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catch exception by pointer in C++

I always catch exceptions by value. e.g

try{
...
}
catch(CustomException e){
...
}

But I came across some code that instead had catch(CustomException &e) instead. Is this a)fine b)wrong c)a grey area?

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marked as duplicate by Frank van Puffelen, Mac, Steve, bpeterson76, David Segonds Nov 27 '12 at 22:49

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Note that the correct reference is constant too: catch(CustomException const &e)... –  Alexis Wilke Feb 7 at 1:27

4 Answers 4

up vote 61 down vote accepted

The standard practice for exceptions in C++ is ...

Throw by value, catch by reference

Catching by value is problematic in the face of inheritance hierarchies. Suppose for your example that there is another type MyException which inherits from CustomException and overrides items like an error code. If a MyException type was thrown your catch block would cause it to be converted to a CustomException instance which would cause the error code to change.

References

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3  
To this I would add: catch by const reference. Unfortunately you can throw a const object and catch it with a non-const reference. To avoid this silent "casting away" of const, always catch a const reference, and ensure your exception types have const-correct accessors. –  Daniel Earwicker Mar 26 '10 at 10:01
14  
@Danial Earwicker: Why is it "unfortunate" that you can catch via an non-const reference? The exception object is always copied so whatever 'object' you throw, you can't affect the original from any catch block as the 'object' thrown was really just an initializer. There's no casting away of const; exception objects are always non-const, non-volatile. Allowing a catch via non-const reference enables intermediate catch blocks to add information to the exception. It's not commonly used but it's there if you need it. –  Charles Bailey Mar 26 '10 at 10:06
1  
@John: Chapter 15 Exceptions, specifically 15.3 (exception handling) describes how the catch parameter is initialized from the exception object. Where the parameter is a class type (rather than a reference) it is initialized via a copy-constructor. –  Charles Bailey Mar 26 '10 at 10:12
4  
@Daniel: to clarify Charles (and deliver to your inbox), the exception object you can catch and rethrow is by definition a temporary. The argument to throw should be on the stack and should be destroyed as the first order of business of unwinding. throw new is an error. –  Potatoswatter Mar 26 '10 at 10:55
1  
@Charles - You're right, it's not really casting away of const. I guess I think of it in the same terms as a temporary being passed to a method by non-const reference, which is banned elsewhere in the language to avoid attempts to mutate a temporary via the reference (when the mutation is going to be discarded anyway). But as you say, you might want to deliberately mutate the exception and then throw; which makes it visible elsewhere (thus breaking my analogy). –  Daniel Earwicker Mar 26 '10 at 10:59

in (CustomException e) new object of CustomException is created... so it's constructor will be called while in (CustomException &e) it will just the reference... not new object is created and no constructor will be called... so formal is little bit overhead... later is better to use...

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Unless you want to fiddle with the exception, you should usually use a const reference: catch (const CustomException& e) { ... }. The compiler deals with the thrown object's lifetime.

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Catching by value will slice the exception object if the exception is of a derived type to the type which you catch.

This may or may not matter for the logic in your catch block, but there is little reason not to catch by const reference.

Note that if you throw; without a parameter in a catch block, the original exception is rethrown whether or not you caught a sliced copy or a reference to the exception object.

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3  
I'm not familiar with the term slice in this context. –  Kazark Nov 27 '12 at 16:59
4  
I think "slice" is a term that people who are used to reference-passing languages like to use. The idea is you "slice off" part of the object if you assign a derived object to its base type, which to me seems like a misleading way to look at it because what is actually happening is that in the base class's copy assignment operator base &operator=(const base &other) the derived object is being implicitly converted to a base & reference, so the assignment treats the derived class the same as the base class. there is no magic slicing-up or transferring stuff, you are calling a function –  Sutch May 16 '13 at 8:30

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