Register

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

Factor completely 3n^3 + 4n^2 + 24n + 32
181k views
3 votes
Factor completely 3n^3 + 4n^2 + 24n + 32

User Siddharood
by
7.6k points

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

User Bristows
by
8.8k points
← Prev Question Next Question →

Related questions

User Vasanth Nag K V
asked Dec 19, 2024 159k views
Which expressions are equivalent to -6n * (-12) * 4n? a) 288n b) -288n c) -24n^2 d) 24n^2
Vasanth Nag K V asked Dec 19, 2024
by Vasanth Nag K V
8.8k points
1 answer
5 votes
159k views
Ask a Question
Welcome to QAmmunity.org, where you can ask questions and receive answers from other members of our community.

9.4m questions

12.2m answers

Categories

Other Questions

How do you can you solve this problem 37 + y = 87; y =
What is .725 as a fraction
How do you estimate of 4 5/8 X 1/3
Link Copied!