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My app. is calculating noise level and peak of frequency of input sound. I used FFT to get array of shorts[] buffer , and this is the code : bufferSize = 1024, sampleRate = 44100

 int bufferSize = AudioRecord.getMinBufferSize(sapleRate,
                channelConfiguration, audioEncoding);
        AudioRecord audioRecord = new AudioRecord(
                MediaRecorder.AudioSource.DEFAULT, sapleRate,
                channelConfiguration, audioEncoding, bufferSize);

and this is converting code :

short[] buffer = new short[blockSize];
        try {
        } catch (IllegalStateException e) {
            Log.e("Recording failed", e.toString());
        while (started) {
            int bufferReadResult =, 0, blockSize);

             * Noise level meter begins here
            // Compute the RMS value. (Note that this does not remove DC).
            double rms = 0;
            for (int i = 0; i < buffer.length; i++) {
                rms += buffer[i] * buffer[i];
            rms = Math.sqrt(rms / buffer.length);
            mAlpha = 0.9;   mGain = 0.0044;
            /*Compute a smoothed version for less flickering of the
            // display.*/
            mRmsSmoothed = mRmsSmoothed * mAlpha + (1 - mAlpha) * rms;
            double rmsdB = 20.0 * Math.log10(mGain * mRmsSmoothed);

Now I want to know if this algorithm works correctly or i'm missing something ? And I want to know if it was correct and i have sound in dB displayed on mobile , how to test it ? I need any help please , Thanks in advance :)

share|improve this question
I think it'll be difficult to produce a reliable absolute dB value, because of hardware differences in D/A converters and microphones. You'd have to calibrate it to an audio source of known loudness. Also why are you multiplying the log10 by a factor of 20.0? Shouldn't that be 10 (because it's _deci_bel)? Also also, maybe you need to apply the gain before calculating the RMS, not after, depending on what exactly 'gain' means here. – Thomas Apr 21 '13 at 9:04
@Thomas: 20*log10 is correct in this case, as we're dealing with a voltage. 10*log10 is used for power. (Note that you can also achieve the same result more efficiently by not taking the sqrt of the magnitude and then use 10*log10.) – Paul R Apr 21 '13 at 9:34

1 Answer 1

up vote 1 down vote accepted

The code looks correct but you should probably handle the case where the buffer initially contains zeroes, which could cause Math.log10 to fail, e.g. change:

        double rmsdB = 20.0 * Math.log10(mGain * mRmsSmoothed);


        double rmsdB = mGain * mRmsSmoothed >.0 0 ?
                           20.0 * Math.log10(mGain * mRmsSmoothed) :
                           -999.99;  // choose some appropriate large negative value here for case where you have no input signal
share|improve this answer
Great Thanks for your reply, i have a question .. how can i test the result ? ,or how can i calibrate the device ? – Fareed Apr 21 '13 at 17:29
You need a reference sound source - they are quite expensive but you can hire them from electronic equipment rental companies by the week or month. – Paul R Apr 21 '13 at 17:57
Note that the above comment assumes that you're talking about measuring dB SPL via a microphone input. If you just want dBV or dBm from a line level input say, the it's a lot easier. – Paul R Apr 21 '13 at 18:05
I want to take input from mic of android phone and display sound level in dB at peak frequency. Is it easy to test result and how ? If you want any code, i can get. – Fareed Apr 21 '13 at 18:13
Do you want dB SPL ? Are you going to apply any weighting, e.g. A Weighting ? – Paul R Apr 21 '13 at 18:14

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