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![[Post New]](/templates/default/images/icon_minipost_new.gif) 19 Apr 2008 00:15:00 IST
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if a>0 , f(x)=ax + bx2 + c and b2 _ 4ac < 0 then f(x) >0  x  R. (T/F)
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19 Apr 2008 00:25:08 IST
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false if b>0 then f(x)>0 for all real x. if b<0 then f(x)<0 for all real x.
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if u mean f(x)=ax^2 + bx + c yup it's true.....
as
b^2 - 4ac < 0.....it follows that the eqn has no real roots.....as a>0...the parabola opens upwards....and it never intersects x-axis.....sooo....for any value of x....f(x) will always be +ve
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Who says nothing is impossible.
I've been doing nothing for years !!..............
I know KUNG FU KARATE
and 47 other dangerous words.............
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19 Apr 2008 00:26:36 IST
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I think it is true ....infact this is the condition u ll usually apply in problems
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19 Apr 2008 00:27:40 IST
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i think u meant ax^2 + bx + c = 0 ............??
then
True...
as if b^2 - ac < 0 means imaginary roots. means on cartesian plane, the parabola of ax^2 + bx + c = 0 will remain always above 0 (because a is also positive)
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---------------------------------------------------------------
* Gaurav Ragtah ( aka Artemis Fowl )
* Agent 'G' [sniper] - SD-6 (Alliance of Twelve)
* Your friendly neighborhood spideyunlimited |
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19 Apr 2008 00:28:46 IST
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ha i think we got into the habit of having the eq as ax^2 + bx +c
but look at the q carefully.
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19 Apr 2008 00:30:20 IST
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sorry ..didnt read the question properly ...i took it to be
ax^2+bx+c ...sorry for the miss ..mayb the time is a factor ...
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19 Apr 2008 00:32:23 IST
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tru try plotting graph
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19 Apr 2008 00:38:31 IST
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yea well thts y i mentioned :)
otherwise your answer is perfect :)
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* Gaurav Ragtah ( aka Artemis Fowl )
* Agent 'G' [sniper] - SD-6 (Alliance of Twelve)
* Your friendly neighborhood spideyunlimited |
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