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I could not solve this challenging problem:

name(jack, math, 50).
name(daniel, math, 60).
name(jane, phys, 70).
name(eto, comp, 73).

predicate : nameGrade(P, L, S). P is the list of people who are taking lesson L and whose grade is greater than S.

nameGrade([jack], math, 45). returns true

nameGrade([jack, daniel], math, 55). returns false. (because jack scored 50 which is less than 55)

nameGrade([], phys, 80). returns true

nameGrade(X, math, 70). returns X=[jack, daniel]

nameGrade([jack, daniel], math, X). returns X=50. (the less one).

Thank you.

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you already accepted an answer; there is no need to edit your question and replace it with the phrase "My question has been answered". You should leave your question intact for others to see. –  LittleBobbyTables May 13 '11 at 14:19

1 Answer 1

up vote 0 down vote accepted

You can use findall/3 to return a list of elements satisfying a predicate:

nameGrade(P, L, S) :- is_list(P), name(_, _, S), findall(X, (name(X, L, S0), S0 >= S), P).
nameGrade(P, L, S) :- number(S), findall(X, (name(X, L, S0), S0 >= S), P).

However, there are some contradictory goals in your requirement. For example, nameGrade([jack], math, 45) should fail because both jack and daniel take math and have higher scores than 45. nameGrade(X, math, 70) should return [] because no one takes math with a higher score than 70.

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Yes u rigth there is a mistake on name –  dark May 13 '11 at 10:59
    
Yes u rigth there is a mistake on nameGrade(X, math, 70) actually instead of 70 it can be 20. So it returns [jack, daniel] :) but i think jack, math, 45 is right because jack's grade is over 45. –  dark May 13 '11 at 11:09
    
It could be but that is non-exhausted searching, the predicate does not try to find ALL combinations satisfying a condition. The predicate would be more meaningful if nameGrade([jack], math, 45) fails but nameGrade([jack, daniel], math, 45) succeeds. –  pad May 13 '11 at 11:18

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