Find the consecutive positive and negative elements for the entire array
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Hello all, I have a channel from which I take around 1 million samples now it contains both positive and negative values in it. My intention is to find the consecutive positive and negative integers(doesn't have to be same) and perform some operations on it. I have given my code below. chA is my channel from where i derive my inputs as values. The code is only giving me a value of 43.2600, which ideally should have given an array of numbers as there are lots of samples which are consecutive positive and negative.
for i = 1:1000000
if (chA(i)<0) && (chA((i+1) >0))
tan = ((chA(i+1))- chA(i));
deltaOfTime = tan/i;
end
thanks
5 件のコメント
Jan
2017 年 3 月 8 日
編集済み: Jan
2017 年 3 月 8 日
@Jayanta Deb: You can accept and vote answers only, not your own question. When you are able to add a comment, you should have the power to vote also. Accepting an answer is useful for the forum, because the readers see, that the problem is solved.
If would be interesting to know and valuable for the forum, if these approaches are useful for your problem:
index = find(chA(1:end-1) < 0 & chA(2:end) > 0);
% Or: index = find(diff(chA < 0)); % For both directions
deltaOfTime = (chA(index + 1) - chA(index)) ./ index;
採用された回答
Jan
2017 年 3 月 7 日
編集済み: Jan
2017 年 3 月 7 日
x = randn(1, 1e6);
[B, N, Index] = RunLength(x < 0);
negStart = Index(B);
negLen = N(B);
posStart = Index(~B);
posLen = N(~B);
[EDITED]
Perhaps you want something like this:
deltaOfTime = zeros(1, 1000000); % Pre-allocate
c = 0;
for i = 1:1000000 - 1 % -1 to support chA(i+1)
if (chA(i) < 0) && (chA(i+1) >= 0)
% if (chA(i) < 0) == (chA(i+1) >= 0) % if both directions are wanted
c = c + 1;
deltaOfTime(c) = (chA(i+1) - chA(i)) /i;
end
end
deltaOfTime = deltaOfTime(1:c); % Crop unused elements
If this solves your problem, you can "vectorize" the code to increase the speed:
index = find(chA(1:end-1) < 0 & chA(2:end) > 0);
deltaOfTime = (chA(index + 1) - chA(index)) ./ index;
Or if you want to find both transicients even simpler:
index = find(diff(chA < 0));
deltaOfTime = (chA(index + 1) - chA(index)) ./ index;
NOTE: Using "tan" as name of a variable might be confusing, if the function tan() is used later on. Better avoid shadowing the names of built-in functions.
6 件のコメント
Star Strider
2017 年 3 月 8 日
編集済み: John Kelly
2017 年 3 月 8 日
If an Answer was unaccepted, only the OP has the ability to do it during the first 7 days after a Question is posted.
Neither Jan Simon nor anyone else with Editor privileges are able to accept or unaccept Answers during that time.
No one gets Reputation Points for accepting their own Answers.
DARSHAN N KANNUR
2021 年 3 月 29 日
I just have an array of 76140 data. What to do, if I want to know the starting index of consecutive negative elements and also thier count. Thank you in advance
その他の回答 (1 件)
John BG
2017 年 3 月 7 日
編集済み: John BG
2017 年 3 月 7 日
Jayanta
you are almost there, all left is is
1.
to accumulate the indices that your loop is already finding. You current loop only keeps the last zero crossing.
and
2.
include both transitions - to + and + to -
One way of doing both things would be
L=0
if ((chA(i)<0) && (chA((i+1) >0))) || ((chA(i)>0) && (chA((i+1) <0)))
L=[L i];
end
L=[]
if you find this answer useful would you please be so kind to mark my answer as Accepted Answer?
To any other reader, please if you find this answer of any help solving your question,
please click on the thumbs-up vote link,
thanks in advance
John BG
2 件のコメント
DARSHAN N KANNUR
2021 年 3 月 29 日
I just have an array of 76140 data. What to do, if I want to know the starting index of consecutive negative elements and also thier count. Thank you in advance
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