cscott said:[tex]log_x 4 + log_x 8 =5[/tex]
I simplified that to [itex]log_x 32 = 5[/itex] but I can't get my head around what to do next and it's annoying me because I feel it's going to be something simple.
steven187 said:
Actually, once you've got [tex]2 = x^9[/tex], all you've got to do is [tex]\sqrt[9]{2} = x = 1.080059739[/tex].cscott said:Thanks, I understand that now, but I'm having trouble with another
[tex]20 000 = 10 000(x)^9[/tex]
[tex]2 = x^9[/tex]
[tex]log 2 = log x^9[/tex]
[tex]log 2 = 9 \cdot log x[/tex]
I think I got closer to the answer...
I don't think it's really trial and error; had it been 31 or 33, the answer wouldn't have been an integer. "Luckily", [tex]\sqrt[5]{32} = 2[/tex].cscott said:
The notation "log_x 32 = 5" means that the logarithm of 32 to the base x is equal to 5. In other words, x raised to the power of 5 is equal to 32.
To solve for x in "log_x 32 = 5", we can rewrite the equation as x^5 = 32 and then take the fifth root of both sides. The solution for x would be the number that, when raised to the fifth power, equals 32.
The base of the logarithm in "log_x 32 = 5" is x. This means that x is the number that we are raising to a power in order to get 32.
Yes, the base of the logarithm can be any positive number except 1. However, the most commonly used bases are 10 and e (the natural logarithm).
The value of x in "log_x 1 = 5" is undefined. This is because any number raised to the power of 0 is equal to 1, so there is no solution for x that would make this equation true.