Question

How do you evaluate the series `Sigma 5r` from r=3 to 8?

Answer 1

`sum_(r=3)^8 5r = 165`

Explanation:

We seek:

`sum_(r=3)^8 5r = 5sum_(r=3)^8 r`

Due to the small number of terms required we can just expand the individual terms to get:

`sum_(r=3)^8 5r = 5(3+4+5+6+7+8}`
`" " = 5(33)`
`" " = 165`

If the number of individual terms were larger this would be quite cumbersome and use of the standard summation formula

`sum_(r=1)^n r = 1/2n(n+1)`

would be more appropriate. If we used this approach we would get

`sum_(r=3)^8 5r = 5{(sum_(r=1)^8) r - (sum_(r=1)^2 r )}`
`" " = 5{1/2*8*9 - 1/2*2*3}`
`" " = 5/2{72 - 6}`
`" " = 5/2*66`
`" " = 165`