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Author Topic: Mathematics Help Thread  (Read 228933 times)

Jim Groovester

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Re: Mathematics Help Thread
« Reply #285 on: November 14, 2010, 12:00:56 am »

Oh, that's a really clever.

Anyways, what you need to do is set the equation equal to zero and then solve it as a quadratic. (Make the substitution u = 2x if you can't see it.) Once you do that you should get stuff that you can do fancy logarithm stuff to. There should be only one solution where you can take the logarithm anyway, and that should be your answer.

I wish I could say I figured this out all on my own but I had to get a little help from WolframAlpha.
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KaminaSquirtle

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Re: Mathematics Help Thread
« Reply #286 on: November 14, 2010, 12:07:22 am »

Oh, that's a really clever.

Anyways, what you need to do is set the equation equal to zero and then solve it as a quadratic. (Make the substitution u = 2x if you can't see it.) Once you do that you should get stuff that you can do fancy logarithm stuff to. There should be only one solution where you can take the logarithm anyway, and that should be your answer.

I wish I could say I figured this out all on my own but I had to get a little help from WolframAlpha.
I was about to be all impressed by you thinking of that, but then I read the last line.
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Argembarger

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Re: Mathematics Help Thread
« Reply #287 on: November 14, 2010, 12:10:24 am »

dat wolfram, man
dat wolfram.
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Fossaman

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Re: Mathematics Help Thread
« Reply #288 on: November 14, 2010, 12:10:46 am »

Oh, that's a really clever.

Anyways, what you need to do is set the equation equal to zero and then solve it as a quadratic. (Make the substitution u = 2x if you can't see it.) Once you do that you should get stuff that you can do fancy logarithm stuff to. There should be only one solution where you can take the logarithm anyway, and that should be your answer.

I wish I could say I figured this out all on my own but I had to get a little help from WolframAlpha.
I still don't get it. If I substitute u=2x and set it equal to zero, I get
2u - 4u - 21 = 0

...which I can't figure out either.
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KaminaSquirtle

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Re: Mathematics Help Thread
« Reply #289 on: November 14, 2010, 12:12:09 am »

Oh, that's a really clever.

Anyways, what you need to do is set the equation equal to zero and then solve it as a quadratic. (Make the substitution u = 2x if you can't see it.) Once you do that you should get stuff that you can do fancy logarithm stuff to. There should be only one solution where you can take the logarithm anyway, and that should be your answer.

I wish I could say I figured this out all on my own but I had to get a little help from WolframAlpha.
I still don't get it. If I substitute u=2x and set it equal to zero, I get
u2 - 4u - 21 = 0

...which I can't figure out either.
Fixed that equation for you.
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Jim Groovester

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Re: Mathematics Help Thread
« Reply #290 on: November 14, 2010, 12:13:32 am »

I was about to be all impressed by you thinking of that, but then I read the last line.

All of you who were like DUUURRR HOW DO SOLVE IT can shut up.
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Wyrm

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Re: Mathematics Help Thread
« Reply #291 on: November 14, 2010, 12:18:41 am »

Clever, clever. I ought to remember that trick next time.

Spoiler (click to show/hide)
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Fossaman

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Re: Mathematics Help Thread
« Reply #292 on: November 14, 2010, 12:19:02 am »

Okay, that makes a little more sense. You're splitting that up before substituting.

Now I want to ask about this one in class just to see if the instructor does it the same way.

EDIT: Wyrm, that doesn't look right. I think you subtracted where you shouldn't have, I got u=7.
« Last Edit: November 14, 2010, 12:23:40 am by Fossaman »
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Vector

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Re: Mathematics Help Thread
« Reply #293 on: November 14, 2010, 12:19:42 am »

I was about to be all impressed by you thinking of that, but then I read the last line.

All of you who were like DUUURRR HOW DO SOLVE IT can shut up.

Dude, I started doing that.  Then I went "screw that, I'm playing vidjagames now."
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Jim Groovester

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Re: Mathematics Help Thread
« Reply #294 on: November 14, 2010, 12:24:50 am »

Clever, clever. I ought to remember that trick next time.

Spoiler (click to show/hide)

I don't this is correct. You should be getting two different solutions, not identical ones.

(u2 - 4u - 21) = 0

(u - 7)(u + 3) = 0

u = 7
u = -3

Since you can't take the negative logarithm:

2x = 7

And I don't really want to do the logarithm stuff, but it should be easy enough to take away from here. Well, it's not that hard.

x = log7/log2
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Wyrm

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Re: Mathematics Help Thread
« Reply #295 on: November 14, 2010, 09:31:13 am »

Yeah, yer right. Dangit.

Edit: Fixed—

(u-2)2 = 25
u-2 = ±5
u = ±5+2
u = 7, -3

Too often we forget that a positive real has two square roots.
« Last Edit: November 14, 2010, 05:39:12 pm by Wyrm »
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Christes

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Re: Mathematics Help Thread
« Reply #296 on: November 29, 2010, 10:15:46 pm »

I'm not sure where to post this, but I'll do it here since mathematically-oriented people seem to frequent this thread.  I just saw the most bizarre thing: a real mathematical proof from a real movie!

http://www.youtube.com/watch?v=etbcKWEKnvg

Perhaps it's a bit technical, but it's encouraging to me that someone would actually take the time to research the math when making one of those "mathematical movies" that crop up occasionally.
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KaminaSquirtle

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Re: Mathematics Help Thread
« Reply #297 on: November 29, 2010, 10:54:32 pm »

Okay, those last few posts? Has no one here ever heard of the quadratic equation?
Of course, but there are quite a few cases where factoring is more convenient, like the one above.  In simple to factor cases, the quadratic formula often only introduces needless complexity.
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Vector

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Re: Mathematics Help Thread
« Reply #298 on: November 30, 2010, 12:08:51 am »

Okay, those last few posts? Has no one here ever heard of the quadratic equation?

Um... yeah, the quadratic equation is needlessly messy in almost all situations one encounters in high school/lower mathematics.
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"The question of the usefulness of poetry arises only in periods of its decline, while in periods of its flowering, no one doubts its total uselessness." - Boris Pasternak

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pronouns: prefer neutral ones, others are fine. height: 5'3".

lordnincompoop

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Re: Mathematics Help Thread
« Reply #299 on: November 30, 2010, 12:49:48 pm »

What, why? It's nice to have a "be all end all" equation, even if it isn't quite there.
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