I need to consider "traffic time" in different period of time as a parameter in a VRP problem, so the equation becomes like this:
varA = sum(i$(ord(i)<varA),X(i)) + other terms
Is it possible to write such a code? Can GAMS or any other software handle such a constraint?
The equation:
I'm not familiar with GAMS syntax, but in AMPL you would do something like this:
set T; # set of time periods
param traffic_time{T}; # traffic time in each time period
Then you would refer to the traffic time parameter like traffic_time[t] for t in T. I'm sure there is something similar in GAMS. It might be called something like "parameter indexed by a set".
I want to use Shannon Capacity forumula as one of my constraint in the minimization problem. I am not sure how can I use it as AMPL doesnot support log2.
In simple form its here as: C = B * log2(1+ S/N)
Please guide.
As we know log2(x)=ln(x)/log(2)
We can apply in APML as AMPL supports natural logrithm.
Also you can use extended function libraries provided for AMPL at https://ampl.com/resources/extended-function-library/ by loading this package you can use log(x) as well :
gsl_sf_log(x)
I defined the following equation to calculate the sum of total power consumed by the system:
TotalPower.. systemPower =e= sum(J,P(J)) + sum(I,CP(I));
However, the variable systemPower gets only the result of the second sum and not both!. The declaration of P(J) is as following:
P.LO(I)=0;
P.up(I)=100;
P.l('i1')=2;
P.l('i2')=3;
Please, Can any one explain why I get the result of a single sum? How I can do to get both?. I tried also to separate them in different values but yet I get the same result.
Thank you in advance.
I though it is a good idea to share this it might help someone else. I used a variable directly instead of an equation and I put it in the following form and it worked.
systemPower.l = sum(I,P.l(I))+sum(I,CP(I));
I'm a beginner in Prolog and I am dealing with a problem that might seem stupid to you, but I really can't understand what I'm doing wrong! Ok, I have this file fruits.pl and inside that I have something like this:
fruit(apple,small,sweet).
fruit(lemon,small,nosweet).
fruit(melon,big,sweet).
I have already (inside that file made a coexist(X,Y) atom that checks if two fruits can be put together in a plate. It works fine! But now I can't create a suggest(X) that takes as a parameter a fruit and returns a list of fruits that can be put together in the same plate.
The thing is I was trying to make something like that
suggest(X) :- findall(Y,fruit(Y,_,_), List), coexist(X,Y).
What do you think? Every time I try to run this in swi prolog there is a warning 'singleton variable' and when I press
suggest(apple).
then it says false..
sorry for my english :/
Predicates in Prolog do not return anything. You have goals that are satisfied or not and you can interpret that as returning true or false.
Your predicate suggest(X) should contain another parameter that will be bound to the list of fruits that go together with X. An option would be: suggest(X, List) which describes the following relation: List represents all the fruits that go together with X. Then, you could ask:
?- suggest(apple, List).
List = [pear, cherry].
The goal findall(Y, ... , ...) uses the Y variable internally and Y is still unbound after the goal is satisfied. So, you should move coexist(X,Y) inside the second argument of findall/3 which is the goal that is satisfied in all possible ways. Th rule below works only if X is instantiated (suggest(+X, -List)).
suggest(X, List) :- findall(Y, (fruit(Y,_,_), coexist(X, Y)), List).
You can read this as follows: "List represents all fruits Y that coexist with X".
When you try to define a predicate in Prolog, first of all pretend that you have written that predicate already and start with imagining how you would use it. That is, what queries you would like to pose.
To me, it looks as if coexist/2 already describes what you want. BTW, may_coexist/2 might be a more descriptive name. Why do you want this in a separate list? And why using fruit/3 at all? But for the sake of the question let's assume that this makes sense. So essentially you would have now a relation fruit_compatible/2:
fruit_compatible(F, G) :-
fruit(F, _, _),
may_coexist(F, G),
fruit(G, _, _). % maybe you want to add this?
And now, let's assume you want this list too. So you would have a relation fruit_suggestions/2. How to use it?
?- fruit_suggestions(apple, L).
L = [cherry,pear].
or ... should it be rather L = [pear,cherry]? Or both?
?- fruit_suggestions(lemon, L).
L = [orange].
So every time I want a suggestion I have to think of a fruit. Always thinking: what fruit should it be? Fortunately there is a less demanding way in Prolog: Simply use a variable instead of the fruit! Now we should get all suggestions at once!
?- fruit_suggestions(F, L).
F = apple, L = [cherry, pear]
; F = lemon, L = [orange]
; F = cromulon, L = [embiggy, mushfruit].
So we need to implement it such that it will behave that way. findall/3 alone does not solve this. And implementing it manually is far from trivial. But there is setof/3 which handles variables in exactly that manner. Many of the tiny nitty-gritty design decisions have already been made, like that the list will be sorted ascendingly.
fruit_suggestions(F, L) :-
setof(G, fruit_compatible(F, G), L).
Edit: Due to the discussion below, here would be a solution that also permits empty lists. Note that this sounds trivial but it is not. To see this, consider the query:
?- fruit_suggestions(F, []).
What does it mean? What should F be? Also things that are no fruits at all? In that case we would have to produce solutions for everything. Like F = badger ; F = 42 ; .... Most probably this does not make much sense. What might be intended is those fruits that are incompatible with everything. To this end, we need to add a new rule:
fruit_suggestions(F, []) :-
setof(t,X^Y^fruit(F,X,Y),_),
\+ fruit_compatible(F, _).
fruit_suggestions(F, L) :-
setof(G, fruit_compatible(F, G), L).
I am trying to place a variable in the parameter of a #uses path, like so...
{#uses parameter="/p/a/t/h/{variable}/e/t/c"}
...
{/uses}
Here is a more pragmatic example...
{#uses parameter="/api/{user}/profile"}
...
{/uses}
Needless to say, its not working. So, what is the correct way to approach this?
Thanks in advance for the help!