UC知道数学题目,分式的化简:1/a-1 + 1/(a-1)(a-2) + 1/(a-2)(a-3) +.....+ 1/(a-99)(a-100)
来源:百度知道 编辑:UC知道 时间:2024/07/04 12:51:29
最好要有解答过程,清晰点,我读初二!
一般的我是明白的! 辛苦各位了!
一般的我是明白的! 辛苦各位了!
1=(a-1)-(a-2)
所以1/(a-1)(a-2)=[(a-1)-(a-2)]/(a-1)(a-2)=(a-1)/(a-1)(a-2)-(a-2)/(a-1)(a-2)=1/(a-2)-1/(a-1)
同理,1=(a-2)-(a-3),得到1/(a-2)(a-3)=1/(a-3)/1/(a-2)
后面以此类推
所以原式=1/(a-1)+1/(a-2)-1/(a-1)+1/(a-3)/1/(a-2)+……+1/(a-100)-1/(a-99)
=1/(a-100)
解:
1/(a-1) + 1/(a-1)(a-2) + 1/(a-2)(a-3) +.....+ 1/(a-99)(a-100)
=1/(a-1) + [1/(a-2)-1/(a-1)]+ [1/(a-3))-1/(a-2)]+.....+ [1/(a-100)-1/(a-99)]
=1/(a-100)