Hello guys and gals. Okay, so I was going through some MX2 work and got thumped by a question. 
This is probably a stupid question but anyway. So the question asked to find the area between the curve y= (3x^2 -7)/(x-2)(x+3) and the x-axis. Now, the question earlier had asked to show that (1/x-2)- (4/x+3)+3 was the same as the above expression, which I showed and later used in the question. To find the area I tried the integral of the substitute expression which came out as [ln(x-2)-4ln(x+3)+3]from sqrt(7/3) to -sqrt(7/3). Plugging in the numbers I found it to be undefined, but the answer at the back said 2.66 units^2 and so did wolfram alpha. Any help in this issue would be appreciated.
This is probably a stupid question but anyway. So the question asked to find the area between the curve y= (3x^2 -7)/(x-2)(x+3) and the x-axis. Now, the question earlier had asked to show that (1/x-2)- (4/x+3)+3 was the same as the above expression, which I showed and later used in the question. To find the area I tried the integral of the substitute expression which came out as [ln(x-2)-4ln(x+3)+3]from sqrt(7/3) to -sqrt(7/3). Plugging in the numbers I found it to be undefined, but the answer at the back said 2.66 units^2 and so did wolfram alpha. Any help in this issue would be appreciated.