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Driver Attention Monitoring datasets

archive 2025-07-28

7 datasets carry the task tag "Driver Attention Monitoring" (the task itself: Driver Attention Monitoring), ordered by the archive's paper count. Page 1 of 1: 7 shown of 7. Facet routes are this site's own (the archive records the tag string, not a page).

The archive holds 12,214 dataset rows; 12,172 are listed. 6 are withheld from every listing and count here as vandalised before snapshot (6 with contact-centre spam in the title, 0 with a spam description on a row that has no homepage, no paper and no papers counted; none with more than 1 paper, 0 with a benchmark), listed in withheld.json; 1 listed row carries a vandalised description, withheld on its page. This gate never withholds a row with a homepage or a paper that resolves, and a clean description; the content rules below withhold a row whose name is spam whatever else it carries. The gate is a phrase list: these are the rows it caught, not a claim that the rest is clean. Before that gate, the site's content rules withhold 36 more rows (invite-code, gambling, travel-booking, contact-centre and similar spam in the name or on a row with nothing real behind it); they have no page and are listed in withheld.json.

Filter 51 task tags shown of 3,717, by dataset count; the full filter by modality, task and language is on /datasets

Driver Attention Monitoring datasets 1–7 of 7

DR(eye)VE is a large dataset of driving scenes for which eye-tracking annotations are available.
34 papers · 0 benchmarks
BDD-A (Berkeley DeepDrive Attention)
Dataset Statistics: The statistics of our dataset are summarized and compared with the largest existing dataset (DR(eye)VE) [1] in Table 1.
25 papers · 0 benchmarks
HPD (Head-Pose Detection)
These images were generated using Blender and IEE-Simulator with different head-poses, where the images are labelled according to nine classes (straight, turned bottom-left, turned left, turned top-left, turned bottom-right, turned right,…
4 papers · 0 benchmarks
OC (Drowsiness-Detection)
These images were generated using UnityEyes simulator, after including essential eyeball physiology elements and modeling binocular vision dynamics.
4 papers · 0 benchmarks
GD (Gaze-Detection)
These images were generated using UnityEyes simulator, after including essential eyeball physiology elements and modeling binocular vision dynamics.
3 papers · 0 benchmarks
The Model for Attended Awareness in Driving (MAAD) is a dataset of third-person estimates of a driver’s attended awareness.
2 papers · 0 benchmarks
SEED-VIG (SJTU Emotion EEG Dataset)
The SEED-VIG dataset is composed of four parts.
2 papers · 0 benchmarks

Paper counts and descriptions are the archive's, frozen 2025-07-28; no citation counts, no stars, no trending. Sorting by "most cited" or "newest" was a live-site feature the archive does not carry.