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#1 2008-05-19 04:13:22
- luca-deltodesco
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- Registered: 2006-05-05
- Posts: 1,470
problem doing summation
I'm having troubles doing this sum as part of a past paper im doing for exam friday.
Theres an image of a region of the graph y = 3^x between 0 and 1 with a set of strips shown beneath the curve with width 'h' so that nh = 1 where n is the number of strips
i) By using the set of rectangles indicated on the diagram show that A > 2h/(3^h - 1) where A is area of the curve between 0 and 1
Now, summing the areas of the strips, i get h(1+3^h + 3^2h .... + 3^[h(n-1)]) but im having trouble trying to get that to be 2h/(3^h - 1)
I know how to sum a geometric series from way back in the modules, but if i plug it in here i get.
Have i done something wrong, because i cannot find a way of equating that to the expression given.
Last edited by luca-deltodesco (2008-05-19 04:13:36)
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#2 2008-05-19 04:37:04
- Identity
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- Registered: 2007-04-18
- Posts: 934
Re: problem doing summation
I'm having troubles doing this sum as part of a past paper im doing for exam friday.
Theres an image of a region of the graph y = 3^x between 0 and 1 with a set of strips shown beneath the curve with width 'h' so that nh = 1 where n is the number of strips
i) By using the set of rectangles indicated on the diagram show that A > 2h/(3^h - 1) where A is area of the curve between 0 and 1
Now, summing the areas of the strips, i get h(1+3^h + 3^2h .... + 3^[h(n-1)]) but im having trouble trying to get that to be 2h/(3^h - 1)
I know how to sum a geometric series from way back in the modules, but if i plug it in here i get.
Have i done something wrong, because i cannot find a way of equating that to the expression given.
Your sum is:
But nh=1 => h=1/n
I don't get how you did it 
Last edited by Identity (2008-05-19 04:38:42)
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#3 2008-05-19 05:14:03
- luca-deltodesco
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- Registered: 2006-05-05
- Posts: 1,470
Re: problem doing summation
i see now, i was trying to put it into a form where the ratio was a single number, i had r = 3^h at first, but thought, that can't be right, forgetting that 'h' is known thanks.
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