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      Hair Loss Diagnosis Using Artificial Neural Networks

      research Hair Loss Diagnosis Using Artificial Neural Networks

      7 citations , January 2012
      This study used artificial neural networks to predict hair loss by analyzing factors like gender and zinc deficiency, suggesting neural networks may effectively model hair loss prediction.
      Hair and Scalp Disease Detection Using Machine Learning and Image Processing

      research Hair & Scalp Disease Detection Using Machine Learning & Image Processing

      4 citations , May 2024 in “INTERANTIONAL JOURNAL OF SCIENTIFIC RESEARCH IN ENGINEERING AND MANAGEMENT”
      This study developed a deep learning model using the VGG architecture to predict hair disorders and provide tailored therapeutic suggestions, showing reliable recognition of conditions like dandruff, fungal infections, and alopecia by analyzing images of hair and scalp.
      Hair Cluster Detection Model Based on Dermoscopic Images

      research Hair cluster detection model based on dermoscopic images

      February 2024 in “Frontiers in physics”
      This study developed a model for detecting sparse hair clusters using enhanced object detection neural networks and medical images, which accurately identifies and counts sparse hair clusters with greater accuracy and efficiency than existing methods.

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