How do you solve for x in $- 5 = {log}_{2} x$ $-5 = log _2 x$ ?

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How do you solve for x in $- 5 = {log}_{2} x$ $-5 = log _2 x$ ?

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Answer 1 · 2016-03-16T22:38:43

$x = \frac{1}{32}$ $x=1/32$

Explanation:

We start with $- 5 = {log}_{2} x$ $-5=log_2x$ . Now, we can rewrite a logarithm as an exponentiation equation, like this: $y = b^{x}$ $color(red)(y)=color(blue)(b)^(color(green)(x)$ becomes ${log}_{b} y = x$ $log_color(blue)(b)color(red)(y)=color(green)(x)$ and vice versa. So, ${log}_{2} x = - 5$ $log_color(blue)(2)color(red)(x)=color(green)(-5)$ becomes $x = 2^{- 5}$ $color(red)(x)=color(blue)(2)^(color(green)(-5)$ .

And if we solve $2^{- 5}$ $2^-5$ we get $x = \frac{1}{32}$ $x=1/32$ or $.03125$ $.03125$ .

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How do you solve for x in $- 5 = {log}_{2} x$ $-5 = log _2 x$ ?

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How do you solve for x in −5=log2x-5 = log _2 x?

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How do you solve for x in $- 5 = {log}_{2} x$ $-5 = log _2 x$ ?