1

I've had this problem many times: I have a source code, but if I copy / paste it into Wordpress and enclose it with <code> </code> the beginning spaces are "compressed" into one.

Thus I'd like to know how I could change all the spaces only at the beginning of the line by &nbsp;.

I.e.

    extend: 'Ext.panel.Panel',

becomes

&nbsp;&nbsp;&nbsp;&nbsp;extend: 'Ext.panel.Panel',
  • Use <pre><code>...</code></pre> instead of <code>...</code> – emnoor Sep 19 '13 at 6:15
2

I would propose the following three solutions addressing the issue that are listed below in order of my personal preference.

  1. Substitution using the preceding atom matching syntax (see :help \@<=).

    :%s/\%(^ *\)\@<= /\&nbsp;/g
    

    If brevity of the command is crucial, one can shorten it using "very magic" mode (see :help \v) and changing capturing group (:help \%() to non-capturing.

    :%s/\v(^ *)@<= /\&nbsp;/g
    
  2. Two-staged substitution that splits a line just after leading spaces, replaces those spaces, and rejoins that line.

    :g/^/s/^ \+/&\r/|-s/ /\&nbsp;/g|j!
    
  3. Another two-step substitution that replaces each of the leading spaces by certain symbol that does not occur in the text, and changes that symbol to &nbsp;.

    :exe"g/^ \\+/norm!v//e\rr\r"|%s/\r/\&nbsp;/g
    
  • Thank you very much all of you for the answers, this is incredibly useful. I'm going to spend some time reading vim help. Time, time, ime!! – Olivier Pons Jul 31 '11 at 8:45
4
:%s/^ \+/\=repeat("&nbsp;",strlen(submatch(0)))

But it wouldn't surprise me if there's a shorter substitute command. Come on Vimgolfers!

  • your solution is better! – Fredrik Pihl Jul 29 '11 at 23:09
  • This is the most comprehensive solution (to me), and I've checked the ib's answer because of the useful help tips. Thanks again for answering so quickly. – Olivier Pons Jul 31 '11 at 8:47
2

Using a look-behind assertion to replace spaces precedeed by only spaces at the beginning of a line:

%s/\(^ *\)\@<= /\&nbsp;/g
  • Huh, it is funny coincidence of thought process! I did not notice your answer and have proposed almost the same solution. By the way, it is not necessary to use capturing group, \(. – ib. Jul 30 '11 at 6:53
  • It does make it a character shorter, though. :) – Don Reba Jul 30 '11 at 7:00
  • Okay, I can make the pattern even shorter: :%s/\v(^ *)@<= /\&nbsp;/g :-) – ib. Jul 30 '11 at 7:09

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