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This question already has an answer here:

This is my code:

width: -moz-calc(100% - 30px);
width: -webkit-calc(100% - 30px);
width: calc(100% - 30px);

I want the width to be 100% and subtract 30px. However Chromes inspect element calculate this to be 70% I tried to search for this problem, but everbody said that the way i write it, is the way it have to be written. This is what Chrome returns:

width: -moz-calc(70%); --> line-through
width: -webkit-calc(70%); --> line-through
width: calc(70%);

I can't figure out what is going wrong.

marked as duplicate by LGSon, user663031, seven-phases-max, Harry css May 1 '16 at 10:47

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

  • You are mixing pixels and percentage, so the software is confused. It could have returned an "Undefined" answer. – user5952891 Apr 30 '16 at 3:10
  • How should this look then? – Alexander Nicholas Klug Rasmus Apr 30 '16 at 3:15
  • 1
    Did you use pre-processor css like less or sass since they need to be escaped when used with calc() method stackoverflow.com/questions/17904088/… – Danny Pranoto Apr 30 '16 at 4:52
  • What is the parent element's width? What is the 100% relative to? – skyline3000 Apr 30 '16 at 6:40
  • Sorry yes i use LESS. And the parent is 100% in width to. And that parent is 100% in width, which is the full screen width – Alexander Nicholas Klug Rasmus Apr 30 '16 at 11:14
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I found out! Thanks to Danny Pranoto it was because there was a different in the syntax when using LESS. Forgot to tell i use LESS. Sorry guys!

The answer and right syntax was this:

width: ~"calc(100% - 200px)";
  • Interesting... This one has fixed the issue. It's worked for me. – Piotr Czyż Dec 5 '16 at 10:27
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Try this

width: -moz-calc(~"100% - 30px");
width: -webkit-calc(~"100% - 30px");
width: calc(~"100% - 30px");

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