在Swift 2.0中无法使用类型为(String,[String])的参数列表调用`j
发布时间:2020-12-14 05:37:11 所属栏目:百科 来源:网络整理
导读:var specializationTitles = ["a","b","c","d"]let outputString = join(" / ",specializationTitles) 发生错误: Cannot invoke join with an argument list of type (String,[String]) 如何解决这个问题? let separator = " / "let outputString = separa
var specializationTitles = ["a","b","c","d"]
let outputString = join(" / ",specializationTitles)
发生错误:
如何解决这个问题? let separator = " / " let outputString = separator.join(specializationTitles) 与Xcode7beta6: specializationTitles.joinWithString(" / ")
使用Xcode7发布版本: specializationTitles.joinWithSeparator(" / ")
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