We have the equation: \({{bx-11} \over {x^2-7x+10}} = {a \over {x -2}} - {3 \over {x-5}}\)
We begin by multiplying \(a \over {x-2}\) by \({x - 5} \over {x - 5}\). This gives us \({ax-5a } \over {x^2-7x+10}\)
We can then multiply \({3 \over{x-5}}\) by \({ x-2} \over {x -2}\), which gives us \({3x-6} \over {x^2-7x+10}\)
Note: We don't have to do anything to the other side of the equation because we were multiplying the equation by 1
We now disregard the denominator (because they're the same) and have the equation: \(bx-11 = ax-5a+3x-6\)
We can now combine like terms: \(bx-ax=-5a+5+3x\)
Now, we can factor out the x: \(x(b-a)=-5a+5+3x\)
Dividing by x, we have: \({b-a= {{-5a+5+3x} \over x}}\)
Adding 2a to both sides, we get: \(b+a={{-5a +5 +3x+2a} \over x}\)
We can then simplify further: \(b+a=\color{brown}\boxed{-3a+5+3x \over x}\)
.