Asked by Kate
Factor completely
2(3x - 5)3(2x + 1)^3 + (3x - 5)^2 (3)(2x + 1)^2 (2)
I'm not really sure how to do this problem
I started out by rewriting this
6(2x + 1)^3(3x -5) + 6(3x - 5)^2(2x + 1)^2
I am unsure were do go from here...
2(3x - 5)3(2x + 1)^3 + (3x - 5)^2 (3)(2x + 1)^2 (2)
I'm not really sure how to do this problem
I started out by rewriting this
6(2x + 1)^3(3x -5) + 6(3x - 5)^2(2x + 1)^2
I am unsure were do go from here...
Answers
Answered by
Kate
this was the answer in the back book. I do not see how to get this though
5(x + 3)(x - 2)^2 (x + 1)
5(x + 3)(x - 2)^2 (x + 1)
Answered by
Damon
6(2x + 1)^3(3x -5) + 6(3x - 5)^2(2x + 1)^2
6(2x+1)^2(2x+1)(3x-5) +6(2x+1)^2 (3x-5)(3x-5)
6(2x+1)^2(3x-5) [ 2x+1 + 3x-5 ]
6(2x+1)^2(3x-5)(5x-4)
So I do not see how to get that answer either.
6(2x+1)^2(2x+1)(3x-5) +6(2x+1)^2 (3x-5)(3x-5)
6(2x+1)^2(3x-5) [ 2x+1 + 3x-5 ]
6(2x+1)^2(3x-5)(5x-4)
So I do not see how to get that answer either.
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