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I have a method findByProperties(Parameter... p); so it can take any number of parameters. But what I am confused is if I had to call this method and I do not know the number of parameters how do I do that

suppose I have a list with parameters, and the size of the list changes each time you call the method, the how would I add the parameters from the list to the method call?

for(ArrayList<Parameter> p : list){
   findByProperties(p);  //not sure what to do here


this was the solution:

Parameter[] paramArray = new ArrayList<Parameter>().toArray(new Parameter[]{});
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Why don't you have a method that takes a List<Parameter> as parameter? – Rohit Jain Jan 30 '13 at 15:32
I need to use generics in my method! – Biggy_java Jan 30 '13 at 16:14
@Benz_java you can 'stack' generics like that (although it's on the cost of readability): List<Parameter<String>> – Andy Jan 30 '13 at 16:25
"I cannot convert the list to array and pass it as well!" What did you try? Did you search for "convert list to array"? – Miserable Variable Jan 30 '13 at 18:30

5 Answers 5

up vote 4 down vote accepted

You can do something like this:

Parameter[] paramArray = new ArrayList<Parameter>().toArray(new Parameter[]{});

It's the same as something like:

findProperties(param1, param2);

Because Java internally transforms a varargs-list into an array, so you can pass an array, too.

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Yes this is right! thanks! – Biggy_java Jan 30 '13 at 15:49
I will vote this up when I get 15 points as reputation – Biggy_java Jan 30 '13 at 16:14
@Benz_java you can always accept an answer of a question you asked yourself. (--> +15 for the answer, +2 for the acceptor) – Andy Jan 30 '13 at 16:28

You can override findByProperties to take either varargs or a List<Parameter>. One can then relay to the other:

void findByProperties(Parameter... p) {

void findByProperties(List<Parameter> p) {
    . . .

Then you can call findByProperties with either a variable argument list of Parameter objects, or with a List<Parameter> argument. Using Arrays.asList does not create a new array; it just wraps the existing array in a List implementation; thus, this is less work than creating a new Parameter[] array from the list.

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Methods can declare a parameter that accepts from zero to many arguments, a so-called var-arg method.

A var-arg parameter is decalared with the sintax type... name; for instance:

doSomething(int... x){}

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This is not the question; OP already has a var-args method. The question is, how to use it when starting with an ArrayList<Parameter> in the calling code. – Ted Hopp Jan 30 '13 at 15:43
Sorry, I try to clarify: the var-arg method above "findByProperties(Parameter... p)" accepts zero-to-many Parameter BUT in the example he pass another type, an ArrayList. So in order to pass the correct parameters he has to retrieve the various Parameter from each ArrayList and pass them to the findByProperties method. – Cisco Jan 30 '13 at 15:57

findByProperties(Parameter... p);

u can invoke the method findByProperties(); (or) findByProperties(p);

but not findByProperties(p,p,p);

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This is simply wrong. With an argument declaration of Parameter... p, you can invoke the method with any number of arguments of type Parameter. – Ted Hopp Jan 30 '13 at 16:57
Sorry..... : findByProperties(p,p,p); is possible. :-( Thanks Ted Hopp . – RAj Jan 31 '13 at 8:05

In Java, you can also pass in an array for a method with a variable argument. So you can use the toArray method of the parameter list to convert the List<Parameter> to a Parameter[], which can be passed directly to findByProperties:

for (ArrayList<Parameter> p : list){
    Parameter[] param = p.toArray(new Parameter[p.size()])

If you need to do this other places too, you could also make a convenience method:

public ... findByProperties(List<Parameter> p) {
    return findByProperties(p.toArray(new Parameter[p.size()]));
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this worked for for me, Thanks! – Biggy_java Jan 30 '13 at 15:45

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