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I can't figure out the last step of the following question:

Show that the general solution of the differential equation: $dy/dx + y\tan x=1$ is given by: $y\sec x=\ln(\sec x + \tan x) + C$

This is what I've worked out so far:

To make things easier let $u(x)=\exp(\int\! \tan(x)\,\mathrm dx)=\sec(x)$

Multyply both sides by $u(x): \sec(x)\frac {dy(x)} {dx} + {\sec(x)}{\tan(x)}y(x)=\sec(x)$

Then substitute $\sec(x)\tan(x)= \frac {d\sec(x)} {dx}$

$\sec(x) \dfrac {dy(x)}{dx}+ \dfrac{d \sec(x)} {dx}y(x)= \sec(x)$

Using the reverse product rule of the LHS:

$\displaystyle\frac d {dx} (\sec(x)y(x))dx= \int \sec(x)\,dx$

then integrating both sides with respect to x $\int \frac d {dx} (\sec(x)y(x))dx= \int \sec(x)dx$

Therefore: $\sec(x)y= -\log(\cos(\tfrac x 2)- \sin(\tfrac x 2))+\log(\cos(\tfrac x 2) + \sin(\tfrac x 2)) + C$

Where do I go from here to find the solution (given in the question)? Thanks in advance!

  • 0
    I have edited your post to format the equations with $\LaTeX$. There were some ambiguities in the reverse product step, as well as integrating both sides. You have submitted a few questions now, so I would suggest [learning some basic $\LaTeX$ commands](http://meta.math.stackexchange.com/questions/5020/tex-latex-mathjax-basic-tutorial-and-quick-reference).2012-09-02

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You have a slightly unusual but essentially correct version of an integral of $\sec x$. There is an issue of missing absolute value signs, which are also missing in the problem's version, which should have been $\log(|\sec x+\tan x|$).

To see it is (apart from negativity issues) the same as the standard one used in the problem, we show that $\frac{\cos(x/2)+\sin(x/2)}{\cos(x/2)-\sin(x/2)}=\sec x+\tan x.$ To see that this is enough, note that $\log a-\log b=\log(a/b)$.

Multiply top and bottom by $\cos(x/2)+\sin(x/2)$.

At the bottom we get $\cos^2(x/2)-\sin^2(x/2)$, which by a double angle formula is equal to $\cos x$. On top we get $\cos^2(x/2)+\sin^2(x/2)+2\cos(x/2)\sin(x/2)$, which is $1+\sin x$.

So we end up with $\frac{1+\sin x}{\cos x}$, which is $\sec x+\tan x$.

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    The logs are a necessary part of the integral, whether in the form $\log(|\sec x+\tan x|)$ or in your form (slightly changed) $-\log(|\cos(x/2)-\sin(x/2)|)+\log(|\cos(x/2)+\sin(x/2)|)$.2019-05-24
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Since they're handing you a solution, $ y = \frac{\ln|\sec x+\tan x| + C}{\sec x} = (\cos x) \ln|\sec x+\tan x| + C\cos x, $ you can diffentiate, finding $dy/dx$, and plug it into the equation in place of $y$, and see if the two sides are equal.

In that way, you verify that it's a solution. The next question is whether it's general, i.e. there are no other solutions. That might follow from a theorem stated in a section of a textbook that you recently read.