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I'm looking for a way to find out the duration of a audio file (.wav) in python. So far i had a look at python wave library, mutagen, pymedia, pymad i was not able to get the duration of the wav file. Pymad gave me the duration but its not consistent.

Thanks in advance.

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2 Answers 2

up vote 15 down vote accepted

The duration is equal to the number of frames divided by the framerate (frames per second):

import wave
import contextlib
fname = '/tmp/test.wav'
with contextlib.closing(wave.open(fname,'r')) as f:
    frames = f.getnframes()
    rate = f.getframerate()
    duration = frames / float(rate)
    print(duration)

Regarding @edwards' comment, here is some code to produce a 2-channel wave file:

import math
import wave
import struct
FILENAME = "/tmp/test.wav"
freq = 440.0
data_size = 40000
frate = 1000.0
amp = 64000.0
nchannels = 2
sampwidth = 2
framerate = int(frate)
nframes = data_size
comptype = "NONE"
compname = "not compressed"
data = [(math.sin(2 * math.pi * freq * (x / frate)),
        math.cos(2 * math.pi * freq * (x / frate))) for x in range(data_size)]
try:
    wav_file = wave.open(FILENAME, 'w')
    wav_file.setparams(
        (nchannels, sampwidth, framerate, nframes, comptype, compname))
    for values in data:
        for v in values:
            wav_file.writeframes(struct.pack('h', int(v * amp / 2)))
finally:
    wav_file.close()

If you play the resultant file in an audio player, you'll find that is 40 seconds in duration. If you run the code above it also computes the duration to be 40 seconds. So I believe the number of frames is not influenced by the number of channels and the formula above is correct.

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I had a look at all the wave library function but i overlooked simple logic nframes/frame_rate. Thank you for both the method and the code :) –  Pannu Oct 20 '11 at 9:48
    
This is not quite correct ... there is a frame written for each channel, and so duration=frames/float(rate*f.getnchannels()) –  edward Sep 24 '13 at 22:18
2  
The contextlib stuff is not needed any more. From version 2.7 on, the with statement does that for you. –  Lewistrick Dec 4 '13 at 11:17
2  
@Lewistrick: I see wave.open supports the with statement as of revision 84932. That change affects Python3.4, but not Python2.7. As far as I can tell, the 2.7 branch does not support the with statement. –  HappyLeapSecond Dec 4 '13 at 13:01
1  
Sorry, my mistake. This was about open, not wave.open. –  Lewistrick Dec 4 '13 at 15:25
import os
path="c:\\windows\\system32\\loopymusic.wav"
f=open(path,"r")

#read the ByteRate field from file (see the Microsoft RIFF WAVE file format)
#https://ccrma.stanford.edu/courses/422/projects/WaveFormat/
#ByteRate is located at the first 28th byte
f.seek(28)
a=f.read(4)

#convert string a into integer/longint value
#a is little endian, so proper conversion is required
byteRate=0
for i in range(4):
    byteRate=byteRate + ord(a[i])*pow(256,i)

#get the file size in bytes
fileSize=os.path.getsize(path)  

#the duration of the data, in milliseconds, is given by
ms=((fileSize-44)*1000))/byteRate

print "File duration in miliseconds : " % ms
print "File duration in H,M,S,mS : " % ms/(3600*1000) % "," % ms/(60*1000) % "," % ms/1000 % "," ms%1000
print "Actual sound data (in bytes) : " % fileSize-44  
f.close()
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A safer approach to deal with the binary contents of the file without the byteRate loop could be: from struct import unpack_from rate, = unpack_from('<l', a) –  edrabc Apr 4 '13 at 13:08
    
Small mistake: os.path.getsize(path) should be os.path.getsize(f). –  Lewistrick May 14 '14 at 14:55

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