Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

How can I call the Jquery Function From other javaScript Function (Not from jquery function) i.e I have written some Jquery code like below

 $(document).ready(function()  
 {  

   function func1(){
    // Do Something.
    }  
 });

Now I want to call the func1() function from other JavaScript Function

i.e Say an Example

function callJqueryFunction(){
 **func1();**  
}

The above javaScript function calling not work

but If do the same code inside a

$(document).ready(function()  
 {  

   function func1(){
    // Do Something.
    }  

   **func1();**    
 });

Its Work fine.

So what can I do for call the function which is inside a Jquery code format.

share|improve this question

4 Answers 4

this has nothing to do with jquery in general, it's just a scoping issue

function foo() 
{
   function bar() {
        ....
   }

   bar() // Ok
}

bar() // Not OK

function 'bar' is "local" in foo and is not visible outside of it. if you want a function to be used in different contexts, declare it globally.

share|improve this answer

Isn't func1 scoped inside that ready function? If you declare func1 outside of ready it should be available to other javascript code just as any other function.

So:

$(document).ready(function()  
 {  
   func1();
 });

function func1()
{
// Do something
}

function SomeOtherJavascriptFunction()
{
    func1();
}
share|improve this answer

The function func1 is defined in the scope of the parent function. If you don't need this, you can simply move the definition outside (I expect in case of $(document).ready you don't really need it). Otherwise you will need to pass/store the function reference somewhere, and use that to call it.

share|improve this answer

You can do something like this

var funcToCall;

$(document).ready(function()  
 {  

   funcToCall = function func1(){
    // Do Something.
    }  
 });


funcToCall();
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.