Question regarding a condition difference.

2 Ansichten (letzte 30 Tage)
Gimpy
Gimpy am 14 Aug. 2012
Hi, I'm new on this forum, hope I will be doing good.
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Here's my question: I have 3 matrix, for this example let's say 3 vectors
A, B and C (is a scalar)
I want to do the following operation :
for each element in vector A, if the element > C then A-B, else the element =0.
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The only way I know is the do a loop for echa element and check the condition. I don't like this option since A and B are going tho be 25200 rowa and 15 column. I assume it's going to take tome much time this way.
Any would be appreciate.
regards
Gimpy
  3 Kommentare
Albert Yam
Albert Yam am 14 Aug. 2012
What have you tried?
Azzi Abdelmalek
Azzi Abdelmalek am 14 Aug. 2012
what about A=c? your conditions are > and <

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Antworten (5)

Azzi Abdelmalek
Azzi Abdelmalek am 14 Aug. 2012
Bearbeitet: Azzi Abdelmalek am 15 Aug. 2012
here an example
clear
a1=[88;57;42;100];
a2=[98;87;32;80];
A=[a1 a2];
b1=[78;5;32;106];
b2=[88;87;35;88];
B=[b1 b2];
c=[ones(4,1)*80.5 ones(4,1)*89.27];
result=A-B; result=A-B;result(arrayfun(@(x) x<0,A-c))=0
% the result is result =
10 10
0 0
0 0
-6 0
  3 Kommentare
Gimpy
Gimpy am 14 Aug. 2012
To be more precise : if A>=C then A-B, else A-B=0 (result wanted in a mtrix for each rows).
Then I want to find wich "C" is going to maximise the previous condition.
Thanks again
Regards
Gimpy
Azzi Abdelmalek
Azzi Abdelmalek am 14 Aug. 2012
Bearbeitet: Azzi Abdelmalek am 14 Aug. 2012
if i have understood your question that will be
c= min(A)

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Gimpy
Gimpy am 15 Aug. 2012
Bearbeitet: Gimpy am 15 Aug. 2012
first let's get back to my initial question. Here's what I wan't to do exactly:
A=rand(10,2)*100;
B=rand(10,2)*100;
c1=ones(10,1)*80.5;
c2=ones(10,1)*89.27;
c=[c1 c2];
result=A-B;
result(find(A-c>=0))
the only problem I have with this is that the variable"result" is an "nx1", I would like to have the results as nx2 (maybe with 0 or something). In this case the variable "results" would be a 10x2 (i guess with zeros where the condition (A-c>=0 is not met.
  4 Kommentare
Gimpy
Gimpy am 15 Aug. 2012
Bearbeitet: Gimpy am 15 Aug. 2012
not exactly(it don't seems to be working some conditions are respected but not report in"R"). Here's what I'm looking exactly:
a1=[88;57;42;100];
a2=[98;87;32;80];
A=[a1 a2];
b1=[78;5;32;106];
b2=[88;87;35;88];
B=[b1 b2];
c=[ones(4,1)*80.5 ones(4,1)*89.27];
result=A-B; result=A-B;result(find(A-c>=0))
ans =
10
-6
10
*** the result is good but I want it this way:
10 10
0 0
0 0
-6 0
Azzi Abdelmalek
Azzi Abdelmalek am 15 Aug. 2012
i have already updated a code
clear
a1=[88;57;42;100];
a2=[98;87;32;80];
A=[a1 a2];
b1=[78;5;32;106];
b2=[88;87;35;88];
B=[b1 b2];
c=[ones(4,1)*80.5 ones(4,1)*89.27];
result=A-B; result=A-B;result(arrayfun(@(x) x<0,A-c))=0
% the result is result =
10 10
0 0
0 0
-6 0

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Gimpy
Gimpy am 15 Aug. 2012
Yes that's exactly what I'm looking for.
The seceond step(and the last one)I want to do the sum of the variable"results" and get the maximum.In this case the result would be in the form of: 1x2
So clearly I want to find the "c" that maximise "result2":
result2=sum(result)
(in the previous example the "c" were 80.5 and 89.27
So the point is when we do
result=A-B;
result(~(A-c>=0)) = 0
Some "A-B" yield a negative results so I want to find the c that
optimize (thus skip the A-B that are negative.
Let's set the "c" as c1 and c2
the final optization is going to be in the following dimesnion:
c=[ones(4,1)*c1 ones(4,1)*c2];
Thank you in advance
Gimpy
  2 Kommentare
Azzi Abdelmalek
Azzi Abdelmalek am 15 Aug. 2012
it's not obvious
Gimpy
Gimpy am 15 Aug. 2012
ok here's my example again: A=[45;37;32;50]
B=[17;100;200;10]
c=??(the value we look for)
The condition to test: A=[45;37;32;50]
B=[17;100;200;10]
c=? (the value we are looking for)
the condition to test: A >= C then A-B, else A-B=0 in my example the C we look for is something between 37.01 and 50 because.
In excel for example to be more specific: cells A2= 45,A3=37,A4=32,A5=50
B2=17, B3=100, B4=200, B5=10
C2:C5=37.01 (in this case i know the results by trial and error).
The condition to test is:
=IF(A2>=C2,(A2-B2),0)= 28 =IF(A3>=C3,(A3-B3),0)=0 =IF(A4>=C4,(A4-B4),0)=0 =IF(A5>=C5,(A5-B5),0)=40
Total: 68
Any value between 37.01 and 50 would give the save result. A way to find the lower and uper bound would be appreciate of only one...
Thanks again for your patience and help.

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Azzi Abdelmalek
Azzi Abdelmalek am 15 Aug. 2012
if you give the interval, we can use a while loop
A=[45;37;32;50]
B=[17;100;200;10]
c=37.01; som=[];
while c<50
result=A-B;
result=A-B;result(arrayfun(@(x) x<0,A-c))=0
som=[som ;[sum(result) c]];
c=c+0.1
end
somax=max(som(:,1))
c_result=som(find(som==somax),2)
lower_c=min(c_result)
upper_c=max(c_result)
  1 Kommentar
Gimpy
Gimpy am 15 Aug. 2012
Bearbeitet: Gimpy am 15 Aug. 2012
We don't know the interval. It s the result we are looking for. Again the equation to maximize is:
For each element in "A"(let's call them ai) if this ai is > to c then
A-B, else 0
Need to find the C that maximize result2
result=A-B;
result(~(A-c>=0)) = 0
result2 =sum(result)

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Gimpy
Gimpy am 15 Aug. 2012
Here’s my problem with more explanation again:
Matrix A,B,C :22 500 x18
Matrix c : each colum are scalar
Exemple :[50;50;50;50 72.25;72.25;72.25;72.25]
… Here’s what I want to do :
For each elements in A, lets call them ai, if ai >ci then
ai - bi
else
ai - bi =0
Here’s what I do in matlab(for simplification I do a 4x1)
a1=[88;57;42;100];
a2=[98;87;32;80];
A=[a1 a2];
b1=[78;5;32;106];
b2=[88;87;35;88];
B=[b1 b2];
c=[ones(4,1)*80.5 ones(4,1)*89.27];
result=A-B;
result(~(A-c>=0)) = 0
result2=sum(result)
****Now here’s the point : I want to find the matrix c that’s going to maximise :
result2=sum(result).
The results should be an interval
In the revious example I’am expecting MATLAB to give something like:
resultat2= 68
C_lower= 37
C_upper=45
Or at least one one of the 2 results (37 or 45).
I found this result by calculating result2=sum(result) by trial and error until
I get the maximum value(result2=68).
Please keep I mind that I want to work with 22500x18

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