Do Some Math For a +rep

32OrtonEdge32dh · Before February 2015

How much you wanna bet Jad tries to do it?

Anyway, I have a boatload of Algebra II homework, and there's one question I can't really complete. Here it is:

My Book wrote:

Write and solve an inequality to find three consecutive whole numbers with a sum between 13 and 16.

SHOW YOUR WORK DAD GUM IT.

The use of absolute value is not necessary, but encouraged.

Last edited by 32OrtonEdge32dh (Sep 16 2011 3:34:00 pm)

jakery · Before February 2015

13 < x + (x+1) + (x+2) < 16

Did I win?

Greenzoid2 · Before February 2015

Hmm, seems like you guys use different terms in USA than in Canada, I don't know what an inequality is

32OrtonEdge32dh · Before February 2015

Hmm...wanna solve it?

jakery · Before February 2015

Per IRC chat:

13 < x + (x+1) + (x+2) < 16
13 < 3x + 3 < 16
10 < 3x < 13

10/3 < x < 13/3

There. I robbed you of your education. lol

Gaming_Guy · Before February 2015

Algebra? No thanks.

Lemme have a go,

13 < x + (x+1) + (x+2) < 16
13 < x + (x+3) < 16
13 < (x+x)=2+3 < 16

Did I do something wrong? I fail at algebra.

32OrtonEdge32dh · Before February 2015

Something went majorly wrong, there should never be an = in an inequality.

Gaming_Guy · Before February 2015

I don't know what an "inequality" is. I don't live in America therefor I don't know they're standards for math.

32OrtonEdge32dh · Before February 2015

http://en.wikipedia.org/wiki/Inequality

calculusguy · Before February 2015

jakery wrote:

Per IRC chat:
13 < x + (x+1) + (x+2) < 16
13 < 3x + 3 < 16
10 < 3x < 13
10/3 < x < 13/3
There. I robbed you of your education. lol

This.
But you need to make it whole numbers, so make 10/3 to 4 and 13/3 to 4... WHAT ARWOIHWIRUCHC
That means it has to be 4!?!?!

Last edited by calculusguy (Sep 16 2011 4:56:33 pm)

Baticon · Before February 2015

This is an impossible problem IMO.
Look:

13 < (x-1) + x + (x+1) < 16 -------> 13 < 3x < 16

AND:

13 < x + (x+1) + (x+2) < 16 -------> 13 < 3x + 3 < 16 -------> 10 < 3x < 16

So:

13 < 3x < 16
10 < 3x < 13

Impossible.

JadElClemens · Before February 2015

32OrtonEdge32dh wrote:

How much you wanna bet Jad tries to do it?

Lolyeah

32OrtonEdge32dh wrote:

Algebra II

Bro, I'm only in Geometry.

32OrtonEdge32dh · Before February 2015

baticon wrote:

This is an impossible problem IMO.
Look:
13 < (x-1) + x + (x+1) < 16 -------> 13 < 3x < 16
AND:
13 < x + (x+1) + (x+2) < 16 -------> 13 < 3x + 3 < 16 -------> 10 < 3x < 16
So:
13 < 3x < 16
10 < 3x < 13
Impossible.

Well, jakery did it.... How is it impossible?
13 < x + (x+1) + (x+2) < 16
13 < 3x + 3 < 16
10 < 3x < 13
10/3 < x < 13/3
You didn't isolate the variable.

musuki · Before February 2015

baticon wrote:

13 < 3x < 16
10 < 3x < 13
Impossible.

x isn't the same thing in those two though. In the top one x is the middle number, whereas in the bottom one x is the first number. If you're consistent with calling x the first number, the top one is really 13 < 3(x+1) < 16, which is clearly the same as the second inequality.

jakery · Before February 2015

Baticon, your first inequality will work as well, but you have to remember that you subtracted 1 from each of the three consecutive numbers, so you must subtract three from the other two sides of the inequality:

13 < x + (x+1) + (x+2) < 16
10 < (x-1) + x + (x+1) < 13

And from there, you still get lead to:
10 < 3x < 13

catking00 · Before February 2015

look it up!
x
x + 1
x + 2

Equation: 13 < x + (x + 1) + (x + 2) < 16

Simplify the middle part first:
13 < x + x + 1 + x + 2 < 16
13 < 3x + 3 < 16

Now subtract 3 from all three sections
13 - 3 < 3x + 3 - 3 < 16 - 3

10 < 3x < 13

Divde through by 3
10/3 < x < 13/3
3.3333 < x < 4.33333

The only whole number between 3.333 and 4.3333 is 4, so the first number will be 4

x = 4
x + 1 = 5
x + 2 = 6

CHECK:
4 + 5 + 6 = 15......this is between 13 and 16

Answer: 4, 5, 6
Source(s):
Math teacher for many years

found this on yahoo answers.

calculusguy · Before February 2015

calculusguy wrote:

jakery wrote:
Per IRC chat:
13 < x + (x+1) + (x+2) < 16
13 < 3x + 3 < 16
10 < 3x < 13
10/3 < x < 13/3
There. I robbed you of your education. lol
This.
But you need to make it whole numbers, so make 10/3 to 4 and 13/3 to 4... WHAT ARWOIHWIRUCHC
That means it has to be 4!?!?!

Y u no read?

tailschao · Before February 2015

ok, I love math, but jeeze. I am only 11. I did'nt know half of the words in that problem XD

Betaguy · Before February 2015

Ok I wish i could solve this, but the problem is I am Norwegian (dont know what the some of the words mean), 13 years, and I havent had algebra at school yet >.<

Ratburntro44 · Before February 2015

baticon wrote:

This is an impossible problem IMO.
Look:
13 < (x-1) + x + (x+1) < 16 -------> 13 < 3x < 16
AND:
13 < x + (x+1) + (x+2) < 16 -------> 13 < 3x + 3 < 16 -------> 10 < 3x < 16
So:
13 < 3x < 16
10 < 3x < 13
Impossible.

Uhh... not really... one of your x values is different from the other.

The first x is one more than the second x. So your math is off...

And this has already been solved here, easily.

13<x+x+1+x+2<16
13<3x+3<16
10<3x<13
10/3<x<13/3
3.33<x<4.33
x must be a whole number, so x is 4. 4+5+6=15. Yay. Easy. Not to mention it already was solved before this...

Well, that's the best a 12 year old in Calc 1 can do...

RhazzleFrazzle · Before February 2015

damn. why an inequality. thats the only thing i cant do. i can tell you that the consectutive whole numbers are 4 5 and 6, but i cant do the inequality.

32OrtonEdge32dh · Before February 2015

It's already been answered, though.

RhazzleFrazzle · Before February 2015

oh. well. i took algebra 2 last year, and that class was torture. i know how it feels to have to use the internet to get work done.

Chewy · Before February 2015

Locked on request of OP.

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