0

This is my first time using Prolog

I have employees

employee(eID,firstname,lastname,month,year) 

example :

employee(1,liz,white,4,2000).
employee(2,ted,johnson,5,1998).

I want to make a predicate senior(X,Y) that will return true if the first employee is older in the company.

I have this:

senior(X,Y) : -
  employee(X,firstname,lastname,month,year),
  employee(Y,firstname,lastname,month,year),
  X.year < Y.year.

but this always return false. I can't understand the reason.

How can I make this predicate work?

  • That is no way to run a company, and is illegal in Europe. You must not discriminate by age, except if there is a valid reason (e.g. the law limits working hours for people below a curtain age). – ctrl-alt-delor Dec 18 '18 at 11:21
  • lol, btw this is the date that the employee hired ! – Thelouras Dec 18 '18 at 11:33
  • If you mean date employee was hired, then it is less dodgy. However I still do not see what value it is to compare people, like this. One person may have been in the company a few weeks, but be much better at a particular job than someone that was there 10 years. – ctrl-alt-delor Dec 18 '18 at 11:36
1

Is it mandatory that you do this with one rule? You could use one rule for comparing employees who were hired in different years, and a second rule for comparing employees who were hired in the same year. To expand on this, let's say you have employees listed this way:

employee(eid,year,month,day)

and, of course, a list of employees. You could use the following three rules:

% For employees that were hired in different years.
senior(Eid1,Eid2) :-
    employee(Eid1,X,_,_),
    employee(Eid2,Y,_,_),
    X<Y.

% For employees that were hired in the same year, different month.
senior(Eid1,Eid2) :-
    employee(Eid1,Year,X,_);
    employee(Eid2,Year,Y,_);    % Notice how one common variable "Year" is used
    X<Y.

% For employees that were hired in the same year, same month, different day,
% the rule is "expanded" from the previous one.
senior(Eid1,Eid2) :-
    employee(Eid1,Year,Month,X);
    employee(Eid2,Year,Month,Y);
    X<Y.

Make sure you don't forget and replace "Year" and/or "Month" with underscores, because then somebody hired on 2010-01-01 (ISO 8601) would be shown as senior to someone hired on 2005-12-12.

Then again, perhaps you should catalogue all dates in ISO 8601:2004. No matter how big your employee list, you could write a small script to convert

employee(eID,firstname,lastname,month,year)

to

employee(eID,firstname,lastname,yyyymm)
1

In Prolog, variables start with either an underscore or an upper case letter. E.g. firstname is an atom, i.e. a constant, but FirstName is a variable. But, in your specific question, you don't care about the employee names. Thus, you can replace those arguments by the anonymous variable:

senior(X,Y) : -
  employee(X, _, _, Xmonth, Xyear),
  employee(Y, _, _, Ymonth, Yyear),
  ...

Can you now complete the code by writing the necessary comparisons using the Xmonth, Xyear, Ymonth, and Yyear variables?

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.