How do you solve the equation abs(2(1/3+1/2x))=1?

2 Answers
Jim G.
Nov 26, 2017

x=1/3" or "x=-5/3

Explanation:

"distribute the factor"

rArr|(2(1/3+1/2x)|=|2/3+x|

"the value inside the absolute value function can be"
color(blue)"positive or negative"

color(blue)"first solution"

2/3+x=1rArrx=1-2/3=1/3

color(blue)"second solution"

-(2/3+x)=1

rArr-2/3-x=1

rArr-x=1+2/3=5/3rArrx=-5/3

color(blue)"As a check"

x=1/3"

rArr|2/3+1/3|=|1|=1

x=-5/3

rArr|2/3-5/3|=|-1|=1

Douglas K.
Nov 26, 2017

Use the piecewise definition of the absolute value function to separate the equation into two equations and then solve each equation.

Explanation:

The piecewise definition of the absolute value function is:

|f(x)| = {(f(x); f(x) >= 0),(-f(x); f(x) < 0):}

In this case f(x) = 2(1/3+1/2x)

Substitute into the definition:

|2(1/3+1/2x)| = {(2(1/3+1/2x); 2(1/3+1/2x) >= 0),(-2(1/3+1/2x); 2(1/3+1/2x) < 0):}

Simplify the domain restrictions:

|2(1/3+1/2x)| = {(2(1/3+1/2x); x >= -2/3),(-2(1/3+1/2x); x < -2/3):}

Separate the given equation into two equations with its respective domain restriction:

2(1/3+1/2x) = 1; x >=-2/3 and -2(1/3+1/2x) = 1; x < -2/3

Multiply the second equation by -1:

2(1/3+1/2x) = 1; x >=-2/3 and 2(1/3+1/2x) = -1; x < -2/3

Distribute the two in both equations:

2/3+x = 1; x >=-2/3 and 2/3+x = -1; x < -2/3

Subtract 2/3 from both sides of both equations:

x = 1/3; x >=-2/3 and x = -5/3; x < -2/3

The domain restrictions can be dropped, because neither equation violates them:

x = 1/3 and x = -5/3

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