If $x, \log_{10}(x) , \log_{10}\log_{10}(x)$ are in arithmetic progression, find the range of $x.$
(a) $0 < x < 1$
(b) $1 < x < 10$
(c) $10 < x < 100$
(d) $100 < x < 1000$
I have found the answer but I want a solution using logic without graph.
If $x, \log_{10}(x) , \log_{10}\log_{10}(x)$ are in arithmetic progression, find the range of $x.$
(a) $0 < x < 1$
(b) $1 < x < 10$
(c) $10 < x < 100$
(d) $100 < x < 1000$
I have found the answer but I want a solution using logic without graph.
To say that these numbers are in arithmetic progression is to say that $ 2 \, \log_{10} x = x + \log_{10} \log_{10} x \, . $ Exponentiating this gives the equivalent equation $ x^2=10^x\log_{10} x \, . $ If $x<1$, the two sides of this equation have opposite sign, so the equation doesn't hold. Moreover, if $x > 10$, $ 10^x \log_{10} x > 10^x = (\sqrt{10})^{2x} > (2^{x})^2 > x^2 \, , $ so again the equation doesn't hold. So the only way it can hold is if $1
On the other hand, the function $f(x)=x^2-10^x \log_{10} x$ is continuous and has a sign change on $[1,10]$, so by the Intermediate Value Theorem there must be some $x$ in that range which satisfies the equation.
I have found one approach If If $\log a$, $\log b$ and $\log c$ are in AP then $a$, $b$ and $c$ are in GP.
Hence, $x^{2}=10^{x}\times \log_{10}x$.
Among the given options this is only possible if x is less than 10 and greater than 1.
If $x$ is less than $1$, then $\log x$ is negative, and $\log \log x$ is undefined. So (a) is out. Let's look at (b). If $1 < x < 10$, then $0<\log x<1$, and $\log\log x < 0$. Maybe.
Now (c) and (d). If $10
So (b) must be the answer.
We can show that there exists an $x$ in that range that makes $x$, $\log x$, $\log \log x$ an arithmetic progression. As $x$ moves from $1$ to $10$,
Therefore we must have $x - \log x = \log x - \log \log x$ for some $x$ in the interval $(1,10)$.
I know this is tagged "precalculus", but the following comes to mind ...
Note that if $f(x)=\log_{10}x \text{ then } f'(x)=\cfrac 1 {x \log_e {10}}$
Apply the Mean Value Theorem to $f(x)=\log_{10}x$ at the points $x$ and $y$ with $x>y$ to identify a $z$ with $y < z < x$ such that $\log_{10}x-\log_{10}y = \cfrac 1 {z \log_e {10}}(x-y)$.
Now set $y=\log_{10}x$ and use the arithmetic progression to see that the differences are equal so that $\cfrac 1 {z \log_e {10}}=1 \text { and } z=\cfrac 1 {\log_e {10}} \approx 0.4$.
So we have $y
So to conclude, we have $1 < x < e$.