Ask a New Question
Menu

solve each equation 1) log5-log2x=1 2) 2log(x+1)=5

2 answers

1)

log5 - log(2x) = 1
log(5/2x) = 1
5/(2x) = 10^1
20x = 5
x = 1/4

2)

2log(x+1) = 5
log(x+1) = 5/2
10^(5/2) = x+1
316.227766 = x+1
x = 315.227766

OR

log(x+1)^2 = 5
(x+1)^2 = 10^5
x+1 = ±√(10^5) , but clearly x >-1
x+1 = 316.227766..
x = 315.227766..
1)> log 5 + log 2 + log x = 1
>log (5 X 2) + log x = 1
>1 + log x = 1
>log x = 0
>x = 10^0
>x = 1

#2 has me twisted.
Similar Questions
    1. answers icon 3 answers
  2. Can someone explain how to figure out these types of problems?Solve log3 (x - 4) > 2. Evaluate log7 49. If log5 4 ≈ .8614 and
    1. answers icon 1 answer
  3. log2x+ 2log(y+1)=log(x+1)1.express y in terms of x 2.find the possible value of y when x=8
    1. answers icon 1 answer
    1. answers icon 0 answers
more similar questions