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I have such a structure (for some reason I cant just use an array):

  struct OperatorData 
  {
    char m_record_0[RIX_OPERATOR_CONFIG_SIZE];
    char m_record_1[RIX_OPERATOR_CONFIG_SIZE];
    //....
    char m_record_9[RIX_OPERATOR_CONFIG_SIZE];
  };

And I am trying to calculate amount of fields at compile-time:

enum {fieldsAmount = sizeof(OperatorData) / sizeof(OperatorData::m_record_0)};

And the compiler reports such a message:

Error:  #245: a nonstatic member reference must be relative to a specific object
  enum{fieldsAmount = sizeof(OperatorData) / sizeof(OperatorData::m_record_0)};
                                                                  ^

I use keil uVision3 V3.60. It doesn't matter where I place enum declaration inside or outside the structure. Why can't the compiler take size of this membmer?

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The argument of sizeof should be a type (not true here) or an L-value (also not true). –  Matthias Apr 18 '12 at 10:00
    
@Matthias: The operand doesn't have to be an lvalue; any expression is allowed, as long as its type is appropriate for sizeof. –  Mike Seymour Apr 18 '12 at 10:07
2  
You should also consider the data alignment, controlled by pragmas, as described here stackoverflow.com/a/10207185/147763 –  Paolo Brandoli Apr 18 '12 at 12:01

7 Answers 7

up vote 12 down vote accepted

It looks like your compiler doesn't support C++11 that allows the use of Type::member in unevaluated expressions. You'll have to manufacture an expression of the correct type, something like:

OperatorData* noImpl();

enum{fieldsAmount = sizeof(OperatorData) / sizeof(noImpl()->m_record_0)};
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+1. Nice one. Better than mine! –  Nawaz Apr 18 '12 at 10:06
1  
By the way, OperatorData noImpl(); is also fine. Then you've to write sizeof(noImpl().m_record_0). –  Nawaz Apr 18 '12 at 10:35
    
Isn't noImpl a function? –  Kerrek SB Apr 18 '12 at 12:48
    
@KerrekSB: Yes. That is a function. –  Nawaz Apr 18 '12 at 14:39

Use typedefs:

typedef char RecordType[RIX_OPERATOR_CONFIG_SIZE];

struct OperatorData 
{
   RecordType m_record_0;
   RecordType m_record_1;
   //....
   RecordType m_record_9;
};

Then:

enum {fieldsAmount = sizeof(OperatorData) / sizeof(RecordType)};
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+1: Man, you're quicker than me;) –  Eric Z Apr 18 '12 at 10:10

I don't think this is safe; there can be padding added between or after the members, which will be included in sizeof (OperatorData) but not in any specific member's size.

Of course you could use the already-available RIX_OPERATOR_CONFIG_SIZE value to get an approximation:

const size_t num_records = sizeof (OperatorData) / RIX_OPERATOR_CONFIG_SIZE;

assuming it's only used for char arrays, and that it dwarves any padding.

You can also use offsetof(), this has the benefit of including at least padding between the members:

const size_t num_records = sizeof (OperatorData) /
       (offsetof(OperatorData, m_record_1) - offsetof(OperatorData, m_record_0));

Note, again, that this also is just an approximation. Hopefully, any padding will be much smaller than the members themselves so that their contribution will be rounded away.

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A non-static member cannot be accessed using :: operator.

In C++11, you can do this (quick demo):

#include <utility>

size = sizeof(OperatorData)/sizeof(std::declval<OperatorData>().m_record_0);

And in C++03, do this:

size = sizeof(OperatorData) / sizeof(((OperatorData*)(0))->m_record_0);

The type of the expression ((OperatorData*)(0)) is OperatorData*, so I use ((OperatorData*)(0))->m_record_0 to get the size which is roughly equivalent to this:

OperatorData*  od = ((OperatorData*)(0));
size_t size = sizeof(od->m_record_0); 

But it is not exactly same, as the above statement will be executed, but the expression in sizeof() will not be executed.

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You first have to set the correct alignment using compiler pragmas ( http://msdn.microsoft.com/en-us/library/2e70t5y1(v=vs.80).aspx in Visual Studio, http://gcc.gnu.org/onlinedocs/gcc/Structure_002dPacking-Pragmas.html in gcc) otherwise sizeof(OperatorData) may be anything.

Then you have to have an instance of OperatorData from which you pick up the records and use them in sizeof()

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This is because m_record_0 is not a static member of the struct OperatorData. You can only do that when it's a static member.

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But isn't size of field known at the compile-time? –  D_E Apr 18 '12 at 10:00
    
Yes, sizeof is a compile-time operator which is correct. The problem is you cannot refer to the member by OperatorData::m_record_0 no matter when, if m_record_0 is not a static member of your struct. –  Eric Z Apr 18 '12 at 10:02

Create an Object of your struct and use sizeof() operator on it.

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