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I wrote very small code for java script.IN this value of message box are changed but it shows old value(14+32) instead of updated value(14+32+10).

 <script type="text/javascript">
var no=(14+32);
alert(no);
no =(14+32+10);
 </script>

Can any one say actual reason behind this?

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Because this is how it is. The alert shows the value which is passed to it, nothing else. edit: As mentioned, alert actually blocks the execution, but still, even if it wasn't blocking, you would not see a change. –  Felix Kling Jun 1 '12 at 9:59

3 Answers 3

up vote 2 down vote accepted

the order ef execution of these statements is sequential and synchronous, so the alert print the current value of no at the time of its execution

or in other words: when you change again the value of no the alert statement has been already executed

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IN java script every thing goes into sequential and synchronous manner? –  prjndhi Jun 1 '12 at 10:03
    
Not all: for example timeouts, intervals, ajax calls, web sockets, events... are all asynchronous. JS is by design really asynchronous –  Fabrizio Calderan Jun 1 '12 at 10:06

Alert is synchrounous function (like most of them in JS) so alert() pop up before you change var no.

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because the code is executed downward!

 <script type="text/javascript">
     var no=(14+32);
     alert(no);
     no =(14+32+10);
     alert(no);
  </script>

Now you can see the differences!

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