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10 June, 10:51

Integrate f (x, y) = x^2 + y^2 over the triangular region with vertices (0,0), (1,0), and (0,1). Use a definite double integral and show all the steps.

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  1. 10 June, 11:20
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    the integral result is I = 1/6

    Step-by-step explanation:

    For the region with vertices (0,0), (1,0), and (0,1) we have the

    boundaries y=1-x, x=0 and y=0 for the integral then

    1) integrating over the region y=1-x and y=0 for y, and then from x=1 to x=0

    I = ∫∫ f (x, y) dx*dy = ∫₀¹∫₀¹⁻ˣ (x^2 + y^2) dy*dx = ∫₀¹ [ (1-x) * x^2 + (1/3) (1-x) ^3 - 0*x^2 + (1/3) 0^3 ] dx = ∫₀¹ [x^2 - (2/3) x^3] dx = [ (1/3) x^3 - (1/6) x^4 ]|₀¹ = [ (1/3) 1^3 - (1/6) 1^4 ] - [ (1/3) 0^3 - (1/6) 0^4 ] = (1/3) - (1/6) = 1/6

    2) integrating over the region x=1-y and x=0 for x, and then from y=1 to y=0 (the same process but changing y for x)
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