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Find a series of consecutive numbers in a vector

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Julia
Julia am 5 Sep. 2013
Kommentiert: Nurul Ain Basirah Zakaria am 12 Jun. 2021
Hello, I have a small problem I am trying to solve on Matlab, but I am a stuck.
I have a vector containing timestamps: [34 35 36 78 79 80 81 82 84 85 86 102 103 104 105 106 107 201 202 203 204 ...]
And I would like to find the timestamp which is followed by at least 5 consecutive numbers after it. So in my example, the answer would be 102, because it is the first number which is followed by 5 consecutive numbers.
I tried many things using diff(), but I cannot find a simple way to get that result.
If anyone can help, it would be greatly appreciated.
Thank you!

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Akzeptierte Antwort

Roger Stafford
Roger Stafford am 6 Sep. 2013
Yet another method. Let t be your timestamp row vector.
N = 5; % Required number of consecutive numbers following a first one
x = diff(t)==1;
f = find([false,x]~=[x,false]);
g = find(f(2:2:end)-f(1:2:end-1)>=N,1,'first');
first_t = t(f(2*g-1)); % First t followed by >=N consecutive numbers
  2 Kommentare
Caixia Liu
Caixia Liu am 10 Apr. 2018
Bearbeitet: Caixia Liu am 10 Apr. 2018
Thanks for your codes. But it fails when the first index is actually the result.
Nurul Ain Basirah Zakaria
Nurul Ain Basirah Zakaria am 12 Jun. 2021
hi, what if, i want something like this:
to find the consecutive value below -1
2.0 2.5 2.1 1.3 1.4 -1.0 -2.1 -1.2 -1.5 -2.1 2.0 3.2 3.0 -1.0 -4.0 -2.1 -1.45 -1.20 -2.0 3.0 2.5 1.2
the first consecutive negative value is categorize as first event and second consecutive negative value is the second event,
then i want to calculate the mean value for each event;
sum of -1.0 -2.1 -1.2 -1.5 -2.1, divide by 5, as there are 5 num of -ve value for first event,
and the second event,
sum of -1.0 -4.0 -2.1 -1.45 -1.20 -2.0, divide by 6, as the are 6 num of -ve value for second event
can i do this in matlab?

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Weitere Antworten (6)

Laurent
Laurent am 5 Sep. 2013
The following will give the lengths of the consecutive sequences of your vector:
q=yourvector;
a=diff(q);
b=find([a inf]>1);
c=diff([0 b]); length of the sequences
d=cumsum(c); endpoints of the sequences
  3 Kommentare
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Laurent
Laurent am 5 Sep. 2013
Bearbeitet: Laurent am 5 Sep. 2013
This is what I get:
>> c
c =
3 5 3 6 4
which are the lengths of the sequences.
>> d
d =
3 8 11 17 21
which is where the sequences end.
Then with a 'find(c>5)' you will know the location of the sequences larger than 5. Then from d you can deduce where the start of this sequence is.
Or did I misunderstand the question?
Image Analyst
Image Analyst am 5 Sep. 2013
No, sorry, I misunderstood your comment. I thought your endpoints was both endpoints - the starting and stopping indexes, but it's only where they stop.

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Jan
Jan am 8 Sep. 2013
Bearbeitet: Jan am 8 Sep. 2013
This is almost a run-length problem:
x = [34 35 36 78 79 80 81 82 84 85 86 102 103 104 105 106 107 201 202 203 204];
[b, n, idx] = RunLength(x - (1:length(x)));
match = (n > 5);
result = x(idx(match));
With http://www.mathworks.com/matlabcentral/fileexchange/41813-runlength.
David Sanchez
David Sanchez am 5 Sep. 2013
my_array = [34 35 36 78 79 80 81 82 84 85 86 102 103 104 105 106 107 201 202 203 204];
my_num = 0;
consec = 1;
for k= 1:(numel(my_array)-1)
if ( my_array(k+1) == (my_array(k) + 1) )
consec = consec +1;
if consec > 5
my_num = my_array(k-4);
break
end
else
consec = 1;
end
end
my_num =
201
  1 Kommentar
David Sanchez
David Sanchez am 5 Sep. 2013
I used this array instead:
my_array = [34 35 36 78 79 80 81 82 84 85 86 102 103 104 105 108 109 201 202 203 204 205 206 207 210];
my_num =
201
With the code above, the answer will be:
my_num =
102

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JEM
JEM am 30 Mai 2017
Bearbeitet: Walter Roberson am 5 Jun. 2021
Easier like this
t=[34 35 36 78 79 80 81 82 84 85 86 102 103 104 105 106 107 201 202 203 204];
% search for the derivative 1 1 1 1 1 corresponding to 5 consecutive values
result = t(findstr(diff(t),[1 1 1 1 1]));
  2 Kommentare
dpb
dpb am 16 Okt. 2018
The difference vector of ones will be N-1 length to be found, not N, though. Five differences==1 will correspond to six consecutive values incremented by one.
Sinem Balta Beylergil
Sinem Balta Beylergil am 5 Jun. 2021
One correction and it works perfectly:
t = find(overlapR==1);
result = t(intersect(diff(t),[1 1 1 1 1]))
PS [1 1 1 1 1] can be written as ones(1,5) and 5 can be any number of repetitions you want.

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Andrei Bobrov
Andrei Bobrov am 5 Sep. 2013
Bearbeitet: Andrei Bobrov am 5 Sep. 2013
a = [34 35 36 78 79 80 81 82 84 85 86 102 103 104 105 106 107 201 202 203 204]
n = 6 % number consecutive numbers
k = [true;diff(a(:))~=1 ];
s = cumsum(k);
x = histc(s,1:s(end));
idx = find(k);
out = a(idx(x==n))
  2 Kommentare
Andrew Newell
Andrew Newell am 23 Apr. 2014
Doesn't work if a contains negative numbers.
Martti K
Martti K am 27 Okt. 2015
Bearbeitet: Martti K am 27 Okt. 2015
To me it seems to work well with negative numbers also, but not with decreasing sequencies. In order to take the decreasing sequencies, use
k = [true;diff(a(:))~=-1];
In order to take at_least n consecutive numbers, use
out = a(idx(x>=n))

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Fahd Elabd
Fahd Elabd am 30 Dez. 2020
% Here I have get the first and last numbers of consecutive group in iOnes array,
iOnes = [34 35 36 78 79 80 81 82 84 85 86 102 103 104 105 106 107 201 202 203 204];
k=1;
j=1;
for i=1:length(iOnes)-1
if iOnes(i+1)-iOnes(i)==1 % means the next point is follwoing the current point
firstOnes(k) = iOnes(j);
lastOnes(k) = iOnes(i+1);
else
j=i+1;
k=k+1;
end
end

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