help with the resolution of the problem

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FRANCISCO 2013년 10월 30일

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https://kr.mathworks.com/matlabcentral/answers/104360-help-with-the-resolution-of-the-problem

댓글: FRANCISCO 2013년 10월 31일

good, I previously had a binary sequence and my purpose was the creation of substrings of various lengths, eg length 4: Sequence

*1(1), 0(2), 1(3), 1(4), 0(5), 0(6), 1(7), 0(8), 0(9), 1(10), 1(11), 1(12),

1(13), 0(14), 0(15), 0(16), 1(17), 1(18), 1(19), 0(20)*

_Substrings_

*01: 1(01), 0(02), 1(03), 1(04) -> [1,0,1,1],

02: 1(01), 1(03), 0(05), 1(07) -> [1,1,0,1],

03: 1(01), 1(04), 1(07), 1(10) -> [1,1,1,1],

04: 1(01), 0(05), 0(09), 1(13) -> [1,0,0,1],

05: 1(01), 0(06), 1(11), 0(16) -> [1,0,1,0],

06: 1(01), 1(07), 1(13), 1(19) -> [1,1,1,1],

07: 0(02), 1(03), 1(04), 0(05) -> [0,1,1,0],

08: 0(02), 1(04), 0(06), 0(08) -> [0,1,0,0],

09: 0(02), 0(05), 0(08), 1(11) -> [0,0,0,1],

10: 0(02), 0(06), 1(10), 0(14) -> [0,0,1,0],

11: 0(02), 1(07), 1(12), 1(17) -> [0,1,1,1],

12: 0(02), 0(08), 0(14), 0(20) -> [0,0,0,0],

13: 1(03), 1(04), 0(05), 0(06) -> [1,1,0,0],

14: 1(03), 0(05), 1(07), 0(09) -> [1,0,1,0],

15: 1(03), 0(06), 0(09), 1(12) -> [1,0,0,1],

16: 1(03), 1(07), 1(11), 0(15) -> [1,1,1,0],

17: 1(03), 0(08), 1(13), 1(18) -> [1,0,1,1],

18: 1(04), 0(05), 0(06), 1(07) -> [1,0,0,1],

19: 1(04), 0(06), 0(08), 1(10) -> [1,0,0,1],

20: 1(04), 1(07), 1(10), 1(13) -> [1,1,1,1],

21: 1(04), 0(08), 1(12), 0(16) -> [1,0,1,0],

22: 1(04), 0(09), 0(14), 1(19) -> [1,0,0,1],

23: 0(05), 0(06), 1(07), 0(08) -> [0,0,1,0],

24: 0(05), 1(07), 0(09), 1(11) -> [0,1,0,1],

25: 0(05), 0(08), 1(11), 0(14) -> [0,0,1,0],

26: 0(05), 0(09), 1(13), 1(17) -> [0,0,1,1],

27: 0(05), 1(10), 0(15), 0(20) -> [0,1,0,0],

28: 0(06), 1(07), 0(08), 0(09) -> [0,1,0,0],

29: 0(06), 0(08), 1(10), 1(12) -> [0,0,1,1],

30: 0(06), 0(09), 1(12), 0(15) -> [0,0,1,0],

31: 0(06), 1(10), 0(14), 1(18) -> [0,1,0,1],

32: 1(07), 0(08), 0(09), 1(10) -> [1,0,0,1],

33: 1(07), 0(09), 1(11), 1(13) -> [1,0,1,1],

34: 1(07), 1(10), 1(13), 0(16) -> [1,1,1,0],

35: 1(07), 1(11), 0(15), 1(19) -> [1,1,0,1],

36: 0(08), 0(09), 1(10), 1(11) -> [0,0,1,1],

37: 0(08), 1(10), 1(12), 0(14) -> [0,1,1,0],

38: 0(08), 1(11), 0(14), 1(17) -> [0,1,0,1],

39: 0(08), 1(12), 0(16), 0(20) -> [0,1,0,0],

40: 0(09), 1(10), 1(11), 1(12) -> [0,1,1,1],

41: 0(09), 1(11), 1(13), 0(15) -> [0,1,1,0],

42: 0(09), 1(12), 0(15), 1(18) -> [0,1,0,1],

43: 1(10), 1(11), 1(12), 1(13) -> [1,1,1,1],

44: 1(10), 1(12), 0(14), 0(16) -> [1,1,0,0],

45: 1(10), 1(13), 0(16), 1(19) -> [1,1,0,1],

46: 1(11), 1(12), 1(13), 0(14) -> [1,1,1,0],

47: 1(11), 1(13), 0(15), 1(17) -> [1,1,0,1],

48: 1(11), 0(14), 1(17), 0(20) -> [1,0,1,0],

49: 1(12), 1(13), 0(14), 0(15) -> [1,1,0,0],

50: 1(12), 0(14), 0(16), 1(18) -> [1,0,0,1],

51: 1(13), 0(14), 0(15), 0(16) -> [1,0,0,0],

52: 1(13), 0(15), 1(17), 1(19) -> [1,0,1,1],

53: 0(14), 0(15), 0(16), 1(17) -> [0,0,0,1],

54: 0(14), 0(16), 1(18), 0(20) -> [0,0,1,0],

55: 0(15), 0(16), 1(17), 1(18) -> [0,0,1,1],

56: 0(16), 1(17), 1(18), 1(19) -> [0,1,1,1],

57: 1(17), 1(18), 1(19), 0(20) -> [1,1,1,0],*

using the following code

if true
% code
N = 20;
n = 4;
A = hankel(1:N-n+1,N-n+1:N);
k = 0:n-1;
c = ceil((N - A(:,end) + 1)/k(end));
i2 = cumsum(c);
i1 = i2 - c + 1;
idx = zeros(i2(end),n);
for jj = 1:N-n+1
  idx(i1(jj):i2(jj),:) = bsxfun(@plus,A(jj,:),(0:c(jj)-1)'*k);
end
[j1,j2,j2] = unique(s(idx),'rows')
out = [j1, histc(j2,1:max(j2))/i2(end)]; % This row corrected
end

and at the end get a count of the times to repeat each pattern and their relative frequency:

*0 0 0 0------ 161697-- 0,0606515378844711

0 0 0 1------ 163593-- 0,0613627156789197

0 0 1 0------ 164201-- 0,0615907726931733

0 0 1 1------ 166680-- 0,0625206301575394

0 1 0 0------ 164105-- 0,0615547636909227

0 1 0 1------ 166501-- 0,0624534883720930

0 1 1 0------ 167099-- 0,0626777944486122

0 1 1 1------ 168835-- 0,0633289572393098

1 0 0 0------ 164086-- 0,0615476369092273

1 0 0 1------ 166963-- 0,0626267816954239

1 0 1 0------ 166931-- 0,0626147786946737

1 0 1 1------ 169470-- 0,0635671417854464

1 1 0 0------ 166622-- 0,0624988747186797

1 1 0 1------ 169326-- 0,0635131282820705

1 1 1 0------ 169251-- 0,0634849962490623

1 1 1 1------ 170640-- 0,0640060015003751*

The problem that arises is that when I processed this way I only processes some 4000 data and need to process many more. I have 4GB of RAM and Matlab 2012. What I thought is this: Assign each patron an integer:

*0 0 0 0------ 1

0 0 0 1-------2

0 0 1 0-------3

0 0 1 1-------4

0 1 0 0-------5

0 1 0 1-------6

0 1 1 0-------7

0 1 1 1-------8

1 0 0 0-------9

1 0 0 1-------10

1 0 1 0-------11

1 0 1 1-------12

1 1 0 0-------13

1 1 0 1-------14

1 1 1 0-------15

1 1 1 1-------16*

and set as a counter to assign the number of times to repeat that integer. In this way perhaps get as many data processing. thank you very much Can anyone help me do this processing, since otherwise the large number of data means that no processing occurs