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Author Topic: Mathematics Help Thread  (Read 229198 times)

ILikePie

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Re: Mathematics Help Thread
« Reply #735 on: June 22, 2011, 02:50:59 am »

It should be, but I keep getting the wrong answer.
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Darvi

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Re: Mathematics Help Thread
« Reply #736 on: June 22, 2011, 02:57:00 am »

Aaaaaactually it's a first degree equation with a parametre I just noticed.
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Jim Groovester

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Re: Mathematics Help Thread
« Reply #737 on: June 22, 2011, 03:01:53 am »

It should be, but I keep getting the wrong answer.

What's the right answer and what answer do you keep on getting?
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Darvi

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Re: Mathematics Help Thread
« Reply #738 on: June 22, 2011, 03:14:10 am »

Domain:x!=0, m!=0, x!=2-4m

1/mx = 4m/(x + 4m - 2)
<=>x+4m-2=4m^2x
<=>(4m^2-1)x=4m-2
<=>m=0.5 or x=(4m-2)/(4m^2-1)
<=>m=0.5 or x=2(2m-1)/(2m+1)(2m-1)
<=>m=0.5 or x=2/(m+1) and m!=-1 or 0.5

Should be about right.

And now I need painkillers.
« Last Edit: June 22, 2011, 03:19:13 am by Darvi »
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Another

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Re: Mathematics Help Thread
« Reply #739 on: June 22, 2011, 03:24:07 am »

Domain:x!=0, m!=0, x!=2+4m

1/mx = 4m/(x + 4m - 2)
<=>x+4m-2=4m^2x
<=>(4m^2-1)x=4m-2
<=>m=0.5 or x=(4m-2)/(4m^2-1)
<=>m=0.5 or x=2(2m-1)/(2m+1)(2m-1)
<=>m=0.5 or x=2/(m+1) and m!=-1 or 0.5

Should be about right.

And now I need painkillers.
* x!=2-4m in domain definition and
* x=2/(2m+1) m!=-0.5 in the last line.
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Darvi

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Re: Mathematics Help Thread
« Reply #740 on: June 22, 2011, 03:26:19 am »

I ninja-edited the first part and the second part is kinda there already.

Makes me kinda wonder though how it took you 5 minutes to post that :o
« Last Edit: June 22, 2011, 03:27:54 am by Darvi »
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ILikePie

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Re: Mathematics Help Thread
« Reply #741 on: June 22, 2011, 03:54:51 am »

I see. Thanks, my mistake was going from 4m^2 - 1 to (4m - 1)(4m + 1).
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ed boy

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Re: Mathematics Help Thread
« Reply #742 on: June 22, 2011, 06:17:42 am »

-dice question-
Let's have another go with this, this time using probability generating functions.
Spoiler: maths (click to show/hide)
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ILikePie

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Re: Mathematics Help Thread
« Reply #743 on: June 24, 2011, 05:21:40 am »

I keep doing something stupid but I don't what.
"-4 / (a + 2)" is the tip of a parabola, and I need to find the values of "a" where the tip is to the left of the line "x = 3".

I've got this:
Code: [Select]
-4 / (a + 2) < 3   / : -4
a + 2 > 3/-4       / +  2
a > 3/-4 - 2

a > -2.75
(and a != -2)
The answer in the book is either a > -2 or a < -3.333. What do I keep missing?
« Last Edit: June 24, 2011, 05:27:49 am by ILikePie »
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Jim Groovester

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Re: Mathematics Help Thread
« Reply #744 on: June 24, 2011, 05:41:08 am »

Why are you dividing by -4, but not keeping (a + 2) in the denominator?
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ed boy

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Re: Mathematics Help Thread
« Reply #745 on: June 24, 2011, 05:43:47 am »

I'm confused. If you have a parabola, then any point on the parabola will have two co-ordinates - the x-coordinate and the y-coordinate. You've only given us one: -4 / (a + 2)
If you mean (-4,a+2) as the two coordinates, then the condition "to the left of x=3" is always satisfied for all values of a.
If you mean -4/(a+2) is the y-coordinate, then for each value of a, x can take any value, some of which will be satisfactory and some of which will not.
If you mean -4/(a+2) is the x-coordinate, then we have:
-4/(a+2)<3
We there are two possibilities: (a+2)>0, or (a+2)<0. If (a+2)>0, then:
-4<3(a+2)
-4<3a+6
-10<3a
a>-10/3
However, this is when a+2>0, so a>-2
However, a>-10/3 is implied by a>-2, so we can take the condition a>-2.
Now consider when (a+2)<0, which is equivalent to a<-2.
-4>3(a+2)
-4>3a+6
-10>3a
a<-10/3
so in this situation, we have that a<-2 and a<-10/3 both hold.
The latter implies the former, so we can take the single condition a<-10/3.
So a<-10/3 or a>-2.
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ILikePie

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Re: Mathematics Help Thread
« Reply #746 on: July 03, 2011, 08:04:22 am »

sin a = -5/13 and 270 < a < 360. How do I, without using a calculator, find sin(90 - a).
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ed boy

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Re: Mathematics Help Thread
« Reply #747 on: July 03, 2011, 08:37:52 am »

you use compund angle formulae.

sin(a+b)=sin(a)cos(b)+sin(b)cos(a)
sin(90-a)=sin(90)cos(-a)+sin(-a)cos(90)
sin(90-a)=cos(a)

now you need to find cos(a). You can use:
sin2(a)+cos2(a)=1
cos2(a)=1-sin2(a)
cos2(a)=1-(5/13)2=144/169
you know that 270<a<360, so you know that cos(a) is positive.
so cos(a)=12/13
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ILikePie

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Re: Mathematics Help Thread
« Reply #748 on: July 12, 2011, 09:18:29 am »

If I've got a right triangle (ABC) where B = 90 degrees, and I'm told the coordinates of B are (10,8), and A's are (2,4). How do I get C's coordinates if I know it sits somewhere on the x axis (i.e. C(x,0) )?
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Darvi

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Re: Mathematics Help Thread
« Reply #749 on: July 12, 2011, 09:31:23 am »

Since AB and BC are perpendicular, either it's XBA=k*YBC and YBA=-k*XBC, or XBA=-k*YBC and YBA=k*XBC,which are the coordinates of the vectors BA and BC respectively. (k is positive, btw)

Now, since C is to the below B (YBC is negative) and A is to the left of B(XBA is negative), we come to the conclusion that the second must be true.

Bluh, I suck at reading notations. Fixed.
« Last Edit: July 12, 2011, 09:33:50 am by Darvi »
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