In the limiting process where the partition becomes infinitely fine (∥P∥→0), the exact location of the sample point inside each subrectangle does not matter. While different choices of (xk,yk) will yield different finite Riemann sums (approximations), the limit of these sums as the subrectangles shrink to zero size is independent of the specific interior point chosen.
Conditions: Applies in the limit as the partition norm ∥P∥→0.; Each (xk,yk) must be chosen inside its corresponding subrectangle.
In the limiting process where the partition becomes infinitely fine (∥P∥→0), the exact location of the sample point inside each subrectangle does not matter. While different choices of (xk,yk) will yield different finite Riemann sums (approximations), the limit of these sums as the subrectangles shrink to zero size is independent of the specific interior point chosen.
Conditions: Applies in the limit as the partition norm ∥P∥→0.; Each (xk,yk) must be chosen inside its corresponding subrectangle.
A point (xk,yk) must be chosen because the subrectangle is a two-dimensional region, not a single input value. To determine the height of the representative box standing over that subrectangle, one must evaluate the function f(x,y) at a specific location.
Conditions: The domain is partitioned into subrectangles.; A function f(x,y) defines the surface height.
A point (xk,yk) must be chosen because the subrectangle is a two-dimensional region, not a single input value. To determine the height of the representative box standing over that subrectangle, one must evaluate the function f(x,y) at a specific location.
Conditions: The domain is partitioned into subrectangles.; A function f(x,y) defines the surface height.