What's the derivative of the integral $\int_1^x\sin(t) dt$
Any ideas? I'm getting a little confused.
What's the derivative of the integral $\int_1^x\sin(t) dt$
Any ideas? I'm getting a little confused.
You can use the fundamental theorem of calculus, but if you have not yet covered that theorem, in short, you'll be taking the derivative - with respect to x - of the integral of $\sin(t)dt$ when the integral is evaluated from $1$ to $x$:
$\frac{d}{dx}\left(\int_1^x \sin(t) \text{d}t\right) = \frac{d}{dx} [-\cos t]_1^x = \frac{d}{dx}\left(-\cos(x) - (-\cos(1))\right) = \sin(x).$
and you'll no doubt be encountering the Fundamental Theorem of Calculus very, very soon:
For any integrable function $f$, and constant $a$: $\frac{d}{dx} \left(\int_a^x f(t)dt \right)= f(x),$
(provided $f$ is continuous at $x$).
Using the fundamental theorem of calculus we know that the answer is $\sin(x)$
$ \frac{d}{dt}\int_1^x\sin(t)dt = \frac{d}{dt} [-\cos t]_1^x = \frac{d}{dt}[-\cos x+\cos(1)] = \sin x $
If $f$ is any function at all that can be integrated, then the derivative of the integral of $f(t)dt$ from $1$ to $x$ is $f(x)$. This wonderful fact is the Fundamental Theorem of Calculus.
You can use a nice theorem called the Fundamental Theorem of Calculus . Here, we're mainly worried about FTC part 1. Below is a summary of what FTC part 1 says.
Let $f$ be a continuous, function defined on $[a,b]$ and $F(x) := \int_a^x{f(t)} \ dt \quad \quad \forall x \in [a,b] $
Then, $F$ is continuous on the closed interval and differentiable on the open interval $(a,b)$ and $F'(x) = f(x) \ \forall x \in (a,b)$.
So, for your problem:
$\frac{d}{dx}\int_1^x\sin(t) \ dt = \sin(x) \cdot \frac{d}{dx} (x) = \sin(x)$
Note that you have to replace the $t's$ in the integrand with an $x$ and multiply by the derivative of the upper bound, assuming your lower bound is constant (which it is here.)
As a demonstration of this, suppose we want to calculate
$\frac{d}{dx}\int_1^{x^2}\sin(t) \ dt $
This is the same as $\sin(x) \cdot \frac{d}{dx}(x^2) = 2x \sin(x)$