Author Topic: math in hl HELP  (Read 11308 times)

Offline IGSTUDENT

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Re: math in hl HELP
« Reply #15 on: September 07, 2009, 03:07:50 pm »
geometric progression.

how did you get 8?

Offline Ghost Of Highbury

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Re: math in hl HELP
« Reply #16 on: September 07, 2009, 03:27:09 pm »
i have answered it...scoll up in the first page
divine intervention!

Offline IGSTUDENT

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Re: math in hl HELP
« Reply #17 on: September 07, 2009, 03:35:28 pm »


Actually it is a GP question:

k/2, k+8, k^2 are in gp find k
Thanks!!

nid404

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Re: math in hl HELP
« Reply #18 on: September 07, 2009, 03:45:22 pm »
yea...basically proving an identity....for example:
(1-sinx)/(cosx) = (cosx)/(1+sinx)

LHS

1-sinx/cosx

multiply by 1+sinx/1+sinx...this only to get the value in the denominator...we're actually not changing anything u see cause 1+sinx/1+sinx=1

so
1-sin2x/cosx(1+sinx)
u know that
1-sin2x=cos2x
so
cos2x/cosx(1+sinx)
cancel the cosx from top and bottom
cos2x/cosx(1+sinx)
cosx/1+sinx

hope u got it

Offline Ghost Of Highbury

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Re: math in hl HELP
« Reply #19 on: September 07, 2009, 03:47:51 pm »
yea...basically proving an identity....for example:
(1-sinx)/(cosx) = (cosx)/(1+sinx)

LHS

1-sinx/cosx

multiply by 1+sinx/1+sinx...this only to get the value in the denominator...we're actually not changing anything u see cause 1+sinx/1+sinx=1

so
1-sin2x/cosx(1+sinx)
u know that
1-sin2x=cos2x
so
cos2x/cosx(1+sinx)
cancel the cosx from top and bottom
cos2x/cosx(1+sinx)
cosx/1+sinx

hope u got it

was answered by astar...
but...nevertheless...ur answer wud suit him..
divine intervention!

nid404

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Re: math in hl HELP
« Reply #20 on: September 07, 2009, 03:51:01 pm »
yea...basically proving an identity....for example:
(1-sinx)/(cosx) = (cosx)/(1+sinx)

LHS

1-sinx/cosx

multiply by 1+sinx/1+sinx...this only to get the value in the denominator...we're actually not changing anything u see cause 1+sinx/1+sinx=1

so
1-sin2x/cosx(1+sinx)
u know that
1-sin2x=cos2x
so
cos2x/cosx(1+sinx)
cancel the cosx from top and bottom
cos2x/cosx(1+sinx)
cosx/1+sinx

hope u got it

was answered by astar...
but...nevertheless...ur answer wud suit him..


astar equated it...and he/she replied that you need to use only LHS....so i thought this might help

Offline Ghost Of Highbury

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Re: math in hl HELP
« Reply #21 on: September 07, 2009, 03:53:20 pm »
ofcousre..
divine intervention!

Offline IGSTUDENT

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Re: math in hl HELP
« Reply #22 on: November 15, 2009, 04:56:14 am »
Posting my query again :
can someone help.
evaluate (1+?3i)^3

Offline astarmathsandphysics

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Re: math in hl HELP
« Reply #23 on: November 15, 2009, 07:56:14 am »
(1+3i)^3=1+3*1^2*3i+3*1*(3i)^2+(1*(3i)^3=1+3i-27-27i=-26-35i

use the binomial theorem

Offline IGSTUDENT

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Re: math in hl HELP
« Reply #24 on: November 15, 2009, 08:01:39 am »
(1+3i)^3=1+3*1^2*3i+3*1*(3i)^2+(1*(3i)^3=1+3i-27-27i=-26-35i

use the binomial theorem
thanks astar but the notation did not come out properly. The question is actually (1+square root of 3i)^3

Offline astarmathsandphysics

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Re: math in hl HELP
« Reply #25 on: November 15, 2009, 08:33:59 am »
(1+i sqrt{3})^3=1+3*1^2*i sqrt{3} +3*1*(i sqrt{3} )^2+(i sqrt{3} )^3=1+3i sqrt{3} -9-3i sqrt{3} =-8

try this

Offline IGSTUDENT

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Re: math in hl HELP
« Reply #26 on: November 15, 2009, 09:27:40 am »
thanks a lot astar.
your answer also matches but the textbook has the question as (1+ square root of (3i) )the whole cube. could that be  a misprint?

Offline astarmathsandphysics

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Re: math in hl HELP
« Reply #27 on: November 15, 2009, 09:39:05 am »
Yes a misprint

Offline sweet777

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Re: math in hl HELP
« Reply #28 on: November 29, 2009, 06:41:51 am »
LHS

1-sinx/cosx

multiply by 1+sinx/1+sinx...this only to get the value in the denominator...we're actually not changing anything u see cause 1+sinx/1+sinx=1

so
1-sin2x/cosx(1+sinx)
u know that
1-sin2x=cos2x
so
cos2x/cosx(1+sinx)
cancel the cosx from top and bottom
cos2x/cosx(1+sinx)
cosx/1+sinx

hope u got it


was answered by astar...
but...nevertheless...ur answer wud suit him..



astar equated it...and he/she replied that you need to use only LHS....so i thought this might help


thanks for the answer....i wanted the LHS = RHS method......thanks a ton!!!!

Offline sweet777

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Re: math in hl HELP
« Reply #29 on: November 29, 2009, 07:20:37 am »
if a question is given:
let g(x) = log5|2log3x|. Find the product of the zeros of g.

How do you solve this question?i dont even understand what this question means!...