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We have a nullable (type long) column (named referral) in our MySQL database. We use hibernate for ORM.

I am trying to get the value of the column for a given member. Some are null, and if its not, its an id that points to another member whose is the referrer.

The problem is in the java code I am trying to detect if that member's column is null, if not, do something.

String referrerAffiliateId = Long.toString(member.getReferral());
if (referrerAffiliateId != null){
    //do something
}

member.getReferral() returns the value (type long) of the referral column. Some of those columns are null and some are not.

The above code compiles fine, but I get a nullPointerException when I call the method on a user whose referral column is null.

How do I properly do a detection on this?

Thanks in advance!

Full Answer:

Thanks to @Marcelo for the best correct answer.

Here is the code in its final state:

Long referrerAffiliateId = member.getReferral();
if (referrerAffiliateId != null) {
    //...
}
share|improve this question
    
What's the return type of member.getReferral()? – Ted Hopp Jan 5 '12 at 20:22
    
@Ted Hopp - long – UpHelix Jan 5 '12 at 20:23
    
I assume you mean Long since a long is a primitive type and is not possible to have it be null. Long can be null though. Check the return value of getReferral() directly and do not attempt to convert it to a string. – gnomed Jan 5 '12 at 20:25
2  
Based on the comments and your responses, I'd say it's time for an actual stack trace to see where they error really is occurring. I suspect there's something inside getReferral() that is auto-unboxing and causing an NPE. The Source for getReferral() may also be helpful. – rfeak Jan 5 '12 at 20:29
up vote 2 down vote accepted

Assuming member.getReferral() returns a Long, use:

if (member.getReferral() != null)

In Hibernate, if you want to be able to detect nullability in a property, you must not use primitive types because they will always have a default value. 0 for longs.

share|improve this answer
1  
Thanks, but it doesn't return "Long", it returns "long", which as I understand it, is not nullable where "Long" can be. – UpHelix Jan 5 '12 at 20:25
2  
@Dale If you want to detect nullability for the referral property using Hibernate, you must change the data type of the property to Long. Otherwise, member.getReferral() will return 0 when the column value is null. – Marcelo Jan 5 '12 at 20:27
    
thanks, I used your suggestion to come to a solution. – UpHelix Jan 5 '12 at 20:43
    
I chose this solution because the answer uses less code, is cleaner, and cause @Marcelo made the suggestion about the data type change in hibernate. – UpHelix Jan 5 '12 at 20:49

The exception probably comes from Long.toString(), try checking the value before converting to a string:

Long ref = member.getReferral();
if (ref == null) {
  // Do something...
} else {
  String referrerAffiliateId = Long.toString(ref);
  // ...
}
share|improve this answer
2  
As per OP member.getReferral() returns long not Long. – anubhava Jan 5 '12 at 20:26
    
You will not get an exception anymore, but you will never detect nullability of the column. – Marcelo Jan 5 '12 at 20:38

Change

String referrerAffiliateId = Long.toString(member.getReferral());
if (referrerAffiliateId != null){
    //do something
}

To:

if (member.getReferral() != null){

    String referrerAffiliateId = Long.toString(member.getReferral());
    //do something
}

It's likely that you're getting the NullPointerException when you call Long.toString() with a null parameter.

share|improve this answer

use Below code:

    Long ref = member.getReferral();
    String referrerAffiliateId = null;
    if(ref != null){
    referrerAffiliateId = Long.toString(ref); 
    }
share|improve this answer
    
OP said that member.gerReferral() returns a primitive long, and specifically not a Long. – Ted Hopp Jan 5 '12 at 20:37

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