我有一个课 扩展 鼻流类。
Class A: public ostringstream
{
}
我想从该对象读取指定大小和特定偏移的数据。 所以尝试 :
A a_;
a_ << data1 << data2;
string datax(a_[offset], size);
但在字符串 Datax 语句中获取编译错误 。
error: no match for operator[] in ...
如何复制对象 a_ 中指定偏移和大小的数据? 我不想从对象 a_ 中删除数据 。
NOTE :该类由他人设计,不能修改。
我相信你可以用你的代码做得到:
a_ << data1 << data2;
string datax(&a_.str()[offset], size);
对我来说有点难看。 为什么不直接使用纯std::stringstream 来代替? (除非你有充分理由继承std::ostringstream 。
首先,从std::ostringstream 中产生的标准中没有任何东西能保证你的工作。你最好不要这样做。
其次,没有 operator [ < < abody> [] std:: ostringstream ,所以为什么 A 要有一个?
最后,您可以在 str () < code> a* /code > 上调用 a* /code >,并获得一个有缓冲内容的 std:::string 。我不知道这对您是否有帮助,您想要做什么并不完全清楚。
您需要调用 str () 方法 :
ostringstream oss (ostringstream::out);
oss << "abcdef";
string s = oss.str();
cout << s.substr(1, 3) << endl;
这个示例将输出“ bcd ” 。
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