Question

How do you apply the ratio test to determine if `sum (1*3*5* * * (2n-1))/(1*4*7* * * (3n-2))` from `n=[1,oo)` is convergent to divergent?

Answer 1

the series is convergent.

Explanation:

We can apply d'Alembert's ratio test:

Suppose that;

`S=sum_(r=1)^oo a_n \ \`, and `\ \ L=lim_(n rarr oo) |a_(n+1)/a_n|`

Then

if L < 1 then the series converges absolutely;
if L > 1 then the series is divergent;
if L = 1 or the limit fails to exist the test is inconclusive.

So our series is;

`S=sum_(n=1)^oo { 1*3*5 * ... * (2n-1) } / (1*4*7* ... * (3n-2) }`

So our test limit is:

`L = lim_(n rarr oo) | { { 1*3*5 * ... * (2n-1)* (2(n+1)-1) } / (1*4*7* ... * (3n-2)* (3(n+1)-2) } } / { { 1*3*5 * ... * (2n-1) } / (1*4*7* ... * (3n-2) } } |`

`L = lim_(n rarr oo) | { 1*3 * ... * (2n-1) (2(n+1)-1) } / { 1*4* ... * (3n-2) (3(n+1)-2) } * {1*4*7* ... * (3n-2) } / { 1*3*5 * ... * (2n-1) } |`

`L = lim_(n rarr oo) | { color(red)cancel(1*3 * ... * (2n-1)) (2(n+1)-1) } / { color(blue)cancel(1*4* ... * (3n-2)) (3(n+1)-2) } * {color(blue)cancel(1*4*7* ... * (3n-2)) } / { color(red)cancel(1*3*5 * ... * (2n-1)) } |`

`L = lim_(n rarr oo) | (2(n+1)-1) / (3(n+1)-2) |`

`\ \ \ = lim_(n rarr oo) | (2n+1)/(3n+1) |`

`\ \ \ = lim_(n rarr oo) | (2n+1)/(3n+1) *(1/n)/(1/n)|`

`\ \ \ = lim_(n rarr oo) | (2+1/n)/(3+1/n) |`

`\ \ \ = 2/3`

And so the series is convergent.