\"\"

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The function \"\".

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Differentiate on each side with respect to \"\".

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\"\"

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\"\".

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Newton\"\"s approximation method formula : \"\".

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\"\".

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Find \"\".

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Newton\"\"s formula : \"\".

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\"\"

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\"\".

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Perform newton approximation for \"\".

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Newton\"\"s formula : \"\".

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\"\"

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\"\".

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\"\"

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Perform newton approximation for \"\".

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Newton\"\"s formula : \"\".

\

\"\"

\

\"\".

\

Perform newton approximation for \"\".

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Newton\"\"s formula : \"\".

\

\"\"

\

\"\".

\

\"\"

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Perform newton approximation for \"\".

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Newton\"\"s formula : \"\".

\

\"\"

\

\"\".

\

Perform newton approximation for \"\".

\

Newton\"\"s formula : \"\".

\

\"\"

\

\"\".

\

\"\"

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Perform newton approximation for \"\".

\

Newton\"\"s formula : \"\".

\

\"\"

\

\"\".

\

Perform newton approximation for \"\".

\

Newton\"\"s formula : \"\".

\

\"\"

\

\"\".

\

\"\"

\

Perform newton approximation for \"\".

\

Newton\"\"s formula : \"\".

\

\"\"

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\"\".

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Perform newton approximation for \"\".

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Newton\"\"s formula : \"\".

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\"\"

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\"\".

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\"\"

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Draw a coordinate plane.

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Graph the function \"\".

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\"\"

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Observe the graph :

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The function touches the \"\"-axis at \"\" and \"\".

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Thus, the zeros of the function are \"\" and \"\".

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\"\"

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Zeros of the function are \"\" and \"\".