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I want the following output:-

About to deduct 50% of € 27.59 from your Top-Up account.

when I do something like this:-

$variablesArray[0] = '€';
$variablesArray[1] = 27.59;
$stringWithVariables = 'About to deduct 50% of %s %s from your Top-Up account.';
echo vsprintf($stringWithVariables, $variablesArray);

But it gives me this error vsprintf() [function.vsprintf]: Too few arguments in ... because it considers the % in 50% also for replacement. How do I escape it?

share|improve this question
    
@Col. Shrapnel My question is about vsprintf not printf, I am using this for the first time and could not assume the similarity between the two. However, searching escape or escaping in both php.net/printf and php.net/vsprintf both does not show the answer immediately. When I search for %% it shows the answer in php.net/printf but I didn't know about %%!!! Did you search for the answer there before downvoting? –  Sandeepan Nath Sep 8 '10 at 10:40
    
@sandeepan: vsprintf belongs in the same family of functions as printf. The correct documentation to find the format, though, is php.net/sprintf. Both pages even point to it: "See sprintf() for a description of format." Didn't you at least click it? –  BoltClock Sep 8 '10 at 10:43
4  
@Col. Shrapnel ok fine let's take php.net/sprintf, where is the answer? It is halfway down the page With printf() and sprintf() functions, escape character is not backslash '\' but rather '%'. What is there to downvote here? It was just not that obvious to me as it was to you. If you find a duplicate question you can better write the link. But I am sure many will find this question helpful. But you won't accept that and you will still say something, I know. –  Sandeepan Nath Sep 8 '10 at 10:49
    
oh I thought the second comment was by Col. Shrapnel , sorry –  Sandeepan Nath Sep 8 '10 at 10:51
1  
SO should have a flag for RTFM responses. It's almost like people troll just so they can tell people to read the docs. He needed help and asked a question and then someone answered helpfully and got points for it. The world went on and the internet was used to someone's benefit. Meanwhile I'm getting heated over a two year old argument. –  rob5408 Jul 2 '13 at 3:22

1 Answer 1

up vote 78 down vote accepted

Escape it with another %:

$stringWithVariables = 'About to deduct 50%% of %s %s from your Top-Up account.';
share|improve this answer
    
Thanks a lot! I could not guess that!!! –  Sandeepan Nath Sep 8 '10 at 10:42
6  
sprintf("SELECT * FROM ... WHERE name LIKE '%%%s%%%s%%'", $fname, $lname); -- Ugly but it works! –  Jan Hettich Oct 8 '11 at 22:57
1  
This also applies to Ruby –  Jamie Cook Jan 31 '13 at 1:22
    
Sweet. This fixed it. –  Viz Jun 27 at 14:18

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