Help with this integral (1 Viewer)

nancylime · Aug 20, 2015

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I can only save it as a zip file sorry!
thanks for the help xx

dan964 · Aug 20, 2015

You will need to split it
into thus:
0.5*(2x-3)/(x^2 -3x+4) +1.5/(x^2-3x+4)

the first is a log, the second is a inverse tan.
You should be able to do the rest.

nancylime · Aug 20, 2015

dan964 said:
You will need to split it
into thus:
0.5*(2x-3)/(x^2 -3x+4) +1.5/(x^2-3x+4)

the first is a log, the second is a inverse tan.
You should be able to do the rest.

How do you split it into that when the numerator is only x?

D94 · Aug 20, 2015

nancylime said:
How do you split it into that when the numerator is only x?

Just like how you can split the number 10 into 2 parts, i.e. 5+5 or 7+3, or say, 15-5.

You can split x into 2 parts as well, such as x/2 + x/2 or 2x/3 + x/3 or 2x-x.

So you can even go beyond something like this and do say (x+3)-3 or (x-5)+5, or 0.5(2x-3)+ 3/2.

Expand it out and see.

kawaiipotato · Aug 20, 2015

nancylime said:
How do you split it into that when the numerator is only x?

The rule is to make the top look like the derivative of the bottom.
$\int \frac{x}{x^2 - 3x + 4} dx$

$$ Notice that the derivative of the bottom is $ 2x-3$

$So firstly, put a $ '2' $ in front of the x $ $ but if you times it by two, you must divide by 2 to not change the question$

$= \frac{1}{2} \int \frac{2x}{x^2 - 3x + 4} dx$

$Now subtract 3 and add 3$

$= \frac{1}{2} \int \frac{2x-3}{x^2 - 3x + 4} + \frac{3}{x^2 - 3x + 4} dx$

Help with this integral (1 Viewer)

nancylime

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dan964

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nancylime

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D94

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kawaiipotato

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