证明:因为i lgA=a lgB=b lgC=c a+b+c=0
所以 a+b= -c a+c= -b b+c= -a
将要证明的左边取对数,可得:
lg[A^(1/b+1/c)+B^(1/c+1/a)+C^(1/a+1/b)=(1/b+1/c)lgA+(1/c+1/a)lgB+(1/b+1/a)lgC
=(1/b+1/c)a+(1/c+1/a)b+(1/b+1/a)c
=a/b+a/c+b/c+b/a+c/b+c/a
=(a+c)/b+(b+c)/a+(a+b)/c
=(-b)/b+(-a)/a+(-c)/c
=(-1)+(-1)+(-1)
= -3
=lg10^(-3)
= lg(1/1000)
所以 A^(1/b+1/c) +B^(1/c+1/a)+C^(1/a+1/b)=1/1000
证毕