f(x)=sin[2x-π/6]-1,∴T=2π÷2=π。最小值=-2。f(C)=0,C=π/3,有应为M∥N,所以2sinA=sinB,A+B+C=π,算出A=π/6,B=π/2,又根据正弦定理,a/sinA=b/sinB=c/sinC=3/sin(π/3)=2R=2√3,从而算出a=2,b=4。
