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#include <iostream>
#include <sstream>

int main(int argc, char* argv[]) {
if ( argc != 2 ) {
 std::cout << "usage: " << argv[0] << " <n> " << std::endl;
 return 0;
}
std::stringstream strm;
strm << argv[1];
int count = 0;
int number;
strm >> number;
switch ( number ) {
 case 0: ++count; 
 case 1: ++count; 
 case 2: ++count; 
 case 3: ++count; 
 case 4: ++count; 
 }

    std::cout << "count: " << count << std::endl;
    return 0;
 }

I know this is a novice question, but i just started with C++. I took a game design course and this is the first example prof has on the SVN. When I run the prog after compiling,

./run 4 (i.e. I give argument 4) I get an output: count: 1

./run 3 I get an output: count: 2

./run 1 count: 4

./run 0 count: 5

Since count is initialized to 0, how come ./run 1 gives 4 or ./run 0 give count 5.

I am really sorry for such a silly question, but I would appreciate any explanation.

Thanks in Advance Regards

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2 Answers 2

With a switch statement, when control is passed to a case label, the code will continue on through all other case labels until a break or return (or other flow control mechanism) is encountered. This can be useful for unifying logic of specific cases, and can also be used for more complicated tasks. See for example: a Duff's Device.

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Thanks, aww! "break" yes! I just read a thread here on C++ books. Hopefully I will come with better questions soon. Thanks –  user1772218 Jan 16 '13 at 21:35
    
Upvote for mentioning Duff's Device ;) –  Nik Bougalis Jan 16 '13 at 21:37
    
Yes, this is the classic fall-through issue with switch statements. There are syntax checkers that will detect this because it is often (but not always) a bug. Fall-through can be quite handy, though, when you have values that require actions that differ only slightly. –  Michael Mathews Jan 16 '13 at 21:38
1  
.. or goto, or long jump, or exception, or interrupt (i.e. signal)... –  user405725 Jan 16 '13 at 21:40
2  
@user1772218 -- don't feel too bad about this confusing you. The "fall through by default on a switch/case" is a strange quirk of the C++ language. (I, personally, would rather have had a continue to go on to the next case rather than a break to exit the switch) –  Yakk Jan 16 '13 at 21:48

A switch statement defines where to enter a set of code.

switch ( number ) {
 case 0: ++count; //entrance point with number= 0
 case 1: ++count; //entrance point with number= 1
 case 2: ++count; //entrance point with number= 2
 case 3: ++count; //entrance point with number= 3
 case 4: ++count; //entrance point with number= 4
}

Inherently there is no exit except for getting to the end of the switch. However, it is possible to add a "break;" statement anywhere under a case to cause the code to exit the switch early (or break out of scope).

Additionally, but slightly off topic, the keyword "default" should be used in a case statement. The default keyword is called when the number doesn't have a defined case. Example, using the case above, is if someone sent the number 6 to the case.

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Good point about default. We use g++ 4.5.2 and with -Wall it will warn when you have an enumerated type as your switch varaible and not all defined values are covered in the case statements. Default will quiet this warning. –  Michael Mathews Jan 16 '13 at 23:46

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