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I have a button in a form that when clicked sends a variable to a javascript function. When the variable equals "link" I want to call a jquery function called makeLink().

This is what I have:

function getText(change)
{
   if(change == "link")
   {
      //call jquery function called makeLink()

   }

}

And here is my jquery function that creates a modal pop up with a form:

$(document).ready(function(){

function makeLink() {
    if ($("#makeALinkModalPopup").is(":hidden")){
    $("#makeALinkModalPopup").fadeIn("slow");

     $("#backgroundPopup").css({  
        "height": document.documentElement.offsetHeight

      });

    $("#backgroundPopup").css({"opacity": "0.7"});
    $("#backgroundPopup").fadeIn("slow"); 

        }

    }


});

Thanks for your help.

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2  
What's "a jQuery function"? –  Joseph Silber Aug 2 '12 at 21:07
    
The function is not global - that's the reason you can't call it. It has nothing to do with jQuery other than the fact that it happens to be a jQuery "ready" handler that contains it. –  Pointy Aug 2 '12 at 21:11
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4 Answers

Remove the document.ready wrapping to make makeLink available to the rest of the page

    function getText(change){
      if(change == "link") {
      //call jquery function 

        makeLink()

      }
    }


    function makeLink() {
      if ($("#makeALinkModalPopup").is(":hidden")){
        $("#makeALinkModalPopup").fadeIn("slow");

        $("#backgroundPopup").css({  
          "height": document.documentElement.offsetHeight

        });

        $("#backgroundPopup").css({"opacity": "0.7"});
        $("#backgroundPopup").fadeIn("slow"); 

      }
    }
share|improve this answer
    
Thank you for your help. I must be doing something else wrong because removing the document.ready wrapping does not do anything. I will continue to research. Thanks. –  Ramona Soderlind Aug 2 '12 at 21:27
    
Any message in the console? Can you make a jsfiddle.net for us? –  mplungjan Aug 2 '12 at 21:29
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Move makeLink to the global scope and call it normally. There are only JavaScript functions. The distinction you are seeing is scope only.

Read about scope here.

As someone else said, remove the document.ready wrapping. Your function need not be defined there, because it cannot be seen outside of document.ready.

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Can you give me more details? Or an example. Thank you very much! –  Ramona Soderlind Aug 2 '12 at 21:11
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You shouldn't define the function inside the document ready event, but on a separate file.

Then, where you have:

//call jquery function called makeLink()

Just put

makeLink()
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You dont need the dom ready.

Just have

function makeLink() {
    if ($("#makeALinkModalPopup").is(":hidden")){
    $("#makeALinkModalPopup").fadeIn("slow");

     $("#backgroundPopup").css({  
        "height": document.documentElement.offsetHeight

      });

    $("#backgroundPopup").css({"opacity": "0.7"});
    $("#backgroundPopup").fadeIn("slow"); 

        }

    }

Just have

function getText(change)
{
   if(change == "link")
   {
      makeLink();

   }

}

If you wanted to use the function on the dom ready then you would need to do.

$(document).ready(makeLink); < I might be wrong in sytax but to be safe i know this works..

$(document.ready(function(){
// do what ever you want
//even call make link

makeLink();
}
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