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I'm on OS X with i686-apple-darwin11-llvm-gcc-4.2 (GCC) 4.2.1 (Based on Apple Inc. build 5658) (LLVM build 2336.11.00) and on Windows 7 with gcc (tdm64-1) 4.6.1.

Why does the following code generates a different output on both systems:

double d = 2.71828152557319224769116772222332656383514404296875;
printf("%1.55f\n", d);

OS X output is 2.7182815255731922476911677222233265638351440429687500000

Win7 output is 2.7182815255731922000000000000000000000000000000000000000

sizeof(double) == 8 on both systems.

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For the record, Wikipedia says Euler's constant begins with 2.71828182845904523536028747135266249775724709369995. That differs after 2.7182818. Apparently you converted a single-precision value to double, then used the result as a literal. –  Potatoswatter Nov 21 '12 at 5:55
    
Nope. It's meant to be an approximation. –  Max Ried Nov 21 '12 at 6:08
    
OK. I don't have a Windows system to test on, but I would guess that you can print additional digits by casting the number to long double. printf("%1.55Lf\n", (long double) d); This still won't get you 55 digits, though. You might also try the hex format conversion %a, which is the most practical way to exactly represent floating-point values, as long as all receiving platforms support it. (Of course, relying on rounding works just fine.) –  Potatoswatter Nov 21 '12 at 6:21
    
@Potatoswatter This is even worse... Just displays 0.000000000000000000000000000000000000000000000000000000000000 no matter what d is... I don't think Microsoft did a good job implementing the C standard library... –  Max Ried Nov 21 '12 at 6:47
    
Did you remember to add the L in %Lf? –  Potatoswatter Nov 21 '12 at 8:03
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1 Answer

up vote 4 down vote accepted

The C standard does not require that printf print the actual value, only that it be right up to a certain number of places and satisfy certain rounding-direction error constraints. Most unix-like operating systems print the exact value, or the value correctly rounded to the requested number of places if there are not enough places to print the exact value. MSVCRT rounds to a fixed number of places and pads the rest with zeros. Both behaviors are conforming, but the latter is really ugly and low-quality.

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So it depends on the standard library used? How do I generate a more precise output on Windows systems? –  Max Ried Nov 21 '12 at 5:12
    
@Max that should be another question. Probably you need to implement your own algorithm by multiplying by 10 and getting the integer part. But note that Windows did already print all the meaningful digits. The rest are just noise from the inherent imprecision of floating-point numbers. –  Potatoswatter Nov 21 '12 at 5:23
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@Potatoswatter: Multiplying by 10 and getting the integer part does not work. It will give the wrong answer. And the rest of the digits are not noise. As you can see in OP's example, they're exact. –  R.. Nov 21 '12 at 5:30
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@Potatoswatter: The value is an exact number. It's not "excessively precise". Whether it's close to the value of e and whether you think it's intended to serve as e is irrelevant; it's still an exact number. The naive multiply-by-10 loop implementation only works for values with small positive exponents. It does not work for negative exponents, in which case multiplication by 10 is a lossy operation, in general. –  R.. Nov 21 '12 at 6:00
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OK, back you your point. Let's consider another example that's not an approximation of e to get rid of the spurious notion of approximation. I'm going to use double x = 0.000000000000003552713678800500929355621337890625; This is an exact number; it's 2 raised to the -48 power. You could probably also write it as 0.0000000000000035527136788005 and get the same value, but this doesn't mean the former has "excess precision"; rather, it means the latter is a sufficiently-good approximation to the exact value of the former to translate to the same double-precision value. –  R.. Nov 21 '12 at 6:28
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