Simplify. Consider all cases. f 14−(6−x) (14-(6-x) is surround by two absolute bars)

asked Dec 14, 2021 217k views

5 votes

Simplify. Consider all cases.

f

14−(6−x)
(14-(6-x) is surround by two absolute bars)

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4 votes

Explanation:

As (14-(6-x) is surrounded by two absolute bars.

$\left|14-\left(6-x\right)\right|$

Expanding
$14-\left(6-x\right)$

=14-6+x

$\mathrm{Subtract\:the\:numbers:}\:14-6=8$

=x+8

$=\left|x+8\right|$

Thus

$\left|14-\left(6-x\right)\right|=\left|x+8\right|$

It can also be solved by x, such as

$\left|x+8\right|=0$

$\mathrm{Apply\:absolute\:rule}:\quad \mathrm{If}\:|u|\:=\:0\:\mathrm{then}\:u\:=\:0$

x=-8

Darshan P answered Dec 18, 2021

8.3k points

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