3

I have been trying to solve a small problem which includes absolute value of some terms. In z3 there is no support for abs() function. In python there is, but I eventually i have to pass it to z3py. Is there any way through which I can pass terms with absolute operator to z3 from python or is there any other way around? Following is the code for a small example.

`
x = Int('x')
y = Int('y')

x= abs(2-y)
s=Solver()
s.add(x>0)
s.add(y>0)
s.check()
m=s.model()
print m`

The answer should be y=1, which is the case when you remove abs(). Is there any way to solve this problem with absolute value function? abs(). Or is there any way that I can solve it in python and then I can pass it to z3. I tried sympy as well but its not working.

  • Perhaps you can use the fact that |x| > y is the same as x > y or -x < -y and |x| < y is the same as x < y and -x > -y (the easiest way to see this is to draw the domain on a number line). – asmeurer Mar 21 '14 at 4:36
6

Here is one approach:

x = Int('x')
y = Int('y')

def abs(x):
    return If(x >= 0,x,-x)

s=Solver()
s.add(x == abs(y-2))
s.add(x>0)
s.add(y>0)
s.check()
m=s.model()
print m
0

The idea of absolute value is very simple. You want to know the distance from zero. One way of doing this is to flip on sign of all negative terms.

if x<0:
    x=-x
0

You can transform your problem so you don't need abs.

In your particular problem 'x = abs(2-y), x > 0', so 'abs(2-y) > 0'. Absolute value can't be negative, and you left with just y != 2.

So you can remove x definition and x-related constraints, and just add 'y != 2' - you'll have an equivalent problem.

If you need value of x, just get it from value of y later in Python.

  • my expression are coming from 30*30 matrices I dont even know for which value of y they are going to be negative, therefor to add a constraint so that system may not go in negative domain e.g. (y!=2), is not at all feasible. – user3196876 Mar 21 '14 at 1:14

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