我实际上是根据昨天删除的问题改编这个问题。
输入:一个字符串,包含逗号分隔的单词,逗号后有空格。
输出:单词。
“干净”是指不依赖于根据代码的意图将临时变量存储到没有理由存在的变量中的东西。
我的尝试
#include <iostream>
#include <range/v3/view/split.hpp>
#include <range/v3/view/split_when.hpp>
#include <range/v3/view/transform.hpp>
#include <range/v3/view/trim.hpp>
#include <string>
#include <vector>
auto constexpr is = [](char c){
return [c](char c_){ return c_ == c; };
};
using namespace ranges::views;
int main()
{
std::string ss{"cccccciao"};
// correctly prints [i,a,o]
std::cout << (ss | trim(is('c'))) << std::endl;
std::string s = "blue, green, red";
std::cout << split_when(s, is(',')) << std::endl;
std::vector<std::string> vs;
vs.push_back(ss);
vs.push_back(ss);
// correctly prints [[i,a,o],[i,a,o]]
std::cout << (vs | transform(trim(is('c')))) << std::endl;
// doesn't work
//auto result0 = split_when(s, is(',')) | transform(trim(is(' ')));
//auto result1 = transform(split_when(s, is(',')), trim(is(' ')));
// doesn't work either
auto sss = split_when(s, [](char c){ return c == ','; });
//auto result2 = transform(sss, trim([](char c){ return c == ' '; }));
//auto result3 = sss | transform(trim([](char c){ return c == ' '; }));
}
基于最小惊讶的原则,我预计像这样的 oneliner 应该可以工作,
auto result0 = s | split_when(is(',')) | transform(trim(is(' ')));
但事实并非如此。