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ZENODO
Dataset . 2023
License: CC BY
Data sources: ZENODO
ZENODO
Dataset . 2023
License: CC BY
Data sources: Datacite
ZENODO
Dataset . 2023
License: CC BY
Data sources: Datacite
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NexusStreets: a dataset combining human and autonomous driving behaviours

Authors: Maresca Fabio; Grazioli Filippo; Sciancalepore Vincenzo; Costa-Perez Xavier; Albanese Antonio;

NexusStreets: a dataset combining human and autonomous driving behaviours

Abstract

The NexusStreets dataset contains human and autonomous driving scenes. They are collected by monitoring a target vehicle that can be either autonomous or controlled by a human driver. Data is presented in the shape of: sequences of JPEG images, one image per timestamp target vehicle state information for each timestamp The dataset has been built on the CARLA simulator, thanks to Baidu Apollo and a Logitech G29 steering wheel for the autonomous and human drivings, respectively.The dataset consists of 520 scenes (260 pairs of mirrored scenarios) of 60 seconds each.The folders are organized as follows: . ├── ... ├── │ ├── │ │ ├── │ │ │ └── ... │ │ └── ... │ └── ... └── ... driving mode: corresponds to the control modality of the target vehicle under test and can be either Baidu Apollo or manual driving; town: one of the five default maps in CARLA (e.g., Town01, Town02, etc); trial: 60 different trials per map, they differ in traffic and weather conditions (except Town04). Each trial records 60 seconds of simulation, logging 120 frames per video and an equal number of rows per CSV. In particular, each trial includes: video: this folder groups the JPEG images; state_features.csv: reports the state information of the target vehicle for each frame; detection_features.csv: reports the 2D bounding box detections obtained from a pre-trained YOLOv7 detector.

-- REFERENCE This work has been accepted at ICRA 2024 (IEEE International Conference on Robotics and Automation). If you use this dataset in your research, please cite the associated publication: @INPROCEEDINGS{10610658, author={Maresca, Fabio and Grazioli, Filippo and Albanese, Antonio and Sciancalepore, Vincenzo and Negri, Gianpiero and Costa-Perez, Xavier}, booktitle={2024 IEEE International Conference on Robotics and Automation (ICRA)}, title={Are you a robot? Detecting Autonomous Vehicles from Behavior Analysis}, year={2024}, volume={}, number={}, pages={4473-4479}, keywords={Accuracy;Roads;Web and internet services;Wheels;Machine learning;Vectors;Automobiles}, doi={10.1109/ICRA57147.2024.10610658}}

Keywords

Machine Learning, Car Dataset, Car Screening, Self Driving, Autonomous Driving

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This indicator reflects the "current" impact/attention (the "hype") of an article in the research community at large, based on the underlying citation network.
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