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i dont have compjust asking..did ur comp pprs got cancelled or wht?
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i dont have compjust asking..did ur comp pprs got cancelled or wht?
2^x(2^x-1)=0no the equation
gf(x) kia aaraha tha???
as transposedWhat was it?
I wrote plus infinity to minus infinity, as the range.
And x> 1 as the domain.
as transposed
range was f^-1>2
and domain x>3
just opposite values of fx
ye e kahan se aya????2e^2x + 2e^x
simply sketch its graph...mind map and whtever and see tht infact values r transposed..check the past pprs do mind map check the book even u will see tht they r transposed values..I don't think so. It was a logarithmic function, doesn't work that way.
tht,s wht I was thinking and yeah abt the equationye e kahan se aya????
simply sketch its graph...mind map and whtever and see tht infact values r transposed..check the past pprs do mind map check the book even u will see tht they r transposed values..
tht,s wht I am saying abt xtra sol which u put up tht they penalize as it violates accuracy mark..smtimes during checking they might see a general trend or sth or doubts of their own regarding xtra sol and so they hold meetings e.t.c
tht,s wht I am saying abt xtra sol which u put up tht they penalize as it violates accuracy mark..smtimes during checking they might see a general trend or sth or doubts of their own regarding xtra sol and so they hold meetings e.t.c
Oh ho I know wht ur talking abt ...have read it in my add maths book ...but for this graph u had to check its initial domain for the orginal fx to be defined and thus for its inverse to be defined as well I know..these were the extra restrictionsYou should google ''how to find domain and range of logarithmic functions''..
i solved the equation further so it became 2^2x - 2^xtht,s wht I was thinking and yeah abt the equation
2^x(2^x-1)=0
wht did u write abt being no solutions...for me have already told u
Oh ho I know wht ur talking abt ...have read it in my add maths book ...but for this graph u had to check its initial domain for the orginal fx to be defined and thus for its inverse to be defined as well I know..these were the extra restrictions
lg(x+1)/lg2 so x>-1 is think wht u wrote and this wrong due to the initial domain and range of org fx
since they were already sort of factorized then it wud simply be 2^x=0 not possible and 2^x-1=0 i.e x=o which was not in domain so hence no real soli solved the equation further so it became 2^2x - 2^x
Maybe i could be wrong
So i wrote the bases cannot get cancelled as they are not being multiplied or divided
I guess i was wrong :/
x>3 and f^-1>2So the domain of f. That was your range of f inverse?
And the range of f that was >3 was your domain of f inverse?
since they were already sort of factorized then it wud simply be 2^x=0 not possible and 2^x-1=0 i.e x=o which was not in domain so hence no real sol
x>3 and f^-1>2
tht,s it
since they were already sort of factorized then it wud simply be 2^x=0 not possible and 2^x-1=0 i.e x=o which was not in domain so hence no real sol
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