Chikis Posted July 13, 2014 Posted July 13, 2014 (edited) [MATH]\frac{1}{m-1}+\frac{9}{2m+3}-\frac{8}{m+4}[/MATH] = [MATH]\frac{(2m+3)(m+4)+9(m-1)(m+4)-8(2m+3)(m-1)}{(m-1)(2m+3)(m+4)}[/MATH]= [MATH]\dfrac{2m^2+8m+3m+12+9m^2-9m+36m-36-16m^2+m-24m+24}{(m-1)(2m+3)(m+4)}[/MATH]= [MATH]\frac{5m(3-m)}{(m-1)(2m+3)(m+4)}[/MATH] What next should be done? Edited July 13, 2014 by Chikis
ajb Posted July 13, 2014 Posted July 13, 2014 (edited) Check your numerator again to be sure, I think it could be wrong. I also don't think (mod the possible mistake) that you can simplify this any further. Edited July 13, 2014 by ajb
imatfaal Posted July 13, 2014 Posted July 13, 2014 Will echo AJB's comments. Both of them. My maths is old-fashioned enough to be very longhand and methodical. I still think it is the best way -- my version of your simplification is six lines long; perhaps you have put too many steps together and missed your arithmetic. You have FOIL multiplied out the brackets and multiplied by the outside constant in one go; the third expansion seems wrong.
imatfaal Posted July 13, 2014 Posted July 13, 2014 ! Moderator Note Acme - we don't give direct answers even if they are readily available on the net. Per the rules at the top of this forum I have hidden your post. Thanks
Acme Posted July 13, 2014 Posted July 13, 2014 ! Moderator Note Acme - we don't give direct answers even if they are readily available on the net. Per the rules at the top of this forum I have hidden your post. Thanks Well, you guys gave direct answers so I don't really see the problem. But whatever. You could at least leave my reference to Wolfram Alpha as it can be a valuable resource to student.
Chikis Posted July 14, 2014 Author Posted July 14, 2014 (edited) Check your numerator again to be sure, I think it could be wrong. I also don't think (mod the possible mistake) that you can simplify this any further.I go again:[MATH]\dfrac{(2m+3)(m+4)+(9m-9)(m+4)-(16m+24)(m-1)}{(m-1)(2m+3)(m+4)}[/MATH] = [MATH]\dfrac{46m+11m^2-32}{(m-1)(2m+3)(m+4)}[/MATH] Is the numerator okay now? Edited July 14, 2014 by Chikis
Acme Posted July 14, 2014 Posted July 14, 2014 (edited) I go again: [math]\dfrac{(2m+3)(m+4)+(9m-9)(m+4)-(16m+24)(m-1)}{(m-1)(2m+3)(m+4)} = [math]\dfrac{46m+11m^2-32}{(m-1)(2m+3)(m+4)} Is the numerator okay now? No; the numerator is still incorrect. It should have two terms in the variable m and no constant. The denominator is correct. Edited July 14, 2014 by Acme 1
Chikis Posted July 15, 2014 Author Posted July 15, 2014 Please help me. What mistake am making that am not getting the right thing?
ajb Posted July 15, 2014 Posted July 15, 2014 Just go through it slowly. You will have to show your working out here for us to spot a mistake. Typically mistakes are due to minus signs and silly mistakes with multiplication. You are on the right lines with this, so don't give up.
Acme Posted July 15, 2014 Posted July 15, 2014 (edited) Please help me. What mistake am making that am not getting the right thing? [math]\dfrac{(2m+3)(m+4)+(9m-9)(m+4)-(16m+24)(m-1)}{(m-1)(2m+3)(m+4)}[/math] Be sure to watch the signs as ajb pointed out. In the above, (2m+3)(m+4) is correct. For (9)(m-1)(m+4) I suggest doing the (m-1)(m+4) first and then multiply through by 9. Same for the (-8)(2m+3)(m-1). Do the (2m+3)(m-1) first and then multiply through by the -8. You laid it out right in the first post with this: [math]\frac{(2m+3)(m+4)+9(m-1)(m+4)-8(2m+3)(m-1)}{(m-1)(2m+3)(m+4)}[/math] Edited July 15, 2014 by Acme
Chikis Posted July 15, 2014 Author Posted July 15, 2014 (edited) [MATH]\frac{1}{m-1}+\frac{9}{2m+3}-\frac{8}{m+4}[/MATH] = [MATH]\frac{(2m+3)(m+4)+9(m-1)(m+4)-8(2m+3)(m-1)}{(m-1)(2m+3)(m+4)}[/MATH] = [MATH]\dfrac{2m^2+8m+3m+12+9m^2+36m-9m-36-16m^2+16m-24m+24}{(m-1)(2m+3)(m+4)}[/MATH] = [MATH]\frac{30m-5m^2}{(m-1)(2m+3)(m+4)}[/MATH] = [MATH]\frac{5m(6-m)}{(m-1)(2m+3)(m+4)}[/MATH] Am confident that this one is very correct. Just go through it slowly. You will have to show your working out here for us to spot a mistake. Typically mistakes are due to minus signs and silly mistakes with multiplication. You are on the right lines with this, so don't give up. Thanks for the caoching.[math]\dfrac{(2m+3)(m+4)+(9m-9)(m+4)-(16m+24)(m-1)}{(m-1)(2m+3)(m+4)}[/math]Be sure to watch the signs as ajb pointed out.In the above, (2m+3)(m+4) is correct.For (9)(m-1)(m+4) I suggest doing the (m-1)(m+4) first and then multiply through by 9.Same for the (-8)(2m+3)(m-1). Do the (2m+3)(m-1) first and then multiply through by the -8.You laid it out right in the first post with this:[math]\frac{(2m+3)(m+4)+9(m-1)(m+4)-8(2m+3)(m-1)}{(m-1)(2m+3)(m+4)}[/math]Thanks for the tip. Edited July 15, 2014 by Chikis 2
ajb Posted July 16, 2014 Posted July 16, 2014 That looks correct to me. Well done, you managed to do it with a few hints and tips only.
Recommended Posts
Create an account or sign in to comment
You need to be a member in order to leave a comment
Create an account
Sign up for a new account in our community. It's easy!
Register a new accountSign in
Already have an account? Sign in here.
Sign In Now