共有101项相加,有公因式a*b,提出公因式后发现这101项的分子均为0,分母均为相差1的两个数的乘积,由:文章源自玩技e族-https://www.playezu.com/249607.html
1/[a*(a 1)]可拆分成两项的差,即:(1/a)-(1/(a 1))。文章源自玩技e族-https://www.playezu.com/249607.html
所以可化为:文章源自玩技e族-https://www.playezu.com/249607.html
a*b*{[1/(a b-1)-1/(a b)] [1/(a b)-1/(a b 1)] … [1/(a b 99)-1/(a b 100)]}大括号内,中间项可相消,只剩首尾两项,所以=a*b*[1/(a b-1)-1/(a b 100)]=101*a*b/[(a b-1)*(a b 100)]文章源自玩技e族-https://www.playezu.com/249607.html
ab[1/(a b-1)(a b) 1/(a b)(a b 1) 1/(a b 1)(a b 2) … 1/(a b 98)(a b 99) 1/(a b 99)(a b 100)]=ab[1/(a b-1)-1/(a b) 1/(a b)-1/(a b 1) 1/(a b 1)-1/(a b 2) … 1/(a b 98)-1/(a b 99) 1/(a b 99)-1/(a b 100)]文章源自玩技e族-https://www.playezu.com/249607.html
=ab[1/(a b)-1/(a b 100)]=75/49文章源自玩技e族-https://www.playezu.com/249607.html
共有101项相加,有公因式a*b,提出公因式后发现这101项的分子均为0,分母均为相差1的两个数的乘积,由:文章源自玩技e族-https://www.playezu.com/249607.html
1/[a*(a 1)]可拆分成两项的差,即:(1/a)-(1/(a 1))。文章源自玩技e族-https://www.playezu.com/249607.html
所以可化为:文章源自玩技e族-https://www.playezu.com/249607.html
a*b*{[1/(a b-1)-1/(a b)] [1/(a b)-1/(a b 1)] … [1/(a b 99)-1/(a b 100)]}大括号内,中间项可相消,只剩首尾两项,所以=a*b*[1/(a b-1)-1/(a b 100)]=101*a*b/[(a b-1)*(a b 100)]文章源自玩技e族-https://www.playezu.com/249607.html
ab[1/(a b-1)(a b) 1/(a b)(a b 1) 1/(a b 1)(a b 2) … 1/(a b 98)(a b 99) 1/(a b 99)(a b 100)]=ab[1/(a b-1)-1/(a b) 1/(a b)-1/(a b 1) 1/(a b 1)-1/(a b 2) … 1/(a b 98)-1/(a b 99) 1/(a b 99)-1/(a b 100)]文章源自玩技e族-https://www.playezu.com/249607.html
=ab[1/(a b)-1/(a b 100)]=75/49文章源自玩技e族-https://www.playezu.com/249607.html
知识问答文章源自玩技e族-https://www.playezu.com/249607.html
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