How do i solve the following summation problem?

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1 Answer
May 9, 2018

There are few enough terms to just do it.


#sum_(n=4)^(11) (30 - 4n)#

#= (30 - 4(4)) + (30 - 4(5)) + (30 - 4(6)) + (30 - 4(7)) + (30 - 4(8)) + (30 - 4(9)) + (30 - 4(10)) + (30 - 4(11))#

From term 4 through 11 inclusive, there are #8# values of #30#, so:

#= 8(30) - 4(4) - . . . - 4(11)#

#= 8(30) - 4(4 + . . . + 11)#

We know that #1 + . . . + 11 = (11*12)/2 = 66#, so

#4 + . . . + 11 = 1 + . . . + 11 - (1 + 2 + 3)#

#= 66 - 1 - 2 - 3 = 60#.

Therefore, #4(4 + . . . + 11) = 240#, and:

#sum_(n=4)^(11) (30 - 4n) = 240 - 240 = color(blue)(0)#