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.

How can i convert the key to an NSNumber? this code gives me the error:

no matter how i try it, i always end up with the error: Incompatible integer to pointer conversion assigning to 'NSNumber' from 'NSIntegar' (aka 'int').

        for (id key in consultants)
    {
        consultantData = [[ConsultantData alloc] init];

        consultantData.name = [consultants objectForKey:key];
        consultantData.conID = [[NSNumber numberWithInteger:key] integerValue];

        NSLog(@"name: %@    ID: %@", consultantData.name, consultantData.conID);

        [consultantList addObject:consultantData];
        [consultantData release];
    }

here is my object ConsultantData:

#import <Foundation/Foundation.h>

@interface ConsultantData : NSObject 
{
    NSString *name;
    NSNumber *conID;
}

@property (nonatomic, retain) NSString *name;
@property (nonatomic, retain) NSNumber *conID;

@end

#import "ConsultantData.h"


@implementation ConsultantData

@synthesize name;
@synthesize conID;

-(void) dealloc
{
    [name release];
    [conID release];

    [super dealloc];
}

@end

if i try isMemberOfClass, it never returns true. if i try isKindOfClass, it tells me its a NSString.

consultants is a dictionary i receive from my sever that passes thru an XMLRPC function (server is PHP). from what i've seen, everything is a string in the server dictionary returns.

share|improve this question

4 Answers 4

up vote 2 down vote accepted

could be that you have the order wrong.

consultantData.conID = [[NSNumber numberWithInteger:key] integerValue];

means

NSNumber *foo = [NSNumber numberWithInteger:key];
NSInteger bar = [foo integerValue];
consultantData.conID = bar;

you probably want

consultantData.conID = [NSNumber numberWithInteger:[key integerValue]];

which is in verbose form:

NSInteger foo = [key integerValue];
NSNumber *bar = [NSNumber numberWithInteger:foo];
consultantData.conID = bar;
share|improve this answer
    
ha! that worked perfectly, thank you and thanks to the other guys who also provided the right answer. i banged my head against the wall far longer then i should have over this. –  Log139 Jul 18 '11 at 22:13

consultantData.conID = [[NSNumber numberWithInteger:key] integerValue];

The above line should be:

consultantData.conID = [NSNumber numberWithInteger:[key integerValue]];
share|improve this answer

Assuming your key is an NSString, you can't pass the key to [NSNumber numberWithInteger:key] because it is not an integer! Use the intValue method on the key to get an integer, then convert the integer to a NSNumber like so:

consultantData.conID = [NSNumber numberWithInteger:[key intValue]];
share|improve this answer
    
Your first point is incorrect. When used with fast enumeration, dictionaries enumerate their keys. The .allKeys is not necessary. –  Caleb Jul 18 '11 at 22:03
    
Your are correct. Apparently the times I left it out was when I wanted to iterate over the values. Thanks for the correction! –  progrmr Jul 19 '11 at 3:21

integerValue returns an NSInteger, which is not an NSNumber. You should pass the NSNumber directly:

consultantData.conID = [NSNumber numberWithInteger:[key integerValue]];
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.