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The following code causes the well-known "UnicodeDecodeError: 'ascii' codec can't decode" error:

import xml.sax
import io
parser = xml.sax.make_parser()
parser.parse(io.StringIO(u'<a>é</a>'))

While

import xml.sax
parser = xml.sax.make_parser()
parser.parse(open('foo'))

works (the content of file "foo" is <a>é</a>).

I need to parse an XML string in my case, not a file.

Is there any solution to my problem? Thanks.

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2 Answers 2

up vote 1 down vote accepted

A file contains bytes, and must have some encoding to store Unicode characters, so use a BytesIO object instead:

#coding: utf8
import xml.sax 
import io 
parser = xml.sax.make_parser() 
parser.parse(io.BytesIO(u'<a>é</a>'.encode('utf8')))

Note: #coding: utf8 specifies the encoding of the source file; .encode('utf8') specifies the encoding of the Unicode string to be stored in the BytesIO object. Technically using a non-Unicode string:

#coding: utf8
parser.parse(io.BytesIO('<a>é</a>'))

will work as well, since byte strings will be in the source file encoding already, but it makes the intent clearer. The source file and BytesIO encoding could be different.

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XML parsers normally take encoded byte-streams as input and do the necessary decoding themselves. The io.StringIO class is for unicode streams.

If you need to pass a file-like object, it is probably better (performance-wise) to use cStringIO.StringIO:

import xml.sax
from cStringIO import StringIO

parser = xml.sax.make_parser()
parser.parse(StringIO(u'<a>é</a>').encode('utf-8'))
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