$$r\left(\frac 1p -1\right)- \left(\frac 1p\right)^\frac89 + \left(\frac 1p\right)^\frac19 =0$$
where $ r = 2^\frac89 - 2^\frac19$
How do I solve this without a computer?
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5What about $p=\frac{1}{2}$? If you choose $p$ so that $\frac{1}{p}=2$, then you'll find that the second and third terms match $r$, and, moreover, the factor on $r$ of $\left(\frac{1}{p}-1\right)$ becomes $1$. – Michael Burr Oct 30 '15 at 16:19
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Since $r=2^{8/9}-2^{1/9}$, it seems like it might be possible to choose $\frac{1}{p}=2$, i.e., $p=\frac{1}{2}$. This makes the expression become $r(2-1)-2^{8/9}+2^{1/9}=r-r=0$. Therefore $p=\frac{1}{2}$ is a root.
If $\frac{1}{p}=1$, then the first term vanishes and $1^{8/9}=1$ and $1^{1/9}=1$. Therefore $1$ is another real root.
As @user44394 states, observe that $\frac{1}{2}(2^{8/9}-2^{1/9})=2^{-1/9}-2^{-8/9}=(\frac{1}{2})^{8/9}-(\frac{1}{2})^{1/9}$ giving the third (and last by Descartes rule of signs) root of $p=2$.
Michael Burr
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2Similarly to the case where $\frac1p = 2$, if $\frac1p = \frac12$, i.e., $p=\frac12$ then we find that $(2^\frac89 -2^\frac19)(-\frac12)=\frac12^\frac89-\frac12^\frac19$ and the LHS =RHS so is $p=2$ not also a solution? – damson_jam Oct 30 '15 at 16:39
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First of all, there no need to express as 1/p so
$(2^{\frac 8 9} - 2^\frac 1 9)(m - 1) - m^{\frac 8 9} + m^{\frac 1 9} = 0$
$(2^{\frac 8 9} - 2^\frac 1 9)(m - 1) - (m^{\frac 8 9} - m^{\frac 1 9}) = 0$
Oh look! The $(m^{\frac 8 9} - m^{\frac 1 9})$ looks like $(2^{\frac 8 9} - 2^\frac 1 9)$! What if $m = 2$? Then $m - 1$ = 1 and we'd get an equality. So $p = \frac 1 2$ is a solution.
But that was us seeing something. Ho do we solve in general?
$(2^{\frac 8 9} - 2^\frac 1 9) = \frac{ (m^{\frac 8 9} - m^{\frac 1 9})}{m-1} $
$2^{\frac 1 9}(2^8 - 2) = \dfrac {m'^8 - m} {m'^9 - 1}$ for $m' = m^{\frac 1 9}$....
You know what? let's just say $p = \frac 1 2$ and call it a day.
fleablood
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Also, include the easy $m=1$ answer. And +1 for making me chuckle. – Michael Burr Oct 30 '15 at 16:38