
Reference 1
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Observation 9199221f-283b-4130-b537-ea164d161c53 · outbound
Uncertainty Quantification for Collaborative Object Detection Under Adversarial Attacks Adversarial objectness gradient at- tacks in real-time object detection systems
Reference 4
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Observation fcf788b9-6b4c-4a93-90b9-89c9cca9ff1c · outbound
Uncertainty Quantification for Collaborative Object Detection Under Adversarial Attacks Detecting Adversarial Samples from Artifacts
Reference 7
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Observation 0d9e6552-2af2-451e-965e-683b15d654cc · outbound
Uncertainty Quantification for Collaborative Object Detection Under Adversarial Attacks Explaining and Harnessing Adversarial Examples
Reference 9
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Observation 15d54871-1cc5-4338-b3cb-00877a7e48b6 · outbound
Uncertainty Quantification for Collaborative Object Detection Under Adversarial Attacks Bounding box re- gression with uncertainty for accurate object detection
Reference 11
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Observation 405e3c3a-a442-4541-b931-7ade4b911178 · outbound
Uncertainty Quantification for Collaborative Object Detection Under Adversarial Attacks Ad- versarial attack and defense of yolo detectors in au- tonomous driving scenarios
Reference 13
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Observation 7f522be4-fefa-4717-a9b1-83c34f5af398 · outbound
Uncertainty Quantification for Collaborative Object Detection Under Adversarial Attacks Unresolved cited work
Reference 14
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Observation 4dc1c03c-6b04-4fa3-81e8-1d000f9606cc · outbound
Uncertainty Quantification for Collaborative Object Detection Under Adversarial Attacks Dropout infer- ence in bayesian neural networks with alpha-divergences
Reference 15
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Observation e7f3cdb3-01d2-4b58-8b9e-6f2a5798b851 · outbound
Uncertainty Quantification for Collaborative Object Detection Under Adversarial Attacks Connecting the dots: Detecting adversarial perturbations using context inconsis- tency
Reference 16
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Observation cdd053f7-9b50-41b2-8e2e-9db8eb7cd78d · outbound
Uncertainty Quantification for Collaborative Object Detection Under Adversarial Attacks Learn- ing distilled collaboration graph for multi-agent percep- tion
Reference 17
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Observation 366394e8-0906-4afd-a5aa-99be895273d4 · outbound
Uncertainty Quantification for Collaborative Object Detection Under Adversarial Attacks V2x-sim: Multi-agent collaborative perception dataset and bench- mark for autonomous driving
Reference 18
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Observation 56c6f97d-7254-48bd-9908-aef446078764 · outbound
Uncertainty Quantification for Collaborative Object Detection Under Adversarial Attacks Among us: Adversarially robust collaborative perception by consensus
Reference 19
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Observation 52a10b22-b1ca-4a78-9963-d8d8cb375ca7 · outbound
Uncertainty Quantification for Collaborative Object Detection Under Adversarial Attacks CoMamba: Real-time Cooperative Perception Unlocked with State Space Models
Reference 20
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Observation b80b50ba-e50a-43fb-abda-c5c863f710ee · outbound
Uncertainty Quantification for Collaborative Object Detection Under Adversarial Attacks Adversarial Examples that Fool Detectors
Reference 22
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Observation 1d58798f-0847-4848-bf22-eb7630c1d72b · outbound
Uncertainty Quantification for Collaborative Object Detection Under Adversarial Attacks Probabilistic object detection via deep ensembles
Reference 23
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Observation c91b14af-dd25-48af-b292-657f083f4c5f · outbound
Uncertainty Quantification for Collaborative Object Detection Under Adversarial Attacks Detecting adversarial attacks on audiovisual speech recognition
Reference 24
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Observation f2223990-9c86-4229-994e-135421b13c21 · outbound
Uncertainty Quantification for Collaborative Object Detection Under Adversarial Attacks Uncertainty-based detection of adversarial attacks in se- mantic segmentation
Reference 25
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Observation 2c714967-a727-40b0-af88-323ebdf67e0a · outbound
Uncertainty Quantification for Collaborative Object Detection Under Adversarial Attacks Towards Deep Learning Models Resistant to Adversarial Attacks
Reference 26
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Observation 39349c18-481d-41a9-8f9f-cde065ee7ffd · outbound
Uncertainty Quantification for Collaborative Object Detection Under Adversarial Attacks Learning an uncertainty-aware object de- tector for autonomous driving
Reference 27
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Observation d70b20bd-50d3-4cd9-b25c-f27ecdbe49e5 · outbound
Uncertainty Quantification for Collaborative Object Detection Under Adversarial Attacks Dropout sampling for ro- bust object detection in open-set conditions
Reference 28
Source-reported events for the cited work
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Observation 4d79c3d4-3cf7-4815-a909-9ab7cdf37a54 · outbound
Uncertainty Quantification for Collaborative Object Detection Under Adversarial Attacks Adversarial Phenomenon in the Eyes of Bayesian Deep Learning
Reference 30
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Observation 4e594f9c-7ba1-4327-8c69-4194591c6ffe · outbound
Uncertainty Quantification for Collaborative Object Detection Under Adversarial Attacks 3d semantic scene completion: A survey
Reference 31
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Observation 651bce6e-70e8-4b8b-a244-5e41418da207 · outbound
Uncertainty Quantification for Collaborative Object Detection Under Adversarial Attacks Using uncertainty as a defense against adversarial attacks for tabular datasets
Reference 32
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Observation 08a2fc7d-1dbe-499b-855e-b98c9efc5533 · outbound
Uncertainty Quantification for Collaborative Object Detection Under Adversarial Attacks A tutorial on conformal prediction
Reference 33
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Observation 35331e74-2430-46c9-b71e-db06d652dcc6 · outbound
Uncertainty Quantification for Collaborative Object Detection Under Adversarial Attacks Uncertainty quantification of collaborative detection for self-driving
Reference 35
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Observation fa54b79d-8be6-4fb5-8853-01cafc541c4a · outbound
Uncertainty Quantification for Collaborative Object Detection Under Adversarial Attacks Collab- orative multi-object tracking with conformal uncertainty propagation
Reference 36
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Observation 7b116883-2f5f-483a-ad71-43cf42432587 · outbound
Uncertainty Quantification for Collaborative Object Detection Under Adversarial Attacks Towards robust {LiDAR-based} per- ception in autonomous driving: General black-box adversar- ial sensor attack and countermeasures
Reference 37
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Observation a70e6a8f-b1fa-4a47-a6f2-c69ef7b85d05 · outbound
Uncertainty Quantification for Collaborative Object Detection Under Adversarial Attacks Adversarial attacks on multi-agent communication
Reference 38
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Observation acf786ab-5214-4bd1-8e83-fd17b6a74185 · outbound
Uncertainty Quantification for Collaborative Object Detection Under Adversarial Attacks V2vnet: Vehicle-to-vehicle communi- cation for joint perception and prediction
Reference 39
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Observation e62203b7-3441-46ef-a38d-2c5b6a62ffea · outbound
Uncertainty Quantification for Collaborative Object Detection Under Adversarial Attacks Characterizing adver- sarial examples based on spatial consistency information for semantic segmentation
Reference 40
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Observation e1a77185-fd02-4154-b30f-74a9505b36e2 · outbound
Uncertainty Quantification for Collaborative Object Detection Under Adversarial Attacks Advit: Adversarial frames identifier based on temporal consistency in videos
Reference 41
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Observation a87733d3-c089-47b0-8f3d-91738ade1583 · outbound
Uncertainty Quantification for Collaborative Object Detection Under Adversarial Attacks Adversarial examples for semantic segmentation and object detection
Reference 42
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Observation 640bdb9e-3ddb-4625-8c5f-dd0efe7d3dbb · outbound
Uncertainty Quantification for Collaborative Object Detection Under Adversarial Attacks Bridging the Domain Gap for Multi-Agent Perception
Reference 43
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Observation 0618effc-6aa1-4814-8e00-7fa9123afde9 · outbound
Uncertainty Quantification for Collaborative Object Detection Under Adversarial Attacks V2x-vit: Vehicle-to-everything cooperative perception with vision transformer
Reference 44
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Observation aa3893e2-7448-475f-ad4b-2bf0596b665a · outbound
Uncertainty Quantification for Collaborative Object Detection Under Adversarial Attacks Uncertainty-aware sar atr: Defending against adversarial attacks via bayesian neural networks
Reference 45
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Observation 6a6f41ca-88a6-4e5c-bdac-98fa4b4504e8 · outbound
Uncertainty Quantification for Collaborative Object Detection Under Adversarial Attacks Adc: Adversarial attacks against object de- tection that evade context consistency checks
Reference 46
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Observation 5ea62881-d93e-4d30-a893-1f25f39a9978 · outbound
Uncertainty Quantification for Collaborative Object Detection Under Adversarial Attacks Towards adversarially robust object detection
Reference 47
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Observation f425af53-dd02-40ac-af5d-0e4efde07900 · outbound
Uncertainty Quantification for Collaborative Object Detection Under Adversarial Attacks Improving generalization of adversarial training via robust critical fine-tuning
Reference 48
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Observation 44711a9a-99f5-4b2b-ae11-477d0a8a4912 · outbound
Uncertainty Quantification for Collaborative Object Detection Under Adversarial Attacks Understanding Measures of Uncertainty for Adversarial Example Detection
Reference 2008
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Observation 47410850-89c5-4b34-a817-ebf0de2387d7 · outbound
Uncertainty Quantification for Collaborative Object Detection Under Adversarial Attacks Shadow-catcher: Looking into shadows to detect ghost objects in au- tonomous vehicle 3d sensing
Reference 2014
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Observation 5d1751e1-069f-43d2-865e-ff69d45bb0dd · outbound
Uncertainty Quantification for Collaborative Object Detection Under Adversarial Attacks A review and comparative study on probabilistic object detection in autonomous driving
Reference 2017
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Observation 8a4f98fe-bd6d-473c-89be-eb3ae3e148ef · outbound
Uncertainty Quantification for Collaborative Object Detection Under Adversarial Attacks Can you trust your model’s uncertainty? evaluating predictive uncertainty under dataset shift
Reference 2018
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Observation 9ed41101-d2b0-40ab-bf84-0bf1f601b527 · outbound
Uncertainty Quantification for Collaborative Object Detection Under Adversarial Attacks Robust multi- agent reinforcement learning with state uncertainty
Reference 2019
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Observation 8a178b14-84f8-4260-b073-d6c73f8b19e8 · outbound
Uncertainty Quantification for Collaborative Object Detection Under Adversarial Attacks Guaranteeing safety of learned perception modules via measurement-robust con- trol barrier functions
Reference 2020
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Observation cfd9173e-f180-4289-a938-ba1e0b5ca945 · outbound
Uncertainty Quantification for Collaborative Object Detection Under Adversarial Attacks Improving Out-of-Distribution Detection via Epistemic Uncertainty Adversarial Training
Reference 2021
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Observation 68a99120-9ac0-4f82-900a-874742f7bc2c · outbound
Uncertainty Quantification for Collaborative Object Detection Under Adversarial Attacks Conformal PID Control for Time Series Prediction
Reference 2022
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Observation db3780fd-edd8-4dc3-8dd8-b736df02e168 · outbound
Uncertainty Quantification for Collaborative Object Detection Under Adversarial Attacks Analyzing infrastructure lidar placement with realistic lidar simulation library
Reference 2023
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Observation 2dc1904f-e36c-4a41-a13b-5138343f1f9a · outbound
Uncertainty Quantification for Collaborative Object Detection Under Adversarial Attacks When2com: Multi-agent percep- tion via communication graph grouping
Reference 2024
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Observation 24d73ba0-108c-437b-8068-2e5eb723a319 · inbound
Hyper-V2X: Hypernetworks for Estimating Epistemic and Aleatoric Uncertainty in Cooperative Bird's-Eye-View Semantic Segmentation Uncertainty Quantification for Collaborative Object Detection Under Adversarial Attacks
Reference 20
Source-reported events for the cited work
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