Optimization with sum and max function
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Hi. I have a difficulty in writing this objective function for optimization. Especially in defining the second term and the summation. Should I make nested optimization for this?
Sum {[I * (x(i) - x(i-1) + lo(i) - g(i)) * p(i)] + max [I * (x(i) - x(i-1) + lo(i) - g(i)) * pfix]}
I = 1 if x(i) - x(i-1) + lo(i) - g(i)) * p(i) > 0 ; otherwise I = 0
for i = 1:24
Thanks in advance!
1 Kommentar
Nana
am 4 Apr. 2016
Antworten (1)
Walter Roberson
am 4 Apr. 2016
When I = 1 if x(i) - x(i-1) + lo(i) - g(i)) * p(i) > 0 ; otherwise I = 0, then [I * (x(i) - x(i-1) + lo(i) - g(i)) * p(i)] is
max(0, (x(i) - x(i-1) + lo(i) - g(i)) * p(i))
so
max [I * (x(i) - x(i-1) + lo(i) - g(i)) * pfix]
is
max( max(0, (x(i) - x(i-1) + lo(i) - g(i)) * p(i)) * pfix )
Note: that max would only make sense to calculate if pfix is a vector
It is possible to vectorize the sum, but the details of the method would depend upon the orientation of x and lo and g and p and pfix
4 Kommentare
Nana
am 5 Apr. 2016
Walter Roberson
am 5 Apr. 2016
That formula does not permit that interpretation. The Sum has to be a sum over i for the formula to make sense.
Nana
am 6 Apr. 2016
Walter Roberson
am 6 Apr. 2016
The objective function you wrote can likely be vectorized. I would need to know whether x, lo, g, p, and pfix are row vectors are column vectors, and I need an idea of the size of pfix in order to vectorize the max() term properly.
However, more recently you asked "How can I define that the decision variable is only x(i); and x(i-1) value is from the previous optimization step?". If that were the case, there would not appear to be anything to Sum over. Are you asking how to calculate one term of it without the Sum ?
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am 6 Apr. 2016
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