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How can i use my rand in window name in the following code :

var rand = 185656;
setTimeout("win+rand+2 = window.open('url'+secid , '_blank')",2000);

+rand+ not work

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2  
What do you mean by not working? – 웃웃웃웃웃 Mar 28 '13 at 11:42
2  
Please stop using strings inside setTimeout like that... just use a function: setTimeout(function() { win = window.open('url'+secid, '_blank') }, 2000); – Jeff Shaver Mar 28 '13 at 11:44
up vote 2 down vote accepted

Don't pass a string to setTimeout. Pass a function instead and set your global property explicitly on window, which will allow you to use square bracket notation:

setTimeout(function () {
    window["win" + rand + "2"] = window.open("url" + secid, "_blank");
}, 2000);

The reason for not passing a string to setTimeout (or setInterval) is that it's an alias for eval, which can be dangerous.

What you currently have will generate a reference error. It's effectively like doing this, which is obviously never going to work:

"a" + "b" = "c"; // ReferenceError: Invalid left-hand side in assignment
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1  
Thank you for being the only one, other than me in the comments, to advise against passing a string... – Jeff Shaver Mar 28 '13 at 11:45
    
Thank you , can you please answer my last question? I wonder how to use var in funtion name like funtion one+rand+() inwhich rand is var and one is name – Mohammad Alipour Mar 28 '13 at 12:59
    
@user2100087 - The same way, but set the value of the property to be a function instead: window["one" + rand] = function () {};. – James Allardice Mar 28 '13 at 13:02

It must be outside the quotes.

setTimeout("win"+rand+"2 = window.open('url'+secid , '_blank')",2000);
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thank you , How can I use rand in this code? win+rand+1 = window.open('url'+secid , '_blank'); is it correct? – Mohammad Alipour Mar 28 '13 at 11:49

Firstly, don't pass strings to setTimeout. Use the callback function instead. Then the variable has to be outside of the string (quotes) to be concatenated:

var rand = 185656;
setTimeout(function() {
    window["win" + rand + "2"] = window.open('url'+secid , '_blank');
}, 2000);
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You need to "open" and "close" the String again:

setTimeout("win" + rand + "2 = window.open('url'" + secid + " , '_blank')",2000);

See this article for the very basics.

Apart from that you shouldn't be passing executable code to setTimeout (it will get eval'd), use a function reference or an anonymous function to do so.

Also, constructiong var names like this is a bad idea as well. Look into objects and keys for that.

You could do:

setTimeout(function(){
    var rand = 185656;
    window['win' + rand + '2'] = window.open('url'+secid , '_blank'); //creates a global variable by adding a property to the global object
}, 2000);
share|improve this answer
    
thank you , How can I use rand in this code? win+rand+1 = window.open('url'+secid , '_blank'); is it correct? – Mohammad Alipour Mar 28 '13 at 11:48
    
No, you can't use a runtime variable value for a variable name. You could do something like window['win'+rand+'1'] as someone already suggested. – Aioros Mar 28 '13 at 11:53

May be the quotes is making problem

setTimeout("win"+parseInt(rand)+"2 = window.open('url'+secid , '_blank')",2000);
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setTimeout("win" + rand + "2 = window.open('url'+secid , '_blank')",2000);

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thank you , How can I use rand in this code? win+rand+1 = window.open('url'+secid , '_blank'); is it correct? – Mohammad Alipour Mar 28 '13 at 11:57

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