1设x人,第一个人握手x-1次,倒数第二个人握1次
这是公差(-1)的等差数列,共x-1项
求和公式(x-1+1)(x-1)/2=10
(x+4)(x-5)=0
共5人
2.x^2-(a+b)x+ab
=(x-a)(x-b)
3.x^2+4x-k^2+2k+3
=x^2+4x+4-k^2+2k-1
=(x+2)^2-(k-1)^2
=(x+2+k-1)(x+2-k+1)
=(x+k+1)(x-k+3)
4.abx^2-(a^2+b^2)x+Aab
=(ax-b)(bx-a)
我当你多打一个A
5.x^2-(3a+1)x+2a^2+2a
=x^2-(3a+1)x+2a(a+1)
=(x-2a)(x-a-1)