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Find P + 1 if

Pk = 7 + 13 + 19 + ...+[6(k - 1)+1] + (6k + 1)

(the k+1 and k in front of the P are subscripts)

A. 7 + 13 + 19 + …+[6(k - 1) + 1] + (6k + 1) + [6(k + 1) + 1]

B. 8 + 14 + 20 + …+[7(k - 1) + 1] + (7k + 1)

C. 7 + 13 + 19 + …+(6k + 1)

D. 7 + 13 + 19 + ...+[6(k - 1) + 1] + (6k +1) + (6k + 2)

Thank you

1 answer

well, just add on a k+1 term.

Looks like (A) to me
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