1.On factorising (3a^2bc + 9ab²c + 21abc^2), we get : (a) 3abc (3a + 3b + 7c) (b) 3abc (a + b + c) (c) abc (a + 3b + 7c) (d) 3abc (a + 3b + 7c)

asked Mar 20, 2021 37.5k views

1 vote

1.On factorising (3a^2bc + 9ab²c + 21abc^2), we get :

(a) 3abc (3a + 3b + 7c)
(b) 3abc (a + b + c)
(c) abc (a + 3b + 7c)
(d) 3abc (a + 3b + 7c)

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2 votes

Answer:

Fast

Explanation:

You told me "Please answer fast." ;-;

Erick R Soto answered Mar 21, 2021

5.2k points

6 votes

actually it’s none of these.

24a^2bc+9ab2c
48abc+9ab2c

answer: 3abc ^ (16+3b)

GangstaGraham answered Mar 27, 2021

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