Solve for $x$ $x$ : $log (x) - log (x + 7) = - 1$ $log(x) - log(x + 7) = -1$ ?

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Solve for $x$ $x$ : $log (x) - log (x + 7) = - 1$ $log(x) - log(x + 7) = -1$ ?

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Answer 1 · 2016-11-21T20:12:16

$x = \frac{7}{9}$ $x=7/9$ .

Explanation:

Remember the rules of logarithms: $log a - log b = log (\frac{a}{b})$ $loga-logb=log(a/b)$ . Using this, we get

$log x - log (x + 7) = - 1$ $logx-log(x+7)=-1$
$\Rightarrow log (\frac{x}{x + 7}) = - 1$ $=>log(x/(x+7))=-1$

Now we remember that $log c = d \Leftrightarrow c = 10^{d}$ $logc=d<=>c=10^d$ . Essentially what we're doing there is taking 10 to the power of both sides, and since $10^{x}$ $10^x$ and $log x$ $logx$ are inverse functions, they cancel off. $f^{- 1} [f (x)] = x$ $f^-1[f(x)]=x$ . So we get

$log (\frac{x}{x + 7}) = - 1$ $log(x/(x+7))=-1$
$(\Rightarrow 10^{log (\frac{x}{x + 7})} = 10^{- 1})$ $(=>10^(log(x/(x+7)))=10^-1)$
$\Rightarrow \frac{x}{x + 7} = 10^{- 1}$ $=>x/(x+7)=10^-1$
$\Rightarrow x = \frac{x + 7}{10}$ $=>x=(x+7)/10$
$\Rightarrow 10 x = x + 7$ $=>10x=x+7$
$\Rightarrow 9 x = 7$ $=>9x=7$

$\Rightarrow x = \frac{7}{9}$ $=>x=7/9$

So $x = 7 / 9$ $x=7//9$ is our answer.

Answer 2 · 2016-11-21T20:19:40

Please see the explanation for steps leading to the answer: $x = \frac{7}{9}$ $x = 7/9$

Explanation:

Given: $log (x) - log (x + 7) = - 1$ $log(x) - log(x + 7) = -1$

Use the property $log (a) - log (b) = log (\frac{a}{b})$ $log(a) - log(b) = log(a/b)$

$log (\frac{x}{x + 7}) = - 1$ $log(x/(x + 7)) = -1$

Make logarithm disappear by making both sides the exponent of 10:

$cancel10^(cancel(log)(x/(x + 7))) = 10^(-1)$

Making a logarithm an exponent of its base, makes both disappear:

$x/(x + 7) = 10^(-1)$

Multiply both sides by $10(x + 7)$ :

$10cancel((x + 7))x/cancel(x + 7) = cancel10(x + 7)cancel10^-1$

$10x = x + 7$

$9x = 7$

$x = 7/9$

Check:

$log(7/9) - log(7/9 + 7) = -1$

$-1 = -1$
This checks.

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