(1) (2k-3) 72 k=1 (2) (4k3-1) n k=1 (3) (3k-1)² k=1 解説 n n (1) (2k-3)=2k-23=2.n(n+1)-3n k=1 k=1 k=1 = n(n-2) (2) ☎ (4k³-1)=4″ k³-21=4{½n(n+1)}² – k=1 n k=1 =n{n(n2+2n+1)−1} = n(n³+2n2+n-1) 21 -n n (3) (3k-1)²= (9k²-−6k+1)=9″ k² −6″ k+ Σ1 k=1 = k=1 k=1 k=1 k=1 9. —n(n + 1)(2n + 1) −6 · ——^n(n+1)+n = ½½n{3(n + 1)X(2n + 1) −6(n+1)+2) =12m(6m²+3n-1) n-1 (4) 3*= k=1 3(3"-1-1) = 3-1 32 (3"-1-1) n-1 (4) 3 k=1