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use vsprintf to write the content to file.

output format is:

"tt2:%f, tt2:%x", tt2, *((int *)&tt2)

linux:

gcc 4.4.5: -O2 -ffloat-store

In linux.in file is like this:

tt2:30759.257812, tt2:46f04e84

windows:

vs2005 sp1: /O2 Precise (/fp:precise)

In windows. in file is like this:

tt2:30759.257813, tt2:46f04e84

Why that is different?

==================================

I have find the reason for my case.

In windows, I use the ofstream to output to file. It'c c++ lib.

In linux, I just use write to output to file. It's c lib.

When I use ofstream in linux, the output is the same.

After all, thanks for everyone~

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Where does tt2 come from? –  James Kanze Sep 7 '12 at 7:55
1  
Different rounding by the different compilers? –  Joachim Pileborg Sep 7 '12 at 7:57
1  
@JoachimPileborg: Quite possible that it's the C library, not the compiler. –  MSalters Sep 7 '12 at 8:13
    
The exact value here is 30759.2578125. Linux is rounding correctly, according to the usual round-ties-to-even rounding mode. Windows is not. –  Mark Dickinson Sep 7 '12 at 8:50
    
@Mark Dickinson: Thanks. Maby, I used differet lib. –  hdbean Sep 7 '12 at 9:58
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1 Answer 1

Floating-point numbers are stored in the computer in binary. When printing them into decimal floating-point, there are multiple correct representations for them. In your case, both of them are correct, as both of them convert back to the original binary floating-point value. Look at the output of this file, which I compiled using GCC:

#include <stdint.h>
#include <stdio.h>

int main()
{
    float a = 30759.257812f;
    float b = 30759.257813f;

    printf("%x\n%x\n", *(uint32_t *)&a, *(uint32_t *)&b);
}

Output:

46f04e84
46f04e84

Therefore, an implementation of printf and friends may choose to display any of the two decimal floating-point numbers.

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Thanks very much for your answer! Is there any way to makesure the output the same use "%f", when the float is the same in memory? –  hdbean Sep 7 '12 at 8:09
1  
When converting a floating point number to decimal, there is only one "correct" conversion, depending on the rounding conventions used (which are implementation defined). (There will be, of course, and infinite number of decimal values which convert to the same floating point number.) –  James Kanze Sep 7 '12 at 8:10
    
Does that means the rounding conventions in vs2005 and gcc is defferent, in my case? –  hdbean Sep 7 '12 at 8:13
    
In my case, I proceeed tt2 like this, tt2 = float_floor_5(tt2); float::float_floor_5(float v) { float l_v = v; float v_3 = floor(l_v * 100000.0f); v_3 = v_3 / 100000.0f; return v_3; } –  hdbean Sep 7 '12 at 8:18
    
@JamesKanze What is your definition of a "correct" conversion? IIRC, the only requirements of a "correct" conversion is to convert back to the original binary floating-point number and to minimize the number of digits. So, I don't see why any of the two representations would be "less" correct than the other. –  user1202136 Sep 7 '12 at 11:30
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