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What are the potential solutions of log4x+log4(x+6)=2?

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Sagot :

lhannearaujo

The potential solutions of [tex]log_4x+log_4(x+6)=2[/tex] are 2 and -8.

Properties of Logarithms

From the properties of logarithms, you can rewrite logarithmic expressions.

The main properties are:

  • Product Rule for Logarithms - [tex]log_{b}(a*c)=log_{b}a+log_{b}c[/tex]
  • Quotient Rule for Logarithms - [tex]log_{b}(\frac{a}{c} )=log_{b}a-log_{b}c[/tex]
  • Power Rule for Logarithms - [tex]log_{b}(a^c)=c*log_{b}a[/tex]

The exercise asks the potential solutions for  [tex]log_4x+log_4(x+6)=2[/tex]. In this expression you can apply the Product Rule for Logarithms.

                                  [tex]log_4x+log_4(x+6)=2\\ \\ x*(x+6)=4^2\\ \\ x^2+6x=16\\ \\ x^2+6x-16=0[/tex]

Now you should solve the quadratic equation.

 

 Δ=[tex]b^2-4ac=36-4*1*(-16)=36+64=100[/tex]. Thus, x will be [tex]x_{1,\:2}=\frac{-6\pm \:\sqrt{100} }{2\cdot \:1}=\frac{-6\pm \:10}{2}[/tex]. Then:

[tex]x_1=\frac{-6+10}{2}=\frac{4}{2} =2\\ \\ \:x_2=\frac{-6-10}{2}=\frac{-16}{2} =-8[/tex]

The potential solutions  are 2 and -8.

Read more about the properties of logarithms here:

https://brainly.com/question/14868849

andrewscherer2333

Answer:

2 and -8

Step-by-step explanation:

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