The discussion focuses on ordering the integrals j = ∫√(1-x⁴), k = ∫√(1+x⁴), and l = ∫√(1-x⁸) over the interval [0, 1]. It is established that j < k due to the inequality √(1-x⁴) ≤ √(1+x⁴) for all x in [0, 1]. Additionally, the order of the integrals depends on the powers of x; for x in the range [0, 1], the order is j < k < l, while for x outside this range, the order changes. The integrals are noted to be non-integrable in terms of elementary functions.
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Dustinsfl said:+, but for the x to the 8th and 4th it depends on if 0<x<1 or if x is outside that range. If x is between 0-1, the order would be +, 8th power, 4th. If not in that range, +, 4th, and 8th.
Dustinsfl said:I did.
Dustinsfl said:j=\int\sqrt{1-x^{4}}
k=\int\sqrt{1+x^{4}}
l=\int\sqrt{1-x^{8}}
I am trying to figure out the order for example j<k<l. I don't know how to integrate any of these.