You need to find the value of “t” (tension parameter) that produces the desired value of x. if you are using the range of 0 to 1 the parameter “t” value will be somewhere near to 0.5. Once you know t you can calculate the corresponding value of y. Solve a cubic equation which will generate 3 values for “t” that will result in same value of x. Check the link below.

http://algorithmist.wordpress.com/2009/09/28/cardinal-splines-part-2/

Cardinal splines specify the tangents at interior points based on the vector from previous point to subsequent point. Each tangent is parallel to this vector and some multiple of its length. For example, the tangent direction at point P1 is parallel to the vector P2 – P0, or we could simply write something like T1 = s(P2 – P0) where s is a real number.

Check this part of code below where xtarget is the input value x.

Code:

 for (Double t = 0; t<=1; t += 0.01)
  {
      s = (1 - t) / 2;
P(t)x = s(-t3 + 2t2 – t)P1X + s(-t3 + t2)P2X + (2t3 – 3t2 + 1)P2X + s(t3 – 2t2 + t)P3X + (-2t3 + 3t2)P3X + s(t3 – t2)P4X

P(t)y = s(-t3 + 2t2 – t)P1Y + s(-t3 + t2)P2Y + (2t3 – 3t2 + 1)P2Y + s(t3 – 2t2 + t)P3Y+ (-2t3 + 3t2)P3Y + s(t3 – t2)P4Y

if(P(t)x=>xtarget)
{
return P(t)y;
}
}

The above method will give the approximate point P(t)y on the curve.