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我有一个 .GPX 文件,其中包含我想加载到我的应用程序中的远足旅行的路线信息。如果我从远程 URL ( https://dl.dropboxusercontent.com/u/45741304/appsettings/Phu_si_Lung_05_01_14.gpx加载它一切正常但我无法从应用程序包加载相同的文件(已经在“复制包资源"并且有正确的目标成员)。

这是我从远程 URL 加载此文件的代码:

var xmlParser: XMLParser!


func startParsingFileFromURL(urlString: String) {
    guard let url = URL(string: urlString) else {
        print("Can't load URL: \(urlString)")
        return
    }
    self.xmlParser = XMLParser(contentsOf: url)
    self.xmlParser.delegate = self
    let result = self.xmlParser.parse()
    print("parse from URL result: \(result)")
    if result == false {
        print(xmlParser.parserError?.localizedDescription)
    }

}

并从主包中:

func startParsingFile(fileName: String, fileType: String) {
    guard let urlPath = Bundle.main.path(forResource: fileName, ofType: fileType) else {
        print("Can't load file \(fileName).\(fileType)")
        return
    }
    guard let url:URL = URL(string: urlPath) else {
        print("Error on create URL to read file")
        return
    }
    self.xmlParser = XMLParser(contentsOf: url)
    self.xmlParser.delegate = self
    let result = self.xmlParser.parse()
    print("parse from file result: \(result)")
    if result == false {
        print(xmlParser.parserError?.localizedDescription)
    }
}

从应用程序包加载时出错:

parse from file result: false
Optional("The operation couldn’t be completed. (Cocoa error -1.)")
4

1 回答 1

1

你是说:

guard let urlPath = Bundle.main.path(forResource: fileName, ofType: fileType) else {
    print("Can't load file \(fileName).\(fileType)")
    return
}
guard let url:URL = URL(string: urlPath) else {
    print("Error on create URL to read file")
    return
}

首先,将字符串路径转换为 ​​URL 是非常愚蠢的。你知道你想要一个 URL,那你为什么不先打电话url(forResource:...)呢?

其次,如果您确实将字符串路径转换为 ​​URL,则必须创建文件URL

于 2016-10-28T03:45:31.397 回答