Math, asked by vishnucr, 1 year ago

find the zeroes of 49x^2-81

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Answered by Heloooo

2

49x²-81 = 0

x² = 81/49 => x = ± 9/7

vishnucr: I want to verify it

Heloooo: put the value of x

Heloooo: youll get 0

Answered by Preetigupta1

3

Here is your solution.......

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