Mos*_*she 6 pointers unsafe-pointers swift
我正在尝试在Swift中创建一个CGPath.我正在使用CGPathCreateWithRect(rect, transformPointer).
我如何UnsafePointer<CGAffineTransform>从一个CGAffineTransform?我试过这个:
let transform : CGAffineTransform = CGAffineTransformIdentity
let transformPointer : UnsafePointer<CGAffineTransform> = UnsafePointer(transform)
我也试过这个:
let transform : CGAffineTransform = CGAffineTransformIdentity
let transformPointer : UnsafePointer<CGAffineTransform> = &transform
但斯威夫特抱怨说'&' with non-inout argument of type....我也试过&transform直接进入CGPathCreateWithRect但停止时出现同样的错误.
当我transform直接传入时,Swift"无法将类型'CGAffineTransform'的值转换为预期的参数类型'UnsafePointer'".
发生了什么,以及如何使用Swift 2.1?
Mar*_*n R 16
我也试过直接传递和转换到CGPathCreateWithRect ...
你快到了.transform需要是一个变量
才能将其作为inout参数传递给&:
var transform = CGAffineTransformIdentity
let path = CGPathCreateWithRect(CGRect(...), &transform)
有关更多信息,请参阅" 使用Swift with Cocoa和Objective-C"文档中的" 与C API交互 ".
在Swift 3中,这将是
var transform = CGAffineTransform.identity
let path = CGPath(rect: rect, transform: &transform)
或者,对于身份变换,只是
let path = CGPath(rect: rect, transform: nil)
@Martin R 提供了最好的答案,但作为替代方案,我喜欢以这种方式使用不安全的可变指针,以防您将来需要更改实际指针
let path = withUnsafeMutablePointer(&transform)
{
CGPathCreateWithRect(CGRect(...), UnsafeMutablePointer($0))
}