How to replace k-th diagonal by vector?

18 ビュー (過去 30 日間)
Clarisha Nijman
Clarisha Nijman 2018 年 10 月 2 日
回答済み: Clarisha Nijman 2018 年 10 月 3 日
I have a code here that give me errors. In the code I am computing a i-th dot product and want to replace this values on the i-th super diagonal.
lambda=0.42;
n=100;
p=0.005;
P=zeros(1001,1001);
for i=1:1000
a=i:1000;
b=a-i;
v=poisspdf(a,lambda);
w=binopdf(b,n,p);
c=dot(v,w);
d=size(diag(P,i),1);%this is the size of the vector with elements of the kth diagonal
e=c*ones(d,1);
diag(P,i)=e;
end
But matlab gives me an error saying:
Subscript indices must either be real positive integers or logicals.
Error in pdfnumber (line 18)
diag(P,i)=e;
Then I tried a more simple code. But is only replaces the 1 super diagonal for me, while i runs from 1 to 1000.
for i=1:1000
a=i:1000;
b=a-i;
v=poisspdf(a,lambda);
w=binopdf(b,n,p);
c=dot(v,w);
P(i,i+1)=c;
end
What am I doing wrong?

サインインしてこの質問に回答する。

採用された回答

Guillaume
Guillaume 2018 年 10 月 2 日
You can't use diag to assign to diagonales of a matrix, only to get them. The simplest way to assign to the diagonales is to replace:
d=size(diag(P,i),1);%this is the size of the vector with elements of the kth diagonal
e=c*ones(d,1);
diag(P,i)=e;
by
P(i*size(P, 1)+1:size(P, 1)+1:end) = e;
which simply computes the linear indices of the diagonal elements.
  3 件のコメント
1 件の古いコメントを表示
Clarisha Nijman
Clarisha Nijman 2018 年 10 月 3 日
Hallo,
The suggestion of Guillame works the best
P(i*size(P, 1)+1:size(P, 1)+1:end) = e;
But there is still something more:
It only replaces the super-diagonals. As I do not fully understand the code, I am trying a lot of other combination to replace also the sub-diagonals.
Things as: P(-i*size(P, 1)+1:size(P, 1)+1:end) = e; P(start:i*size(P, 1)+1:size(P, 1)+1) = e; P(begin:i*size(P, 1)+1:size(P, 1)+1) = e;
But alas! I did not succeed. Can you help me also with this?
kind regards,
Clarisha
Guillaume
Guillaume 2018 年 10 月 3 日
Well, your original code did not access the subdiagonals so I assumed that you were only interested in the super-diagonals.
For subdiagional -i, use:
P(i+1:size(P, 1)+1:1+size(P, 1)*min(size(P, 1)-i,size(P, 2))) = e; %where i is the positive index of subdiagonal -i. 0 is main diagonal

サインインしてコメントする。

その他の回答 (3 件)

Bruno Luong
Bruno Luong 2018 年 10 月 3 日
編集済み: Bruno Luong 2018 年 10 月 3 日
You can use the function IDIAG in this FEX
>> P = rand(5,4)
P =
0.3517 0.2858 0.0759 0.1299
0.8308 0.7572 0.0540 0.5688
0.5853 0.7537 0.5308 0.4694
0.5497 0.3804 0.7792 0.0119
0.9172 0.5678 0.9340 0.3371
>> P(idiag(size(P),-1)) = (1:4)
P =
0.3517 0.2858 0.0759 0.1299
1.0000 0.7572 0.0540 0.5688
0.5853 2.0000 0.5308 0.4694
0.5497 0.3804 3.0000 0.0119
0.9172 0.5678 0.9340 4.0000
>>
Adam
Adam 2018 年 10 月 2 日
P is defined as a matrix of all zeros and you appear to be overwriting the 'diag' function with a variable of the same name which you then try to index into using P. The entirety of P, in fact!
  2 件のコメント
Clarisha Nijman
Clarisha Nijman 2018 年 10 月 2 日
Can you pls explain your answer a little bit more?
Guillaume
Guillaume 2018 年 10 月 2 日
You cannot assign a value to a function, so
somefunction(atsomevalue) = something
is never correct in matlab. What you are attempting to do is assign a new value to the return value of the diag function, so if we'd made that explicit, your
diag(P, i) = e;
could be decomposed to:
tempvariable = diag(P, i);
tempvariable = e;
Even if matlab allowed that, you can see it still wouldn't work as you would only be changing the value of the temporary, not the diagonale of P.
Since assigning a value to a function is not allowed and since matlab allows you to use the same names for functions and variables, matlab interpret your diag line as an assigment of e to the matrix diag at rows P and column i. Some values in P are 0 which is not a valid row index, hence the error.

サインインしてコメントする。

Clarisha Nijman
Clarisha Nijman 2018 年 10 月 3 日
Yes Guillaume! It works! Thanks a lot. You are indeed right about the code. I pasted the code partially, and expected that the leading question: How to replace k-th diagonal by vector?, would cover the rest.
But thanks anyway!!!

カテゴリ

Help Center および File ExchangeMatrix Indexing についてさらに検索

タグ

Community Treasure Hunt

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

Start Hunting!

Translated by