How do you simplify a logarithm expression with multiple terms?

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The discussion focuses on simplifying the expression x^(3logx2 - logx5). The simplification leads to the conclusion that the expression reduces to 8/5, which is confirmed as correct. Participants note that while x can be any positive number, it should not equal 1 to avoid issues with the logarithm. The final consensus is that the conditions for x are x > 0 and x ≠ 1. The simplification process is validated, and the exact numerical value is established.
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Homework Statement


Simplify x^(3logx2 - logx5) to find an exact numerical value.


Homework Equations





The Attempt at a Solution


3logx2=logx2^3 or logx8,
(logx8 - logx5)=logx8/5
the inverse would be x^y=8/5 (y is unknown)
therefore logx8/5=y and x^(logx8/5)=x^y=8/5
and the inverse of that would be logx8/5=logx8/5

(logx8/5)-(logx8/5)=0
rewriting it you get logx(8/5)/(8/5) or just logx1=0
once again the inverse would be 1=x^0 which tells me that x can be any given number.
Is this correct?
 
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Shawn Garsed said:

Homework Statement


Simplify x^(3logx2 - logx5) to find an exact numerical value.


Homework Equations





The Attempt at a Solution


3logx2=logx2^3 or logx8,
(logx8 - logx5)=logx8/5
the inverse would be x^y=8/5 (y is unknown)
therefore logx8/5=y and x^(logx8/5)=x^y=8/5
and the inverse of that would be logx8/5=logx8/5

(logx8/5)-(logx8/5)=0
rewriting it you get logx(8/5)/(8/5) or just logx1=0
once again the inverse would be 1=x^0 which tells me that x can be any given number.
Is this correct?

Your question asked you to just simplify the expression. You have shown that the expression given reduces to 8/5, which is correct, and you could stop there. And you are also correct that it doesn't matter what x is, although you would want x > 0.
 


Sorry for the late response, for some reason I couldn't login to my account yesterday.

Your question asked you to just simplify the expression. You have shown that the expression given reduces to 8/5, which is correct, and you could stop there.

Your right, I was trying to find an exact numerical value for x.

And you are also correct that it doesn't matter what x is, although you would want x > 0.

Shouldn't it be x>1, since 1^y always equals 1.
 
Last edited:


Right, the base shouldn't be 1 either. So the conditions are x > 0 and x \neq 1.
 

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