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Olá,
só substituir x por √5..
![f(x)=x^2-2x+3\\
f( \sqrt{5})=( \sqrt{5})^2-2\cdot( \sqrt{5})+3\\
f( \sqrt{5})=[( \sqrt{5})\cdot( \sqrt{5})]-2 \sqrt{5}+3\\
f( \sqrt{5})= \sqrt{5\cdot5}-2 \sqrt{5}+3\\
f( \sqrt{5})= 3+\sqrt{25}-2 \sqrt{5}\\
f( \sqrt{5})=3+5-2 \sqrt{5}\\\\
\Large\boxed{f( \sqrt{5})=8-2 \sqrt{5}}](https://tex.z-dn.net/?f=f%28x%29%3Dx%5E2-2x%2B3%5C%5C%0Af%28+%5Csqrt%7B5%7D%29%3D%28+%5Csqrt%7B5%7D%29%5E2-2%5Ccdot%28+%5Csqrt%7B5%7D%29%2B3%5C%5C%0Af%28+%5Csqrt%7B5%7D%29%3D%5B%28+%5Csqrt%7B5%7D%29%5Ccdot%28+%5Csqrt%7B5%7D%29%5D-2+%5Csqrt%7B5%7D%2B3%5C%5C%0Af%28+%5Csqrt%7B5%7D%29%3D+%5Csqrt%7B5%5Ccdot5%7D-2+%5Csqrt%7B5%7D%2B3%5C%5C%0Af%28+%5Csqrt%7B5%7D%29%3D+3%2B%5Csqrt%7B25%7D-2+%5Csqrt%7B5%7D%5C%5C%0Af%28+%5Csqrt%7B5%7D%29%3D3%2B5-2+%5Csqrt%7B5%7D%5C%5C%5C%5C%0A%5CLarge%5Cboxed%7Bf%28+%5Csqrt%7B5%7D%29%3D8-2+%5Csqrt%7B5%7D%7D+++++++++++++++++ "f(x)=x^2-2x+3\\
f( \sqrt{5})=( \sqrt{5})^2-2\cdot( \sqrt{5})+3\\
f( \sqrt{5})=[( \sqrt{5})\cdot( \sqrt{5})]-2 \sqrt{5}+3\\
f( \sqrt{5})= \sqrt{5\cdot5}-2 \sqrt{5}+3\\
f( \sqrt{5})= 3+\sqrt{25}-2 \sqrt{5}\\
f( \sqrt{5})=3+5-2 \sqrt{5}\\\\
\Large\boxed{f( \sqrt{5})=8-2 \sqrt{5}}")
Tenha ótimos estudos ;D
só substituir x por √5..
Tenha ótimos estudos ;D
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