ICAS Mathematics Competition (1 Viewer)

Web Addict · Aug 13, 2013

RealiseNothing said:
It was definitely the radius, 4.

Yeah, I know. I managed to get the diameter, but I didn't half it to get the radius because I misread the question.

Resource · Aug 13, 2013

Is the J Paper much harder than H?

Web Addict · Aug 13, 2013

Resource said:
Is the J Paper much harder than H?

To be honest, Paper J is much harder than Paper H. They have a lot of common questions. In fact, I believe that you'll be able to do most of the questions if you have the time.

Does anyone have a copy of the paper to upload? I need to check some of my answers. I think I made a few other silly mistakes.

Resource · Aug 14, 2013

What was the answer to that question with a,b,c that had a sum of 117 and something else..?

Recondit · Aug 14, 2013

Resource said:
What was the answer to that question with a,b,c that had a sum of 117 and something else..?

I think it was c) 35XXX

jihad1234 · Aug 14, 2013

I think 7hr and 30 min is correct. A teacher explained to me that 60% faster means 1.6x faster so you would go 12/1.6= 7.5 which converted to hours and minutes becomes 7 hours and 30minutes. Thanks for all your help

this question baffled most of our class!

obliviousninja · Aug 14, 2013

Moral of the ICAS Comp: Guess & Check.
I seriously do not see how to create any equations to solve some of them.
ie. Sum of 3 numbers is 117. One number is a prime. Other two are multiples of this prime. One of these numbers is larger than the other.
What is the greatest product of the 3 numbers?

My numbers were 13, 39, 65. But I did not get any of the numbers on the multiple choice, so logically there must have been a greater number than what I got, and hence I choose that as my answer

Hopefully I can continue my distinction streak from yr 7

Lucky it wasn't some bs Olympiad paper or BHP one, if any of you are familiar with that one?

Web Addict · Aug 14, 2013

obliviousninja said:
Moral of the ICAS Comp: Guess & Check.
I seriously do not see how to create any equations to solve some of them.
ie. Sum of 3 numbers is 117. One number is a prime. Other two are multiples of this prime. One of these numbers is larger than the other.
What is the greatest product of the 3 numbers?

My numbers were 13, 39, 65. But I did not get any of the numbers on the multiple choice, so logically there must have been a greater number than what I got, and hence I choose that as my answer

Hopefully I can continue my distinction streak from yr 7
Lucky it wasn't some bs Olympiad paper or BHP one, if any of you are familiar with that one?

I agree. The ICAS Mathematics Competition has a lot of trial and errors.

By the way, what do you guys think the cut-offs for Credit, Distinction and High Distinction are this year?

obliviousninja · Aug 14, 2013

Do you by any chance know the cut-offs?

Web Addict said:
I agree. The ICAS Mathematics Competition has a lot of trial and errors.

By the way, what do you guys think the cut-offs for Credit, Distinction and High Distinction are this year?

RealiseNothing · Aug 14, 2013

Recondit said:
I think it was c) 35XXX

Yep I got this as well.

RealiseNothing · Aug 14, 2013

Web Addict said:
I agree. The ICAS Mathematics Competition has a lot of trial and errors.

By the way, what do you guys think the cut-offs for Credit, Distinction and High Distinction are this year?

I barely used trial and error in the test.

obliviousninja · Aug 14, 2013

dafuq? pls explain how you mathematically solved the a+b+c=117 question, im just curious, don't think it will be any use for extension though.

RealiseNothing said:
I barely used trial and error in the test.

Resource · Aug 14, 2013

I made a=13. Then I decided that the two multiples of 13 that would add to 117 and give the highest product were 52 and 52.

13+52+52=117.
13x52x52=35152.

Was this question in paper J? Cause it was in Paper H.

Web Addict · Aug 14, 2013

RealiseNothing said:
I barely used trial and error in the test.

Wow. How did you manage without trial and error?

RealiseNothing · Aug 15, 2013

obliviousninja said:
dafuq? pls explain how you mathematically solved the a+b+c=117 question, im just curious, don't think it will be any use for extension though.

B and C are multiples of A, so we can say:

$A+xA+yA=117$

$(x+y+1)A=117$

A however is prime, so we find the prime factorisation of 117:

$117 = 13 \times 3 \times 3$

So A=13 or A=3

Now we want to find the maximum value of $ABC$ , which is $xyA^3$

Since the A is cubed, we want to make A as large as possible, so since we can choose from 3 or 13, we let A=13 since $13^3 > 3^3$ by a lot. Also consider the product $xy$ , it will be maximised when $x=y$

$(x+y+1)A = (2x+1)A = 117$ by letting $x=y$

Substitute in A=13:

$13(2x+1) = 117$

$2x+1 = 9$

$x=4$

So the product of A, B, and C is maximised when in the form $A+xA+yA$ where A=13, x=4, and y=4.

Thus we get: $13 + 4(13) + 4(13) = 13 + 52 + 52 =117$

The maximum product is $13 \times 52 \times 52 = 35152$

obliviousninja · Aug 15, 2013

Did they teach you this in like year 7 at nsg? ie, all these random FYI things such as prime factorisation.

RealiseNothing said:
B and C are multiples of A, so we can say:

$A+xA+yA=117$

$(x+y+1)A=117$

A however is prime, so we find the prime factorisation of 117:

$117 = 13 \times 3 \times 3$

So A=13 or A=3

Now we want to find the maximum value of $ABC$ , which is $xyA^3$

Since the A is cubed, we want to make A as large as possible, so since we can choose from 3 or 13, we let A=13 since $13^3 > 3^3$ by a lot. Also consider the product $xy$ , it will be maximised when $x=y$

$(x+y+1)A = (2x+1)A = 117$ by letting $x=y$

Substitute in A=13:

$13(2x+1) = 117$

$2x+1 = 9$

$x=4$

So the product of A, B, and C is maximised when in the form $A+xA+yA$ where A=13, x=4, and y=4.

Thus we get: $13 + 4(13) + 4(13) = 13 + 52 + 52 =117$

The maximum product is $13 \times 52 \times 52 = 35152$

Resource · Aug 15, 2013

Didn't you learn factor trees in year 7? And if not it isn't too difficult to know that 13 is a factor of 117 and then (117-13)/2 =52.

MineTurtle · Aug 15, 2013

jihad1234 said:
I think 7hr and 30 min is correct. A teacher explained to me that 60% faster means 1.6x faster so you would go 12/1.6= 7.5 which converted to hours and minutes becomes 7 hours and 30minutes. Thanks for all your help this question baffled most of our class!

YES! That's what I got. I'm so happy!!

Web Addict · Aug 15, 2013

RealiseNothing said:
B and C are multiples of A, so we can say:

$A+xA+yA=117$

$(x+y+1)A=117$

A however is prime, so we find the prime factorisation of 117:

$117 = 13 \times 3 \times 3$

So A=13 or A=3

Now we want to find the maximum value of $ABC$ , which is $xyA^3$

Since the A is cubed, we want to make A as large as possible, so since we can choose from 3 or 13, we let A=13 since $13^3 > 3^3$ by a lot. Also consider the product $xy$ , it will be maximised when $x=y$

$(x+y+1)A = (2x+1)A = 117$ by letting $x=y$

Substitute in A=13:

$13(2x+1) = 117$

$2x+1 = 9$

$x=4$

So the product of A, B, and C is maximised when in the form $A+xA+yA$ where A=13, x=4, and y=4.

Thus we get: $13 + 4(13) + 4(13) = 13 + 52 + 52 =117$

The maximum product is $13 \times 52 \times 52 = 35152$

Wow. Nice working out. So, there is no need for trial and error after all.

I think we have a medallist here.

nerdasdasd · Aug 15, 2013

Did anyone ever get the CD with the old papers ICAS papers on them ?

ICAS Mathematics Competition (1 Viewer)

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