This is the problem: Determine the smallest positive integer $k$ such that there exist integers $x_1, x_2 , \ldots , x_k$ with ${x_1}^3+{x_2}^3+{x_3}^3+\cdots+{x_k}^3=2002^{2002} $. How to approach these kind of problems?? Thanks in advance!!
Expressing $2002^{2002}$ as a sum of cubes
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number-theory
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0Well, since $2002^{2001}$ is a cube number, certainly $k = 2002$ is possible, and I'm sure it's possible to do better... – 2012-06-26
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1@BenMillwood You can get $k=4$ with $x_1 = x_2 = 2002^{667}$ and $x_3 = x_4 = 10*2002^{667}$. I suspect this is the smallest possibility but I don't have a proof. – 2012-06-26
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0@Cocopuffs: ah, that is a much more intelligent way to start... I suppose part of the problem is that the $x_i$ need not be positive? – 2012-06-26
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0I got 4 using a different approach: $2002^{2001}$ is a cube, and $2002 = 10^3+10^3+1^3+1^3$, then multiply out the brackets. (Gives the same answer as Cocopuffs). – 2012-06-26
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6The smallest positive integer is $1$ – 2012-06-26
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1Where did you get the problem? – 2012-06-26
1 Answers
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$k=4$ is the smallest:
Certainly, it can be done using 4 cubes, by noticing that $2002 = 10^3 + 10^3 + 1^3 +1^3$, and then using $2002^{2002} = 2002 \times 2002^{2001} = (10^3 + 10^3 + 1^3 +1^3)\times (2002^{667})^3$, and multiplying out the brackets.
Since the number can be represented by 4 cubes, it suffices to show that it cannot be done with less than 4.
Since $2002 \equiv 4 \pmod 9$ we have $2002^3 \equiv 64 \equiv 1 \pmod 9$ so that $2002^{3n} \equiv 1 \pmod 9$ and so the original number is equivalent to 4 (mod 9).
Looking at cubes mod 9, they are equivalent to 0, 1 or -1, so at least 4 are required for any number equivalent to $4 \pmod 9$.
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0+1. But how did you prove $k=4$ is the smallest? – 2016-04-28
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1The very last sentence of the answer proves that $4$ is the smallest: it is impossible to get the correct residue (mod 9) with 3 or less. – 2016-04-28
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0Thank you. I am new to the concept of modular arithmetic – 2016-09-24