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Objective-C iOS Development for Legacy & Enterprise Apps · 강의

약한 참조와 강한 참조

참조 순환을 방지하고 객체 수명을 효과적으로 관리할 수 있도록 강한 참조와 약한 참조를 구분합니다.

약한 참조와 강한 참조은(는) CoddyKit의 무료 Objective-C iOS Development for Legacy & Enterprise Apps 강의입니다. 이것은 4개 중 3번째 강의입니다. 아래에서 전체 강의를 무료로 읽을 수 있으며, 내장 코드 에디터와 24/7 AI 튜터와 함께 브라우저에서 직접 실습할 수 있습니다. 이 강의는 Objective-C iOS Development for Legacy & Enterprise Apps 학습 경로의 일부이며, 진행 상황이 웹과 CoddyKit 앱에 동기화됩니다. Objective-C iOS Development for Legacy & Enterprise Apps 강의에는 총 4개의 강의가 포함되어 있습니다.

이 강의의 일부는 아직 번역되지 않았으며 영어로 표시됩니다.

Understanding Object Lifetimes

In Objective-C, managing an object's lifetime is crucial. This means deciding when an object should exist in memory and when it can be safely removed.

References are how we tell the system that we 'care' about an object and want it to stay alive. There are two main types: strong and weak.

Strong References: The Default

A strong reference is the default type for properties and variables in Objective-C when using ARC (Automatic Reference Counting).

  • It signifies 'ownership' of an object.
  • When an object has at least one strong reference, it cannot be deallocated.
  • It increases the object's retain count, ensuring it stays in memory.

Think of it as holding onto something tightly; as long as you hold it, it won't disappear.

Strong Reference Example

Let's see a strong reference in action. The person1 variable holds a strong reference to our Person object. Notice the dealloc method is called when the object is no longer strongly referenced.

#import <Foundation/Foundation.h>

@interface Person : NSObject
@property (strong, nonatomic) NSString *name;
- (void)sayHello;
@end

@implementation Person
- (void)sayHello {
    NSLog(@"Hello, my name is %@", self.name);
}
- (void)dealloc {
    NSLog(@"Person %@ is being deallocated.", self.name);
}
@end

int main(int argc, const char * argv[]) {
    @autoreleasepool {
        Person *person1 = [[Person alloc] init];
        person1.name = @"Alice";
        NSLog(@"Person '%@' created.", person1.name);
        [person1 sayHello];
        // person1 goes out of scope at the end of @autoreleasepool
        // The Person object will be deallocated.
    }
    return 0;
}

The Problem: Retain Cycles

While strong references are essential, they can lead to a common memory management issue called a retain cycle (or strong reference cycle).

This happens when two or more objects hold strong references to each other, forming a closed loop. Because each object is strongly referenced by another in the cycle, their retain counts never drop to zero, and they are never deallocated.

Illustrating a Retain Cycle

Imagine a Parent object strongly references a Child object, and that Child object also strongly references its Parent.

  • Parent says: "I own Child."
  • Child says: "I own Parent."

Neither can be released because the other is still holding onto it, even if no other part of your app needs them anymore. This leads to a memory leak.

Introducing Weak References

Weak references (declared with __weak or the weak property attribute) are designed to break retain cycles.

  • They do not increase an object's retain count.
  • They do not signify ownership.
  • Crucially, a weak reference automatically becomes nil when the object it points to is deallocated.

This 'nilling out' behavior is very safe and prevents dangling pointers.

Weak Reference Behavior

Observe how a weak reference behaves. Once the last strong reference to an object is released, the object is deallocated, and any weak references pointing to it automatically become nil.

#import <Foundation/Foundation.h>

@interface Person : NSObject
@property (strong, nonatomic) NSString *name;
- (void)dealloc;
@end

@implementation Person
- (void)dealloc {
    NSLog(@"Person %@ is being deallocated.", self.name);
}
@end

int main(int argc, const char * argv[]) {
    @autoreleasepool {
        Person *strongPerson = [[Person alloc] init];
        strongPerson.name = @"Bob";
        
        __weak Person *weakPerson = strongPerson;
        
        NSLog(@"Before nil: strongPerson = %@, weakPerson = %@", strongPerson.name, weakPerson.name);
        
        strongPerson = nil; // Release the strong reference
        NSLog(@"Strong reference set to nil.");
        
        if (weakPerson) {
            NSLog(@"Weak Person still exists: %@", weakPerson.name);
        } else {
            NSLog(@"Weak Person is now nil.");
        }
    }
    return 0;
}

Breaking the Retain Cycle

To break a retain cycle, one of the references in the cycle should be weak. In our Parent-Child example, it's common for the 'child' to have a weak reference to its 'parent'.

This way, the parent owns the child, but the child doesn't own the parent, allowing both to be deallocated properly.

#import <Foundation/Foundation.h>

@interface Parent : NSObject
@property (strong, nonatomic) NSString *name;
@property (strong, nonatomic) id child; // Strong ref to child
- (void)dealloc;
@end

@interface Child : NSObject
@property (strong, nonatomic) NSString *name;
@property (weak, nonatomic) Parent *parent; // Weak ref to parent
- (void)dealloc;
@end

@implementation Parent
- (void)dealloc {
    NSLog(@"Parent %@ is being deallocated.", self.name);
}
@end

@implementation Child
- (void)dealloc {
    NSLog(@"Child %@ is being deallocated.", self.name);
}
@end

int main(int argc, const char * argv[]) {
    @autoreleasepool {
        Parent *myParent = [[Parent alloc] init];
        myParent.name = @"Mom";
        
        Child *myChild = [[Child alloc] init];
        myChild.name = @"Alice";
        
        myParent.child = myChild; // Parent strongly references Child
        myChild.parent = myParent; // Child weakly references Parent
        
        NSLog(@"Parent and Child created. Releasing strong variables...");
        // Both objects will be deallocated as strong references from outside
        // the objects are released and the weak link doesn't prevent deallocation.
    }
    return 0;
}

`__weak` vs. `__unsafe_unretained`

You might encounter __unsafe_unretained, another non-owning reference type. However, always prefer __weak.

  • __weak: Automatically becomes nil when the object is deallocated, preventing crashes.
  • __unsafe_unretained: Does NOT become nil. If the object is deallocated, the reference becomes a dangling pointer, leading to crashes if you try to access it.

__weak is the safer and standard choice in modern Objective-C with ARC.

Check Your Knowledge

Which statement best describes the primary purpose of a weak reference in Objective-C with ARC?

Recap: Strong vs. Weak

We've explored the critical difference between strong and weak references:

  • Strong references: Default, signify ownership, increase retain count, keep objects alive.
  • Weak references: Do not signify ownership, do not increase retain count, automatically become nil, and are essential for breaking retain cycles.

Understanding when to use each is key to preventing memory leaks and writing robust Objective-C code.

자주 묻는 질문

“약한 참조와 강한 참조” 강의는 무료인가요?

네 — “약한 참조와 강한 참조” 전체 내용을 이 웹사이트에서 무료로 읽을 수 있습니다. 인터랙티브하게 실습하려면(내장 코드 에디터와 24/7 AI 튜터), CoddyKit PRO로 업그레이드하면 Objective-C iOS Development for Legacy & Enterprise Apps 강의 전체를 잠금 해제할 수 있습니다. Objective-C iOS Development for Legacy & Enterprise Apps 강의에는 총 4개의 강의가 포함되어 있습니다.

“약한 참조와 강한 참조”에서 뭘 배우나요?

참조 순환을 방지하고 객체 수명을 효과적으로 관리할 수 있도록 강한 참조와 약한 참조를 구분합니다. 브라우저에서 직접 실행하는 실습 코드로 Objective-C iOS Development for Legacy & Enterprise Apps을(를) 배우며, 24/7 AI 튜터가 강의를 진행하면서 질문에 답변해줍니다.

Objective-C iOS Development for Legacy & Enterprise Apps을(를) 시작하는 데 경험이 필요한가요?

사전 경험은 필요하지 않습니다. CoddyKit의 Objective-C iOS Development for Legacy & Enterprise Apps은(는) 초급자부터 고급 학습자까지를 위해 구성되어 있으므로, 여기서 시작하거나 처음부터 시작할 수 있으며 자신의 속도대로 진행할 수 있습니다. 이것은 4개 중 3번째 강의입니다.

“약한 참조와 강한 참조” 강의는 얼마나 걸리나요?

대부분의 CoddyKit 강의는 약 5~10분이 소요됩니다. 각 강의는 간결하고 인터랙티브하여 꾸준한 진행이 가능하며, 웹과 앱에서 중단한 부분부터 바로 시작할 수 있습니다.

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이 강의의 모든 강의

  1. 수동 보존-해제(MRR) 기초
  2. 자동 참조 카운팅(ARC)
  3. 약한 참조와 강한 참조
  4. 블록의 유지 순환 끊기
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