Factor completely 3n^3 + 4n^2 + 24n + 32

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asked Jun 1, 2019 181k views

3 votes

Factor completely 3n^3 + 4n^2 + 24n + 32

Mathematics
middle-school

Siddharood asked

by Siddharood

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1 Answer

6 votes

In real numbers:

$3n^3+4n^2+24n+32=n^2(3n+4)+8(3n+4)\\\\=(3n+4)(n^2+8)$

In complex numbers:

$=(3n+4)(n^2-(-8))=(3n+4)(n^2-(i\sqrt8)^2)\\\\=(3n+4)(n-i\sqrt8)(n+i\sqrt8)\\\\\sqrt8=√(4\cdot2)=\sqrt4\cdot\sqrt2=2\sqrt2\\\\=(3n+4)(n-2i\sqrt2)(n+2i\sqrt2)$

Used
(a-b)(a+b)=a^2-b^2

Bristows answered Jun 8, 2019

by Bristows

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