1

I have this sitemap in xml. How i can get each <loc> ?

<?xml version="1.0" encoding="UTF-8"?>
<urlset
      xmlns="http://www.sitemaps.org/schemas/sitemap/0.9"
      xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance"
      xsi:schemaLocation="http://www.sitemaps.org/schemas/sitemap/0.9
            http://www.sitemaps.org/schemas/sitemap/0.9/sitemap.xsd">
<!-- created with Free Online Sitemap Generator www.xml-sitemaps.com -->


<url>
  <loc>https://www.nsnam.org/wiki/Main_Page</loc>
  <lastmod>2018-10-24T03:03:05+00:00</lastmod>
  <priority>1.00</priority>
</url>
<url>
  <loc>https://www.nsnam.org/wiki/Current_Development</loc>
  <lastmod>2018-10-24T03:03:05+00:00</lastmod>
  <priority>0.80</priority>
</url>
<url>
  <loc>https://www.nsnam.org/wiki/Developer_FAQ</loc>
  <lastmod>2018-10-24T03:03:05+00:00</lastmod>
  <priority>0.80</priority>
</url>

Program looks like this.

import os.path
import xml.etree.ElementTree
import requests
from subprocess import call

def creatingListOfBrokenLinks():
    if (os.path.isfile('sitemap.xml')):
        e = xml.etree.ElementTree.parse('sitemap.xml').getroot()
        file = open("all_broken_links.txt", "w")

        for atype in e.findall('url'):
            r = requests.get(atype.find('loc').text)
            print(atype)
            if (r.status_code == 404):
                file.write(atype)

        file.close()


if __name__ == "__main__":
    creatingListOfBrokenLinks()
2
  • What does your python program look like at the moment? Oct 25, 2018 at 13:15
  • @frankenapps i updated
    – krax1337
    Oct 25, 2018 at 13:22

2 Answers 2

1

I suggest you use the elementtree standard library package:

from xml.etree import ElementTree as ET

SITEMAP = """<?xml version="1.0" encoding="UTF-8"?>
<urlset
      xmlns="http://www.sitemaps.org/schemas/sitemap/0.9"
      xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance"
      xsi:schemaLocation="http://www.sitemaps.org/schemas/sitemap/0.9
            http://www.sitemaps.org/schemas/sitemap/0.9/sitemap.xsd">
    <!-- created with Free Online Sitemap Generator www.xml-sitemaps.com -->
    ...
    ...
</urlset>"""

urlset = ET.fromstring(SITEMAP)
loc_elements = urlset.iter("{http://www.sitemaps.org/schemas/sitemap/0.9}loc")
for loc_element in loc_elements:
    print(loc_element.text)

Documentation links:

Update:

  • What your code gets wrong is the XML namespace handling.
  • Also, my example uses .iter() instead of .findall() / .find() to get the loc elements directly. This might or might not be OK depending on the structure of the XML and the use case.
1

Your code worked perfectly on my end. All you had to do, is add: {http://www.sitemaps.org/schemas/sitemap/0.9} before url and loc

Here:

import os.path
import xml.etree.ElementTree
import requests
from subprocess import call

def creatingListOfBrokenLinks():
    if (os.path.isfile('sitemap.xml')):
        e = xml.etree.ElementTree.parse('sitemap.xml').getroot()
        file = open("all_broken_links.txt", "w")

        for atype in e.findall('{http://www.sitemaps.org/schemas/sitemap/0.9}url'):
            r = requests.get(atype.find('{http://www.sitemaps.org/schemas/sitemap/0.9}loc').text)
            print(atype)
            if (r.status_code == 404):
                file.write(atype)

        file.close()


if __name__ == "__main__":
    creatingListOfBrokenLinks()

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