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If $\sqrt[3]{y^{2} + \sqrt{625} + \sqrt[3]{27}} = \sqrt[3]{343} + \sqrt{81} - \sqrt{64}$ and $\sqrt{\sqrt{6561} - \sqrt{100} - x}$ $= \sqrt[3]{125} + \sqrt[3]{27}$ , where x and y are natural numbers, then the correct option(s) is/are

यदि $\sqrt[3]{y^{2} + \sqrt{625} + \sqrt[3]{27}} = \sqrt[3]{343} + \sqrt{81} - \sqrt{64}$ तथा $\sqrt{\sqrt{6561} - \sqrt{100} - x}$ $= \sqrt[3]{125} + \sqrt[3]{27}$ , जहाँ x व y प्राकृत संख्याएँ हैं, तब सही विकल्प है/हैं

(x + y) = 19

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(x + y) is prime

(x + y) अभाज्य है

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\sqrt{y - x + 1} = 4

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\sqrt{\frac{y + 6}{x}} = 2

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Solution

The correct option is D $\sqrt{\frac{y + 6}{x}} = 2$
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Similar questions

\sqrt[3]{y^{2} + \sqrt{625} + \sqrt[3]{27}} = \sqrt[3]{343} + \sqrt{81} - \sqrt{64}

\sqrt{\sqrt{6561} - \sqrt{100} - x}

= \sqrt[3]{125} + \sqrt[3]{27}

\sqrt[3]{y^{2} + \sqrt{625} + \sqrt[3]{27}} = \sqrt[3]{343} + \sqrt{81} - \sqrt{64}

\sqrt{\sqrt{6561} - \sqrt{100} - x}

= \sqrt[3]{125} + \sqrt[3]{27}

f (x) = 2 x^{3} - 3 x^{2} - 12 x + 5

x \in [- 2, 4]

f (x) = 2 x^{3} - 3 x^{2} - 12 x + 5

x \in [- 2, 4]

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