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If (x^2+5x-1)^2-25=(x-a)(x-b)(x-c)(x-d) and a,b,c, and d are
[#permalink]
13 Sep 2008, 16:46
13 Sep 2008, 16:46
If (x^2+5x-1)^2-25=(x-a)(x-b)(x-c)(x-d) and a,b,c, and d are constants, what is the value of abcd?
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Re: If (x^2+5x-1)^2-25=(x-a)(x-b)(x-c)(x-d) and a,b,c, and d are
[#permalink]
13 Sep 2008, 16:53
13 Sep 2008, 16:53
adcd should be -24.
(x^2+5x-1)^2-25=(x-a)(x-b)(x-c)(x-d)
the only non-x terms in the left hand side of expression are 1 ( as it is squared ) and -25 , so the non-x term will be -24
the right hand side of the expression the non-x term will be adcd
sp adcd=-24
(x^2+5x-1)^2-25=(x-a)(x-b)(x-c)(x-d)
the only non-x terms in the left hand side of expression are 1 ( as it is squared ) and -25 , so the non-x term will be -24
the right hand side of the expression the non-x term will be adcd
sp adcd=-24
Re: If (x^2+5x-1)^2-25=(x-a)(x-b)(x-c)(x-d) and a,b,c, and d are
[#permalink]
13 Sep 2008, 17:00
13 Sep 2008, 17:00
I still don't see it. How did you get to that solution?
