Double union notation The Cantor set C is defined as C = [ 0 , 1 ] <mo cl

Sattelhofsk

Sattelhofsk

Answered question

2022-06-16

Double union notation
The Cantor set C is defined as
C = [ 0 , 1 ] n = 0 k = 0 3 n 1 ( 3 k + 1 3 n + 1 , 3 k + 2 3 n + 1 )
Does the double union of sets work like the double summation?
I start counting from n = 0 and then all of the k's.
I.e.
For n = 0...0, k goes from 0 to 0
n = 0 0 k = 0 0 = ( 1 3 , 2 3 )
For n = 1, k = 0...2.
n = 0 1 k = 0 2 = ( 1 3 , 2 3 ) ( 3 0 + 1 3 1 + 1 , 3 0 + 2 3 1 + 1 ) ( 3 1 + 1 3 1 + 1 , 3 1 + 2 3 1 + 1 ) ( 3 2 + 1 3 1 + 1 , 3 2 + 2 3 1 + 1 ) = ( 1 3 , 2 3 ) ( 1 9 , 2 9 ) ( 4 9 , 5 9 ) ( 7 9 , 8 9 ) = ( 1 3 , 2 3 ) ( 1 9 , 2 9 ) ( 7 9 , 8 9 )
For n = 2, k = 0...8
n = 0 2 k = 0 8 = ( 1 3 , 2 3 ) ( 1 9 , 2 9 ) ( 7 9 , 8 9 ) ( 3 0 + 1 3 2 + 1 , 3 0 + 2 3 2 + 1 ) ( 3 1 + 1 3 2 + 1 , 3 1 + 2 3 2 + 1 ) ( 3 2 + 1 3 2 + 1 , 3 2 + 2 3 2 + 1 ) ( 3 3 + 1 3 2 + 1 , 3 3 + 2 3 2 + 1 ) ( 3 4 + 1 3 2 + 1 , 3 4 + 2 3 2 + 1 ) ( 3 5 + 1 3 2 + 1 , 3 5 + 2 3 2 + 1 ) ( 3 6 + 1 3 2 + 1 , 3 6 + 2 3 2 + 1 ) ( 3 7 + 1 3 2 + 1 , 3 7 + 2 3 2 + 1 )   ( 3 8 + 1 3 2 + 1 , 3 8 + 2 3 2 + 1 ) =
( 1 3 , 2 3 ) ( 1 9 , 2 9 ) ( 7 9 , 8 9 ) ( 1 27 , 2 27 ) ( 4 27 , 5 27 ) ( 7 27 , 8 27 ) ( 10 27 , 11 27 ) ( 13 27 , 14 27 ) ( 16 27 , 17 27 ) ( 19 27 , 20 27 ) ( 22 27 , 23 27 ) ( 25 27 , 26 27 ) =
( 1 3 , 2 3 ) ( 1 9 , 2 9 ) ( 7 9 , 8 9 ) ( 1 27 , 2 27 ) ( 7 27 , 8 27 ) ( 19 27 , 20 27 ) ( 25 27 , 26 27 )
For n = 3, k = 0...26.

Answer & Explanation

Kaydence Washington

Kaydence Washington

Beginner2022-06-17Added 32 answers

Step 1
C = [ 0 , 1 ] n = 0 k = 0 3 n 1 ( 3 k + 1 3 n + 1 , 3 k + 2 3 n + 1 ) is constructive and what you have done is correct. You have demonstrated the first three steps clearly.
Step 2
The fractal nature of the Cantor set becomes more and more evident as you find the double union for larger value of n
Jackson Duncan

Jackson Duncan

Beginner2022-06-18Added 10 answers

Step 1
More generally, if a , b Z { ± }
n = a b A n = { x n Z : a n b x A n }
Step 2
Thus if additionally f , n : Z Z , n = a b k = f ( n ) g ( n ) B n , k = { x n , k Z : a n b f ( n ) k g ( n ) x B n , k } ..

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