How to separate noise from signal?

Hi all,
I have got a question regarding noise removal.
I am doing a sensor project, and I need to measure output signal from the sensors. Theoretically speaking, output signal should be sine wave.However, sensor itself has got sine-wave-like noise. Therefore the supercomposition of two waves forms weired output signal.
Now, I have two separated excel files, one is noise, the other one is output signal (Weired shaped one). I'm wondering how to get net output signal (without noise).
By the way, two waves have different frequencies and amplitudes.
Thanks so much for your help.
Lin

2 Commenti

How close to a true sine wave is the output signal?
Perhaps you could post images of the fft of the desired output signal, and the fft of the noisy version of it ?
W L
W L il 4 Set 2013
Modificato: W L il 5 Set 2013
Thanks for help.
I don't know which output signal you are talking about. If we are talking about net output signal, it should be a perfect sine wave since the input is sine wave.

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Risposte (4)

Image Analyst
Image Analyst il 5 Set 2013

1 voto

Take the FFT. Find the two largest peaks - these represent your dominant frequency. Zero out everything else, then inverse FFT. You'll have only the dominant harmonic remaining in your output signal. All the noise (at any other frequency) will be filtered away.

5 Commenti

W L
W L il 6 Set 2013
If it is possible for me to do inverse FFT in Excel? ALl my data is stored in excel files. (saved as .csv file by default by equipment)
W L
W L il 6 Set 2013
and thanks so much for your kindness.
Probably - you can write whole programs in Excel with GUIs and everything. You can probably find FFT code in Visual Basic. But you're on your own there because this is a forum for help in MATLAB, not VB.
If you want a hardware solution, try a lock-in amplifier http://en.wikipedia.org/wiki/Lock-in_amplifier
@Image Analyst how can we put everything else to zero?

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rifat
rifat il 4 Set 2013

0 voti

You can pass your signal through a bandpass filter centered around the frequency of your original (without noise) output and adjust the bandwidth.

4 Commenti

W L
W L il 5 Set 2013
Sorry, can you be more specific? Im not very good at Matlab. Thanks so much for your help.
W L, make it easy for us to help you and upload a file like Walter already recommended.
W L
W L il 5 Set 2013
I have uploaded to Matlab file exchange. However, it takes time to review my file. May I please send to you via email? Sorry for being troublesome.
MATLAB file exchange is not suitable for this purpose. Create an account on a file storage site, upload the file to there, and post the link. Some file storage sites are listed at http://www.mathworks.com/matlabcentral/answers/7924-where-can-i-upload-images-and-files-for-use-on-matlab-answers

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Youssef  Khmou
Youssef Khmou il 5 Set 2013

0 voti

2 Commenti

W L
W L il 6 Set 2013
Much appreciated. My data is in Excel files, how do I do this Kalman filter? Could you please give me more info?
copy the data from excel and paste it to workspace a=[paste...]; or use import utility,

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Chad
Chad il 6 Set 2013

0 voti

Or you can cross correlate the output signal with a sine wave of known frequency. Try xcorr and fft.
Did something similar in my statistical analysis class.
Also read up on correlation and auto corelation and cross correlation

1 Commento

The FFT method is what I suggested and does not require than you know the frequency in advance since you'll figure it out. The cross correlation by itself won't work unless you know the reference frequency in advance, and if you already knew that, then you'd just use the reference frequency instead of the actual signal.
By the way, that's sort of what a lock-in amplifier does ( http://en.wikipedia.org/wiki/Lock-in_amplifier) which is a hardware solution for extracting the true signal from a noisy signal when the signals are carried on a frequency that's known. A lock-in amplifier will filter out the noise before you even digitize it, and we all know if you can start with a better signal, the signal processing needed later will be minimized and is the far better way to do it. It's always harder to fix up a bad signal in software later than to just start with a clean signal.

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W L
il 2 Set 2013

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