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Why is it that when my overflow calculation is an argument of the printf() function,the float does not overflow, but when the coded calculation is assigned to a separate variable ,float_overflowed, and is not an argument of the printf function I get the expected result of 'inf'? Why does this happen? What is causing this difference?

The code and results that led me to this question are below.

Here is my code that didn't execute as expected when the calculation is an argument:

float float_overflow;
float_overflow=3.4e38;
printf("This demonstrates floating data type overflow. We should  get an \'inf\' value.\n%e*10=%e.\n\n",float_overflow, float_overflow*10);     //No overflow?

The result:

This demonstrates floating data type overflow. We should  get an 'inf' value.
3.400000e+38*10=3.400000e+39.

And, when the calculation is not an argument:

float float_upperlimit;
float float_overflowed;
float_upperlimit=3.4e38;
float_overflowed=float_upperlimit*10;
printf("This demonstrates floating data type overflow. We should  get an \'inf\' value.\n%e*10=%e.\n\n",float_upperlimit, float_overflowed);        //for float overflow

and its result:

This demonstrates floating data type overflow. We should  get an 'inf' value.
3.400000e+38*10=inf.
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From my understanding, the "overflow" opccurs when storing the information in a variable. Because, otherwise, it's just another bit in the exponent. –  cyphar Oct 4 '13 at 8:23

2 Answers 2

up vote 5 down vote accepted

Actually the compiler is not constrained to do the arithmetic in float but it might well use double. 5.2.4.2.1 of the current C standard has:

Except for assignment and cast (which remove all extra range and precision), the values yielded by operators with floating operands and values subject to the usual arithmetic conversions and of floating constants are evaluated to a format whose range and precision may be greater than required by the type. The use of evaluation formats is characterized by the implementation-defined value of FLT_EVAL_METHOD

So you only know to force the value to be float when you assign it. Since in the context of the printf call (it is a va_arg function) any such argument is needed as double anyhow, there is no conversion taking place in case that FLT_EVAL_METHOD is of value 1, that is all float arithmetic is done in double.

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Thank you for the help! Can I change the FLT_EVAL_METHOD? If so, how? –  Jon Plotner Oct 4 '13 at 20:06
    
@JonPlotner, no, not in a portable way. The value of that constant is chosen by the compiler implementor. I guess allowing changes would be quite difficult, because this could lead to inconsistency with the math.h functions. –  Jens Gustedt Oct 4 '13 at 21:21
    
@JonPlotner If you are using GCC, then using the command-line options -mfpmath=sse -msse2 should configure GCC in a way such that it defines FLT_EVAL_METHOD as 0. –  Pascal Cuoq Oct 6 '13 at 16:44

Remember that for the "%e" format (and all other floating-point formating codes), the argument is actually a double. See e.g. the table in this reference.

That means that when you do the calculation "in-line" as the argument you do now actually overflow. But when you do it for the variable, then it's indeed overflowed and that will carry when used in the printf call.

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So if I understand you correctly I believe you are saying when calculated in-line "float_overflow*10" has not been declared as a float, but is stored as a double in the computers memory because the specifier "%e" point/makes space for a double, and not the smaller float? I just want to make sure I understand. I once was lost, but now I am found. Thank you Sheppard of programmers :) –  Jon Plotner Oct 4 '13 at 8:39
2  
This answer contains only half of the story. The type of the multiplication float_overflow*10 is float before it is promoted to double. With FLT_EVAL_METHOD=0, printf("%e", float_overflow*10) does printf inf. Jens Gustedt's answer contains the second half of the explanation. –  Pascal Cuoq Oct 4 '13 at 9:17
3  
“for the %e format […] the argument is actually a double” is also misleading. The promotion to double does not occur because %e expects it but because of the “The default argument promotions are performed on trailing arguments.” part of C99's 6.5.2.2:7. If the format had been %Le the argument would “actually” have been a long double but that would not have meant that the expression would have automatically been promoted to long double. –  Pascal Cuoq Oct 4 '13 at 9:26
    
Thank you for the further clarification. What is a default argument promotion? –  Jon Plotner Oct 4 '13 at 19:56

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