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This may be an incredibly silly question, but is the int16_t type declared in <stdint.h> guaranteed to be signed, or is it just supposed to be signed? I would assume that it would have to be signed, but surprisingly I can't seem to find any hard evidence (i.e. references to the spec) that explicitly mention this anywhere.

Could someone confirm this either way? I'd really appreciate specific references to the spec, if at all possible.

Thanks so much!

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2 Answers 2

up vote 6 down vote accepted

n1256 7.18.1p1 says:

When typedef names differing only in the absence or presence of the initial u are defined, they shall denote corresponding signed and unsigned types as described in 6.2.5; an implementation providing one of these corresponding types shall also provide the other.

Since there is an int16_t and a uint16_t, the int16_t is therefore signed.

Or indeed 7.18.1.1p1:

The typedef name intN_t designates a signed integer type with width N , no padding bits, and a two’s complement representation. Thus, int8_t denotes a signed integer type with a width of exactly 8 bits.

which is more explicit about it.

EDIT: although strictly speaking, int16_t is not guaranteed to be signed in the sense that it's not guaranteed to exist. If you have CHAR_BIT==9, for example, there cannot be a int16_t type.

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The topic is addressed more explicitly in 7.18.1.1 p1: "The typedef name intN_t designates a signed integer type with width N , no padding bits, and a two’s complement representation." –  David German Jan 9 '11 at 7:27
2  
"If you have CHAR_BIT==9, for example, there might be no int16_t type." should read "If you have CHAR_BIT==9, for example, there cannot be an int16_t type." –  R.. Jan 9 '11 at 8:30
    
@R.. Yes, looks like you're right. I was thinking there might be an 18-bit type with 2 padding bits, but padding bits are specifically disallowed in intN_t types. –  Philip Potter Jan 9 '11 at 8:33

Yes, int16_t is guaranteed to be signed two's complement by the ISO spec.

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