1/1x2+1/2x3+1/3x4+.+1/χ(χ+1)=11/12

来源:学生作业帮助网 编辑:作业帮 时间:2024/11/27 06:22:47
1/1x2+1/2x3+1/3x4+.+1/χ(χ+1)=11/12
x)370670&z@|vmCM[CMR>q lH2"iak~OGv=&=tO!Pl,lM5,{P?3Ԏ@6(mfWm 젎s@ 2@ BZs

1/1x2+1/2x3+1/3x4+.+1/χ(χ+1)=11/12
1/1x2+1/2x3+1/3x4+.+1/χ(χ+1)=11/12

1/1x2+1/2x3+1/3x4+.+1/χ(χ+1)=11/12
1/χ(χ+n)=n【1/χ-1/(x+n)】
原式=1-1/2+1/2-1/3+1/4-1/5+…+1/X-1/1+X=11/12
1-1/X+1
x=11

x=11 原式=1-1/2+1/2-1/3+1/4-1/5+…+1/X-1/1+X=11/12所以:1-1/1+X=11/12所以X=11

用克拉默法则解下列方程组 x1-2x2+3x3-4x4=4 x2-x3+x4=-3 x1+3x2+2x4=1 -7x2+3x3+x4=3x1-2x2+3x3-4x4=4x2-x3+x4=-3 x1+3x2+2x4=1 -7x2+3x3+x4=3 因式分解:x4+x3+2x2 +x+1 解方程组X1-2x2+3x3-x4=1,3x1-x2+5x3-3x4=2,2x1+x2+2x3-2x4=3 x1+5x2-x3-x4=-1x1-2x2+x3+3x4=33x1+8x2-x3+x4=1 写出方程组2*x1+x2-x3+x4=1,x1+2*x2+x3-x4=2,x1+x2+2*x3+x4=3的通解? 求非齐次线方程组的通解 :2x1+x2-x3+x4=1 x1+2x2+x3-x4=2 x1+x2+2x3+x4=3 具体写出方程组:2x1+x2-x3+x4=1;x1+2x2+x3-x4=2;x1+x2+2x3+x4=3的通解 解一道方程组x1+x2+x3=5,x2+x3+x4=1,x3+x4+x5=-5,x4+x5+x1=-3,x5+x1+x2=2 用初等行变换来解下列线性方程组(1)2x1-x2+3x3=3 3x1+x2-5x3=0 4x1-x2+x3=3 x1+3x2-13x3=-6(2) x1-2x2+x3+x4=1 x1-2x2+x3-x4=-1 x1-2x2+x3-5x4=5(3) x1-x2+x3-x4=1 x1-x2-x3+x4=0 x1-x2-2x3+2x4=-1/2 1X2+2X3+3X4+.NX(N+1) 1X2+2X3+3X4+.NX(N+1)规律 1x2+2x3+3x4+.+2011x2012 1x2+2x3+3x4+4x5+.+15x16 1x2+2x3+3x4+.+100x101= 1x2+2x3+3x4+.+100x101=?结果 1x1!+2x2!+3x3!+4x4!.nxn! 1X2+2x3+3x4+……+2013x2014 1x2+2x3+3x4+.+19x20