What is the arclength of $f(t) = (sin^2t-cos2t,t/pi)$ on $t in [-pi/4,pi/4]$ ?

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What is the arclength of $f(t) = (sin^2t-cos2t,t/pi)$ on $t in [-pi/4,pi/4]$ ?

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Answer 1 · 2018-05-28T13:41:52

$approx 3.06967$

Explanation:

we have
$x(t)=sin^2(t)-cos(2t)$
so
$x'(t)=2sin(t)cos(t)+2sin(t)$
$y(t)=t/pi$
$y'(t)=1/pi$
and we have the integral
$int_(-pi/4)^(pi/4)sqrt(1/pi^2+(2sin(t)cos(t)+2sin(2t))^2)dt$
This leads to an elliptic integral.

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What is the arclength of $f(t) = (sin^2t-cos2t,t/pi)$ on $t in [-pi/4,pi/4]$ ?

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Explanation:

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