作业帮函数f(x)=sinx(sinx-cosx)的单调递减区间?
来源:学生作业帮助网 编辑:作业帮 时间:2024/04/27 15:57:18
函数f(x)=sinx(sinx-cosx)的单调递减区间?
函数f(x)=sinx(sinx-cosx)的单调递减区间?
函数f(x)=sinx(sinx-cosx)的单调递减区间?
f(x)=(sinx)^2-sinxcosx=(1-cos2x)/2-(sin2x)/2=-(sin2x+cos2x)/2+1/2=-(根号2)sin(2x+π/4)/2+1/2
2x+π/4在[-π/2+2kπ,π/2+2kπ]递减(注意,上一行的前面有个负号)
所以递减区间为[-3π/8+kπ,π/8+2kπ]
f(x)=1/2-根2/2倍的sin(2x+兀/4)求得减区间为【k兀+兀/8,k兀+5兀/8】k属于Z
求导
f'(x)=cosx(sinx-cosx)+sinx(cosx+sinx)=2sinxcosx+(sinx)^2-(cosx)^2=sin2x-cos2x<0
-3π/4+2kπ<2x<π/4+2kπ k为整数时,
即 -3π/8+kπ
f(x)=sinx(sinx-cosx)
=sin^2x-sinxcosx
=1/2-1/2cos2x-1/2sin2x
=1/2- √2/2[sin(2x+π/4)]
其递减区间就是[sin(2x+π/4)]
的递增
2kπ-π/2<2x+π/4<2kπ+π/2
[kπ-3/8π,kπ+1/8π]为所求区间
[kπ-3/8π,kπ+1/4π]
【k兀+兀/8,k兀+5兀/8】k属于Z
f(x)=sin²x-sinxcosx=(1/2)[1-cos2x]-(1/2)sin2x=-(1/2)[cos2x+sin2x]+1/2=-√2/2sin(2x+π/4)+1/2。减:2kπ-π/2≤2x+π/4≤2kπ+π/2,即kπ-3π/8≤x≤kπ+π/8,递减[kπ-3π/8,kπ+π/8]
f(x)=sinx(sinx-cosx) =负的(根号2/2)sin(四分之π+2X)+0.5所以他的单调递减区间是(-3π/8+kπ,π/8+kπ)打得好蛋疼!望楼主采纳!
就是求f'(x)=cosx(cosx+sinx)<0
变形得cosx*cosx + cosx*sinx <0 ===> ( cos2x + 1)/2 + sin2x/ 2 < 0
===>cos2x + sin2x < -1==>√2sin(2x + π/4) < -1
此题考察的是函数的导数求增减区间类的问题。求f(x)导数 f'(x)=cosx(sinx-cosx)+sinx(cosx+sinx)=2cosxsinx-(cosx)^2+(sinx)^2=sin2x-cos2x 令 f'(x)=0 求出x=π/8 则x=π/8是稳定点,当x<π/8时f'(x)<0 单调减