How to extract highest intensity area from a greyscale spectrogram?
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Claudio Eutizi
on 22 Jan 2021
Commented: Claudio Eutizi
on 23 Jan 2021
Hello.
I got greyscale mel-spectrograms images from a dataset and I want to divide it into several areas and to obtain the area where pixels have highest intensity in average.
This will be useful to label the images with rectangles for a deep learning training.
Hope somebody will help me.
I attach a greyscale spectrogram I got where you can show me the way to do it.
Thank you.
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Accepted Answer
Image Analyst
on 23 Jan 2021
You've given no criteria for how those areas are to be determined. You might want to use watershed() or superpixels(). Or use imbinarize() to segment on intensity (adaptive or global), or multithresh() for several global thresholds.
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Image Analyst
on 23 Jan 2021
Oh, OK. I would have used blockproc() if you wanted rectangular blocks but glad you solved it somehow.
I'm attaching several blockproc() demos in case you're still interested.
More Answers (1)
KALYAN ACHARJYA
on 22 Jan 2021
Edited: KALYAN ACHARJYA
on 22 Jan 2021
- Apply thresholding to cluster the image into two segment, certain higher pixel and lower value pixels.
- Get the largest blob as per requirement. (bwareafilt function)
What does "Major Intensity" mean here?
5 Comments
KALYAN ACHARJYA
on 23 Jan 2021
Edited: KALYAN ACHARJYA
on 23 Jan 2021
"but this code you wrote here shows a black image".
Most probably, there is only one maximum value pixel, so it is not easily visualized (check carefully). You can confirm the same with the extract_roi matrix, which must be the non-zero matrix.
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