I don't think there is an elegant way to do this (your code is already fairly clear and efficient), but you could consider storing the three values in temporary variables and using a nested loop (or ndgrid) to make sure you don't miss any combination and it is still easy to adapt the code.
find negative values of simple summation. code efficiency
3 views (last 30 days)
Show older comments
Hello, I have the following statement which must be true: v1_before(1) == v1_transferred_vector(1) + v1_conserved_vector(1)
My goal is to find out which of the two elements on the right side are actually negative. The algebraic sign of "v1_before" is already known, as well as the absolute values of the two elements on the right side.
The indices refer to the x-value of the [x,y] vectors. So i will do exactly the same with (2) / y-values too.
I coded the following. But im wondering whether there is a more elegant and efficient way to do it. Many thanks in advance!!!!
%determine whether + / - for x-values
if v1_before(1) - v1_transferred_vector(1) - v1_conserved_vector(1) == 0 %==0 when difference is smaller then 1e-15/eps
%do nothing, leave them positiv
elseif v1_before(1) + v1_transferred_vector(1)- v1_conserved_vector(1) == 0
v1_transferred_vector(1) = - v1_transferred_vector(1);
elseif v1_before(1) - v1_transferred_vector(1) + v1_conserved_vector(1) == 0
v1_conserved_vector(1) = - v1_conserved_vector(1);
else %v1_before(1) + v1_transferred_vector(1) + v1_conserved_vector(1) == 0
v1_transferred_vector(1) = - v1_transferred_vector(1);
v1_conserved_vector(1) = - v1_conserved_vector(1);
end
6 Comments
Rik
on 5 Jan 2021
If this code only runs once it doesn't matter if it takes 1 ms or 100 ms, but if this code is executed thousands of times in a time-sensitive context, then it does start to matter.
The main point is to spend time optimizing the code that matters. You can spend a few hours here to save a few miliseconds, or spend your time on code that runs often and takes longer to complete.
Answers (1)
Walter Roberson
on 5 Jan 2021
M = [1 1; 1 -1; -1 1; -1 -1];
m = M(v1_before(1) == M*[v1_transferred_vector(1); v1_conserved_vector(1)],:);
v1_transfered_vector(1) = m(1)*v1_transfered_vector(1);
v1_conserved_vector(1) = m(2)*v1_conserved_vector(1);
This can be vectorized with a slight bit of work.
0 Comments
See Also
Categories
Find more on Logical in Help Center and File Exchange
Community Treasure Hunt
Find the treasures in MATLAB Central and discover how the community can help you!
Start Hunting!
You can also select a web site from the following list
Americas
- América Latina (Español)
- Canada (English)
- United States (English)
Europe
- Belgium (English)
- Denmark (English)
- Deutschland (Deutsch)
- España (Español)
- Finland (English)
- France (Français)
- Ireland (English)
- Italia (Italiano)
- Luxembourg (English)
- Netherlands (English)
- Norway (English)
- Österreich (Deutsch)
- Portugal (English)
- Sweden (English)
- Switzerland
- United Kingdom(English)
Asia Pacific
- Australia (English)
- India (English)
- New Zealand (English)
- 中国
- 日本Japanese (日本語)
- 한국Korean (한국어)