Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-16T11:31:01.705044Z
Paper Citation Record · LEDGER
As of 22 August 2026, this Paper Citation Record lists 57 of 57 outbound references and 0 inbound Pith citation observations for arXiv:2504.16134.
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 2026-08-16T11:31:01.705044Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-22T06:32:14.747728+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.
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Multimodal Large Language Models for Enhanced Traffic Safety: A Comprehensive Review and Future Trends Road traffic Injuries
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Multimodal Large Language Models for Enhanced Traffic Safety: A Comprehensive Review and Future Trends Leveraging Deep Learning and Multimodal Large Language Models for Near -Miss Detection Using Crowdsourced Videos,
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Multimodal Large Language Models for Enhanced Traffic Safety: A Comprehensive Review and Future Trends Advancing Object Detection in Transportation with Multimodal Large Language Models (MLLMs): A Comprehensive Review and Empirical Testing
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Multimodal Large Language Models for Enhanced Traffic Safety: A Comprehensive Review and Future Trends Adversarial examples: attacks and defenses in the physical world,
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Multimodal Large Language Models for Enhanced Traffic Safety: A Comprehensive Review and Future Trends Using Multimodal Large Language Models (MLLMs) for Automated Detection of Traffic Safety-Critical Events,
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Multimodal Large Language Models for Enhanced Traffic Safety: A Comprehensive Review and Future Trends A Comprehensive Survey of Multimodal Large Language Models: Concept, Application and Safety,
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Multimodal Large Language Models for Enhanced Traffic Safety: A Comprehensive Review and Future Trends Adversarial Sensor Attack on LiDAR-based Perception in Autonomous Driving,
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Multimodal Large Language Models for Enhanced Traffic Safety: A Comprehensive Review and Future Trends A Review of Current Trends, Techniques, and Challenges in Large Language Models (LLMs),
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Multimodal Large Language Models for Enhanced Traffic Safety: A Comprehensive Review and Future Trends Vision meets robotics: The KITTI dataset,
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Multimodal Large Language Models for Enhanced Traffic Safety: A Comprehensive Review and Future Trends CAFuser: Condition -Aware Multimodal Fusion for Robust Semantic Perception of Driving Scenes,
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Multimodal Large Language Models for Enhanced Traffic Safety: A Comprehensive Review and Future Trends A survey of GPT -3 family large language models including ChatGPT and GPT-4,
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Multimodal Large Language Models for Enhanced Traffic Safety: A Comprehensive Review and Future Trends MobileVLM V2: Faster and Stronger Baseline for Vision Language Model,
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Multimodal Large Language Models for Enhanced Traffic Safety: A Comprehensive Review and Future Trends MobileNets: Efficient Convolutional Neural Networks for Mobile Vision Applications,
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Reference 18
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Multimodal Large Language Models for Enhanced Traffic Safety: A Comprehensive Review and Future Trends Physical Adversarial Attacks on an Aerial Imagery Object Detector,
Reference 19
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Multimodal Large Language Models for Enhanced Traffic Safety: A Comprehensive Review and Future Trends On the Adversarial Robustness of Multi -Modal Foundation Models,
Reference 20
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Reference 21
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Multimodal Large Language Models for Enhanced Traffic Safety: A Comprehensive Review and Future Trends Benchmarking LLMs for Real -World Applications: From Numerical Metrics to Contextual and Qualitative Evaluation,
Reference 22
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Multimodal Large Language Models for Enhanced Traffic Safety: A Comprehensive Review and Future Trends LLaVA -ST: A Multimodal Large Language Model for Fine -Grained Spatial-Temporal Understanding,
Reference 24
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Multimodal Large Language Models for Enhanced Traffic Safety: A Comprehensive Review and Future Trends ST-Align: A Multimodal Foundation Model for Image -Gene Alignment in Spatial Transcriptomics,
Reference 25
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Multimodal Large Language Models for Enhanced Traffic Safety: A Comprehensive Review and Future Trends When language and vision meet road safety: leveraging multimodal large language models for video -based traffic accident analysis,
Reference 26
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Multimodal Large Language Models for Enhanced Traffic Safety: A Comprehensive Review and Future Trends DRAMA: Joint Risk Localization and Captioning in Driving,
Reference 27
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Multimodal Large Language Models for Enhanced Traffic Safety: A Comprehensive Review and Future Trends Driving with LLMs: Fusing Object -Level Vector Modality for Explainable Autonomous Driving,
Reference 28
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Observation 92e8afd3-7d7d-4732-b154-ac927dd7500f · outbound
Multimodal Large Language Models for Enhanced Traffic Safety: A Comprehensive Review and Future Trends TrafficGPT : Viewing, processing and interacting with traffic foundation models,
Reference 29
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Multimodal Large Language Models for Enhanced Traffic Safety: A Comprehensive Review and Future Trends AccidentGPT: A V2X Environmental Perception Multi -modal Large Model for Accident Analysis and Prevention,
Reference 30
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Multimodal Large Language Models for Enhanced Traffic Safety: A Comprehensive Review and Future Trends Drive As You Speak: Enabling Human-Like Interaction With Large Language Models in Autonomous Vehicles,
Reference 31
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Multimodal Large Language Models for Enhanced Traffic Safety: A Comprehensive Review and Future Trends Probing the Robustness of Vision-Language Pretrained Models: A Multimodal Adversarial Attack Approach,
Reference 32
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Multimodal Large Language Models for Enhanced Traffic Safety: A Comprehensive Review and Future Trends Gemini: A Family of Highly Capable Multimodal Models,
Reference 33
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Multimodal Large Language Models for Enhanced Traffic Safety: A Comprehensive Review and Future Trends Visual Instruction Tuning,
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Multimodal Large Language Models for Enhanced Traffic Safety: A Comprehensive Review and Future Trends Hallucination of Multimodal Large Language Models: A Survey,
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Multimodal Large Language Models for Enhanced Traffic Safety: A Comprehensive Review and Future Trends A Cloud -Edge Collaborative Architecture for Multimodal LLMs-Based Advanced Driver Assistance Systems in IoT Networks,
Reference 36
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Multimodal Large Language Models for Enhanced Traffic Safety: A Comprehensive Review and Future Trends SurrealDriver: Designing LLM -powered Generative Driver Agent Framework based on Human Drivers’ Driving -thinking Data,
Reference 37
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Multimodal Large Language Models for Enhanced Traffic Safety: A Comprehensive Review and Future Trends The Cityscapes Dataset for Semantic Urban Scene Understanding,
Reference 38
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Multimodal Large Language Models for Enhanced Traffic Safety: A Comprehensive Review and Future Trends Scalability in Perception for Autonomous Driving: Waymo Open Dataset,
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Multimodal Large Language Models for Enhanced Traffic Safety: A Comprehensive Review and Future Trends Graph neural networks for road safety modeling: datasets and evaluations for accident analysis,
Reference 40
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Multimodal Large Language Models for Enhanced Traffic Safety: A Comprehensive Review and Future Trends Traffic Condition Classification Model Based on Traffic‐Net,
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Multimodal Large Language Models for Enhanced Traffic Safety: A Comprehensive Review and Future Trends TrafficMOT: A Challenging Dataset for Multi -Object Tracking in Complex Traffic Scenarios,
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Multimodal Large Language Models for Enhanced Traffic Safety: A Comprehensive Review and Future Trends TAD: A Large -Scale Benchmark for Traffic Accidents Detection From Video Surveillance,
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Multimodal Large Language Models for Enhanced Traffic Safety: A Comprehensive Review and Future Trends Description of the SHRP 2 naturalistic database and the crash, near -crash, and baseline data sets,
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Multimodal Large Language Models for Enhanced Traffic Safety: A Comprehensive Review and Future Trends A Causality -Aware Paradigm for Evaluating Creativity of Multimodal Large Language Models,
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Multimodal Large Language Models for Enhanced Traffic Safety: A Comprehensive Review and Future Trends On Fairness of Unified Multimodal Large Language Model for Image Generation,
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Multimodal Large Language Models for Enhanced Traffic Safety: A Comprehensive Review and Future Trends MM-SafetyBench: A Benchmark for Safety Evaluation of Multimodal Large Language Models,
Reference 52
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Multimodal Large Language Models for Enhanced Traffic Safety: A Comprehensive Review and Future Trends AdaShield : Safeguarding Multimodal Large Language Models from Structure-Based Attack via Adaptive Shield Prompting,
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Reference 56
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Multimodal Large Language Models for Enhanced Traffic Safety: A Comprehensive Review and Future Trends ACEA Position Paper Artificial Intelligence in the automobile industry,
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Multimodal Large Language Models for Enhanced Traffic Safety: A Comprehensive Review and Future Trends Cross-Domain Few- Shot In -Context Learning For Enhancing Traffic Sign Recognition,
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Observation 92d1c9b0-3c5f-44f7-ba18-ca96096477df · outbound
Multimodal Large Language Models for Enhanced Traffic Safety: A Comprehensive Review and Future Trends Unresolved cited work
Reference 2570
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Unavailable: canonical work link unavailable.
No inbound Pith citation observations are available.