tan(a+π/4)=sin(a+π/4)/cos(a+π/4),如此计算错误在哪sin(a+π/4)=sinacosπ/4+cosasinπ/4=√2/2(sina+cosa)cos(a+π/4)=cosacosπ/4+sinasinπ/4=√2/2(sina+cosa)由此得tan(a+π/4)=1

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tan(a+π/4)=sin(a+π/4)/cos(a+π/4),如此计算错误在哪sin(a+π/4)=sinacosπ/4+cosasinπ/4=√2/2(sina+cosa)cos(a+π/4)=cosacosπ/4+sinasinπ/4=√2/2(sina+cosa)由此得tan(a+π/4)=1
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tan(a+π/4)=sin(a+π/4)/cos(a+π/4),如此计算错误在哪sin(a+π/4)=sinacosπ/4+cosasinπ/4=√2/2(sina+cosa)cos(a+π/4)=cosacosπ/4+sinasinπ/4=√2/2(sina+cosa)由此得tan(a+π/4)=1
tan(a+π/4)=sin(a+π/4)/cos(a+π/4),如此计算错误在哪
sin(a+π/4)=sinacosπ/4+cosasinπ/4=√2/2(sina+cosa)
cos(a+π/4)=cosacosπ/4+sinasinπ/4=√2/2(sina+cosa)
由此得tan(a+π/4)=1

tan(a+π/4)=sin(a+π/4)/cos(a+π/4),如此计算错误在哪sin(a+π/4)=sinacosπ/4+cosasinπ/4=√2/2(sina+cosa)cos(a+π/4)=cosacosπ/4+sinasinπ/4=√2/2(sina+cosa)由此得tan(a+π/4)=1
cos(α+β)=cosαcosβ-sinαsinβ 方程右边中间那个是“-”号

cos(a+π/4)=cosacosπ/4-sinasinπ/4=√2/2(sina-cosa)
+改- 其他没错

cos(a+π/4)=cosacosπ/4 一 sinasinπ/4不是“+”

sin(π+a)+tan π/4 tan(a+π/4)=2,则cos2a+3sin^2a+tan a= sin(-19π/6)=?已知[3Sin(π+a)+Cos(π-a)]/4Sin(-a)-Sin(5π/2+a)=2,求tan a 若a属于(0,π/4)试比较tan(a),tan(tan(a)),tan(sin(a))大小, sin(2a+π/4)化简成tan 2(sin a)^2+(2sin a*cos a)/(1+tan a)=k试用k表示sin a-cos aa∈(π/4,π/2) 已知tan(a/2)=2 求⑴tan(a+π/4)= ⑵6sin(a)+cos(a)/3sin(a)-2cos(a) 三角形ABC中,3SinB=Sin(2A+B),4tan(A/2)=1-tan²(A/2).求证:A+B=π/4 已知tan{π/4+a}=3,求sina*sin(3π /2 +a)-sin^2a+1的值 已知α第二象限的角,f(a)=sin(a+π/2)cos(3π/2-a)tan(2π-a)除以tan(-a-3π)sin(-a-2π)求f(π/4) a属于(0,π/4).sin(π/4-a)=3/5 求tan(2a+π/4) 求证:(1)tan(a/2+π/4)+tan(a/2-π/4)=2tana (2)1+cos2a+2sin^2a=2 sin(π/4+α)sin(π/4-α)=1/4 求2sin^2(a) -1+tana-1/tan 已知sin(a+b)=2/3,sin(a-b)=3/4,求[tan(a+b)-tana-tanb]/tan²b*tan(a+b)的值 已知tan(a+b)=2/5,tan(b-pai/4)=1/4,则sin(a+π/4)*sin(pai/4 -a)的值为 紧急! 化简sin(π-a)cos(3π-a)tan(-π-a)tan(a-2π)/tan(4π-a)sin(5π+a)还请多多指教, 已知tan(a+π/4)=1/3,求tana的值2)求2sin^2a-sin(π-a)sin(π/2-a)+sin^2(3π/2+a) tan(a+π/4)=2,则cos2a+3sin^2a+tan2a=