30

I've been struggling with this simple problem for too long, so I thought I'd ask for help. I am trying to read a list of journal articles from National Library of Medicine ftp site into Python 3.3.2 (on Windows 7). The journal articles are in a .csv file.

I have tried the following code:

import csv
import urllib.request

url = "ftp://ftp.ncbi.nlm.nih.gov/pub/pmc/file_list.csv"
ftpstream = urllib.request.urlopen(url)
csvfile = csv.reader(ftpstream)
data = [row for row in csvfile]

It results in the following error:

Traceback (most recent call last):
File "<pyshell#4>", line 1, in <module>
data = [row for row in csvfile]
File "<pyshell#4>", line 1, in <listcomp>
data = [row for row in csvfile]
_csv.Error: iterator should return strings, not bytes (did you open the file in text mode?)

I presume I should be working with strings not bytes? Any help with the simple problem, and an explanation as to what is going wrong would be greatly appreciated.

44

The problem relies on urllib returning bytes. As a proof, you can try to download the csv file with your browser and opening it as a regular file and the problem is gone.

A similar problem was addressed here.

It can be solved decoding bytes to strings with the appropriate encoding. For example:

import csv
import urllib.request

url = "ftp://ftp.ncbi.nlm.nih.gov/pub/pmc/file_list.csv"
ftpstream = urllib.request.urlopen(url)
csvfile = csv.reader(ftpstream.read().decode('utf-8'))  # with the appropriate encoding 
data = [row for row in csvfile]

The last line could also be: data = list(csvfile) which can be easier to read.

By the way, since the csv file is very big, it can slow and memory-consuming. Maybe it would be preferable to use a generator.

EDIT: Using codecs as proposed by Steven Rumbalski so it's not necessary to read the whole file to decode. Memory consumption reduced and speed increased.

import csv
import urllib.request
import codecs

url = "ftp://ftp.ncbi.nlm.nih.gov/pub/pmc/file_list.csv"
ftpstream = urllib.request.urlopen(url)
csvfile = csv.reader(codecs.iterdecode(ftpstream, 'utf-8'))
for line in csvfile:
    print(line)  # do something with line

Note that the list is not created either for the same reason.

  • +1. However, something feels wrong about having to read all the data before decoding it. Does Python 3 offer anything that allows this to be done as a generator? – Steven Rumbalski Sep 19 '13 at 14:49
  • 4
    Figured it out. The Python 3 way to stream this is to use codecs.iterdecode. – Steven Rumbalski Sep 19 '13 at 14:56
  • Added a version of the snippet using codecs to make use of generators. – Diego Herranz Sep 19 '13 at 15:11
  • 1
    with responseHeader = response.info() you can even get the response header from where you can get the correct encoding e.g. with encoding = responseHeader['Content-Type'].split(';')[1].split('=')[1] which you can use for decoding the response response.read().decode(encoding), so you don't have to hardcode the encoding and react to different encodings – white_gecko Mar 3 '14 at 0:30
9

Even though there is already an accepted answer, I thought I'd add to the body of knowledge by showing how I achieved something similar using the requests package (which is sometimes seen as an alternative to urlib.request).

The basis of using codecs.itercode() to solve the original problem is still the same as in the accepted answer.

import codecs
from contextlib import closing
import csv
import requests

url = "ftp://ftp.ncbi.nlm.nih.gov/pub/pmc/file_list.csv"

with closing(requests.get(url, stream=True)) as r:
    reader = csv.reader(codecs.iterdecode(r.iter_lines(), 'utf-8'))
    for row in reader:
        print row   

Here we also see the use of streaming provided through the requests package in order to avoid having to load the entire file over the network into memory first (which could take long if the file is large).

I thought it might be useful since it helped me, as I was using requests rather than urllib.request in Python 3.6.

Some of the ideas (e.g using closing()) are picked from this similar post

-1

urlopen will return a urllib.response.addinfourl instance for an ftp request.

For ftp, file, and data urls and requests explicity handled by legacy URLopener and FancyURLopener classes, this function returns a urllib.response.addinfourl object which can work as context manager...

>>> urllib2.urlopen(url)
<addinfourl at 48868168L whose fp = <addclosehook at 48777416L whose fp = <socket._fileobject object at 0x0000000002E52B88>>>

At this point ftpstream is a file like object, using .read() would return the contents however csv.reader requires an iterable in this case:

Defining a generator like so:

def to_lines(f):
    line = f.readline()
    while line:
        yield line
        line = f.readline()

We can create our csv reader like so:

reader = csv.reader(to_lines(ftps))

And with a url

url = "http://pic.dhe.ibm.com/infocenter/tivihelp/v41r1/topic/com.ibm.ismsaas.doc/reference/CIsImportMinimumSample.csv"

The code:

for row in reader: print row

Prints

>>> 
['simpleci']
['SCI.APPSERVER']
['SRM_SaaS_ES', 'MXCIImport', 'AddChange', 'EN']
['CI_CINUM']
['unique_identifier1']
['unique_identifier2']
  • Incorrect. StringIO is a Python 2 module. Answer needs to be for Python 3. This is particularly important because of how Python 3 handles strings. – Steven Rumbalski Sep 19 '13 at 14:45
  • @StevenRumbalski I assume using docs.python.org/3.4/library/io.html#io.StringIO would be alright then? – HennyH Sep 19 '13 at 14:49
  • StringIO does not accept bytes: TypeError: initial_value must be str or None, not bytes. – Steven Rumbalski Sep 19 '13 at 14:51
  • @StevenRumbalski see my updated answer, which doesn't read in the whole file or use stringIO – HennyH Sep 19 '13 at 15:11

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.