Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I need to create a "real" dynamic JPA CriteriaBuilder. I get an Map<String, String> with the statements. It looks like:

name : John
surname : Smith
email : email@email.de

...more pairs possible

Here is what i implement:

CriteriaBuilder cb = em.getCriteriaBuilder();
CriteriaQuery<User> query = cb.createQuery(User.class);
Root<User> userRoot = query.from(User.class);
query.select(userRoot);

List<Predicate> predicates = new ArrayList<Predicate>();
Iterator<String> column = statements.keySet().iterator();
while (column.hasNext()) {

    // get the pairs
    String colIndex = column.next();
    String colValue = statements.get(colIndex);

    // create the statement
    Predicate pAnd = cb.conjunction();
    pAnd = cb.and(pAnd, cb.equal(userRoot.get(colIndex), colValue));
    predicates.add(pAnd);
}

// doesn't work, i don't know how many predicates i have -> can not address them
query.where(predicates.get(0), predicates.get(1), ...);

// doesn't work, because it is a list of predicates
query.where(predicates);

// doesn't work, because the actual predicate overwrites the old predicate
for (Predicate pre : predicates) {
     query.where(pre)
}

I tried to build a big Predicate, which contains all other predicates and add this to the query.where(), but again the predicates overwrites old values. Looks like there is no possibility to add a Predicate instead of change a Predicate :-(

The real project is even more complicated, because some pairs requires an equal and some other a like. And that is not even enough: There could a extra statement with or included like type : 1;4;7. Here the value have to split up and create a statement like:

<rest of statement> AND (type = 1 OR type = 4 OR type = 7)

UPDATE and SOLUTION Got two lists, first List for AND works well. Second list contains OR statements like exspected:

final List<Predicate> andPredicates = new ArrayList<Predicate>();
final List<Predicate> orPredicates = new ArrayList<Predicate>();
for (final Entry<String, String> entry : statements.entrySet()) {
    final String colIndex = entry.getKey();
    final String colValue = entry.getValue();
    if (colIndex != null && colValue != null) {

        if (!colValue.contains(";")) {
            if (equals) {
                andPredicates.add(cb.equal(userRoot.get(colIndex), colValue));
            } else {
                andPredicates.add(cb.like(userRoot.<String> get(colIndex), "%" + colValue + "%"));
            }
        } else {
            String[] values = colValue.split(";");
            for (String value : values) {
                orPredicates.add(cb.or(cb.equal(userRoot.get(colIndex), value)));
            }
        }       
    }
}

// Here goes the magic to combine both lists
if (andPredicates.size() > 0 && orPredicates.size() == 0) {
    // no need to make new predicate, it is already a conjunction
    query.where(andPredicates.toArray(new Predicate[andPredicates.size()]));
} else if (andPredicates.size() == 0 && orPredicates.size() > 0) {
    // make a disjunction, this part is missing above
    Predicate p = cb.disjunction();
    p = cb.or(orPredicates.toArray(new Predicate[orPredicates.size()]));
    query.where(p);
} else {
    // both types of statements combined
    Predicate o = cb.and(andPredicates.toArray(new Predicate[andPredicates.size()]));
    Predicate p = cb.or(orPredicates.toArray(new Predicate[orPredicates.size()]));
    query.where(o, p);
}

query.where(predicates.toArray(new Predicate[predicates.size()]));
users = em.createQuery(query).getResultList();
share|improve this question

2 Answers 2

up vote 13 down vote accepted

You can pass an array of predicates to the CriteriaBuilder, deciding on equal or like as you go. For this, build a list and pack the contents of the list into an array in a single and statement. Like this:

final List<Predicate> predicates = new ArrayList<Predicate>();

for (final Entry<String, String> e : myPredicateMap.entrySet()) {

    final String key = e.getKey();
    final String value = e.getValue();

    if ((key != null) && (value != null)) {

        if (value.contains("%")) {
            predicates.add(criteriaBuilder.like(root.<String> get(key), value));
        } else {
            predicates.add(criteriaBuilder.equal(root.get(key), value));
        }
    }
}

query.where(criteriaBuilder.and(predicates.toArray(new Predicate[predicates.size()])));
query.select(count);

In case you need to distingiush between and and or, use two lists.

share|improve this answer
    
Okay, for my AND statements that work. I create a second List and stored my OR statements in that list. At the end, I do what? Copy both list togehter results in AND for both types of statements. My orPredicates list contains the correct elements. Even when I only add this list to the query, all statements put together with AND. –  Felix Jun 21 '12 at 14:32
    
You can create a disjunction (or) the same way you create a conjunction (and) - by calling or and and methods on the CriteriaBuilder. The return is a single Predicate in both cases - so if you dont have some sort of complex grouping, simply call and on the two resulting Predicates and use the result in the where –  kostja Jun 21 '12 at 15:25
    
Maybe I got it now, I updated the main question and post my solution. –  Felix Jun 22 '12 at 7:01

One option is to use the fact that method with variable number of arguments can take an array:

query.where(predicates.toArray(new Predicate[predicates.size()])); 

Alternatively, you can combine them into a single predicate (note that if you don't do it, you don't need to create a conjunction as in your example);:

Predicate where = cb.conjunction();
while (column.hasNext()) {
    ...
    where = cb.and(where, cb.equal(userRoot.get(colIndex), colValue));
}

query.where(where);
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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