Can Arithmetic Alone Prove This Inequality?

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Homework Help Overview

The discussion revolves around proving the inequality \( x^2 - 2x - 3 < 0 \) using only arithmetic methods. The original poster seeks to establish the equivalence of the set of real numbers satisfying this inequality with the interval \(-1 < x < 3\).

Discussion Character

  • Exploratory, Assumption checking, Mathematical reasoning

Approaches and Questions Raised

  • The original poster attempts to test specific values and manipulate the inequality but expresses uncertainty about maintaining focus on the core inequality. Some participants suggest factoring the expression and provide hints, while others clarify the implications of the factors and the conditions under which their product is negative.

Discussion Status

Participants are actively engaging with the problem, providing hints and clarifications. There is a mix of approaches being explored, including factoring and analyzing the signs of the factors. The original poster is seeking to understand the transitions between different forms of the inequality and how to establish the equivalence of the two sets.

Contextual Notes

There is a focus on using only arithmetic methods, avoiding calculus or the quadratic formula, which shapes the nature of the discussion and the approaches taken by participants.

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Homework Statement


(!) Assuming only arithmetic (not the quadratic formula or calculus), prove that
<br /> \left\{x \in\Re: x^2-2x-3 &lt; 0\right\} = \left\{x \in\Re: -1 &lt; x &lt; 3\right\}<br />


Homework Equations



<br /> \left\{x \in\Re: x^2-2x-3 &lt; 0\right\} = \left\{x \in\Re: -1 &lt; x &lt; 3\right\}<br />

The Attempt at a Solution


Again, new and trying to learn how exactly to do this to proper mathematical standards.

I think this will just be a simple plug'n'play:

Test case, 0 and 2 since using boundaries results in 0 < 0:
(0)^2-2(0)-3 < 0
-3 < 0
True

(2)^2-2(2)-3 < 0
4-4-3 < 0
-3 < 0
True

Thoughts? This seemed too easy but when I manipulated with adding and subtracting/multiplying I started to lose focus from the core inequality ie:

x^2-2x-3 < 0
x^2-2x < 3

-1 < x < 3
0 < x+1 < 3+1
0 < x^2+x < 4x

Et cetera...



NastyAccident
 
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It is a good start to factorise the expression.

Hint: x^2-2x-3 =(x-1)^2-4.

ehild
 
note: the quadratic formula is achieved through algebra alone. ;)
 
ehild said:
It is a good start to factorise the expression.

Hint: x^2-2x-3 =(x-1)^2-4.

ehild

Going your way:
x^2-2x+1-4 < 0
(x-1)^2-4<0
(x-1)^2<4

-1<x<3
0<x+1<4
x+1<(x-1)^2
x+1<x^2-2x+1
0<x^2-3x
0<x(x-3)
x=0 or x=3?

Somewhere near that?
 
NastyAccident said:
Going your way:
x^2-2x+1-4 < 0
(x-1)^2-4<0
(x-1)^2<4

-1<x<3

Was not that you wanted to arrive at?

It is not that what I meant by factorize, but it is correct up to here.


(x-1)^2-4 = (x-1)^2-2^2=((x-1)-2)((x-1)+2)=(x-3)(x+1)

You have to find the range of x where (x-3)(x+1)<0

The product of two numbers is negative if one of the factors is negative, the other is positive. As x+1>x-3, x-3<0 and x+1>0 that is equivalent to -1<x<3.


ehild
 
ehild said:
Was not that you wanted to arrive at?

It is not that what I meant by factorize, but it is correct up to here.


(x-1)^2-4 = (x-1)^2-2^2=((x-1)-2)((x-1)+2)=(x-3)(x+1)

You have to find the range of x where (x-3)(x+1)<0

The product of two numbers is negative if one of the factors is negative, the other is positive. As x+1>x-3, x-3<0 and x+1>0 that is equivalent to -1<x<3.


ehild

Okay, the way of factoring originally brought up confused me for a second since it appeared to be completing a square to a problem that could of already been factored.

After reading your original suggestion, I had the thought of breaking it down to (x-3)(x+1) >0. Though, after that I was unsure of where to go. And now, with the range comment I am a bit lost as to why you were able to move from (x-3)(x+1)>0 to x+1>x-3. Logically, it does hold since (0)+1>0-3 = 1>-3.

I guess, I'm just getting lost on the transition from (x-3)(x+1)>0 to x+1>x-3 to x-3<0 and x+1>0. In my mind, I see it as going with (x-3)>0 and (x+1) > 0 instead of the inequalities that you presented. If you could clarify that I would appreciate it.



NastyAccident
 
x+1 is always bigger than x-3, isn't it?

I did not say that (x-3)(x+1)>0. You have to find the values of x which make (x-3)(x+1)<0 true, that is the product of (x+1) and (x-3) is negative. That happens if one of the factors is negative, the other positive. As x+1>x-3, if x+1<0, x-3 is also negative and their product is positive. So x-3 has to be negative and x+1 positive:

x-3<0 --->x<3

and x+1>1 --->x>1


ehild
 
ehild said:
x+1 is always bigger than x-3, isn't it?

I did not say that (x-3)(x+1)>0. You have to find the values of x which make (x-3)(x+1)<0 true, that is the product of (x+1) and (x-3) is negative. That happens if one of the factors is negative, the other positive. As x+1>x-3, if x+1<0, x-3 is also negative and their product is positive. So x-3 has to be negative and x+1 positive:

x-3<0 --->x<3

and x+1>1 --->x>1


ehild

First, I apologize for the (x-3)(x+1)>0 statement. It should have been (x-3)(x+1) < 0. I hit the wrong key.

I now see and understand why the split is occurring like that since you are trying to find terms that create a negative which would yield something that is less than zero.

Now, this proves that set A (x^2-2x-3 < 0) is included in Set B (-1<x<3). In order to ensure that both are equal sets, I now have to repeat this process so that set B is included in Set A.

So, would it be fair to do the following:

-1<x<3
-1<x
x<3
0<x+1
x-3<0
(x+1)(x-3)<0
x^2-2x-3<0

Hence,
Set A = Set B



NastyAccident
 
Well done! ehild
 

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