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numeric_limits<T>::min();
numeric_limits<T>::lowest();

What is the different between the value returned by both functions?

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3 Answers

up vote 4 down vote accepted

Paragraph 18.3.2.4 of the C++11 Standard specifies:

static constexpr T min() noexcept;

1 Minimum finite value.

2 For floating types with denormalization, returns the minimum positive normalized value.

3 Meaningful for all specializations

[...]

static constexpr T lowest() noexcept;

6 A finite value x such that there is no other finite value y where y < x.

7 Meaningful for all specializations in which is_bounded != false.

Footnote 197 then adds the relevant remark:

lowest() is necessary because not all floating-point representations have a smallest (most negative) value that is the negative of the largest (most positive) finite value.

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+1 for exact quote from the standard in less than 5 minutes. –  Morwenn Apr 3 '13 at 9:31
    
in another word lowest return something like the 2s complement for maximum positive integer. –  Muhammad alaa Apr 3 '13 at 9:35
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@Muhammadalaa: for integer types there is no difference between min() and lowest(). –  Steve Jessop Apr 3 '13 at 9:57
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For floating point types min returns the smallest finite number that is > 0 representable in the type (i.e. the number having the lowest absolute value != 0) while lowest returns the smallest finite number that is representable (i.e. the negative number of maximal absolute value that is less than -infinity).

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The smallest number that is representable is negative infinity; lowest give the smallest finite representable value. –  Pete Becker Apr 3 '13 at 13:29
    
Edited, thank you for the comment. –  filmor Apr 3 '13 at 14:19
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If you check a reference of these functions, e.g. this one for min and this one for lowest you can see that there are some values that differ.

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