How to efficiently find and step through similar values in a vector.

조회 수: 2 (최근 30일)
Serge
Serge 2022년 9월 15일
편집: Serge 2022년 9월 18일
For a vector, such as:
X = [5 5 5 2 2 ..]
Is there a native, no toolbox, elegant way to identify the length of contiguous 'regions', eg
len = [3 2 ...]
And efficiently group their indices, eg
ind = {[1 2 3] [4 5] ...}
My use case is to quickly step through a large number of regions in a loop.
In my example i have a fast but ugly solution that only works if X is sorted.
n = 1e5; %vector length
X = sort(round(rand(n,1)*n)); %sorted values
tic
[U,~,J] = unique(X); %find similar 'regions' in a vector
for k = 1:numel(U) %step through regions
I = find(k==J)'; %find index of region elements (SLOW!)
%do stuff
end
toc %~10sec
tic
ind = group_contiguous_values(X); %find index of contiguous regions, X must be sorted
for k = 1:numel(ind)
I = ind{k};
%do stuff
end
toc %~100x times faster, time scales linearly with n
function ind = group_contiguous_values(X)
%Group contiguous values and list their indices (only works if X is sorted)
assert(issorted(X),'X must be sorted')
[~,~,J] = unique(X);
len = diff([0;find(diff([J(:);-1])~=0)]); %find length of each 'region', eg x=[5 5 5 2 2 ..] > len=[3 2 ..]
ind = mat2cell(1:numel(J),1,len); %indecies for each region, eg ind={[1 2 3] [4 5] ..}
end

이 질문에 답변하려면 로그인하십시오.

채택된 답변

Matt J
Matt J 2022년 9월 15일
편집: Matt J 2022년 9월 15일
Download this,
https://www.mathworks.com/matlabcentral/fileexchange/78008-tools-for-processing-consecutive-repetitions-in-vectors
X = [5 5 5 2 2 3 3 3 3 3 6 6 6];
G=groupConsec(X);
[starts,stops,runlengths]=groupLims(G,1)
starts =
1 4 6 11
stops =
3 5 10 13
runlengths =
3 2 5 3
  댓글 수: 1
Serge
Serge 2022년 9월 18일
편집: Serge 2022년 9월 18일
Thank you,
I am accepting your answer even though it involves File Exchange.
I was hopping for a one liner using native MatLab, but I see now it warrants a function.
Here is my own version I ended up using:
function [L,I,V,S,E] = groupconsec(X)
%Group consecutive values in a vector.
% [L,I,V,S,E] = groupconsec(X) -list of values, eg X=[5 5 5 2 2 ..]
%L: Length of each group eg L=[3 2 ..]
%I: Index of each element in X eg I={[1 2 3] [4 5] ..}
%V: Value of X for each group eg V=[5 2 ..]
%S: Start index for each group eg S=[1 4 ..]
%E: End index for each group eg E=[3 5 ..]
%
%Remarks:
%-Nonfinite values (NaN Inf -Inf) are all treated as NaN.
%-[I] can be used to easily step through 'regions' of X.
%-All outputs are row vectors, regardles of the size of X.
%
%Example:
% [L,I,V,S,E] = groupconsec([5 5 5 2 2 Inf NaN 5])
%checks
if isempty(X)
[L,I,V,S,E] = deal([],{},[],[],[]); return %edge case
end
X = X(:).'; %ensure X is a row vector
nonval = rand; %dummy value to represent nonfinite values
X(~isfinite(X)) = nonval; %treat all non finite values (NaN Inf -Inf) as being the same
B = [true logical(diff(X))]; %Bounderies for each region, eg B=[1 0 0 1 0 ..]
L = diff(find([B true])); %Length of each region, eg L=[3 2 ..]
if nargout>1
I = mat2cell(1:numel(X),1,L); %Index of each element per group, eg I={[1 2 3] [4 5] ..}
end
if nargout>2
V = X(B); %Value of X for each group, eg V=[5 2 ..]
V(V==nonval) = NaN;
end
if nargout>3
S = find(B); %Start index for each group, eg S=[1 4 ..]
end
if nargout>4
E = S+L-1; %End index for each group, eg E=[3 5 ..]
end
I will delete the last part of the question, for non consecutive simular values, as i don't need it.

댓글을 달려면 로그인하십시오.

추가 답변 (0개)

카테고리

Help CenterFile Exchange에서 Get Started with MATLAB에 대해 자세히 알아보기

태그

제품


릴리스

R2022a

Community Treasure Hunt

Find the treasures in MATLAB Central and discover how the community can help you!

Start Hunting!

Translated by