1

This is my actual code :

import bleach
import markdown


html = """
**### The Facebook Campaign will be alligned:**
**### What you get:**
"""


def render_markdown(text):
    if not text:
        return ''

    html = markdown.markdown(text, extensions=[
        'markdown.extensions.sane_lists',
        'markdown.extensions.nl2br',
    ])
    return bleach.clean(html, tags=[
        'p', 'h1', 'h2', 'br', 'h3', 'b', 'strong', 'u', 'i', 'em', 'hr', 'ul', 'ol', 'li', 'blockquote'
    ])


print render_markdown(html)

problem is, same user add more time markdown code like ### What you get: , the conversion results is this :

<p><strong>### The Facebook Campaign will be aligned to your business goal (1 x goal per hour):</strong></p>
<p><strong>### What you get:</strong></p>

how could I prevent this situation? i want return clean html code without rimanend markdown code in text, the perfect output is this :

<p><strong>The Facebook Campaign will be aligned to your business goal (1 x goal per hour):</strong></p>
<p><strong>What you get:</strong></p>
4
  • Doesn't ### mean something like <h3>? Have you tried without the surrounding **...**?
    – tobias_k
    Feb 22, 2018 at 14:46
  • @tobias_k problem is users add more times markdown code, so i want to replace and remain only one, is ok if is h3 or <p> Feb 22, 2018 at 14:48
  • 1
    It looks like **### ....** is just not valid markdown, and you will get the same result using the command line "compiler". You can't have ** around a heading. You could use ### **...**, but that's just redundant.
    – tobias_k
    Feb 22, 2018 at 14:53
  • I guess you could post-process the HTML and check whether any of the text-segments contain typical markdown-symbols...
    – tobias_k
    Feb 22, 2018 at 14:56

1 Answer 1

2
**### foo**

Is actually well parsed and really means:

<p><strong>### foo</strong></p>

It's not a Python or Markdown issue here, only a user that don't know how to format Markdown..

If you want to clean this you will have to parse user's input - but this is really not a Markdown question here, but a way more generic question that will surely requires some Regex.


  • For <h3>Foo</h3> do ### Foo
  • For <p><strong>Foo</strong></p> do **Foo**.

Edit because of comments

Ok, so you want to fix this specific case, here is how:

import re
string = '**### foo**'

print(re.sub('\*{2}\#+([^*]+)\*{2}', '** \\1 **', string))

Output

** foo **

So, final function:

def render_markdown(text):
    if not text:
        return ''

    text = re.sub('\*{2}\#+([^*]+)\*{2}', '** \\1 **', text)
    html = markdown.markdown(text, extensions=[
        'markdown.extensions.sane_lists',
        'markdown.extensions.nl2br',
    ])
    return bleach.clean(html, tags=[
        'p', 'h1', 'h2', 'br', 'h3', 'b', 'strong', 'u', 'i', 'em', 'hr', 'ul', 'ol', 'li', 'blockquote'
    ])
3
  • i am agree with you, is not Markdown issue, but i need to clean the output code, how i can do this ? Feb 22, 2018 at 14:59
  • 1
    Do you want to clean this specific case or all possible errors? (spoiler: second choice is not possible, well not possible in a decent amount of time / efforts)
    – Arount
    Feb 22, 2018 at 15:01
  • only this specific case Feb 22, 2018 at 15:06

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