Sum of series $1+11+111+\cdots+11\cdots11$ ($n$ digits)
We have:
$1=\frac {10-1}9,$
$11=\frac {10^2-1}9$
.
.
.
$11...11= \frac {10^n-1}9$ (number with $n$ digits)
and summing them we find the sum ($S$) as:
$S=(10^{n+1}-9n-10)/81$
Also the general form of terms is:
$s(n)=(10^{n+1}-10^n-9)/81$
Now consider the function:
$f(x)=10^{x+1}−10^x-9$
Since $\Delta x= 1$, due to definition of integral we can write:
$S=(1/81)\sum (10^{x+1}−10^x-9), [1, ∞]$
$ =(1/81)∫(10^{x+1}-10^x-9) dx ;[0, 1]$
but it does not work. Can someone say what went wrong, i.e, Why doesn't the integral give $S$ as I mentioned first?
I realized now that this is more a sequence rather than a series. A sequence is a set of numbers which are resulted from a general term where as a series is a set of functional elements; the derivative of elements of a sequence is zero and its integration is pointless. So using the integration of general term of a sequence to find its sum is just not needed.
