• Congratulations to the Class of 2024 on your results!
    Let us know how you went here
    Got a question about your uni preferences? Ask us here

Can anyone please provide some feedback on my proof (1 Viewer)

SB257426

Very Important User
Joined
Jul 12, 2022
Messages
308
Location
Los Alamos, New Mexico, USA
Gender
Male
HSC
2023
The question was asking: Prove the following statement using either direct or contrapositive proof: If n is an integer then 4 does not divide n^2-3

Here is my working out:

let n^2 - 3 = 4m
By way of contradiction assume n^2 - 3 is rational, ie; n^2 - 3 = a/b (BTW in the funky looking expression for n the square root sign is not supposed to be over the 1/sqrt(p))

Screen Shot 2023-03-19 at 5.53.42 pm.jpg
Once again by way of contradiction, assume sqrt(p) is rational:

Screen Shot 2023-03-19 at 6.00.47 pm.jpg


Any help would be appreciated
 

tywebb

dangerman
Joined
Dec 7, 2003
Messages
2,202
Gender
Undisclosed
HSC
N/A
might be easier to use mod 4 arithmetic for

If 4 divides then there exists an integer such that



If is an integer then there are 4 cases for









(or you could simplify this a bit just by looking at odd and even cases for n - and you only get 0 or 1 mod 4 for , never 3 mod 4)

In no case is going to be

Hence if 4 divides then is not an integer.

Contrapositive: If is an integer then 4 does not divide
 
Last edited:

SB257426

Very Important User
Joined
Jul 12, 2022
Messages
308
Location
Los Alamos, New Mexico, USA
Gender
Male
HSC
2023
might be easier to use mod 4 arithmetic for

If 4 divides then there exists an integer such that



If is an integer then there are 4 cases for









(or you could simplify this a bit just by looking at odd and even cases for n - and you only get 0 or 1 mod 4 for , never 3 mod 4)

in no case is going to be

Hence if 4 divides then is not an integer.

Contrapositive: If is an integer then 4 does not divide
Oh lol I should have thought of that instead.........

Is there anything wrong with my proof though?, would I still full marks for such question (it was worth 3 marks)
 

s97127

Active Member
Joined
Mar 4, 2018
Messages
302
Gender
Male
HSC
2020
i think the easiest is as follows:

Assume n^2-3 = 4m
Case 1: n is even number, n = 2k
4k^2 - 3 = 4m is wrong because even number - odd number cannot be an even number
Case 2: n is an odd number, n = 2k+1
2k^2 + 2k - 1 = 2m is wrong because of the same reason.
Therefore n^2 - 3 is not divisible by 4
 

Average Boreduser

Rising Renewal
Joined
Jun 28, 2022
Messages
3,209
Location
Somewhere
Gender
Female
HSC
2026
i think the easiest is as follows:

Assume n^2-3 = 4m
Case 1: n is even number, n = 2k
4k^2 - 3 = 4m is wrong because even number - odd number cannot be an even number
Case 2: n is an odd number, n = 2k+1
2k^2 + 2k - 1 = 2m is wrong because of the same reason.
Therefore n^2 - 3 is not divisible by 4
thats induction tho n
 

hscgirl

Well-Known Member
Joined
Dec 15, 2022
Messages
305
Gender
Female
HSC
2024
bruh the dudes already finished school, he capping hard.
idk what to believe on the internet anymore 😭😭
yeah but that's true, im so confused why he doesnt at least change his hsc grad year from 2020 to N/A… (not to mention that u pethmin apparently graduated from the hsc in 1998 💀 )
 

s97127

Active Member
Joined
Mar 4, 2018
Messages
302
Gender
Male
HSC
2020
idk what to believe on the internet anymore 😭😭
yeah but that's true, im so confused why he doesnt at least change his hsc grad year from 2020 to N/A… (not to mention that u pethmin apparently graduated from the hsc in 1998 💀 )
either way i'm still smarter than him lol
 

Sam14113

Member
Joined
Aug 22, 2021
Messages
93
Gender
Male
HSC
2023
The question was asking: Prove the following statement using either direct or contrapositive proof: If n is an integer then 4 does not divide n^2-3

Here is my working out:

let n^2 - 3 = 4m
By way of contradiction assume n^2 - 3 is rational, ie; n^2 - 3 = a/b (BTW in the funky looking expression for n the square root sign is not supposed to be over the 1/sqrt(p))

View attachment 38010
Once again by way of contradiction, assume sqrt(p) is rational:

View attachment 38011


Any help would be appreciated
Dunno if you still need help on this … if you don’t just ignore but otherwise here’s what I have to say

You said: By way of contradiction assume n^2-3 is rational.

The problem here is that the question isn’t asking us to prove it’s irrational. It’s asking us to prove it’s a multiple of 4. So if we want to contradict that we need to say, “Assume it’s n a multiple of 4”, rather than “assume it’s rational.”

the fact is, n^2-3 is in fact rational. In fact it’s integral.

this is a fairly easy mistake to make - you see lots of ‘irrationality’ proofs by contradiction in the 4U course, so that’s often where your brain goes when you see proof by contradiction. Remember though, the contradiction should directly contradict what you’re trying to prove.

hope that helps
 
Last edited:

zaccoo

New Member
Joined
Jun 8, 2023
Messages
2
Gender
Male
HSC
2024
i think the easiest is as follows:

Assume n^2-3 = 4m
Case 1: n is even number, n = 2k
4k^2 - 3 = 4m is wrong because even number - odd number cannot be an even number
Case 2: n is an odd number, n = 2k+1
2k^2 + 2k - 1 = 2m is wrong because of the same reason.
Therefore n^2 - 3 is not divisible by 4
Your working is flawed on the 5th line. 2k^2 + 2k - 1 = 2m
 

Users Who Are Viewing This Thread (Users: 0, Guests: 1)

Top