7
unsigned int value = 1860;
int data = 1300;
if( (data - value) > 0)
{
    printf("Why it is printing this");
}

output : Why it is printing this

I am not understanding why subtraction of signed form unsigned pass through the "if" even though value of variable "data" is less than variable "value". I am really curious how signed and unsigned subtraction 'a small mistake' but leads to a big one because I was using "Delay" function instead of "printf" and my task was getting delayed which was creating chaos.

unsigned int value = 1860;
int data = 1300;
if( (data - value) > 0)
{
    Delay(data - value);
}

This part is keep on delaying and my task never ends.That means value of "data - value" is negative that's why it goes on infinite waiting. Simultaneously it is passing through the "if" where , the condition is "data-value" > 0 . My Doubt if signed gets converted in unsigned and passes through "if" , then why it is giving negative value to "Delay" function.

marked as duplicate by rici c May 30 '15 at 5:40

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

9

int data type is by default signed in C/C++ i.e. supports negative numbers. When an expression contains both signed and unsigned int values, the signed int will be automatically converted to unsigned int and so the result will not be less than 0. What you may want to do is this:

unsigned int value = 1860;
int data = 1300;
if( (signed)(data - value) > 0)
{
    printf("Why it is printing this");
}

It explicitly converts the result of expression to a signed value so that it may be a negative number.

Not the answer you're looking for? Browse other questions tagged or ask your own question.