What is the antiderivative of #sin(4t) #?

1 Answer
Jim H
Aug 13, 2015

It is: #-1/4cos(4t) + C#

Explanation:

There are many method and notations that may or may not have been introduced to students when this question is asked. So the best I can do is to choose one or two and explain usung those:

The antiderivative of #sin(4t)# is, of course, a function whose derivative is #sin(4t)#

On eway to proceed is to reason as follow:

I know that the derivative with respect to #t# of #cosu# can be found using the chain rule:

#d/dt(cosu) = -sinu (du)/(dt)#

With #u = 4t# we would have:

#d/dt(cos(4t)) = -4sin(4t)# which is not quite what we want.

But a constant multiple just stays out front when we differentiate, so if we multiplied by #-1/4# we would get:

#d/dt(-1/4cos(4t)) = -1/4 [-4sin(4t)] = sin(4t)#

So #-1/4cos(4t)# is an antiderivative of #sin(4t)#.

Since any function with the same derivative differs from this by only a constant (an important consequence of the Mean Value Theorem),

we conclude that every antiderivative of #sin(4t)#.can be written in the form:

#-1/4cos(4t)+C# for some constant #C#.

(If you haven't already, you probably will be introduced to the standard mechanics of "u-substitution", but that's just mechanics for the reasoning used above.)

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