Summation: Prove sum[r=1,n][6r^2+32r] = n(n+1)(2n+17)

[ka923]

I have completed question 7a but stuck on 7b and 8. Please help, thank you
https://snag.gy/6Vbcmu.jpg

 

[Deleted member 4993]

I have completed question 7a but stuck on 7b and 8. Please help, thank you
https://snag.gy/6Vbcmu.jpg

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[ka923]

I have completed question 7a but stuck on 7b and 8. Please help, thank you
https://snag.gy/6Vbcmu.jpg

 

[HallsofIvy]

7a, which you say you have done, says that this sum, up to n, is equal to n(n+1)(2n+ 17). To do 7b, it is sufficient to observe that when n= 1000, 2n+ 17= 2017.