Always remember that solubility depends on the molar solubility x, and not the Ksp. The Ksp value may be deceiving. Sometimes a lower Ksp for a compound is actually the more soluble one.
In this case, the molar solubility for Silver sulfate is 4x^3=12 x 10^-6; x = 1..... x 10^-2 (around there)
The molar solubility for Barium sulfate is x^2 = 15E-10; x = 4 x 10^-5 (approx). This we can see that the molar solubility for Ag2SO4 > BaSO4; x = 10^-2 > x = 10^-5