y=lg(-x
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(x+2y)(x—y)=2xy整理得x²-xy-2y²=0因为xy均>0所以等号两边同时除以xy设x/y=t整理得t-1-2/t=0剩下的你自己接就行了~
由x+x2+1>0,解得x∈R又∵f(-x)=lg(x2+1-x)=lg(1x2+1+x)=-lg(x+x2+1)=-f(x)∴函数是奇函数.
∵lg(x-y)+lg(x+2y)=lg2+lgx+lgy,∴lg(x-y)(x+2y)=lg2xy.∴(x-y)(x+2y)=2xy,即(x-2y)(x+y)=0.再由x、y都是正数可得x+y≠0,
(x-y)(x+3y)=2^2*xyx^2+2xy-3y^2=4xyx^2-2xy-3y^2=0(x+y)(x-3y)=0x=-y,x=3y由定义域x>0,y>0x=-y不成立x=3yx/y=3
lg(x+2y)+lg(x-y)=lg2+lgx+lgylg(x+2y)(x-y)=lg2xy(x+2y)(x-y)=2xyx^2+xy-2y^2=2xyx^2-xy-2y^2=0(x-2y)(x+y
2lg(x-2y)=lgy+lgx即(x-2y)^2=xy(x-y)(x-4y)=0又x>2y>0故x=4y所以log2(x/y)=2
g(x-4y)+lg(x+y)=lg2+lgx+lgy(x-4y)(x+y)=2xyx^2-5xy-4y^2=0当X≠0时,两边同除x^2得1-5y/x-4(y/x)^2=0整理得4(y/x)^2+5
有题可知:x+2y>0;x-4y>0;x>0;y>0可得:x/y>4原式化简为:lg(x+2y)(x-4y)=lg2xy所以:(x+2y)(x-4y)=2xy化简:x^2-4xy-8y^2=0同除y^
. -y)+lg(x+2y)=lg[(x-y)(x+2y)]lg^2+lgx+lgy=lg(2xy)所以:(x-y)(x+2y)=2xyx^2+2xy-xy-2y^2=2xyx^2-2y^2
(x-y)(x+2y)=2xyx^2+2xy-xy-2y^2=2xyx^2-2y^2=xyx/y-2y/x=1设a=x/y则有a^2-a-2=0(a-2)(a+1)=0a=2,-1.根据题意取正所以:
lg(x-y)+lg(x+y)=lg2+lgx+lgy左边=lg[(x-y)(x+y)]=lg[x^2-y^2]右边=lg(2xy)左边=右边所以lg[x^2-y^2]=lg(2xy)x^2-y^2=
lg(x+y)+lg(2x+3y)=lg12+lgx+lgylg[(x+y)(2x+3y)]=lg(12xy)(x+y)(2x+3y)=12xy2x^2+5xy+3y^2=12xy=02x^2-7xy
答:lg(x-3y)^2=lg4xy(x-3y)^2=4xyx^2-6xy+9y^2=4xyx^2-10xy+9y^2=0(x-y)(x-9y)=0x=yorx=9yy/x=1ory/x=1/9
它是一个偶函数.因为任一个函数,只要自变量x自己有绝对值,那么它一定是一个偶函数.具体这个函数,证明如下:显然它是定义域是(-∞,0)∪(0,+∞).而f(-x)=lg|-x|=lg|x|=f(x),
∵y=1/lgx∴x>0lgx≠0∴x∈(0,1)∪(1,+∞)
解由题知sinx>0解得2kπ<x<2kπ+π,k属于Z即y=lg(sinx)的定义域{x/2kπ<x<2kπ+π,k属于Z}再答:呵呵,不客气。再问:关于函数y=2sin(3x+π/4)-1/2,有
2lg(x-3y)=lgx+lg(4y)lg(x-3y)²=lg(4xy)(x-3y)²=4xyx²-6xy+9y²-4xy=0x²-10xy+9y&
由lg(x-y)+lg(7x-8y)=2,得lg(x-y)(7x-8y)=2(x-y)(7x-8y)=100(1)由2^(-x+3y)=4,得-x+3y=2x=3y-2(2)把(2)代入(1)得2(y
lg(lgy)=lg(3x)+lg(3-x)=lg[3x(3-x)]∴lgy=3x(3-x)∴y=10^[3x(3-x)]=10^(9x-3x^2)=1000^(3x-x^2)∴f(x)=1000^(