view python/open.py @ 436:651caa15d80f

.conkyrc
author Jeff Hammel <jhammel@mozilla.com>
date Thu, 08 Aug 2013 10:51:26 -0700
parents 2025368488ee
children
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def load(resource):
    """
    open a file or URL for reading.  If the passed resource string is not a URL,
    or begins with 'file://', return a ``file``.  Otherwise, return the
    result of urllib2.urlopen()
    """

    # handle file URLs separately due to python stdlib limitations
    if resource.startswith('file://'):
        resource = resource[len('file://'):]

    if not is_url(resource):
        # if no scheme is given, it is a file path
        return file(resource)

    return urllib2.urlopen(resource)