说我有2个控制器,BarViewController和FooViewController.
FooViewController有一个名为imageView的UIImageView的插座:
@property (nonatomic,weak) UIImageView *imageView;
BarViewController有一个UIButton按钮的插座.
BarViewController有一个从这个按钮到FooViewController的segue,名为BarToFooSegue(在故事板中完成).
当我运行以下代码,并在FooViewController.imageView.image上调用NSLog时,结果为nil,我的图像将不会显示.为什么会这样?
// code in BarViewController
- (void)prepareForSegue:(UIStoryboardSegue *)segue sender:(id)sender{
if([segue.identifier isEqualToString:@"BarToFooSegue"]){
NSURL *photoUrl = @"http://www.randurl.com/someImage"; // assume valid url
UIImage *image = [UIImage imageWithData:[NSData dataWithContentsOfURL:photoUrl]];
UIImageView *imageView = [[UIImageView alloc] initWithImage:image];
[segue.destinationViewController setImageView:imageView];
}
}
我已经尝试将FooViewController.imageView设置为强而不是弱,但问题仍然存在:
@property (nonatomic,strong) UIImageView *imageView;
运行我的调试器,我注意到FooViewController中的imageView在prepareForSegue中正确更新:但随后在几行后重新更新为一些新分配的imageView,其中@property image设置为nil.我不确定控制流的哪一部分导致这种情况,因为它发生在用汇编语言编写的行中.
我通过向FooViewController添加UIImage属性来使我的代码工作:
@property (nonatomic,strong) UIImage *myImage;
并更改prepareForSegue:在BarViewController中传递图像而不是imageView:
// code in BarViewController
- (void)prepareForSegue:(UIStoryboardSegue *)segue sender:(id)sender{
if([segue.identifier isEqualToString:@"BarToFooSegue"]){
NSURL *photoUrl = @"http://www.randurl.com/someImage"; // assume valid url
UIImage *image = [UIImage imageWithData:[NSData dataWithContentsOfURL:photoUrl]];
[segue.destinationViewController setMyImage:image];
}
并修改viewWillAppear:在FooViewController中:
- (void)viewWillAppear:(BOOL)animated{
[self.imageView setImage:self.myImage];
}
解决方法
调用[segue.destinationViewController视图];在设置图像之前,这将导致加载视图层次结构,然后设置您的插座.