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How to make backward regexp search greedy in emacs?

For example, I have abc 163439 abc in my buffer, and I run M-x search-backward-regexp with the following regexp: 163439\|3. This regexp will allways find '3' in the buffer, but newer the whole long number. Because, when it starts search, it will meet '3' firstly. In a second try, it will start from the position of '3', which is inside the number, and it will omit it.

How can I find the longest and closest match?

So I mean, when it meet '3', I want it to check if the matched part isn't the part of a bigger match.

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3 Answers

When asked some years ago, answer was: it's not implemented.

Maybe try this:

(defun ar-greedy-search-backward-regexp (regexp)
  "Match backward the whole expression as search-forward would do. "
  (interactive (list (read-from-minibuffer "Regexp: " (car kill-ring))))
  (let (last)
    (when (re-search-backward regexp nil t 1)
      (push-mark)
      (while (looking-at regexp)
        (setq last (match-end 0))
        (forward-char -1))
      (forward-char 1)
      (push-mark)
      (goto-char last)
      (exchange-point-and-mark))))
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I don't think you can do what you want.

Emacs search-backward-regexp searches for the closest instance that matches the regular exprssion. This is not about greediness (greediness in regular expressions is about matching as many characters as possible when there is a kleene star operator -- or its syntactic variants ? or +).

In your example, emacs properly finds the first instance that matches your regular expression.

--dmg

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As dmg said, to some extent you "can't" do it: Emacs's regexp engine only matches forward, so the "backward" part only applies to the search, not to the match. Your best bet usually is to change your regexp so as not to rely on greed. E.g. use \<\(?:163439\|3\).

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But this one won't match 3 in another situation, eg.: 13 –  Necto May 6 '13 at 7:02
    
Indeed, the way to refine the regexp depends on exactly what you want to match. –  Stefan May 6 '13 at 13:08
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