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![[Post New]](/templates/default/images/icon_minipost_new.gif) 11 Aug 2007 13:27:41 IST
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the roots of x2 + bx + c = 0 are both real and greater than 1. if s = 1+ b+ c, then comment on the value of s
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11 Aug 2007 13:31:57 IST
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s>0..........!!!!!!!!!
bcas b = a negative no.........
and always for the roots wch r real n greater than 1,1+c is always greater than b......!!!!!!!!
if the roots r less than 1,then their sum maybe greater than their product but they will b greater in a margin less than 1....so 1+product>sum.....and if the roots r greater than 2,their products r greater than their sums..............so s>0................!!!!!!!!!!!!
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Nivedh your giving too much effort in this problem.
if f(x)=x^2+bx+c then f(1) = 1+b+c
As both roots are greater than one then from the graph we get that s>0. {note as the coefecient of x2 is >0 so the graph opens upwards}
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11 Aug 2007 15:18:10 IST
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ans is s>0
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11 Aug 2007 17:04:10 IST
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s>0 ... n yes gud thinking rajatsen but it can be done the other way too by seeing that c >1 and b<-2 and then checking and finding that s > 0 always
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- Gaurav Ragtah (spideyunlimited)
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12 Aug 2007 20:59:46 IST
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I cant understand how you all are solving it. we know thatb<-2, i.e. 1+b<-1 and c>1 so 1+b+c can be >0 or =0. Consider this expression (x-1)(x-2)=x2-3x+2 In this b= -3 and c = 2. So, 1+b+c = 1-3+2 = 0. [which contradicts your answers] Note that, s cannot be < 0, becuse sum of two real numbers cannot be greater than their product by a number greater than 1 So, the answer is:- S>0 or = 0 please rate me.
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13 Aug 2007 17:10:54 IST
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uf oh metal b<-2 and c >1
so 1+b+c > 0 . where the hell did u get the equality sign from mate... wht r u tryin to do..
it will only be 0 when b = -2 and c = 1 but that is not allowed here.. see the first line b<-2 and c >1
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- Gaurav Ragtah (spideyunlimited)
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13 Aug 2007 20:28:02 IST
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Spidey dear, haven't you read what I have written????????? Who the hell told you that 1+b+c will be equal to 0 when b= -2 and c= 1.????? Of course that is a case, but this is not valid here. But there are other possible values of b and c such that b<-2 and c>1, yet 1+b+c=0. I even gave an example, and I am giving it here again:- Consider the expression x2-3x+2; where b= -3 which is obviously less than -2, and c=2, which is also obviously greater than 1, yet 1+b+c=1-3+2=0. GOT IT???????? [correct me if I am wrong] If I am correct please rate me {I am currently in need of some good rates, pal. Please help}
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13 Aug 2007 21:14:50 IST
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If both roots of ax^2 +bx +c=0 are greater than k...
then a.f(k)>0 is the necessary and sufficient condition...
so 1.(1+b+c)>0
so s>0
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14 Aug 2007 01:00:01 IST
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MR METAL!!! ... in the equation u have given x^2 - 3x + 2... what are the two roots?
x = 1, and x = 2
but the question clearly states that an equation where both roots are greater than one..ur equation has one root equal to one. so there!
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- Gaurav Ragtah (spideyunlimited)
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