192

I'm trying to read a csv-file from given URL, using Python 3.x:

import pandas as pd
import requests

url = "https://github.com/cs109/2014_data/blob/master/countries.csv"
s = requests.get(url).content
c = pd.read_csv(s)

I have the following error

"Expected file path name or file-like object, got <class 'bytes'> type"

How can I fix this? I'm using Python 3.4

4
  • You would need something like c=pd.read_csv(io.StringIO(s.decode("utf-8"))) but you are getting html back not a csv file so it is not going to work Sep 4 '15 at 14:49
  • 4
    I'm fairly certain the URL you want is "https://raw.github.com/cs109/2014_data/blob/master/countries.csv".
    – kylieCatt
    Sep 4 '15 at 14:52
  • @venom, chose more popular answer as the right one
    – ibodi
    Oct 11 '19 at 15:58
  • Sicne the issue was with pandas.read_csv() not Python, you should have stated the pandas version too, but given Python 3.4 was released in 2014, so you were likely running pandas 0.12 .. 0.15
    – smci
    Jan 31 at 4:01
288

In the latest version of pandas (0.19.2) you can directly pass the url

import pandas as pd

url="https://raw.githubusercontent.com/cs109/2014_data/master/countries.csv"
c=pd.read_csv(url)
6
  • it seems that using this directly instead of requests directly does not use requests-cache even if used
    – Shadi
    Sep 11 '17 at 10:23
  • 5
    That code returns urllib.error.URLError: <urlopen error [SSL: CERTIFICATE_VERIFY_FAILED] certificate verify failed (_ssl.c:777)> because of the https protocol which urllib cannot handle. Feb 13 '18 at 16:00
  • For those using Python 2, you will have to use Python 2.7.10+.
    – avelis
    Oct 30 '18 at 3:54
  • There seems to be some issue reading csv from a URL. I read the file once from a local storage and once from URL, I kept getting errors from URL. I then enabled error_bad_lines=False and more than 99% of data was ignored. The URL is link. Once I read the file, the shape of the dataset was found to be (88,1), which is completely wrong Nov 12 '18 at 19:09
  • It seems not work well, I got an issue of urlopen error :<urlopen error [Errno 11004] getaddrinfo failed> Aug 19 '20 at 7:15
227

UPDATE: From pandas 0.19.2 you can now just pass read_csv() the url directly, although that will fail if it requires authentication.


For older pandas versions, or if you need authentication, or for any other HTTP-fault-tolerant reason:

Use pandas.read_csv with a file-like object as the first argument.

  • If you want to read the csv from a string, you can use io.StringIO.

  • For the URL https://github.com/cs109/2014_data/blob/master/countries.csv, you get html response, not raw csv; you should use the url given by the Raw link in the github page for getting raw csv response , which is https://raw.githubusercontent.com/cs109/2014_data/master/countries.csv

Example:

import pandas as pd
import io
import requests
url="https://raw.githubusercontent.com/cs109/2014_data/master/countries.csv"
s=requests.get(url).content
c=pd.read_csv(io.StringIO(s.decode('utf-8')))

Notes:

in Python 2.x, the string-buffer object was StringIO.StringIO

7
  • What if the response is large and I want to stream it instead of consuming memory for the encoded content, decoded content and the StringIO object?
    – akaihola
    Oct 4 '16 at 6:00
  • 13
    In the latest version of pandas you can give the url directly i.e. c=pd.read_csv(url)
    – inodb
    Jan 26 '17 at 18:29
  • Curiously I have a newer version of pandas (0.23.4), but I could not give url directly. This answer helped me get that working.
    – Antti
    Jan 11 '19 at 14:55
  • 3
    "Update From pandas 0.19.2 you can now just pass the url directly." Unless you can't because you need to pass authentication arguments, in which case the original example is much needed.
    – Aaron Hall
    Jul 12 '19 at 17:49
  • This solution still valuable if you need a better error handling using HTTP codes that may be returned by request object (ex: 500 -> retry may be needed, 404 -> no retry)
    – JulienV
    Feb 18 '20 at 11:00
16

As I commented you need to use a StringIO object and decode i.e c=pd.read_csv(io.StringIO(s.decode("utf-8"))) if using requests, you need to decode as .content returns bytes if you used .text you would just need to pass s as is s = requests.get(url).text c = pd.read_csv(StringIO(s)).

A simpler approach is to pass the correct url of the raw data directly to read_csv, you don't have to pass a file like object, you can pass a url so you don't need requests at all:

c = pd.read_csv("https://raw.githubusercontent.com/cs109/2014_data/master/countries.csv")

print(c)

Output:

                              Country         Region
0                             Algeria         AFRICA
1                              Angola         AFRICA
2                               Benin         AFRICA
3                            Botswana         AFRICA
4                             Burkina         AFRICA
5                             Burundi         AFRICA
6                            Cameroon         AFRICA
..................................

From the docs:

filepath_or_buffer :

string or file handle / StringIO The string could be a URL. Valid URL schemes include http, ftp, s3, and file. For file URLs, a host is expected. For instance, a local file could be file ://localhost/path/to/table.csv

4
  • 1
    You can feed the url directly to pandas read_csv! of course! that's a much simpler solution than the one I found! :D
    – PabTorre
    Sep 4 '15 at 15:19
  • 1
    @pabtorre, yep , an example of why reading the docs is a good idea. Sep 4 '15 at 15:21
  • That works, in my case though ,I need to set the param sep of function pd.read_csv, such as : pd.read_csv(StringIO(s), sep='\t') . If I use the default setting sep=None , it'll raise an errorError tokenizing data. C error: Expected 1 fields in line 6, saw 5 Aug 19 '20 at 7:21
  • Why do I still get just one column for this url? ebi.ac.uk/Tools/services/rest/clustalo/result/… Nov 1 '20 at 5:57
10

The problem you're having is that the output you get into the variable 's' is not a csv, but a html file. In order to get the raw csv, you have to modify the url to:

'https://raw.githubusercontent.com/cs109/2014_data/master/countries.csv'

Your second problem is that read_csv expects a file name, we can solve this by using StringIO from io module. Third problem is that request.get(url).content delivers a byte stream, we can solve this using the request.get(url).text instead.

End result is this code:

from io import StringIO

import pandas as pd
import requests
url='https://raw.githubusercontent.com/cs109/2014_data/master/countries.csv'
s=requests.get(url).text

c=pd.read_csv(StringIO(s))

output:

>>> c.head()
    Country  Region
0   Algeria  AFRICA
1    Angola  AFRICA
2     Benin  AFRICA
3  Botswana  AFRICA
4   Burkina  AFRICA
0
3
url = "https://github.com/cs109/2014_data/blob/master/countries.csv"
c = pd.read_csv(url, sep = "\t")
2
  • Please provide explanation how your solution works. Jan 21 '20 at 8:42
  • This may raise an url error :urlopen error [Errno 11004] getaddrinfo failed Aug 19 '20 at 7:11
1

To Import Data through URL in pandas just apply the simple below code it works actually better.

import pandas as pd
train = pd.read_table("https://urlandfile.com/dataset.csv")
train.head()

If you are having issues with a raw data then just put 'r' before URL

import pandas as pd
train = pd.read_table(r"https://urlandfile.com/dataset.csv")
train.head()

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