1×2×3分之1+2×3×4分之一+3×4×5分之一+4×5×6分之一+5×6×7分之一

奥数题
2024-11-24 01:00:24
推荐回答(3个)
回答1:

1/n(n+1)(n+2)=1/2*[1/n(n+1)-1/(n+1)(n+2)]

1×2×3分之1+2×3×4分之一+3×4×5分之一+4×5×6分之一+5×6×7分之一
=1/2*(1/2-1/6+1/6-1/12+1/12-1/20+1/20-1/30+1/30-1/42)
=1/2*(1/2-1/42)
=1/2*(10/21)
=5/21

回答2:

用裂项法,原式=1/2×(1×2×3分之2+2×3×4分之2+3×4×5分之2+4×5×6分之2+5×6×7分之2)
=1/2×(1×2分之1-2×3分之1+2×3分之1-3×4分之1+……+5×6分之1-6×7分之1)
=1/2×(1×2分之1-6×7分之1)=5/21

回答3:

解:1/(1*2*3)+1/(2*3*4)+1/(3*4*5)+1/(4*5*6)+1/(5*6*7)
=1/2*[1/(1*2)-1/(2*3)+1/(2*3)-1/(3*4)+1/(3*4)-1/(4*5)+1/(4*5)-1/(5*6)+1/(5*6)-1/(6*7)
=1/2*[1/(1*2)-1/(6*7)]
=1/2*10/21
=5/21