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I want to convert the background position for vendor prefixed gradients, therefore I use a simple formula 90 - (@degree) according to this example it should be 90 - (135) = -45.

The important part is .replace(/(\d*)?deg/g, 90 - '$1' + 'deg'), I tried different functions, but no matter what, the output always ends up with NaN: - parseInt('$1') - parseFloat('$1') - eval(90 - '$1') - Number('$1')

If I replace '$1' with '135' or any other number it works nicely.

  @w3c:     true;   // valid w3c syntax

  @webkit:  true;   // Google Chrome, Safari, iOS
  @moz:     true;   // Mozilla Firefox
  @ms:      true;   // Internet Explorer
  @o:       true;   // Opera

  @default-background-image: linear-gradient(135deg, blue, red), linear-gradient(150deg, green, orange);

.background-image (@arguments: @default-background-image;) {
  .result (...) when (@webkit = true) {
    background-image: ~`"@{arguments}"
      .replace(/[\[\]]/g,'')
      .replace("linear-gradient","-webkit-linear-gradient")
      .replace(/(\d*)?deg/g, 90 - '$1' + 'deg')`;
  }

  .result (...) when (@moz = true) {
    background-image: ~`"@{arguments}"
      .replace(/[\[\]]/g,'')
      .replace("linear-gradient","-moz-linear-gradient")
      .replace(/(\d*)?deg/g, 90 - '$1' + 'deg')`;
  }

  .result (...) when (@ms = true) {
    background-image: ~`"@{arguments}"
      .replace(/[\[\]]/g,'')
      .replace("linear-gradient","-ms-linear-gradient")
      .replace(/(\d*)?deg/g, 90 - '$1' + 'deg')`;
  }

  .result (...) when (@o = true) {
    background-image: ~`"@{arguments}"
      .replace(/[\[\]]/g,'')
      .replace("linear-gradient","-o-linear-gradient")
      .replace(/(\d*)?deg/g, 90 - '$1' + 'deg')`;
  }

  .result (...) when (@w3c = true) {
    background-image: @arguments;
  }

  .result (@arguments);
}
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2 Answers 2

up vote 1 down vote accepted

You need a replacement function instead of an expression (which is evaluated as a string, causing the issue):

str.replace(/(\d*)deg/g, function($0, $1) {
    return (90 - parseInt($1)) + 'deg';
});

I've removed the ? because \d* already caters for that. Also, I would use \d+ because an empty number doesn't make sense.

Example

var str = '@default-background-image: linear-gradient(135deg, blue, red), linear-gradient(150deg, green, orange);';

str.replace(/(\d*)deg/g, function($0, $1) {
    return (90 - parseInt($1)) + 'deg';
});

Output:

"@default-background-image: linear-gradient(-45deg, blue, red), linear-gradient(-60deg, green, orange);"
share|improve this answer
    
I've mentioned you here: github.com/InitArt/mod.less/commit/… –  InitArt Jun 17 '13 at 8:33
    
@user2425777 Much obliged ;-) btw, if you're going to reuse that conversion function, you could define it once and reference it multiple times instead to save some memory. –  Ja͢ck Jun 17 '13 at 8:35
    
I'm going to think about it, altough it got a low priority for now, due to less should only be used in dev environments or be compiled to css. By the way, I noticed, that credit to you on GitHub is pretty hidden and temporary, therefore: codepen.io/InitArt/pen/cgvBJ This will be used in the documentation too. –  InitArt Jun 18 '13 at 13:27

What happens if you use

.replace(/(\d+)(?=deg)/g, 90 - parseInt($1)) where $1 is not quoted?

It seems that java script is interpreting the quoted $1 as a string which is "not a number"

I've also converted the expression to use a non capturing forward look ahead which will eliminate the need to insert reinsert deg back into the replacement.

The other problem is that your regex is matching \d*?deg which is zero or more digits before the string deg I've replaced the \d*? with \d+ to match 1 or more digits.

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1  
$1 is not defined, because I've used those regex substrings. But your answer helped me very much in understanding the whole point. –  InitArt Jun 17 '13 at 8:14

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