studentcheese
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In the expansion of (x+a)^3 (x+b)^5, the coefficients of x^7 and x^6 are 9 and 12 respectively. Find the values of a and b.
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binomial theorem.. in the expansion of... the coefficients bla bla bla (1 Viewer)
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tom.evans.15
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I just tried that question, had difficulty...
I think I compared coeffs wrong...
I think I compared coeffs wrong...
scardizzle
Salve!
i cant be bothered writing the whole expansion out but you pretty much expand both binomials and see what multiplies together to give you x^6 and x^7
This is what i got(although my workings a bit messy so i might have missed something):
for x^7 coefficients are: 3C0 x 5C1 b + 3C1 x 5C0a
= 5b + 3a = 9
for x^6 coefficients are: 3C0 x 5C2 x b^2 + 3C1 x 5C1 x ab + 3C2 x 5C0 a^2
= 10b^2 +15ab + 3a^2 = 12
solve simultaneously
(on a side note good to see you in the forums tom)
This is what i got(although my workings a bit messy so i might have missed something):
for x^7 coefficients are: 3C0 x 5C1 b + 3C1 x 5C0a
= 5b + 3a = 9
for x^6 coefficients are: 3C0 x 5C2 x b^2 + 3C1 x 5C1 x ab + 3C2 x 5C0 a^2
= 10b^2 +15ab + 3a^2 = 12
solve simultaneously
(on a side note good to see you in the forums tom)
Last edited:
scardizzle
Salve!
by letting b be the subject of 5b + 3a = 9 ---1
you sub it into 10b^2 + 15ab + 3a^2 = 12
then you get a farely messy quadratic
the final simplified version is 4b^2 - 9b - 9
therefore b = 3 or -0.75
subbing into 1: you get a = -2 or 4.25
you sub it into 10b^2 + 15ab + 3a^2 = 12
then you get a farely messy quadratic
the final simplified version is 4b^2 - 9b - 9
therefore b = 3 or -0.75
subbing into 1: you get a = -2 or 4.25