Posting Freak
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Eh i got the first one..it factors down to 2q(3p^2 + 2q^2)
and Fiel I don't really know if that's right..at least I don't get it..do you think you can explain each step a little? :f6:
Posting Freak
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Okay... here's basically what you need to know.
Difference of squares: m^2 - n^2 = (m+n)(m-n)
Difference of cubes: m^3 - n^3 = (m-n)(m^2+mn+n^2)
Sum of cubes: m^3 + n^3 = (m+n)(m^2-mn+n^2)
Basically what butterfli said. m and n can be anything. In the case of the first one m = p+q and n = p-q.
Can you do the second one from here or you need help?
Posting Freak
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2008-09-23, 12:55 AM
(This post was last modified: 2008-09-23, 12:57 AM by butterfλi.)
using the sums and differences of cubes on (A^3 + B^3)(A^3 - B^3), you get
= (a+b)(a-b)(a²-ab+b²)(a²+ab+b²)
remember that fiel said
Let A = (a + b)
Let B = (a - b)
so that mess actually looks like
[(a+b)+(a-b)] x [(a+b)-(a-b)] x [(a+b)²-(a+b)(a-b)+(a-b)²] x [(a+b)²+(a+b)(a-b)+(a-b)²]
simplify it from there since its just a bunch of plus' and minus'. also because its plus' and minus', a buttload of things should cancel out.
Posting Freak
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Looks chaotic :f6:
Don't worry TS... precalc next year is easy.
Senior Member
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Eww Precalc. Calculus is easier than Alg and PreCalc.