STFT Spectrogram Recognize Linear Regression
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Hi Community,
this problem might be considered a low level pattern recognition. The starting dataset is an STFT spectrogram.
As you can see from the plot one signal is constant in FFT domain, the other in STFT domain - I believe this is called sparsity.
The two approximately orthogonal signals need to be seperated and converted back to time continuous signals (constant frequency and FMCW chirp).
One idea was to look for max values across frequency bins and look for concatenated regions across a certain time.
This way chirp slope could be determined.
Regards, Robert

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