albertlee Posted September 7, 2006 Posted September 7, 2006 say, on a graphic of cubic function, there is a root at 2, a y point on 8 when x is 1, and another on 8 also when x is -1, and when x is 0, y = 8. 1) if I solve this by: (x-2)(ax^2+bx+c).... I get an answer because I can solve a, b, c by 3 different simul equations. but 2) if I solve this by: (x-2)(ax+b)(x+c), I get more answers because when I try to solve c, I get a quadratic equation for it, which means c can have 2 values...... but this cannot be possible, since c can only be one value as a root. plz help
Dave Posted September 7, 2006 Posted September 7, 2006 Well the reason why we try to find a factor of the form ax^2+bx+c is because we don't necessarily know that this quadratic factor is even reducible*. That is, when we solve for a, b and c the answer is not guaranteed to then factor into two linear factors. For example, say you were to obtain the quadratic term x^2+x+1. It is impossible to reduce this into two linear factors*. So by assuming the form of the non-linear term is (ax+b)(x+c) you may run into problems. * I'm assuming we're talking about the reals, any real polynomial is reducible over C.
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