C ++模板名稱漂亮打印
[英]C++ template name pretty print
問題描述
我需要打印縮進的模板名稱以進行調試。 例如,我想縮寫名稱,而不是單行:
boost::phoenix::actor<
boost::phoenix::composite<
boost::phoenix::less_eval,
boost::fusion::vector<
boost::phoenix::argument<0>,
boost::phoenix::argument<1>,
我開始寫自己的但是變得復雜了。 有現成的解決方案嗎?
如果沒有,你能幫我完成我的實施嗎? 如果是的話,我會發布它。
謝謝
這就是typeid.name的樣子,
boost::phoenix::actor<boost::phoenix::composite<boost::phoenix::less_eval,
boost::fusion::vector<boost::phoenix::argument<0>,
boost::phoenix::composite<boost::phoenix::multiplies_eval,
boost::fusion::vector<boost::phoenix::argument<1>, boost::phoenix::argument<2>,
boost::fusion::void_, boost::fusion::void_, boost::fusion::void_,
boost::fusion::void_, boost::fusion::void_, boost::fusion::void_,
boost::fusion::void_, boost::fusion::void >, boost::fusion::void_,
boost::fusion::void_, boost::fusion::void_, boost::fusion::void_,
boost::fusion::void_, boost::fusion::void_, boost::fusion::void_,
boost::fusion::void_> > >
這是我的目標
6 boost::phoenix::actor<
7 boost::phoenix::composite<
8 boost::phoenix::less_eval,
9 boost::fusion::vector<
10 boost::phoenix::argument<0>,
11 boost::phoenix::composite<
12 boost::phoenix::multiplies_eval,
13 boost::fusion::vector<
14 boost::phoenix::argument<1>,
15 boost::phoenix::argument<2>,
16 boost::fusion::void_,
17 boost::fusion::void_,
18 boost::fusion::void_,
19 boost::fusion::void_,
20 boost::fusion::void_,
21 boost::fusion::void_,
22 boost::fusion::void_,
23 boost::fusion::void >, // indentation messed up
24 boost::fusion::void_,
25 boost::fusion::void_,
26 boost::fusion::void_,
27 boost::fusion::void_,
28 boost::fusion::void_,
29 boost::fusion::void_,
30 boost::fusion::void_,
31 boost::fusion::void_
32 >
33 >
34 >
這樣我才能真正閱讀宣言
3 個解決方案
解決方案1
2 2010-05-22 04:54:20
gf程序的微調,主要不是拆分短模板
#ifndef PRETTY_NAME_HPP
#define PRETTY_NAME_HPP
#include <typeinfo>
#include <string>
#include <iostream>
#include <cxxabi.h>
#define TYPENAME(TYPE) typeid_name(typeid(TYPE).name())
std::string indent(std::string str, const std::string &indent = " ") {
std::string indent_ = std::string("\n");
size_t token = 0;
bool one_line = false;
while ((token = str.find_first_of("<>,", token)) != std::string::npos) {
size_t size = str.size();
size_t close, open, comma;
switch(str[token]) {
case '<':
close = str.find(">", token+1);
open = str.find("<", token+1);
comma = str.find(",", token+1);
one_line = !(close > open) && !(comma < close);
if (one_line) break;
indent_.append(indent);
case ',':
str.insert(token + 1, indent_);
break;
case '>':
if (!one_line) {
indent_.erase(indent_.size() - indent.size());
str.insert(token, indent_);
}
one_line = false;
}
token += 1 + str.size() - size;
const size_t nw = str.find_first_not_of(" ", token);
if(nw != std::string::npos) {
str.erase(token, nw-token);
}
}
return str;
}
std::string typeid_name(const char* name) {
// #ifdef HAVE_CXA_DEMANGLE
size_t size;
int status;
char *buf = abi::__cxa_demangle(name, NULL, &size, &status);
if (status != 0) throw status;
std::string string(buf);
free(buf);
return indent(string);
// #else
// return name;
// #endif
}
#endif /* PRETTY_NAME_HPP */
解決方案2
2 2016-04-05 22:09:46
怎么樣,然后復制到剪貼板
$ xclip -o | clang-format
例如,這需要OP的模板
boost::phoenix::actor <
boost::phoenix::composite<
boost::phoenix::less_eval,
boost::fusion::vector<
boost::phoenix::argument<0>,
boost::phoenix::composite<
boost::phoenix::multiplies_eval,
boost::fusion::vector<
boost::phoenix::argument<1>, boost::phoenix::argument<2>,
boost::fusion::void_, boost::fusion::void_,
boost::fusion::void_, boost::fusion::void_,
boost::fusion::void_, boost::fusion::void_,
boost::fusion::void_, boost::fusion::void>,
boost::fusion::void_, boost::fusion::void_,
boost::fusion::void_, boost::fusion::void_,
boost::fusion::void_, boost::fusion::void_,
boost::fusion::void_, boost::fusion::void_> > >
不理想,因為它在某處有錯誤。 但是它很容易找到錯誤(在中間的void之后的額外>應該移動到最后)。 如果我們解決它,我們得到
boost::phoenix::actor<boost::phoenix::composite<
boost::phoenix::less_eval,
boost::fusion::vector<
boost::phoenix::argument<0>,
boost::phoenix::composite<
boost::phoenix::multiplies_eval,
boost::fusion::vector<
boost::phoenix::argument<1>, boost::phoenix::argument<2>,
boost::fusion::void_, boost::fusion::void_,
boost::fusion::void_, boost::fusion::void_,
boost::fusion::void_, boost::fusion::void_,
boost::fusion::void_, boost::fusion::void, boost::fusion::void_,
boost::fusion::void_, boost::fusion::void_,
boost::fusion::void_, boost::fusion::void_,
boost::fusion::void_, boost::fusion::void_,
boost::fusion::void_>>>>>
解決方案3
1 已采納 2010-05-22 00:34:14
當然不是最優雅的作品,但這應該讓你了解結束標簽:
std::string indent(std::string str, const std::string &indent = " ") {
std::string indent_ = std::string("\n");
size_t token = 0;
while ((token = str.find_first_of("<>,", token)) != std::string::npos) {
switch(str[token]) {
case '<': indent_.append(indent);
case ',': str.insert(token + 1, indent_);
break;
case '>': indent_.erase(indent_.size() - indent.size());
str.insert(token, indent_);
}
token += indent_.size() + 1;
const size_t nw = str.find_first_not_of(" ", token);
if(nw != std::string::npos) {
str.erase(token, nw-token);
}
}
return str;
}
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