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Multilabel-Portrait-18K

Multilabel-Portrait-18K is a multi-label portrait classification dataset designed to analyze and categorize different styles of portrait images. It supports classification into the following four portrait types:

  • 0 — Anime Portrait
  • 1 — Cartoon Portrait
  • 2 — Real Portrait
  • 3 — Sketch Portrait

This dataset is ideal for training and evaluating machine learning models in the domain of portrait-style classification. The goal is to enable accurate recognition of artistic and real-world portraits for applications such as image generation, enhancement, style transfer, and content moderation.

Use Cases

  • Multi-label classification for style recognition
  • Pretraining or fine-tuning portrait classifiers
  • Improving filters and sorting in creative AI applications
  • Enhancing deepfake detection via portrait-style understanding
  • Style-transfer or portrait enhancement tools

Dataset Details

  • Total Samples: 18,000 portrait images
  • Labels: Multi-label format (each image may have more than one label)
  • Label Schema:
    • 0: Anime Portrait [4,444]
    • 1: Cartoon Portrait [4,444]
    • 2: Real Portrait [4,444]
    • 3: Sketch Portrait [4,444]

Format

The dataset is typically provided in either:

  • A directory structure grouped by label
  • Or a .csv / .json file containing filename and labels fields

Example (.csv):

filename,label
portrait_001.jpg,"[0, 3]"
portrait_002.jpg,"[2]"
portrait_003.jpg,"[1, 2]"
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