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Following are 2 different interpretations:

char c;  // 1
struct MyChar { char c; };  // 2

If I do new MyChar[100], will it allocate 100 bytes in all platform ? Adding non-virtual constructor/destructor and/or operators will make any effect on the size of MyChar ?

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2 Answers

up vote 4 down vote accepted

MyChar may have unnamed padding bytes after c, so no, it isn't guaranteed that sizeof(MyChar) is 1.

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Is there any standard language support to avoid that padding ? –  iammilind Jun 28 '11 at 3:29
    
Nope; your only option is really to use compiler-specific structure packing pragmas/attributes. –  James McNellis Jun 28 '11 at 3:43
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Many common compilers use #pragma pack (1)... GCC, IBM, MS... how best to restore the default packing afterwards might be a bit more variable though, can't remember :-). –  Tony D Jun 28 '11 at 4:48
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On MSVC, you can use:

#pragma pack(1)
struct MyChar 
{ 
    char c; 
}; 

// Restore
#pragma pack()
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Are you sure? I'm almost certain that you need to use #pragma pack(push) / #pragma pack(1) followed after use by #pragma pack(pop). It is my understanding that the #pragma pack() sets the pack value back to its default, whatever that is, which may not be what the packing was before your #pragma pack(1). –  James McNellis Jun 28 '11 at 14:06
    
push and pop are used to stack-up the pragmas packs. They aren't necessary. For example your packing may be 2 and then 4 and then 1, there you may use push/pop. I have used pack(1) and then reverted using pack() and works as needed. –  Ajay Jun 28 '11 at 14:42
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