求y=(x^2-4x+13)/(x-1) x属于[2,5]的值域
来源:学生作业帮助网 编辑:六六作业网 时间:2024/11/06 03:37:45
求y=(x^2-4x+13)/(x-1)x属于[2,5]的值域求y=(x^2-4x+13)/(x-1)x属于[2,5]的值域求y=(x^2-4x+13)/(x-1)x属于[2,5]的值域x=2时,y=
求y=(x^2-4x+13)/(x-1) x属于[2,5]的值域
求y=(x^2-4x+13)/(x-1) x属于[2,5]的值域
求y=(x^2-4x+13)/(x-1) x属于[2,5]的值域
x=2时,y=(4-8+13)/1=9
x=5时,y=(25-20+13)/4=9/2
y=(x^2-4x+13)/(x-1)
y'=[(2x-4)(x-1)-x^2+4x-13]/(x-1)^2
=(x^2-2x-9)/(x-1)^2
=[(x-1)^2-10]/(x-1)^2
(x-1)^2<10时,函数单调递减,(x-1)^2≥10时,函数单调递增.当(x-1)^2=10时,函数取得最小值.
x=√10+1
ymin=(11+2√10-4-4√10+13)/√10
=(20-2√10)/√10
=2(√10-1)
函数的值域为[2(√10-1),9]
因x²-4x+13=(x-1)²-2(x-1)+10.故y={(x-1)+[10/(x-1)]}-2.可令t=x-1.则由2≤x≤5,===>1≤x-1≤4,即1≤t≤4,且y=[t+(10/t)]-2.由“对勾函数”的单调性可知,y≥(2√10)-2.仅当x=√10时相等。故ymin=(2√10)-2,又ymax=y(1)=9.故值域为[(2√10)-2,9].
求值域 1,y=(x+2)/(x*x+3x+6) 2,y=3x/(x*x+4)
求值域 y=(x²-1)/(x²+x+1); y=2x-3+√(13-4x); y=(3x+2)/(x-1)
求值域 y=(x²-2)/(x²+x+1); y=2x-3+√(13-4x); y=(3x+2)/(x-1)
求y=(5x-1)/(4x+2) (x
1.求y=(4x^+8x+13)/(6x+6)的最小值2.求函数y=(x^2-x)/(x^2-x+1)的最小值
求y=(x^2-4x+13)/(x-1) x属于[2,5]的值域
已知:【(x²+y²)-(x-y)²+2y(x-y)】/4y=1,求4x/4x²-y²-1/2x+y
已知x-y=1,求[(x+2y)^2+(2x+y)(x-4y)-3(x+y)(x-y)]除以y的值大神们帮帮忙
已知x-y=1,求[(x+2y)²+(2x+y)(x-4y)-3(x+y)(x-y)]÷y的值
1.(x-2y)(x+2y)-(x平方+y)(x平方-y) 2.(2x-y)(y+2x)-(2y+x)(2y-x)3.已知:x+y=6,x平方-y平方=48,求x,y的值4.x平方-2x分之x+2 -- x平方-4x+4分之x-1
已知x^2+y^2+13-4x+6y=0,求(2x-y)^2-2(2x-y)(x+2y)+(x+2y)^2
x²-4x-1=0,求(2x-3)²-(x+y)(x-y)-y²
已知x+y=a,2x-y=-2a,求[(x/y-y/x)/(x+y)-x(1/x-1/y)]/[(x+1)/y]的值
若2/x-1/y=3,求[y/x-y/x-y(x-y/x-x+y)]/x-2y/x的值
已知13X^2-6XY+Y^2-4x+1=0,求(x+y)^13乘以x^10
已知:13x^2-6xy+y^2-4x+1=0,求(x+y)^2013*x^2011
x^2+y^2-4x-6y+13=0,求(2/3根号9x+y^2根号x/y^3)-x^2根号1/x-5x根号y/x)的值已知x^2+y^2-4x-6y+13=0,求(2/3根号9x+y^2根号x/y^3)-x^2根号1/x-5x根号y/x)的值
如果|X|=4 |Y|=2 且|X+Y|=X+Y 求X+Y