Question:

How would you differentiate 2exlnx?

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The question is: use calculus to find the minimum value of 2exlogex. I know how to find the minimum value, but i keep getting the answer wrong, so i must be differentiate it wrong. which is what i always do :/

Any help is appreciated (in just differentiating, not finding minimum value), please show steps :) thanks

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  1. y=2e^xlnx

    y'=2e^xlnx+(2e^x)/x

    PRODUCT RULE


  2. Are you asking how to differentiate 2e^x*ln(x)?  or  2e^x*log(e^x) or  2e^(xlog(e^x))

    ?

  3. f(x)== 2 e x Ln(x)

    f'(x)== 2e (ln(x)+1)== 2e Ln(x)+2e

    - - - - - - - -

    mmm

    f'(x) ==0 ===> 2e Ln(x)+2e==0 then:

    Ln(x)== -1

    x== e^(-1)

    how do you get your solution? i will attend your answer

    - - - - - -

    Maybe the solution in the book is not correct. i think this is the method to get the solution and x== e^(-1) is minimum value.

    sorry for english, i'm italian

    - - - - - - -

    WAIT the solution is right:

    let x== e^(-1) then

    f(e^(-1))== 2e (e^(-1))Ln(e^(-1))== 2*(-1) == -2

    - - - - -  - - - -

    fiuuuuu, have a good time :)
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