0.4*tan(arctan1:1.5) 2等于多少

来源:学生作业帮助网 编辑:作业帮 时间:2024/11/10 07:33:03
0.4*tan(arctan1:1.5) 2等于多少
tan(arctan1/5+arctan3)=

tan(A+B)=(tanA+tanB)/(1-tanAtanB)tan(arctan1/5+arctan3)=(1/5+3)/(1-3/5)=8

arctan1/3+arctan1/5+arctan1/7+arctan1/8

令a=arctan1/3+arctan1/5b=arctan1/7+arctan1/8tan(atctanx)=x则tana=(1/3+1/5)/(1-1/3*1/5)=4/7tanb=(1/7+1/

tan (arctan1/5+arctan3)的值等于

tan(arctan1/5+arctan3)=(tanarctan1/5+tanarctan3)/(1-tanarctan1/5tanarctan3)=(1/5+3)/(1-1/5*3)=8

arctan1+arctan2+arctan3=

设arctan1+arctan2+arctan3=x那么tanx=tan(arctan1+arctan2+arctan3)=(tan(arctan1+arctan2)+tan(arctan3))/(1

tan(arctan1/5+arctan3)

由tan(arctanx)=x可得原式=[tan(arctan1/5)+tan(arctan3)]/[1-tan(arctan1/5)tan(arctan3)]=8

arctan1+arctan2+arctan3=?

设tanA=1.tanB=2,tanC=3,D=A+BtanD=tan(A+B)=(1+2)/(1-1*2)=-3tan(A+B+C)=tan(D+C)=(-3+3)/(1+9)=0=>A+B+C=1

arctan1+arctan2+arctan等于多少

设arctan1=A,arctan2=B,arctan3=C则tanA=1,tanB=2,tanC=3tan(A+B)=(tanA+tanB)/(1-tanAtanB)=(1+2)/(1-2)=-3=

arctan1/2+arctan1/5+arctan1/8=

这种题比较少见啊你看一下我的方法因为tan(arctan1/2+arctan1/5)=[tan(arctan1/2)+tan(arctan1/5)]/[1-tan(arctan1/2)*tan(arc

证明arctan1/2+arctan1/3=45°

构造一个三角形ABC,过A作BC边上的高AD,长为1.取BD=2,CD=3,则BC=5,tanB=1/2,tanC=1/3,所以角B=arctan1/2,C=arctan1/3,要证arctan1/2

求证arctan1/2+arctan1/5+arctan1/8=pai/4

问题等价于若tana=1/2tanb=1/5tanc=1/8则a+b+c=π/4证tan(a+b)=(tana+tanb)/(1-tanatanb)=7/9tan(a+b+c)=[tan(a+b)+t

A=arctan1/2

arc就是反三角函数

arctan1/2+arctan1/5+arctan1/3

tana1=1/5,tana2=1/3tana3=1/2上式=a1+a2+a3tan(a1+a2)=(tana1+tana2)/(1-tana1tana2)=4/7a1+a2=arctan4/7tan

哥哥姐姐们arctan1是什么意思?

arctanX表示正切值为X的角度.arctan1=45°

arctan1为什么pai/4?

tanpai/4=1,arctan1是反三角函数,表示角度,也就是pai/4

arctan1/3+arctan1/2+arctan1=几,

原题可化为:已知:tanx=1/2,tany=1/3,x,y∈(-π/2,π/2)(反正切函数定义).求x+y+π/4的值.由题意,tan(x+y)=(tanx+tany)/(1-tanxtany)=

arctan1/2+arctan1/3 解答题

∵tg(arctg1/2+arctg1/3)=(1/2+1/3)/[1-(1/2)×(1/3)]=1∴arctg1/2+arctg1/3=arctg1=45°

计算:arctan1/2-arctan(-2)

令a=arctan1/2∈(0,π/2)b=arctan(-2)∈(-π/2,0)tana=1/2tanb=-2tanatanb=-1a-b∈(0,π)cot(a-b)=(1+tanatanb)/(t

arctan1-arctan0=?

tanπ/4=1tan0=0所以原式=π/4-0=π/4

lim(x->0)arctan1/x

lim(x->0)arctan1/xlim(x->0+)arctan(1/x)=π/2lim(x->0-)arctan(1/x)=-π/2∵左右极限均存在,但不相等∴lim(x->0)arctan1/

送分ing,求值:arctan1/2+arctan1/3.

分析:原题可化为已知:tanx=1/2,tany=1/3,x,y∈(-π/2,π/2)(反正切函数定义).求x+y的值.由题意,tan(x+y)=(tanx+tany)/(1-tanxtany)=(1