delete element from vector

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Majid Al-Sirafi
Majid Al-Sirafi am 24 Sep. 2012
Kommentiert: Walter Roberson am 13 Nov. 2024 um 21:16
Hi everyone how can I delete element from vector .... for example a=[1,2,3,4,5] how can I delete 3 from above vector to be a=[1,2,4,5] thank you majid
  7 Kommentare
Rosie
Rosie am 5 Jul. 2017
Bearbeitet: Walter Roberson am 5 Jul. 2017
Hi majed
You can use the follwoing
a(index)=[]
a(3)=[]
the number will delete
Good luck
Hamna Ameer
Hamna Ameer am 29 Sep. 2017
Bearbeitet: Hamna Ameer am 29 Sep. 2017
a(3)=[] how can i directly store this in a new vector say b?

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Akzeptierte Antwort

Daniel Shub
Daniel Shub am 13 Nov. 2024 um 0:00
Bearbeitet: MathWorks Support Team am 13 Nov. 2024 um 6:30
I can think of three ways that are all slightly different a=[1,2,3,4,5]; If you want to get rid of all cases where |a| is exactly equal to 3 b = a(a~=3); If you want to delete the third element b = a; b(3) = []; or on a single line b = a([1:2, 4:end]); Or, as Jan suggests: a = [2,3,1,5,4] a(a == 3) = []
  5 Kommentare
kwabena boafo-mensah
kwabena boafo-mensah am 8 Jul. 2016
how does this work when i need to delete a range of row elements from a vector
Walter Roberson
Walter Roberson am 5 Jul. 2017
b = a(a >= 2 & a <= 4); %keep 2 to 4

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Weitere Antworten (7)

Jan
Jan am 24 Sep. 2012
Bearbeitet: Jan am 24 Sep. 2012
a = [1,2,3,4,5]
a(3) = []
Or:
a = [2,3,1,5,4]
a(a == 3) = []
These methods are explained exhaustively in the "Getting Started" chapters of the documentation. It is strongly recommended to read them completely. The forum is not though to explain the fundamental basics. Thanks.
  5 Kommentare
Keanu
Keanu am 12 Jun. 2024
A point of clarification for anyone who may be confused:
Consider the two arrays p = [10;20;30;40] and b = [10,20,30,40] (note the semicolon vs. comma) as an example. In this case, p(3) = [] and b(3) = [] will remove the third element from the array entirely, leaving p = [10;20;40] and b = [10,20,40].
If we were to mistakenly say p(3,1) = [] or b(1,3) = [], MATLAB will throw an error: "A null assignment can have only one non-colon index." Of course, this minor distinction will not be immediately clear to a beginner. Moreover, I do not expect anyone to understand this distinction from reading the "exhaustive" documentation.
The help forums are a guide to anyone with a legitimate question. To this day, I am puzzled by responses that jab at the author for merely asking.
Rik
Rik am 12 Jun. 2024
Bearbeitet: Rik am 12 Jun. 2024
I'm surprised that is the error message you get, since it doesn't (at first glance at least) match the cause of the error, and yet:
p = [10;20;30;40];p(3,1) = []
A null assignment can have only one non-colon index.
But your comparison is strained, since your code has in indexing error, which is only superficially related to the deletion of array elements.
The only problem with this question is that it should be covered by any half-decent tutorial, perhaps in the first 15 minutes even. In addition to this, you can find extra information in the documentation. My personal bar is that you shouldn't be able to enter the question in Google and get the solution in the first result.

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masoud sistaninejad
masoud sistaninejad am 23 Aug. 2021
A = [ 1 2 3 4 5 6 7]
A = 1×7
1 2 3 4 5 6 7
B = [1 3 6]
B = 1×3
1 3 6
C = setdiff(A,B)
C = 1×4
2 4 5 7
  2 Kommentare
Andy Rojas
Andy Rojas am 24 Nov. 2021
Thank you!
Emma Fickett
Emma Fickett am 29 Okt. 2022
I've scoured through so many forums trying to remove a vector of values from another vector and setdiff does exactly what I needed, thank you so much!!

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Andrei Bobrov
Andrei Bobrov am 24 Sep. 2012
a = a(abs(a - 3) > eps(100))

Will Reeves
Will Reeves am 15 Feb. 2022
really crude, but if you wanted to remove a row defined by and index, rather than a value, you could do something like this:
function out=removeRow(in,index)
% removes a row from an matrix
[~,n]=size(in);
if index>n || index<0
error('index needs to be within the range of the data')
else
if n==1
out=[]; % you've removed the last entry
else
% strip out the required entry
if index==1
out=in(2:end);
elseif index==n
out=in(1:end-1);
else
out=in([1:index-1 index+1:n]);
end
end
end

Elias Gule
Elias Gule am 1 Dez. 2015
% Use logical indexing
a = a(a~=3)
  3 Kommentare
Ntsakisi Kanyana
Ntsakisi Kanyana am 31 Mär. 2020
Does it work on strings?
Walter Roberson
Walter Roberson am 13 Nov. 2024 um 21:16
a = ["this", "is", "a", "test"];
a = a(a ~= "is")
a = 1x3 string array
"this" "a" "test"

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Abdul samad
Abdul samad am 4 Aug. 2023
Bearbeitet: Abdul samad am 4 Aug. 2023
Yes , you can delete 3 from the given array by assigning the null matrix, like this .
In the command window do like this.
>> a=[1,2,3,4,5];
>> a(3) = [ ];
>>a
This will delete the 3 from the array a = [1,2,3,4,5];
Thank You

Sibghat
Sibghat am 2 Mär. 2024
The removal of the element at the 3rd index has already been addressed. However, if you want to remove all occurences of the number '3' from the array 'a', you can use the following code (with and without using the find method).
% For instance, let's modify the array 'a'
a = [1, 3, 2, 3, 4, 3, 5, 3];
b = find(a == 3); % Find the index of the element to delete
% The above line-of-code will also work without using the find keyword...
a(b) = []; % Delete the element(s)
a
a = 1×4
1 2 4 5
  1 Kommentar
Sibghat
Sibghat am 2 Mär. 2024
And if you want to store the removed values in another variable and display the the exact position of the value. You can do it by either replacing the other values with zeroes or by replacing the desired value with zeroes. Hopefully, the following code will help.
a = [1, 3, 2, 3, 4, 3, 5, 3];
indices_of_3 = find(a == 3); % Find indices of elements equal to 3
removed_values = a(a == 3); % Store the removed values in another variable named 'removed_values'
% Create a vector with zeroes where the number is 3
b = zeros(size(a));
b(a ~= 3) = a(a ~= 3);
% Create a vector with zeroes where the number is not 3
c = zeros(size(a));
c(indices_of_3) = a(indices_of_3);
% Remove all occurrences of 3 from 'original_vector'
a(a == 3) = [];
% Display the results
% Modified vector after removal of all occurrences of 3
a
a = 1×4
1 2 4 5
% Removed values
removed_values
removed_values = 1×4
3 3 3 3
% Displaying zero where values is 3
b
b = 1×8
1 0 2 0 4 0 5 0
% Displaying zero where value is not 3
c
c = 1×8
0 3 0 3 0 3 0 3

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