Question

How do you solve `\ln e ^ { x } = 3`?

Answer 1

`x=3`

Explanation:

Remember that:

`log_a(b^c)=clog_a(b)`

Therefore:

`=>log_e(e^x)=3`

`=>xlog_e(e)=3`

`=>x*1=3`

`=>x=3`

Answer 2

`x=3`

Explanation:

A way to very quickly see the answer without much math at all is to convert the logarithmic expression into an exponential one, that is:

`e^x=e^3`

...based off of what a logarithm means, and that the natural logarithm is just a logarithm with base `e`.

A more conventional approach could be to use the end-around-multiplier approach (as you may have heard it), where:

`ln(e^x)=3`
`x*ln(e)=3`
`x*1=x=3`

Answer 3

`x=3`

Explanation:

Given: `lne^x=3`.

`=>xlne=3` `(because lna^b=blna)`

`=>x*1=3` `(because lne=1)`

`=>x=3`