+91-8076753736 support@wiredfaculty.com
logo
logo

Sponsor Area

Continuity And Differentiability

Question
CBSEENMA12034994
Wired Faculty App

Differentiate the following functions w.r.t.x: sin left parenthesis straight x space straight y right parenthesis plus straight x over straight y equals straight x squared minus straight y

Solution
Here space space sin left parenthesis straight x space straight y right parenthesis plus straight x over straight y equals straight x squared minus straight y Differentiating space both space sides space straight w. straight r. straight t. straight x comma cos left parenthesis straight x space straight y right parenthesis. straight d over dx left parenthesis straight x space straight y right parenthesis plus fraction numerator straight y space begin display style straight d over dx end style left parenthesis straight x right parenthesis minus straight x begin display style straight d over dx end style left parenthesis straight y right parenthesis over denominator straight y squared end fraction equals 2 straight x equals dy over dx therefore space cos left parenthesis straight x space straight y right parenthesis cross times open square brackets straight x dy over dx plus straight y.1 close square brackets plus fraction numerator straight y.1 minus straight x begin display style dy over dx end style over denominator straight y squared end fraction equals 2 straight x minus dy over dx therefore space straight x space straight y squared cos left parenthesis straight x space straight y right parenthesis dy over dx plus straight y cubed space cos left parenthesis straight x space straight y right parenthesis plus straight y minus straight x dy over dx equals 2 space straight x space straight y squared minus straight y squared dy over dx therefore space left square bracket straight x space straight y squared cos left parenthesis straight x space straight y right parenthesis minus straight x plus straight y squared right square bracket dy over dx equals 2 straight x space straight y squared minus straight y cubed space cos left parenthesis straight x space straight y right parenthesis minus straight y therefore space dy over dx equals fraction numerator straight y left square bracket 2 space straight x space straight y minus straight y squared cos left parenthesis straight x space straight y right parenthesis minus 1 right square bracket over denominator straight x space straight y squared cos left parenthesis straight x space straight y right parenthesis minus straight x plus straight y squared end fraction

Some More Questions From Continuity and Differentiability Chapter

Mock Test Series

Mock Test Series

NCERT Sample Papers

Entrance Exams Preparation