SosieT692633 SosieT692633

25-10-2022
Mathematics

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please help me ASAP!!!

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KemoniO421682 KemoniO421682

25-10-2022

[tex]f(x)=\sqrt[]{2x^2-3x+\text{ 1}}[/tex]

substitute x = 5 in the above function

[tex]f(5)=\sqrt[]{2(5)^2-3(5)+1}[/tex][tex]=\sqrt[]{2(25)-15+1}[/tex][tex]=\sqrt[]{50-15+1}[/tex][tex]=\sqrt[]{36}=\text{ 6}[/tex]

f(5) = 6

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