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Find an equation for the tangent line to the given curve at the point where x=x0 y=(x^2+3x-3)(2-2x) x0=1 The line that is tangent to y=(x^2+3x-3)(2-2x)
Find an equation for the tangent line to the given curve at the point where x=x0
y=(x^2+3x-3)(2-2x) x0=1
The line that is tangent to y=(x^2+3x-3)(2-2x) at x0=1, in slope intercept from, is
y=
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An Introduction to Measure Theoretic Probability
Authors: George G. Roussas
2nd edition
128000422, 978-0128000427
