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I'm trying to use grep to check if a file contains a <script> tag outside of the designated block: {% block js %} ... {% endblock %}.

If a file doesn't contain a {% block page_content %} element, it should be ignored (not all templates actually contain a js block).

The expression I have so far is:

grep -lrPz '(?s){% block (?!js).*? %}(?=.*?<script).*?{% endblock %}' src/

Any ideas what I'm doing wrong?

here is a file that should be detected:

{% block page_content %}
  {{ parent() }}
  <script> console.log("Hello world"); </script>
{% endblock %}

Here are files that should not be detected:

{% block who_knows %}
  {{ parent() }}
  <script> console.log("Hello world"); </script>
{% endblock %}

{% block page_content %}
  {{ parent() }}
{% endblock %}
{% block js %}
  <script> console.log("Hello world"); </script>
{% endblock %}

{% block js %}
  <script> console.log("Hello world"); </script>
{% endblock %}
{% block page_content %}
  {{ parent() }}
{% endblock %}
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1 Answer 1

up vote 1 down vote accepted

Can't point out what is wrong with your solution, but another option involves setting the record separator in to the opening and closing js tags and performing checks on the contents of each "record"

awk -v RS='\\{% block js %\\}|\\{% endblock %\\}' '/<script>[^<]*<\/script>/ &&
        (RT != "{% endblock %}" || prevRT != "{% block js %}"){bad++};
        /\{% block page_content %\}/{content++};
          {prevRT=RT};
          END{if(bad && content)print FILENAME":bad file"}' file.txt
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With the minor tweak of grep -lr "<script>" src/ | xargs --max-args=1 COMMAND_ABOVE this is now working for me. Thanks 1_CR :) –  ReactiveRaven Nov 8 '13 at 17:14

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