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## #476 2006-03-01 03:40:37

ganesh
Registered: 2005-06-28
Posts: 26,627

### Re: Problems and Solutions

mathsyperson, a good attempt! I shall post the proof after a few days (during the weekend, when I am free).

It is no good to try to stop knowledge from going forward. Ignorance is never better than knowledge - Enrico Fermi.

Nothing is better than reading and gaining more and more knowledge - Stephen William Hawking.

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## #477 2006-03-02 18:44:03

ganesh
Registered: 2005-06-28
Posts: 26,627

### Re: Problems and Solutions

Problem # k + 110

Let n be an integer.  Can both n + 3 and n2 + 3 be perfect cubes?

It is no good to try to stop knowledge from going forward. Ignorance is never better than knowledge - Enrico Fermi.

Nothing is better than reading and gaining more and more knowledge - Stephen William Hawking.

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## #478 2006-07-12 01:19:14

Daisy
Member
Registered: 2006-07-12
Posts: 1

### Re: Problems and Solutions

ganesh wrote:

Outstanding! You are really supersmart!
Let others too try.

(2) A mixture of 40 liters of milk and water contains 10% water. How much water must be added to make water 20% in the new mixture?

I think that you would have to add 5 liters of  water to make the solution 20%.

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## #479 2006-07-12 02:34:31

Patrick
Real Member
Registered: 2006-02-24
Posts: 1,005

### Re: Problems and Solutions

Daisy - that is correct. 9liters(the new amount of water) is in fact 1/5 of 45liters(the new total)

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## #480 2006-07-22 22:25:17

krassi_holmz
Real Member
Registered: 2005-12-02
Posts: 1,905

### Re: Problems and Solutions

#k+110
Let
n+3=x^3;
2n+3=y^3
Then
n=x^3-3;
2(x^3-3)+3=y^3
2x^3-3=y^3
The solutions of this diophantine equations are (1,-1) and (4,5)
So we have n=-2 and n=61.

IPBLE:  Increasing Performance By Lowering Expectations.

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## #481 2009-01-04 11:03:07

JaneFairfax
Member
Registered: 2007-02-23
Posts: 6,868

### Re: Problems and Solutions

ganesh wrote:

Problem # k + 109

Prove that every number of the form a[sup]4[/sup]+4 is a composite number (a≠1).

(This problem was posed by the eminent French mathematician Sophie Germain).

The trick is to use complex numbers  or Gaussian integers (complex numbers with integer real and imaginary parts). Thus, factorizing in the ring of Gaussian integers, we have

Since

and
we have

Now we multiply the factors in a different order!

And it is clear that if

, both
and
are integers greater than 1. Hence
is composite if
!

Last edited by JaneFairfax (2009-01-04 11:48:44)

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## #482 2010-10-21 13:00:42

bobbym
bumpkin
From: Bumpkinland
Registered: 2009-04-12
Posts: 109,606

### Re: Problems and Solutions

Hi ganesh;

For k + 42

No method was ever given for this problem. To fill in the gap I provide my solution.
It avoids having to solve a simultaneous set of equations over the integers, which is possible but computer dependent.

If we call the amount of coconuts originally as C0 ( and x for later ) and C1 the operation performed by the first man, with C2 the second etc, We form this group of equations.

It is easy to spot a  recurrence form!

We solve this by standard means:

Do not bother to simplity. Just substitute 5 for n. There are 5 guys remember.

You get the fraction:

Set it equal to y, ( I like x and y ). The step is justified because 1024 x - 8404 is obviously a multiple of 3125.

Rearrange to standard form for a linear diophantine equation.

Solve by Brahmagupta's method, continued fraction, GCD reductions...
Whatever you like. You just need 1 solution! I have a small answer found by trial and error of ( x = - 4 , y = - 4 ).

Now if a linear diophantine equation has one solution it has an infinite number of them.

Utilize Bezouts identity, which says if you have one answer (x,y) then you can get another by:

Plug in x = -4, y = - 4, a = 1024, b = -3125

Now it has been solved in terms of a parameter k. Substitute k = -1,-2,-3,-4,-5 ... to get all solutions.
k = -1 yields (3121, 1020) which is the smallest positive solution. So there are 3121 coconuts in the original pile.

It was not necessary to even know of Bezouts identity. From equation A  you have the congruence:

Once one answer of x = -4 was found you just have to add 3125 to get x = 3121.

In mathematics, you don't understand things. You just get used to them.
If it ain't broke, fix it until it is.
Always satisfy the Prime Directive of getting the right answer above all else.

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