已知函数f(x)=㏒a(x+1),g(x)=㏒a(1-x)(a﹥0,≠1)令F(x)=f(x)-g(x)
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证明:因为 F(x)=f(x)-g(x)
=㏒a(x+1)-㏒a(1-x)
=㏒a[(x+1)/(1-x)]
F(x)的定义域为 (x+1)/(1-x)>0
解得 -1<x<1
所以 F(x)= ㏒a[(x+1)/(1-x)] ( -1<x<1)
等式左边 F(x)+F(Y)=㏒a[(X+1)/(1-X)] + ㏒a[(Y+1)/(1-Y)]
= ㏒a[(X+1)(Y+1)/(1-X)(1-Y)]
= ㏒a(X+Y+XY+1/1+XY-X-Y)
等式右边 F(X+Y/1+XY)=㏒a[(X+Y/1+XY)+1/1-(X+Y/1+XY)]
= ㏒a(X+Y+XY+1/1+XY-X-Y)
有上述两式可知 F(x)+F(Y)= F(X+Y/1+XY)
原式得证
=㏒a(x+1)-㏒a(1-x)
=㏒a[(x+1)/(1-x)]
F(x)的定义域为 (x+1)/(1-x)>0
解得 -1<x<1
所以 F(x)= ㏒a[(x+1)/(1-x)] ( -1<x<1)
等式左边 F(x)+F(Y)=㏒a[(X+1)/(1-X)] + ㏒a[(Y+1)/(1-Y)]
= ㏒a[(X+1)(Y+1)/(1-X)(1-Y)]
= ㏒a(X+Y+XY+1/1+XY-X-Y)
等式右边 F(X+Y/1+XY)=㏒a[(X+Y/1+XY)+1/1-(X+Y/1+XY)]
= ㏒a(X+Y+XY+1/1+XY-X-Y)
有上述两式可知 F(x)+F(Y)= F(X+Y/1+XY)
原式得证
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