184

I'm using the Requests: HTTP for Humans library and I got this weird error and I don't know what is mean.

No connection adapters were found for '192.168.1.61:8080/api/call'

Anybody has an idea?

346

You need to include the protocol scheme:

'http://192.168.1.61:8080/api/call'

Without the http:// part, requests has no idea how to connect to the remote server.

Note that the protocol scheme must be all lowercase; if your URL starts with HTTP:// for example, it won’t find the http:// connection adapter either.

  • @MartijnPieters Which package do you recommend to download a file using ftp? – AstroFloyd Oct 22 '19 at 10:10
  • @AstroFloyd I don’t have any recommendations there, sorry. – Martijn Pieters Oct 22 '19 at 10:26
  • I apologise - I thought I was replying to your comment on someone else's answer to a different question. Anyway, I got the above error because I tried to download a file over FTP. This answer gives a solution for that problem, "even" for Python3. – AstroFloyd Oct 22 '19 at 12:45
  • @AstroFloyd: yes, requests is purely for HTTP, not any other protocols. – Martijn Pieters Oct 22 '19 at 13:08
23

One more reason, maybe your url include some hiden characters, such as '\n'.

If you define your url like below, this exception will raise:

url = '''
http://google.com
'''

because there are '\n' hide in the string. The url in fact become:

\nhttp://google.com\n
  • 8
    Or if your url is accidentally a tuple because of a trailing comma url = self.base_url % endpoint, – Christian Long Sep 22 '17 at 15:44
  • @ChristianLong is there any way to convert a string to proper url? Like, can you tell me, what are you doing in your comment? – Ravi Shankar Bharti Aug 11 '18 at 11:50

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