组合数排列数计算
1、计算C3n(38-n)+Cn+21(3n)的值 2、求使3Cx-3(x-7)=5Ax-4(2)成立的x值
1,解:C3n(38-n)+Cn+21(3n)旦配因为:3n>38-n, 21+n>3nn>9.5且n<10.5所以n=10C30 (28)+C31 (30)=30*29/2*1+31/1=4662,解模老指:3Cx-3(x-7)=5Ax-4(2)3*(x-3)*(x-4)*(x-5)*(x-6)*……/(x-7)*(x-8)*(x-9)*……=5*(x-4)*(x-3)3*(x-5)*(x-6)=53x^2-33x+85=0(3x-17)*(x-5)=0x=17/3舍去, x=5因为 x-4≥2, x≥6所以x无解。含耐
解:1,C3n(38-n)+Cn+21(毁氏或薯3n)因为:3n>38-n, 21+n>纤团散3nn>9.5且n<10.5所以n=10C30 (28)+C31 (30)=4662,无解