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Binomial Theorem help? (1 Viewer)

shinji

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hey. im kinda stuck on a question ... and yerh.

here's the question:

Find the value of "r" if the coefficients of the rth term from the beginning and the rth term from the end of (2x + 3)^15 are in the ratio of 8:27

would be helpful if u stated the correct answer and how u did it. thanks!
 

Mountain.Dew

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shinji said:
hey. im kinda stuck on a question ... and yerh.

here's the question:

Find the value of "r" if the coefficients of the rth term from the beginning and the rth term from the end of (2x + 3)^15 are in the ratio of 8:27

would be helpful if u stated the correct answer and how u did it. thanks!
heres more of my 2 cents.

simply put, this question translates to be ==> nCr : nCn-r = 8 : 27

or simply, nCr/nCn-r = 8/27, where n = 15.

now, finding the 'r'th term ==> Tr = nCr-1an-(r-1)br-1 = 15Cr-1(2x)15-(r-1)3r-1 =
15Cr-1(2)15-(r-1)3r-1(x)15-(r-1) =

so, coefficient of Tr = 15Cr-1(2)15-(r-1)3r-1

...more to come soon.
 

clue

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:wave: the correct answer is r=9

heres my solution
T(r)=15Cr * (2x)^r * 3^(15-r)

T(15-r)= 15C(15-r) * (2x)^(15-r) * 3^r

T(r)/T(15-r)= (2x)^(2r-15) * 3^(15-2r) (nCk=nC(n-k))

therefore

2^(2r-15) * 3^(15-2r)=8/27

(3/2)^15 * (2/3)^2r=8/27

(2/3)^2r= (2/3)^3 * (2/3)^15
= (2/3)^18

taking the log of both sides should give you
2r=18 r=9

i hope that makes sense, as i did miss a few steps here and there, feel free to ask for further explanation:) :)

btw i hope by maths notation is right-this is the first time i've written maths solutions on a computer...
 

Mountain.Dew

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clue said:
mountian dew how did you manage to write the powers?
thanks in advance for an answer...:cool:
ah very simple. say you wanted x cubed, or x^3. you want "x3", yes?

simply type in "x(sup)<insert the value of the power>(/sup)" BUT replace the ( ) with [ ]
 

shinji

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clue said:
:wave: the correct answer is r=9

heres my solution
T(r)=15Cr * (2x)^r * 3^(15-r)

T(15-r)= 15C(15-r) * (2x)^(15-r) * 3^r

T(r)/T(15-r)= (2x)^(2r-15) * 3^(15-2r) (nCk=nC(n-k))

therefore

2^(2r-15) * 3^(15-2r)=8/27

(3/2)^15 * (2/3)^2r=8/27

(2/3)^2r= (2/3)^3 * (2/3)^15
= (2/3)^18

taking the log of both sides should give you
2r=18 r=9

i hope that makes sense, as i did miss a few steps here and there, feel free to ask for further explanation:) :)

btw i hope by maths notation is right-this is the first time i've written maths solutions on a computer...

lol thanks for the effort. but i don't really understand this line

T(r)/T(15-r)= (2x)(2r-15) * 3(15-2r) (nCk=nC(n-k))
 

shinji

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oh yeah btw;

i looked at the answers; the rTh term is 7.

=/; ne way on how to find that out?
 

shinji

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hey. finally got the answer for those who are interested.

(2x+3)15

Begin Trth : 15Cr-1 (2x)16-r 3r-1

End Trth : 15C16-r (2x)r-1 316-r

Tr/End Tr = 8 / 27 = 15!/(r-1)!(16-r)! * 216-r/2r-1 * 3r-1/316-r * (16-r)!(r-1)!/15!

8/27 = 217-2r/317-2r

23/33 = 217-2r/317-2r

.:. 17-2r = 3
-2r = -14
r = 7

which is the correct answer ~_~
 
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