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 am trying to pass a pointer by reference to an object from class A to class B. In class B I want to assign this pointer to a ivar and read and write to it.

This is the code that gives me errors (does not matter what errors). This is my first try with pointers so please correct my understanding.

Class A

//This is the parameter I would like to pass as a pointer and be able to manipulate from class B
NSString *name = @"Cyprian";

-(void)passAParameter{

   ClassB *classB = [[ClassB alloc] initWithAPointer:&name];
   ...
}


Class B

// ClassB.h
@interface ClassB{

    NSString **nameFromClassA;
}
@property(nonatomic,assign)NSString **nameFromClassA;

-(id)initWithAPointer:(NSString **)name;
// ClassB.m


@implementation ClassB

@synthesize nameFromClassA;

-(id)initWithAPointer:(NSString **)name{
   *nameFromClassA = *name;
}

//Print the name
-(void)printName{
   NSLog(@"Name: %@", *nameFromClassA);
}

//Will this change the name in class A?
-(void)changeNameInClassA:(NSString* newName){
   *nameFromClassA = newName;
}
share|improve this question

2 Answers 2

up vote 2 down vote accepted

Please, do not use double pointers here. You shouldn't handle things like that. This is a simpler approach:

In the ClassA instance:

-(void)passAParameter{
   NSString *name = @"Cyprian";
   ClassB *classB = [[ClassB alloc] initWithAPointer:name];
   ...
}

While you define ClassB this way: ClassB.h:

@interface ClassB{    

    NSString *nameFromClassA;
}
@property(nonatomic,retain) NSString *nameFromClassA; // Retaining it will give you less headaches

-(id)initWithAPointer:(NSString *)name;
@end

ClassB.m:

@implementation ClassB

@synthesize nameFromClassA;

// You should release all retained object when deallocating self
- (void) dealloc {
    [nameFromClassA release];
    nameFromClassA = nil;
    [super dealloc];
}

-(id)initWithAPointer:(NSString *)name{
    if ((self = [super init])) {     // Always init the object from super!
        self.nameFromClassA = name;  // Retain the object calling self.
    }
    return self;
}

//Print the name
-(void)printName{
   NSLog(@"Name: %@", nameFromClassA);
}

//Will this change the name in class A?
-(void)changeNameInClassA:(NSString* newName){
    self.nameFromClassA = newName; // Retain it calling self.
}

@end
share|improve this answer
    
Well I guess I didn't make my self clear enough. I want to pass a value by reference so i use double pointers on purpose. I am trying to pass a name by reference so I can read from it and write to it in class B. –  Cyprian May 16 '11 at 14:59
1  
If you pass it the way I exposed here, each change on name in ClassA will "pass" to nameFromClassA in ClassB, since you are naturally using a pointer to refer to that string. You are initializing ClassB using the pointer to the memory that "contains" the string (in fact you define the string as NSString *name and not NSString name). –  marzapower May 16 '11 at 15:02
    
Please, try it and let me know if you have difficulties. –  marzapower May 16 '11 at 15:02
    
you are right, I don't know why this idea came to my mind. Thanks –  Cyprian May 16 '11 at 15:14

The assignment in your initWithAPointer: method should be just:

nameFromClassA = name;

That said, this code pattern smells of a bad design. What high-level goal is it that you're trying to accomplish?

share|improve this answer
    
Ok I am trying to open an universal editor that will edit a table cells title, so I would like to pass table cell by reference and read and write to it from my editor –  Cyprian May 16 '11 at 14:57
    
Then you should pass the table cell (using a normal object pointer like (UITableViewCell *)) and update the title property of the cell. Or, probably better yet, you should design a delegate protocol whereby your universal editor notifies the view controller that contains the cell when the title changes. –  Daniel Dickison May 16 '11 at 15:04

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.