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I am trying to use ElementTree to parse an xml file. Given the xml below, I need to write to file the 'chain_id' (under heading 'm') and 'name' (under heading 'r'), but only if the following criteria are met: 1.) 'css' (under heading 'i') is not -0, and 2.) 'bsa' > 0

I can keep track of the 'name' when the second criterion is met:

for r in root.iter('r'):
        name = r.find('name').text
        bsa = r.find('bsa').text
        if eval(bsa) > 0:
            print name

but I end up getting a lot of names I don't need because I can't figure out how to make this conditional on the first criterion. I have looked into Xpath, but I am having difficulty implementing it.

To summarize, I am only interested in the children and great-grandchildren of 'm' if the sibling of 'm' ('css') has a certain value.

The xml file is fairly large, with > 20 'i's, at least two 'm's for each 'i', and >100 'r's for each 'm'.

I would prefer to do this with standard python methods (not lxml or beautiful stone soup)

<pi>
  <pe>
    <ni>20</ni>
    <i>
      <id>1</id>
      <css>-0</css>
      <m>
        <id>1</id>
        <chain_id>B</chain_id>
        <int_nres>19</int_nres>
        <rs>
          <r>
            <ser_no>1</ser_no>
            <name>MET</name>
            <seq_num>0</seq_num>
            <asa>157.15526405</asa>
            <bsa>0</bsa>
          </r>
          <r>
           .
           .
           .            
          </r>  
      <m>
        .
        .
        .
      </m>
    </i>
    <i>
      .
      .
      .
    </i>
  </pe>
</pi>
share|improve this question

1 Answer 1

up vote 1 down vote accepted
myxml=ET.parse('path_to_yourxml')
for elem in myxml.getroot().findall('pi/pe/i'):
    if elem.find('css').text!='-0':
        for elem1 in elem.findall('m'):
            if eval(elem1.find('rs/r/bsa').text)>0:
                print elem1.find('rs/r/name').text
share|improve this answer
    
Thank you for the suggestion. For some reason, .findall() does not return anything, but .iter() does. I am trying to use your suggestion, but with .iter() instead of .findall(). I'll let you know if it works. –  apo Mar 27 '13 at 19:24
    
why you want to iterate on all nodes... just findall-->that node1--> then findall or find-->node2 .. . !! This manner will be better and fast. . –  namit Mar 27 '13 at 19:28
    
see the updated post.. –  namit Mar 27 '13 at 19:29
    
Didn't have to replace .findall() after all. The problem was with the XPath notation: it must begin with a '.' (e.g. myxml.findall('./pi/pe/i')). It works now. Thanks a ton. –  apo Mar 27 '13 at 19:38

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