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I've a csv file and I am trying to calculate the average of each of the columns present in it.


with open('/home/rnish/Desktop/lbm-reference.dat.ref-2013-01-30-13-00-15big.csv', "rU") as f:
    columns = f.readline().strip().split(' ')
    numRows = 0
    sums = [0] * len(columns)

    for line in f:
        values = line.split(" ")
        print values
        for i in xrange(len(values)):
           sums[i] += float(values[i])
        numRows += 1

#    for index, summedRowValue in enumerate(sums):
#        print columns[index], 1.0 * summedRowValue / numRows

The error I get is:

  File "", line 15, in <module>
    sums[i] += float(values[i])
ValueError: invalid literal for float(): 0,536880742,8861743,0,4184866,4448905

This is how the output from print values is:


This is how the csv file looks:


Could some one shed some light and help me understand this issue:

I am assuming after reading a couple of posts that it is due to the new line character. am I correct?

share|improve this question

You are splitting a .cvs file at a space - but there are no spaces in your string. Try splitting at the comma instead:

    columns = f.readline().strip().split(',')
share|improve this answer
columns = f.readline().strip().split(',') numRows = 0 sums = [0] * len(columns) this is how it looks atm. but it doesn't work. – rnish Jan 31 '13 at 5:16
Just realized - you also need to split the line at commas in the ` values = line.split(" ")` line... change it to ` values = line.split(",")`. Is that better? – Floris Jan 31 '13 at 5:17
Thanks!. I did not catch that. – rnish Jan 31 '13 at 5:19
It ignores the first line of the csv file. I don't know why. – rnish Jan 31 '13 at 5:44
It ignores the first line because you're explicitly reading the first line (to get the columns list), but then not using it again. Try replacing the code initializing sums with sums = columns and you should be set. – Blckknght Jan 31 '13 at 6:17

Using numpy:

import numpy as np

a = np.loadtxt("data.csv", delimiter=",")
mean = np.mean(a, axis=0)

Using csv module:

import csv
import sys

it = csv.reader(sys.stdin, quoting=csv.QUOTE_NONNUMERIC)
avg = next(it, [])
count = 1
for count, row in enumerate(it, start=2):
     for i, value in enumerate(row):
          avg[i] += value
avg = [a/count for a in avg]


[0.0, 431655407.0, 9492692.6, 2106081.8, 4434137.0, 3128214.6]
share|improve this answer
mean = np.mean(a, axis=0) It gives out values in [ 0.00000000e+00 5.49352277e+08 1.06912389e+07 7.33264049e+06 6.79808023e+06 6.80590208e+06]. that's an overhead for converting into floating point values – rnish Jan 31 '13 at 5:47
@rnish: check your input data. I've got: [0.00000000e+00 4.31655407e+08 9.49269260e+06 2.10608180e+06 4.43413700e+06 3.12821460e+06] that coincides exactly with the csv results. – J.F. Sebastian Jan 31 '13 at 6:07
I need to check for a way to convert ndarray data from scientific notation to floating point. :-). The data that I gave was just a small part of the csv file – rnish Jan 31 '13 at 6:08
@rnish: the data is the same. You can print it however you like. To save an array in the csv format: np.savetxt(sys.stdout, (mean,), fmt="%.1f", delimiter=", ") You could use a filename or any file object instead of `sys.stdout. – J.F. Sebastian Jan 31 '13 at 6:16

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