Reversing order of integration of double integral qns.

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SUMMARY

The discussion focuses on reversing the order of integration for a double integral defined by the inequalities x² < y < x³ and -1 < x < 1. Participants analyze the limits of integration, ultimately determining that for the negative x portion, the correct limits are -1 < x < -√y for 0 < y < 1 and -1 < x < -∛y for -1 < y < 0. The importance of accurately sketching the region and understanding the boundaries is emphasized, particularly the necessity of including vertical segments in the graphical representation.

PREREQUISITES
  • Understanding of double integrals and their limits
  • Familiarity with graphing functions such as y = x² and y = x³
  • Knowledge of how to express x limits in terms of y
  • Basic skills in sketching regions defined by inequalities
NEXT STEPS
  • Study the process of reversing the order of integration in double integrals
  • Learn about graphical methods for determining integration limits
  • Explore the properties of cube roots and their implications in integration
  • Practice solving double integrals with varying limits and regions
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Students and educators in calculus, particularly those focusing on multivariable integration and the geometric interpretation of integrals.

blursotong
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[sloved]reversing order of integration of double integral qns.

Homework Statement


pls refer to attached picture.

Homework Equations






The Attempt at a Solution



intially upper and lower limits are , x^2 < y< x^3 and -1<x<1
sketched y=x^2 and y= x^3. => sqrt(y) =x and cube root (y) = x
divide the area into 3 section.
new limits of dxdy
sqrt(y) <x< cube root (y) with 0<y<1 ,
and 0<x< sqrt(y) with 0<y< -1, ( for -ve x and +ve y portion of x^2 graph)
and cube root (y)< x< 0 with -1<y<0 ( for -ve x and -ve y portion of x^3 graph)

but the answer i have shows a different answer. guess i am wrong, but anyone can tell me which part?
attached is a graph i tried to draw( pardon my IT skills=P)
 

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Your picture is good, but you should emphasize that the region is also bounded by a vertical segment at x=(-1). Doesn't that mean some of your lower limits in the x integration need to be -1?
 
hmm..to find limit of x integration we draw vertical line? so when i split the area to three sections, their upper limits is cube root y or sqrt y and the lower limit is 0?
yea, but according to the answer i have, it uses limits of x integration as -1..and i don't understand why?
could you kindly explain to me?
 
Take your diagram and draw a segment connecting (-1,1) and (-1,-1). That's the boundary curve that determines your lower limit when you are doing the x<0 parts of the integration.
 
opps..i was wrong, we should draw horizontal lines instead. and yup..
i get jus (for the -ve x portion)
-1 < x < sqrt y with 0< y< 1
and -1 < x < -x^3 with -1< y < 0
using the these lines as a guide..
 
opps i only can attach files when i post a thread? can't seem to be able to upload the edited graph here??
 
blursotong said:
opps..i was wrong, we should draw horizontal lines instead. and yup..
i get jus (for the -ve x portion)
-1 < x < sqrt y with 0< y< 1
and -1 < x < -x^3 with -1< y < 0
using the these lines as a guide..

You'll need to express x limits in terms of y. And for both of them, the upper limit should be a negative number, like your graph shows.
 
yup.i got them now.
i get (jus for the -ve x portion)
-1 < x < -sqrt y with 0< y< 1
and -1 < x < -cube root y with -1< y < 0

thanks a lot for your guidance=D
 
blursotong said:
yup.i got them now.
i get (jus for the -ve x portion)
-1 < x < -sqrt y with 0< y< 1
and -1 < x < -cube root y with -1< y < 0

thanks a lot for your guidance=D

Are you super sure about that -cube root(y)?? Remember if y is negative then cube root(y) is already negative.
 
  • #10
ahah! my wrong..it should be jus cube root of y...
thx for pointing out!
=D
 

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