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Editorial Team
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Asked: 2026-05-18T12:33:52+00:00

I have this sample code which generates the following warning (VS2008 compiler with SP1):

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I have this sample code which generates the following warning (VS2008 compiler with SP1):

warning C4146: unary minus operator
applied to unsigned type, result still
unsigned

Code:

void f(int n)
{
}

int main()
{
    unsigned int n1 = 9;
    f(-n1);
}

But since function f is taking it’s parameter as an int shouldn’t this code compile without any warnings?

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1 Answer

  1. Editorial Team

    Standard 5.3.1/7

    The operand of the unary – operator
    shall have arithmetic or enumeration
    type and the result is the negation of
    its operand. Integral promotion is
    performed on integral or enumeration
    operands. The negative of an unsigned
    quantity is computed by subtracting
    its value from 2n, where n is the
    number of bits in the promoted
    operand. The type of the result is the
    type of the promoted operand.

    And the paragraph on Integral Promotion 4.5/1

    An rvalue of type char, signed char,
    unsigned char, short int, or unsigned
    short int can be converted to an
    rvalue of type int if int can
    represent all the values of the source
    type; otherwise, the source rvalue can
    be converted to an rvalue of type
    unsigned int.

    i.e. an unsigned int will not be promoted to an int.

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