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💡[Feature]: Pseudo Papilledema Detection using Deep Learning

Open sreevidya-16 opened this issue 7 months ago • 2 comments

Is there an existing issue for this?

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Feature Description

  • Deep learning techniques are leveraged in pseudo-papilledema detection by training convolutional neural networks (CNNs) on large datasets of retinal images to differentiate between true papilledema and pseudo-papilledema.
  • These models can automatically extract relevant features from the images, leading to high accuracy in identifying subtle differences that might be challenging for human observers.
  • This approach improves diagnostic accuracy, reduces the need for invasive procedures, and supports ophthalmologists in making timely and precise decisions.

@TAHIR0110, @Avdhesh-Varshney, could you please assign me this issue under GSSOC'24

Use Case

Supports ophthalmologists in making timely and precise decisions.

Benefits

No response

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Priority

High

Record

  • [X] I have read the Contributing Guidelines
  • [X] I'm a GSSOC'24 contributor
  • [X] I want to work on this issue

sreevidya-16 avatar Jul 24 '24 11:07 sreevidya-16