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Find all vales for a so that

f(x) { x+1...x<=a
{ x^2...x>a

is continuous

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well , at a, both functions have the same value, so

x+1=x^2
a+1=a^2
a^2-a-1=0

solve for a. use the quadratic equation. I think this involves the golden ratio: http://mathworld.wolfram.com/GoldenRatio.html

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