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Annotated Facial Image Dataset for Nigerian Ethnicity Recognition with Baseline Evaluation

Type de record:

dataset
Créateur:
AliSunMoh Mo
Éditeur:
Men
Hôte:avatar
This dataset represents 3,000 annotated facial image samples developed to support fine-grained ethnicity recognition research using deep learning techniques. The dataset supports investigations into facial feature representation learning using CNN-based architectures, attention mechanisms, and metric learning approaches. The underlying dataset represents three major Nigerian ethnic groups: Hausa, Igbo, and Yoruba. The public release provides anonymized image identifiers and corresponding ethnicity annotations organized into training, validation, and test splits. The dataset is designed to facilitate research on discriminative facial representation learning, benchmarking, demographic analysis, and fairness-aware computer vision. Each facial sample is associated with an annotated ethnicity class label for supervised machine learning experiments. Metadata and annotation files are provided to support reproducible research and transparent evaluation. Due to the sensitive biometric nature of facial image data, the original facial images are not released under unrestricted public access. Qualified researchers may request controlled access to the facial images for legitimate academic research purposes. Access requests will be evaluated by the corresponding author and may require completion of a Data Use Agreement. Users must comply with ethical research practices and must not attempt to re-identify individuals or use the dataset for surveillance, discrimination, or other harmful applications.

Visit

doi.org

Tasks

computer visionimage classification

Languages

HausaYoruba

Tags

Artificial IntelligenceComputer VisionMachine Learning

Licenses

info:eu-repo/semantics/openAccessCreative Commons Attribution Non Commercial 4.0 Internationalhttps://creativecommons.org/licenses/by-nc/4.0/legalcode

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