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I am trying to query a table using NSPredicate. Here is essentially what I'm doing:

NSNumber *value = [NSNumber numberWithInteger: 2];
NSString *columnName = @"something_id";

NSLog(@"%@ == %@", columnName, value);
NSPredicate *refQuery = [NSPredicate predicateWithFormat: @"%@ == %@", columnName, value];

NSLog prints out what I expect ("something_id == 2"), but the predicate doesn't work. However, the predicate DOES work if I change it to:

NSPredicate *refQuery = [NSPredicate predicateWithFormat: @"something_id == %@", value];

So why won't this work and how can I fix it?

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That is very odd... happens to me too.. –  Richard J. Ross III Oct 15 '10 at 12:17

2 Answers 2

up vote 21 down vote accepted

The Predicate Programming Guide from Apple says:

%@ is a var arg substitution for an object value—often a string, number, or date.

%K is a var arg substitution for a key path.

When string variables are substituted into a format string using %@ , they are surrounded by quotation marks. If you want to specify a dynamic property name, use %K in the format string.

So, in your case, you need to put %K as a keypath to columnName, not %@ which will be added with quotation marks:

NSPredicate *refQuery = [NSPredicate predicateWithFormat: @"%K == %@", columnName, value];

Hope this clear your doubts.

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FWIW you will probably want to use %K on both sides of the predicate, as integer substitutions will be erroneously wrapped in double quotes. –  ImHuntingWabbits Oct 16 '10 at 20:47
    
Nope, value is not an integer, but it's an NSNumber, as you can see in the documentation, it's the right format. –  Hoang Pham Oct 16 '10 at 21:03
    
Thanks, saved me from a painful headache. :) –  Paul Semionov Aug 12 '12 at 19:40

Very weird, but I think I have solved it by doing the following:

NSNumber *value = [NSNumber numberWithInteger: 2];
NSString *columnName = @"something_id";

NSString *predicate = [NSString stringWithFormat: @"%@ == %@", columnName, value];
NSPredicate *refQuery = [NSPredicate predicateWithFormat: predicate];
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If anyone can shed some light on why this happens I would be very grateful. –  henryeverett Oct 15 '10 at 12:45
    
Because here you give "something_id == 2", if you let predicate format the string, it will output this: "something_id" == 2, so the field will become a string and not a field without quotes –  Climbatize Mar 27 '13 at 12:57

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