The derivative of cot^2x is -2cotx cosec2x. Here we find the derivative of cot square x by the first principle of derivatives.
Differentiation of cot square x by the first principle will be computed as follows.
Derivative of cot square x by First Principle
By first principle, the derivative of f(x) is given by the limit below.
$\dfrac{d}{dx}(f(x))$ = limh→0 $\dfrac{f(x+h)-f(x)}{h}$ …(I)
Put f(x)=cot2x. Therefore,
$\dfrac{d}{dx}(\cot^2 x)$ = limh→0 $\dfrac{\cot^2(x+h)-\cot^2x}{h}$
⇒ $\dfrac{d}{dx}(\cot^2 x)$ = limh→0 $\Big\{ [\cot(x+h)+\tan x] \times$ $\dfrac{\cot(x+h)-\cot x}{h} \Big\}$ by the algebraic identity a2-b2 = (a+b)(a-b).
⇒ $\dfrac{d}{dx}(\cot^2 x)$ = limh→0 $[\cot(x+h)+ \cot x]$ × limh→0 $\dfrac{\cot(x+h)-\cot x}{h}$ using the product rule of limits.
Note that if we put f(x)=cot x in the above formula (I), then the limit $\lim\limits_{h \to 0}\frac{\cot(x+h)-\cot x}{h}$ will be equal to the derivative of cot x, and we know that d/dx(cot x) = -cosec2x. Thus from above we obtain that
∴ $\dfrac{d}{dx}(\cot^2 x)$ =2 cotx × (-cosec2x) = -2cotx cosec2x.
Therefore, the derivative of cot^2x by the first principle is -2cot x cosec2x.
More Derivatives:
| Derivative of tan2x | Derivative of $\sqrt{\sin x}$ |
| Derivative of 1/x2 | Derivative of tan2x |
| Derivative of cos3x | Derivative of 1/x |
FAQs
Q1: What is the derivative of cot^2x by first principle?
Answer: By first principle, the derivative of cot^2x is equal to -2cotx cosec2x, and is denoted by d/dx(cot2x). Therefore, d/dx(cot2x) = -2cotx cosec2x.