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![[Post New]](/templates/default/images/icon_minipost_new.gif) 17 May 2007 16:09:08 IST
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In a plane there are n lines , no two are parallel and no three are concurrent. How many triangles can be formed with their point of intersection as vertices?
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17 May 2007 16:11:45 IST
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total no of points is nC2=n(n-1)/2.
for triangles select any 3 of them.that can be done in
[n(n-1)/2]C3 ways.
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17 May 2007 16:12:59 IST
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plz explain briefly
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17 May 2007 16:27:00 IST
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since none of em are parallel and concurrent , all of them instersect with one another in an specific pt( ie three lines have their pt of intersection same)
twice total no of intersections made = n(n-1)
no of intersections = n(n-1)/2
no of vertices available = n(n-1)/2
since three pts are req for a triangle,
no of triangles formed = [n(n-1)/2]C3 = [(n(n-1)/2)!] / [6*( n(n-1)/2 -- 3)! ]
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17 May 2007 16:28:02 IST
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ok.. when there are 2 lines there is one intersection when there are 3 lines there are 3.. when there are four there are 6...etc.. this is a series where the common difference is in ap.. and the total number of ntersections for n lines comes out to be n(n-1)/2 out of which n-1 are collinear therefore the number of triangles that can be formed is n(n-1)/2C3 -(n-1)C3.... will post full working soon if right plz rate....
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Be Strong Be Different. Just Be
    
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Since there are n lines so that no. of their pt. of intersection=nC2=n(n-1)/2 But ther are n-1 pts on each line. These n-1 collinear pts are actually the pts of intersection of the line with other n-1 lines. Now we can select there pts from each set of n-1 pts in (n-1)C3 ways But as these n-1 pts are collinear & hence will n't give any triangle. In this way n. (n-1)C3 combinations give no triangle. Therefore reqd no of triangles=(1/48)n(n-1)(n^4-2n^3-13n^2+46n-40) Hope it will help u
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17 May 2007 16:29:50 IST
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since there is no parallel line total no of points of intersection is same as selecting 2 lines from n lines.for every 2 lines we have a point of intersection.it can be done in nC2 ways.
for a triangle we require 3 points.for every 3 points we can draw a triangle.selecting 3 points from nC2 lines can be done in (nC2)C3 ways.
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17 May 2007 21:53:58 IST
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is the answer n(n-1)/2 C3 - n(n-2)C3??????????
plzzzzzzz send the answer if it is wrong
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GBXDHNXDFNHBHRSDRGWEASGSEDH |
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17 May 2007 23:20:41 IST
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yes quite tricky it is !
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In the process of learnin..............blunders do happen !!! |
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18 May 2007 13:18:38 IST
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The soln provided by rishi is quite useful and ans given by him is right. Thanks Mr Rishi
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