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Lizaveta20000817
@Lizaveta20000817
August 2022
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Актуально до 28 июня
Привет, помогите найти наибольшее и наименьшее значения функции на отрезке.
Желательно с пояснениями.
а)f(x)=2cosx-sqrt2 * x на отрезке [-pi;pi]
б)f(x)=sqrt3 * x-2cosx на отрезке [-pi;pi]
в)f(x)=sqrt3 * x+2cosx на отрезке [0;pi]
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sedinalana
Verified answer
A
f`(x)=-2sinx-√2=0
sinx=√2/2⇒x=π/4∈[-π;π] U x=3π/4∈[-π;π]
f(-π)=2cos(-π)-√2*(-π)=-2+√2*π≈2,4 наиб
f(π/4)=2cosπ/4-√2*π/4=√2-√2π/4=3√2π/4≈-0,3
f(3π/4)=2cos3π/4-√2*3π/4=-√2-3√2π/4≈-4,7 наим
f(π)=2cosπ-√2π-2-√2π≈-2,4
б
f`(x)=√3+2sinx=0
sinx=-√3/2⇒x=-π/3∈[-π;π] U x=-2π/3∈[-π;π]
f(-π)=-√3π-2cos(-π)=-√3π+2≈-3,4
f(-2π/3)=-2√3π/3-2cos(-2π/3)=-2√3π/3-2*1/2≈-4,9 наим
f(-π/3)=-√3π/3-2cos(-π/3)=-√3π/3-2*1/2≈-2,8
f(π)=√3π-2cosπ=√3π-2*(-1)≈10,7 наиб
в
f`(x)=√3-2sinx=0
sinx=√3/2⇒x=π/3∈[0;π] U x=2π/3∈[0;π]
f(0)=√3*0+2cos0=0+2=2 наим
f(π/3)=√3π/3+2cosπ/3=√3π/3+2*1/2≈2,8
f(2π/3)=2√3π/3+2cos2π/3=2√3π/3+2*1/2=4,6 наиб
f(π)=√3π+2cosπ=√3π+2*(-1)≈3,3
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Answers & Comments
Verified answer
Af`(x)=-2sinx-√2=0
sinx=√2/2⇒x=π/4∈[-π;π] U x=3π/4∈[-π;π]
f(-π)=2cos(-π)-√2*(-π)=-2+√2*π≈2,4 наиб
f(π/4)=2cosπ/4-√2*π/4=√2-√2π/4=3√2π/4≈-0,3
f(3π/4)=2cos3π/4-√2*3π/4=-√2-3√2π/4≈-4,7 наим
f(π)=2cosπ-√2π-2-√2π≈-2,4
б
f`(x)=√3+2sinx=0
sinx=-√3/2⇒x=-π/3∈[-π;π] U x=-2π/3∈[-π;π]
f(-π)=-√3π-2cos(-π)=-√3π+2≈-3,4
f(-2π/3)=-2√3π/3-2cos(-2π/3)=-2√3π/3-2*1/2≈-4,9 наим
f(-π/3)=-√3π/3-2cos(-π/3)=-√3π/3-2*1/2≈-2,8
f(π)=√3π-2cosπ=√3π-2*(-1)≈10,7 наиб
в
f`(x)=√3-2sinx=0
sinx=√3/2⇒x=π/3∈[0;π] U x=2π/3∈[0;π]
f(0)=√3*0+2cos0=0+2=2 наим
f(π/3)=√3π/3+2cosπ/3=√3π/3+2*1/2≈2,8
f(2π/3)=2√3π/3+2cos2π/3=2√3π/3+2*1/2=4,6 наиб
f(π)=√3π+2cosπ=√3π+2*(-1)≈3,3