CALCULUS HELP!!!
- Thread starter sstricky
- Start date
ORski21
Member
okay, i dont think any ones right so far. sorry eheath.
lim x-> infinity for (3x^2 - 5x^3 + 4)/(3x^2 + 5x - 2)
when you plug infinty in for x you get infinity over infinity, and that cant be the answer. so you have to the the derivative of the top and the bottom.
It will be lim as x -> infinty for(6x - 15x^2)/(6x + 5)
this will also be infinity over infinity so you have to take the derivative again.
lim as x-> infinity for (6 - 30x)/(6)
okay, now when you plug infinity into this you get (6 - 30(infinity))/(6), so the answer is negative infinity. I'm pretty sure thats right and hopefully that makes sense.
lim x-> infinity for (3x^2 - 5x^3 + 4)/(3x^2 + 5x - 2)
when you plug infinty in for x you get infinity over infinity, and that cant be the answer. so you have to the the derivative of the top and the bottom.
It will be lim as x -> infinty for(6x - 15x^2)/(6x + 5)
this will also be infinity over infinity so you have to take the derivative again.
lim as x-> infinity for (6 - 30x)/(6)
okay, now when you plug infinity into this you get (6 - 30(infinity))/(6), so the answer is negative infinity. I'm pretty sure thats right and hopefully that makes sense.
ChronicLove
Member
i start calc in four days. this thread just makes me even more depressed about it. thanks guys....
70794Willow
Member
same here.
i hate when shit like that happens and i can't remember things i used to be good at. it's always such a downer for myself
^i guess i'm just expecting too much of myself sometimes...
i hate when shit like that happens and i can't remember things i used to be good at. it's always such a downer for myself
^i guess i'm just expecting too much of myself sometimes...
ChronicLines
Member
Gotta differentiate everything a couple times, leaving you with -30x+6/6 (as mentioned before).
So yes, the answer is negative infinity.
So yes, the answer is negative infinity.
70794Willow
Member
k now i'm rememebering after looking at it for a while.
i'm sry to be a nerd, but here are some tips for having to evaluate limits going to infiinty.
compare the highest degree of the funtion. that's the biggest exponent of the variable. in this case it's 3. so, u basically ignore all numbers and variables with an exponent less than that highest degree. now there are only 3 possibilites:
1) if there's a variable with the highest degree on the top and bottom of the function, then your limit is always just the coefficents divided by themselves. (watch out for signs!)
2) if only the variable on top of the function has this highest degree, then it's either negative or positive infinity. again, depending on the sign.
3) if the variable on the bottom has the highest degree of the funtion, the limit is undefined since u can't divide by negative or positive infinty.
hope this made sense. this way i used to be able to rush through the calc homework when we had to evaluate limits at infinity.
i'm sry to be a nerd, but here are some tips for having to evaluate limits going to infiinty.
compare the highest degree of the funtion. that's the biggest exponent of the variable. in this case it's 3. so, u basically ignore all numbers and variables with an exponent less than that highest degree. now there are only 3 possibilites:
1) if there's a variable with the highest degree on the top and bottom of the function, then your limit is always just the coefficents divided by themselves. (watch out for signs!)
2) if only the variable on top of the function has this highest degree, then it's either negative or positive infinity. again, depending on the sign.
3) if the variable on the bottom has the highest degree of the funtion, the limit is undefined since u can't divide by negative or positive infinty.
hope this made sense. this way i used to be able to rush through the calc homework when we had to evaluate limits at infinity.
hoodSlayer
Member
for future reference when finding a limit when x goes to +/- infinity just divide my the highest degree in the denominator
70794Willow
Member
sry for triple post but so in this case you would just look at -5x^3 and see the negative and since -5x^3 is at the top, you know it's negatvie infinity.
problem solved within 5 seconds.
i really hope this makes sense to you.
problem solved within 5 seconds.
i really hope this makes sense to you.
prontocuts.com
Active member
my motivation for finishing calc is getting a tattoo.
as soon as I finish lin dif alg, im getting a tattoo of my favorite formula to show how bad ass of a nerd I am
as soon as I finish lin dif alg, im getting a tattoo of my favorite formula to show how bad ass of a nerd I am
70794Willow
Member
that's right but dont u have to find the limit when x approaches (postive) infinty.
^ looking at your original post.
but, please do yourself a favor and reaad through my posts. if you get what i'm saying, you will solve problems like these within 5 seconds. no, not kidding.
^ looking at your original post.
but, please do yourself a favor and reaad through my posts. if you get what i'm saying, you will solve problems like these within 5 seconds. no, not kidding.
ashamedkrew
Active member
just started calc on tuesday. it looks weird lookin at math problems on newschoolers though haha
sstricky
Active member
yea i did. thanks man.
i just talked to my dad whos a math teacher and his exact words were
"the only thing that matters are the x in the numerator with the highest degree and the x in the denominator with the highest degree and take everything else away, and then from there plug in and all that matters from now on are the signs of the constant.
i just talked to my dad whos a math teacher and his exact words were
"the only thing that matters are the x in the numerator with the highest degree and the x in the denominator with the highest degree and take everything else away, and then from there plug in and all that matters from now on are the signs of the constant.
70794Willow
Member
yeah i'm glad it made sense.
exactly, that's how i learned it. now it's incredibly easy to take limiits approaching infinity.
i would say /thread
exactly, that's how i learned it. now it's incredibly easy to take limiits approaching infinity.
i would say /thread
Uncle.Badness
Active member
This is right.
NESblowjob
Active member
no dude its not that hard all once you see that the 3x^2 cancels, you just look to see what dominates as x goes to infinity