2. Find the real-number root. V1296 O 36 and 3 6 6 and -6

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Dylan Cross asked Sep 28, 2023

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2. Find the real-number root. V1296 O 36 and 3 6 6 and -6

Mathematics
high-school

Dylan Cross asked Sep 28, 2023

by Dylan Cross

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we have

$\sqrt[4]{1,296}$

Remember that

1,296=(36)^2

and 36=6^2

1,296=(6^2)^2=6^4

substitute

$\sqrt[4]{1,296}=\sqrt[4]{6^4}=6$

answer is 6

Part 2

we have

$\sqrt[3]{0.125b^3}$

we have that

0.125=125/1,000=(5/10)^3

substitute

$\sqrt[3]{0.125b^3}=\sqrt[3]{((5)/(10))^3b^3}=(5b)/(10)=0.5b$

answer is 0.5b

Peter Nazarov answered Oct 5, 2023

by Peter Nazarov

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answer is 6

answer is 0.5b

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