Question

How do you solve `4.7^ { x } - 60= 0`?

Answer 1

`log_"7"15`

Explanation:

`4.7^x-60=0`

`rArr4.7^x=60`

`rArr7^x=15`

Taking logarithm to the base `7` on both sides we get :-

`rArrlog_"7"7^x=log_"7"15`

`rArrx log_"7"7 =log_"7"15`

`:.x=log_"7"15`