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following code works properly

draw([['Rice',20,28,38],['Paddy',31,38,55],]);

but when i try using external variable like

var val1=20;
var val2=30;
var val3=40;
draw([['Rice',val1,val2,val3],['Paddy',31,38,55],]);

It wont work.

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"It wont work." is not an error description. –  Tomalak Aug 22 '11 at 14:27
1  
Surely you can give more details other than "it won't work"? –  p.campbell Aug 22 '11 at 14:27
    
The two pieces of code should work in exactly the same way. Is this a reduced test case that has reduced the code so much that the problem has gone away? –  Quentin Aug 22 '11 at 14:28
    
Thanks guys i am getting a blank screen when i run the code –  Navnit Nayak Aug 22 '11 at 18:19
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2 Answers

up vote 0 down vote accepted

Just showing that your example code works fine using the Firebug console. Can you post more of your code? Your stripped-down example is probably missing something else that's causing a problem.

What is your draw() function doing? Could something in that function be breaking?

EDIT: Another problem could be the trailing comma after your second array. That will throw an error in Internet Explorer.

alert([['Rice',val1,val2,val3],['Paddy',31,38,55],]);

should be:

alert([['Rice',val1,val2,val3],['Paddy',31,38,55]]);

That may solve your issue (though you also have that in your 'working' example, but I thought it worth mentioning).

Just showing that your example code works fine.

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Your code snippets are not equivalent -- the second one has different values (['Rice',20,30,40] vs ['Rice',20,28,38]). Other than that, they are equivalent and should have the same effects.

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