Derivative of $ y = frac{1}{ln^{2}x} $ [closed]












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I am supposed to find the derivative of $ y = frac{1}{ln^{2}x} $. How would you calculate it? My first step was to do this: $frac{-1ast ln^{2}x}{(ln^{2}x)^{2}}$. How would you continue? I don't know what to do with $ ln^{2}x $. Thanks










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closed as off-topic by amWhy, DRF, RRL, Did, Saad Dec 3 at 1:04


This question appears to be off-topic. The users who voted to close gave this specific reason:


  • "This question is missing context or other details: Please improve the question by providing additional context, which ideally includes your thoughts on the problem and any attempts you have made to solve it. This information helps others identify where you have difficulties and helps them write answers appropriate to your experience level." – amWhy, DRF, RRL, Did, Saad

If this question can be reworded to fit the rules in the help center, please edit the question.


















    -2














    I am supposed to find the derivative of $ y = frac{1}{ln^{2}x} $. How would you calculate it? My first step was to do this: $frac{-1ast ln^{2}x}{(ln^{2}x)^{2}}$. How would you continue? I don't know what to do with $ ln^{2}x $. Thanks










    share|cite|improve this question















    closed as off-topic by amWhy, DRF, RRL, Did, Saad Dec 3 at 1:04


    This question appears to be off-topic. The users who voted to close gave this specific reason:


    • "This question is missing context or other details: Please improve the question by providing additional context, which ideally includes your thoughts on the problem and any attempts you have made to solve it. This information helps others identify where you have difficulties and helps them write answers appropriate to your experience level." – amWhy, DRF, RRL, Did, Saad

    If this question can be reworded to fit the rules in the help center, please edit the question.
















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      I am supposed to find the derivative of $ y = frac{1}{ln^{2}x} $. How would you calculate it? My first step was to do this: $frac{-1ast ln^{2}x}{(ln^{2}x)^{2}}$. How would you continue? I don't know what to do with $ ln^{2}x $. Thanks










      share|cite|improve this question















      I am supposed to find the derivative of $ y = frac{1}{ln^{2}x} $. How would you calculate it? My first step was to do this: $frac{-1ast ln^{2}x}{(ln^{2}x)^{2}}$. How would you continue? I don't know what to do with $ ln^{2}x $. Thanks







      derivatives






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      edited Nov 25 at 14:10









      Bernard

      118k638111




      118k638111










      asked Nov 25 at 14:04









      Johny547

      1154




      1154




      closed as off-topic by amWhy, DRF, RRL, Did, Saad Dec 3 at 1:04


      This question appears to be off-topic. The users who voted to close gave this specific reason:


      • "This question is missing context or other details: Please improve the question by providing additional context, which ideally includes your thoughts on the problem and any attempts you have made to solve it. This information helps others identify where you have difficulties and helps them write answers appropriate to your experience level." – amWhy, DRF, RRL, Did, Saad

      If this question can be reworded to fit the rules in the help center, please edit the question.




      closed as off-topic by amWhy, DRF, RRL, Did, Saad Dec 3 at 1:04


      This question appears to be off-topic. The users who voted to close gave this specific reason:


      • "This question is missing context or other details: Please improve the question by providing additional context, which ideally includes your thoughts on the problem and any attempts you have made to solve it. This information helps others identify where you have difficulties and helps them write answers appropriate to your experience level." – amWhy, DRF, RRL, Did, Saad

      If this question can be reworded to fit the rules in the help center, please edit the question.






















          3 Answers
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          You are differentiating
          $$ frac{1}{(ln x)^2} = f(g(x)), $$
          where
          $$ f(x) = frac{1}{x^2}, quad g(x) = ln x. $$
          Since
          $$ f'(x) = -frac{2}{x^3}, quad g'(x) = frac{1}{x}, $$
          the chain rule therefore gives
          $$ frac{mathrm d}{mathrm dx} frac{1}{(ln x)^2} = frac{mathrm d}{mathrm dx} f(g(x)) = f'(g(x))g'(x) = -frac{2}{(ln x)^3} frac{1}{x}. $$
          You could do it even more directly:
          $$ frac{mathrm d}{mathrm dx} frac{1}{(ln x)^2} = -frac{2}{(ln x)^3}frac{mathrm d}{mathrm dx}ln x = -frac{2}{x(ln x)^3}. $$






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            0














            Hint:



            Use the chain rule, and remember that
            $$biggl(frac1{x^2}biggr)'=-frac 2{x^3},enspacetext{more generally: }quadbiggl(frac1{x^n}biggr)'=-frac n{x^{n+1}}$$






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              0














              A rule that always hold is $(u^n)' = nu'u^{n-1}$.



              With $u = ln$ we get $forall xin mathbb{R}^*_+, u^{-2}(x) = frac{-2}{x}ln^{-3}(x)$.






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                3 Answers
                3






                active

                oldest

                votes








                3 Answers
                3






                active

                oldest

                votes









                active

                oldest

                votes






                active

                oldest

                votes









                2














                You are differentiating
                $$ frac{1}{(ln x)^2} = f(g(x)), $$
                where
                $$ f(x) = frac{1}{x^2}, quad g(x) = ln x. $$
                Since
                $$ f'(x) = -frac{2}{x^3}, quad g'(x) = frac{1}{x}, $$
                the chain rule therefore gives
                $$ frac{mathrm d}{mathrm dx} frac{1}{(ln x)^2} = frac{mathrm d}{mathrm dx} f(g(x)) = f'(g(x))g'(x) = -frac{2}{(ln x)^3} frac{1}{x}. $$
                You could do it even more directly:
                $$ frac{mathrm d}{mathrm dx} frac{1}{(ln x)^2} = -frac{2}{(ln x)^3}frac{mathrm d}{mathrm dx}ln x = -frac{2}{x(ln x)^3}. $$






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                  2














                  You are differentiating
                  $$ frac{1}{(ln x)^2} = f(g(x)), $$
                  where
                  $$ f(x) = frac{1}{x^2}, quad g(x) = ln x. $$
                  Since
                  $$ f'(x) = -frac{2}{x^3}, quad g'(x) = frac{1}{x}, $$
                  the chain rule therefore gives
                  $$ frac{mathrm d}{mathrm dx} frac{1}{(ln x)^2} = frac{mathrm d}{mathrm dx} f(g(x)) = f'(g(x))g'(x) = -frac{2}{(ln x)^3} frac{1}{x}. $$
                  You could do it even more directly:
                  $$ frac{mathrm d}{mathrm dx} frac{1}{(ln x)^2} = -frac{2}{(ln x)^3}frac{mathrm d}{mathrm dx}ln x = -frac{2}{x(ln x)^3}. $$






                  share|cite|improve this answer
























                    2












                    2








                    2






                    You are differentiating
                    $$ frac{1}{(ln x)^2} = f(g(x)), $$
                    where
                    $$ f(x) = frac{1}{x^2}, quad g(x) = ln x. $$
                    Since
                    $$ f'(x) = -frac{2}{x^3}, quad g'(x) = frac{1}{x}, $$
                    the chain rule therefore gives
                    $$ frac{mathrm d}{mathrm dx} frac{1}{(ln x)^2} = frac{mathrm d}{mathrm dx} f(g(x)) = f'(g(x))g'(x) = -frac{2}{(ln x)^3} frac{1}{x}. $$
                    You could do it even more directly:
                    $$ frac{mathrm d}{mathrm dx} frac{1}{(ln x)^2} = -frac{2}{(ln x)^3}frac{mathrm d}{mathrm dx}ln x = -frac{2}{x(ln x)^3}. $$






                    share|cite|improve this answer












                    You are differentiating
                    $$ frac{1}{(ln x)^2} = f(g(x)), $$
                    where
                    $$ f(x) = frac{1}{x^2}, quad g(x) = ln x. $$
                    Since
                    $$ f'(x) = -frac{2}{x^3}, quad g'(x) = frac{1}{x}, $$
                    the chain rule therefore gives
                    $$ frac{mathrm d}{mathrm dx} frac{1}{(ln x)^2} = frac{mathrm d}{mathrm dx} f(g(x)) = f'(g(x))g'(x) = -frac{2}{(ln x)^3} frac{1}{x}. $$
                    You could do it even more directly:
                    $$ frac{mathrm d}{mathrm dx} frac{1}{(ln x)^2} = -frac{2}{(ln x)^3}frac{mathrm d}{mathrm dx}ln x = -frac{2}{x(ln x)^3}. $$







                    share|cite|improve this answer












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                    share|cite|improve this answer










                    answered Nov 25 at 14:07









                    MisterRiemann

                    5,7291624




                    5,7291624























                        0














                        Hint:



                        Use the chain rule, and remember that
                        $$biggl(frac1{x^2}biggr)'=-frac 2{x^3},enspacetext{more generally: }quadbiggl(frac1{x^n}biggr)'=-frac n{x^{n+1}}$$






                        share|cite|improve this answer


























                          0














                          Hint:



                          Use the chain rule, and remember that
                          $$biggl(frac1{x^2}biggr)'=-frac 2{x^3},enspacetext{more generally: }quadbiggl(frac1{x^n}biggr)'=-frac n{x^{n+1}}$$






                          share|cite|improve this answer
























                            0












                            0








                            0






                            Hint:



                            Use the chain rule, and remember that
                            $$biggl(frac1{x^2}biggr)'=-frac 2{x^3},enspacetext{more generally: }quadbiggl(frac1{x^n}biggr)'=-frac n{x^{n+1}}$$






                            share|cite|improve this answer












                            Hint:



                            Use the chain rule, and remember that
                            $$biggl(frac1{x^2}biggr)'=-frac 2{x^3},enspacetext{more generally: }quadbiggl(frac1{x^n}biggr)'=-frac n{x^{n+1}}$$







                            share|cite|improve this answer












                            share|cite|improve this answer



                            share|cite|improve this answer










                            answered Nov 25 at 14:09









                            Bernard

                            118k638111




                            118k638111























                                0














                                A rule that always hold is $(u^n)' = nu'u^{n-1}$.



                                With $u = ln$ we get $forall xin mathbb{R}^*_+, u^{-2}(x) = frac{-2}{x}ln^{-3}(x)$.






                                share|cite|improve this answer


























                                  0














                                  A rule that always hold is $(u^n)' = nu'u^{n-1}$.



                                  With $u = ln$ we get $forall xin mathbb{R}^*_+, u^{-2}(x) = frac{-2}{x}ln^{-3}(x)$.






                                  share|cite|improve this answer
























                                    0












                                    0








                                    0






                                    A rule that always hold is $(u^n)' = nu'u^{n-1}$.



                                    With $u = ln$ we get $forall xin mathbb{R}^*_+, u^{-2}(x) = frac{-2}{x}ln^{-3}(x)$.






                                    share|cite|improve this answer












                                    A rule that always hold is $(u^n)' = nu'u^{n-1}$.



                                    With $u = ln$ we get $forall xin mathbb{R}^*_+, u^{-2}(x) = frac{-2}{x}ln^{-3}(x)$.







                                    share|cite|improve this answer












                                    share|cite|improve this answer



                                    share|cite|improve this answer










                                    answered Nov 25 at 14:13









                                    Euler Pythagoras

                                    4949




                                    4949















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