神马作文网求y=(3x*2 4x 4) (x*2 x 1)的极限
来源:学生作业帮助网 编辑:作业帮 时间:2024/11/12 14:52:16
1.Y=x^(-1.6)2.Y=根号下X3..Y=X^(-16/5)4.Y=X^(-6/7)
换元法,用t=x方换掉,然后配方.t的范围是大于零.y的值域就出来了
x²+1=-x两边平方x⁴+2x²+1=x²x⁴+1=-x²两边平方x^8+2x⁴+1=x⁴x^8+1=-x&#
x^2-3x+1=0x^2+1=3x同时除以xx+1/x=3所以x^2+1/x^2=(x+1/x)^2-2=3^2-2=7x^2/(x^4+x^2+1)=1/(x^2+1+1/x^2)=1/8
第一问设yˆ5=k3xˆ4因为x=1时,y=2所以2ˆ5=k3*1ˆ464=12kk=16/3所以函数的表达式为yˆ5=(16/3)3xˆ4
原式=(x4-xy3)+(y4-x3y)+(3xy2-3x2y)=x(x3-y3)+y(y3-x3)+3xy(y-x)=(x3-y3)(x-y)-3xy(x-y)=(x-y)(x3-y3-3xy)=(
(1)∵y=x4-5x2,∴y′=4x3+10x-3;(2)∵y=xtanx=xsinxcosx,∴y′=(xsinx)′cosx−(cosx)′xsinxcos2x=sinxcosx+xcos2x;
用点斜式,首先求斜率K,在任意一点斜率K(x)=y‘=4x3-4x当x=2,k=24,所以直线方程就是y-11=24(x-2).
→f`(x)=3x³-4x→f`(2)=3*8-4*2=16=k→切线方程:y-11=16(x-2)(2):令f`(x)=0,→x=0,x=±2√3/3→xε(-∞,-2√3/3),f`(x
∵x+y=a∴x2+y2+2xy=a2又∵x2+y2=b2∴2xy=a2-b2x4+y4=(x2+y2)2-2x2y2=(x2+y2)2-(2xy)22=b4−(a2−b2)22=-12a4+a2b2
x²+1=-3x两边平方x^4+2x²+1=9x²x^4+1=7x²两边平方x^8+2x^4+1=49x^4x^8+1=47x^4两边除以x^4x^4+1/x^
3.3X-1.2X4=8.4 3.3X-4.8=8.4 3.3x=8.4-4.8 3.3x=3.6 x=12/11 18÷2X=3 18=6x x=3
x²+3x+1=0等式两边同除以xx+3+1/x=0x+1/x=-3x²+1/x²=(x+1/x)²-2=(-3)²-2=9-2=7x⁴+
x^2-3x+1=0x^2+1=3xx+1/x=3(x+1/x)^2=9x^2+1/x^2+2=9x^2+1/x^2=7(x^2+1/x^2)^2=49x^4+1/x^4+2=49x^4+1/x^4=
x⁴+2x³+4x²+3x+2=x⁴+x³+x²+x³+x²+x+2x²+2x+2=x²(x&#
x平方-3x+1=0二边同除以xx-3+1/x=0x+1/x=3x^2+1/x^2=(x+1/x)^2-2=3^2-2=7x^4+1/x^4=(x^2+1/x^2)^2-2=7^2-2=47
(x^4-y^4)÷(x^2+y^2)/(x+y)=(x^2-y^2)(x^2+y^2)÷(x^2+y^2)/(x+y)=(x^2-y^2)(x^2+y^2)*(x+y)/(x^2+y^2)=(x^2
x^2-4x+1=0两边除以xx+/x=4则x^2+1/x^2=14x^4+1/x^4+2=14^2则x^4+1/x^4=14^2-2