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Make "x" the subject of the formula Y=[(b-x²)/(yx²)]⅔

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3/2 power ... y^(3/2) = (b-x²) / (yx²)

multiply by y ... y^(5/2) = (b-x²)/(x²) = (b / x^2) - 1

add 1 ... [y^(5/2)] + 1 = b / x^2

multiply by x^2 and divide by [y^(5/2)] + 1 ... x^2 = b / {[y^(5/2)] + 1}

take square root

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