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Basic question but I've been trying to figure out for a while with no luck.

I am processing urls and need to do a simple replacement.

I need to replace spaces with the literal string %20, but I can't seem to escape the % or the %2 which is reported as an invalid capture.

text = string.gsub(text, "%s+", '%%20')

How many % do I have to use inside gsub to escape the % sign and the %2 capture.

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Are you sure you typed %%20 and not %%%20? –  Stuart P. Bentley Aug 26 '11 at 21:53
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2 Answers

up vote 3 down vote accepted

Seems to work for me:

> text="hello world"
> print(string.gsub(text, "%s+", '%%20'))
hello%20world   1

You'll need to show some more code and your error message.

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My mistake, I was feeding the result of the substitution to string.format() and therefore the % character was bailing me out at that point. Thx for your help. I am leaving the following for reference for this newbie question. pgl.yoyo.org/luai/i/string.gsub –  manthis Aug 26 '11 at 22:59
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Alternatively, you can automatically do that with the following:

url = require("socket.url")
text = url.escape(string)

This is, of course, assuming you do have the socket library in your lua path. To be quite honest, this is the way I would go about doing anything with urls, because then you don't have to worry about converting commas into %2c or apostrophes into %27.

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oh good information thanks. I would +1 but ran out for the day. –  John Riselvato Oct 21 '11 at 21:41
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