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IGCSE maths paper 4 variant 2. huge discusssion

The_Boss

The_Boss

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the answer for the functions was g(x) only because the f(x) cannot be equall to the inverse when the values of "X"s are same. so the answer is SOLELY g(X)
 
qwertypoiu

qwertypoiu

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Actually, the way I remember it:
f(x) = 1 - x
g(x) = 1/x

If you find the inverse of both of these you'll see:
f^-1(x) = 1 - x
g^-1(x) = 1/x

You can even try inputting random numbers in the function, taking the output, then inputting that output into the function to see whether it comes back to the input:

f(12) = 1 - (12) = -11
f(-11) = 1 - (-11) = 12

g(5) = 1/(5) = 0.2
g(0.2) = 1/(0.2) = 5

Therefore, it's both f(x) and g(x)
 
Arshad1

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The_Boss said:
Isnt 1D suppose to be $90 as it said round to the nearest cent.
3rd question last part is something like 2177.5(OR 2117.5) as for cost the answer should be to 2 d.p.
9th question(probability) last part the answer is 781/1024
10b the answer is x-1=g^-1(X) 10th question last one was g(x)
Last page the answers were : 1/3 , 1/5, 1/4, 1/6 , 0.363
Click to expand...

Hello bro.. I think the answer you have mentioned for the last page answers for the 4th diagram is incorrect. The shape given was a hexagon and a triangle was drawn inside it. So you can only draw a maximum of 3 more triangle inside the shape of the hexagon. So the total no of triangles that can be drawn inside the hexagon will only be 4. As only one triangle was shaded, the shaded area would be 1/4 and not 1/6. Hope i am clear in my explanation.
 
qwertypoiu

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Arshad1 said:
Hello bro.. I think the answer you have mentioned for the last page answers for the 4th diagram is incorrect. The shape given was a hexagon and a triangle was drawn inside it. So you can only draw a maximum of 3 more triangle inside the shape of the hexagon. So the total no of triangles that can be drawn inside the hexagon will only be 4. As only one triangle was shaded, the shaded area would be 1/4 and not 1/6. Hope i am clear in my explanation.
Click to expand...
hexagon.png

It's clearly 1/6
 
The_Boss

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qwertypoiu said:
Actually, the way I remember it:
f(x) = 1 - x
g(x) = 1/x

If you find the inverse of both of these you'll see:
f^-1(x) = 1 - x
g^-1(x) = 1/x

You can even try inputting random numbers in the function, taking the output, then inputting that output into the function to see whether it comes back to the input:

f(12) = 1 - (12) = -11
f(-11) = 1 - (-11) = 12

g(5) = 1/(5) = 0.2
g(0.2) = 1/(0.2) = 5

Therefore, it's both f(x) and g(x)
Click to expand...
Mate you mixed up the functions, f(x)=1/x and g(x)=1-x
And the condition for the question was that the VALUE OF X SHOULD BE SAME IN THE INVERSE AND ORIGINAL funtion, so its clearly g(x) not both

Prove: g(0)=g^-1(0)
1-0=1-0
1=1
 
qwertypoiu

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The_Boss said:
Mate you mixed up the functions, f(x)=1/x and g(x)=1-x
And the condition for the question was that the VALUE OF X SHOULD BE SAME IN THE INVERSE AND ORIGINAL funtion, so its clearly g(x) not both

Prove: g(0)=g^-1(0)
1-0=1-0
1=1
Click to expand...

Okay so;
f(x) = 1/x

and just prove that:
f(2) = f^-1(2)

To prove the above, we must also know what f^-1(x) is. Just try working out what f^-1(x) comes to. You'll see f^-1(x) = 1/x. So:

f(2) = f^-1(2)
1/2 = 1/2
0.5 = 0.5

You already agree with g(x), it's f(x) as well.
 
The_Boss

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qwertypoiu said:
Okay so;
f(x) = 1/x

and just prove that:
f(2) = f^-1(2)

To prove the above, we must also know what f^-1(x) is. Just try working out what f^-1(x) comes to. You'll see f^-1(x) = 1/x. So:

f(2) = f^-1(2)
1/2 = 1/2
0.5 = 0.5

You already agree with g(x), it's f(x) as well.
Click to expand...
Well ****! Gonna loose marks :(
 
The_Boss

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Arshad1 said:
But I don't think they asked for two functions bro! And the question was also only for one mark!
So are two answers really required?
Click to expand...
Well i also had a question that in f(x) if the value is zero it doesnt work so isnt the answer suppose to be g(X)?
 
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qwertypoiu

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Arshad1 said:
But I don't think they asked for two functions bro! And the question was also only for one mark!
So are two answers really required?
Click to expand...

Actually, it said WHICH of the functions.... so it's not necessarily only one answer.... as for it being only 1 mark, I think it was to make it less obvious that there were two answers...

The_Boss said:
Well i also had a question that in f(x) if the value is zero it doesnt work so isnt the answer suppose to be g(X)?
Click to expand...

The question actually defined f(x) to be:
f(x) = 1/x , x ≠ 0

That actually means f(x) is not defined at x=0, so one should not consider the point when x=0.

But even if you were to take x =0, we would prove:

f(0) = f^-1(0)
undefined = undefined.

So that's sort of proven as well :)

Though really, x=0 should not be considered.
 
Arshad1

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The_Boss said:
Well i also had a question that in f(x) if the value is zero it doesnt work so isnt the answer suppose to be g(X)?
Click to expand...

Just relax bro! Hope the examiner accepts one answer..
Moreover, it will be better if you remember the question fully and type it here.
Did the question say "for any value of x"? If it said so, then f(x) would not be the answer.
 
qwertypoiu

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Arshad1 said:
Just relax bro! Hope the examiner accepts one answer..
Moreover, it will be better if you remember the question fully and type it here.
Did the question say "for any value of x"? If it said so, then f(x) would not be the answer.
Click to expand...

The question did not say "for any value of x"....

And as I've already said previously, even if x=0 were to be considered, both f(x) and f^-1(x) give the value undefined... which is equal.
 
The_Boss

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qwertypoiu said:
Actually, it said WHICH of the functions.... so it's not necessarily only one answer.... as for it being only 1 mark, I think it was to make it less obvious that there were two answers...



The question actually defined f(x) to be:
f(x) = 1/x , x ≠ 0

That actually means f(x) is not defined at x=0, so one should not consider the point when x=0.

But even if you were to take x =0, we would prove:

f(0) = f^-1(0)
undefined = undefined.

So that's sort of proven as well :)

Though really, x=0 should not be considered.
Click to expand...
Hmm. thanx, u sound like a good mathematician.
 
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