求y=sin(2x-π/3) +1 X∈(-π/3,2π/3)的值域,谢谢
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求y=sin(2x-π/3)+1X∈(-π/3,2π/3)的值域,谢谢求y=sin(2x-π/3)+1X∈(-π/3,2π/3)的值域,谢谢求y=sin(2x-π/3)+1X∈(-π/3,2π/3)的
求y=sin(2x-π/3) +1 X∈(-π/3,2π/3)的值域,谢谢
求y=sin(2x-π/3) +1 X∈(-π/3,2π/3)的值域,谢谢
求y=sin(2x-π/3) +1 X∈(-π/3,2π/3)的值域,谢谢
可以先算函数sin()中括号里的限定范围(-π,π),则画出在这个范围的函数图像,知道sin()的范围是(-1,1),加上1,则,值域为(0,2)
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