高三数学题,帮忙解下,谢谢!
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cos[2π+(π-x)] - 3•(-sinx)
=cos(π-x) + 3sinx
=-cosx + 3sinx=0
则3sinx=cosx
tanx=sinx/cosx=sinx/3sinx
=1/3
∴D
=cos(π-x) + 3sinx
=-cosx + 3sinx=0
则3sinx=cosx
tanx=sinx/cosx=sinx/3sinx
=1/3
∴D
追答
原式=sin(3π - π/6) + cos(29π/3) - tan(6π + π/4)
=sin(π - π/6) + cos(10π - π/3) - tan(π/4)
=sin(π/6) + cos(π/3) - 1
=1/2 + 1/2 - 1
=0
∴A
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