Find all first partial derivatives. z = ln(x^2 + y^2 + 1)

CheemnCatelvew

CheemnCatelvew

Answered question

2021-02-21

Find all first partial derivatives. z=ln(x2+y2+1)

Answer & Explanation

insonsipthinye

insonsipthinye

Skilled2021-02-22Added 83 answers

Step 1
Given
The equation is z=ln(x2+y2+1).
Step 2
To find all first partial derivatives .
To find dzdx.
dzdx(ln(x2+y2+1))
=1x2+y2+1ddx(x+y2+1)
=1x2+y2+1(2x)
dzdx=2xx2+y2+1
To find dzdy.
dzdy=ddy(ln(x2+y2+1))
=1x2+y2+1ddy(x2+y2+1)
=1x2+y2+1(2y)
dzdy=2yx2+y2+1
Therefore , The all partial derivatives are dzdx=2xx2+y2+1anddzdy=2yx2+y2+1.
Jeffrey Jordon

Jeffrey Jordon

Expert2021-11-17Added 2605 answers

Answer is given below (on video)

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