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try
{
    // throws IOException
}
catch(Exception e)
{
}
catch(IOException e)
{
}

when try block throws IOException it will call first catch block not second one. Can any one give the explanation of this. Why it will call first catch block?

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Will this compile ? –  V4Vendetta Mar 25 '13 at 7:38

5 Answers 5

From try-catch (C# Reference);

It is possible to use more than one specific catch clause in the same try-catch statement. In this case, the order of the catch clauses is important because the catch clauses are examined in order. Catch the more specific exceptions before the less specific ones. The compiler produces an error if you order your catch blocks so that a later block can never be reached.

You should use

try
{
    // throws IOException
}
catch(IOException e)
{
}
catch(Exception e)
{
}

Be aware, Exception class is the base class for all exceptions.

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1  
+1 for the msdn reference –  Habib Mar 25 '13 at 7:23

They are catched in the order you specify. In your case you should put IOException above Exception. Always keep Exception as last.

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The reason is that IOException derives from Exception, so IOException actually is an Exception ("is-a") and therefore the first catch handler matches and is being entered.

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IOException inherits from Exception. All Exceptions do. When you catch Exception first, you will catch all exceptions (including IOException). Make sure that your catch(Exception e) is the last catch in the list otherwise all other exception handling will be effectively ignored.

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Exception class is the base class of all exceptions. So whenever exception is of any type is thrown it will first will be caught by the first catch block which can catch any type of Exception.

So try using IOCException before the Exception

You can see the hierarchy of IOCException here

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