设f0(x)=cosx,f1(x)f0'(x),f2(x)=f1'(x),...,fn+1(x)=fn'(x),n属于正整数,则f2008
人气:293 ℃ 时间:2019-09-01 10:51:14
解答
f0(x)=cosx
所以f1(x)=-sinx
f2(x)=-cosx
f3(x)=sinx
f4(x)=cosx=f0(x)
所以是4个一循环
2008÷4余0
所以f2008(x)=f0(x)=cosx
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