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Below is the code in C++,

Num *= other.Den;
Den *= other.Num;
if (Den.isNegative()) {
    Num = -Num;
    Den = -Den;
}
assert(Den.isStrictlyPositive());

where Num and Den are of type LLVM::APInt.

For some reason I am getting the assertion failed. I have checked if the Denominator is negative explicitly and turned it positive. Can someone please let me in what scenario in this code, the assertion can fail? When I run my code against test case it fails. The test case is very large, and I have not been successful in cornering a particular case. The above code is a part of my algorithm which is doing some other job.

Here is the implementation of isStrictlyPositive. It is using the LLVM library file APInt.h.

bool isStrictlyPositive() const {
return isNonNegative() && !!*this;
}

bool isNonNegative() const {
return !isNegative();
}
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3  
What if the value is 0? – Jesse Good Oct 25 '12 at 1:37
    
I have edited the question based on the comment. What if the value is 0 is a good question. Thanks Jesse. Can you confirm if 0 is treated as positive or negative. The compiler is gcc – Romaan Oct 25 '12 at 1:41
    
@Romaan: This has nothing to do with the compiler. isStrictlyPositive is specified as "This tests if the value of this APInt is positive (> 0). Note that 0 is not a positive value." – Mankarse Oct 25 '12 at 1:43
    
Is there any other possibility? – Romaan Oct 25 '12 at 2:42
up vote 3 down vote accepted

I'm basing this off the following assumptions:

  • Strictly positive means > 0
  • isNegative is < 0

Given the snippet you quoted, the function isStrictlyPositive boils down to:

return isNonNegative() && !!*this;

Which is equivalent to:

return !(*this < 0) && !!*this;

!!*this is equivalent to !(!*this) which is equivalent to !(*this==0) which is equivalent to *this!=0, so the expression is:

return !(*this < 0) && *this!=0;

Which can be simplified to:

return *this>=0 && *this!=0;

Which is really just:

return *this > 0;

So, your issue is that Den is 0 and is therefore not negative and not strictly positive.

share|improve this answer
    
+1 outstanding breakdown. – M4rc Oct 25 '12 at 2:25

0 is neither negative nor strictly positive.

share|improve this answer
    
Thanks Jesse and Mankarse. You Rock – Romaan Oct 25 '12 at 1:43

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