我想创建一个程序,您可以在其中输入一些随机名称,然后在接下来的几行中输入father > son/daughter。然后程序将从第一个输入中搜索父亲。
示例:
mia ana
shane> ANA
输出将是:
ana<沙恩
这是我制作的节目(注意anak =孩子; ayah =父亲; nama =姓名):
using namespace std;
class status {
public:
string ayah, anak1, anak2, anak3;
status (const string& inayah="", const string& inanak1="", const string& inanak2="", const string& inanak3="") : ayah(inayah), anak1(inanak1), anak2(inanak2), anak3(anak3){}
};
class populasi {
string nama1, nama2, nama3, nama4, nama5, nama6;
public:
populasi (const string& innama1="",const string& innama2="",const string& innama3="", const string& innama4="",const string& innama5="",const string& innama6="")
: nama1(innama1), nama2(innama2), nama3(innama3), nama4(innama4), nama5(innama5), nama6(innama6){}
void cek(const status& x)
{
if( x.anak1() == nama1() ) cout << x.anak1() << " < " << x.ayah() << endl;
if( x.anak1() == nama2() ) cout << x.anak1() << " < " << x.ayah() << endl;
if( x.anak1() == nama3() ) cout << x.anak1() << " < " << x.ayah() << endl;
if( x.anak1() == nama4() ) cout << x.anak1() << " < " << x.ayah() << endl;
if( x.anak1() == nama5() ) cout << x.anak1() << " < " << x.ayah() << endl;
if( x.anak1() == nama6() ) cout << x.anak1() << " < " << x.ayah() << endl;
if( x.anak2 == nama1() ) cout << x.anak2() << " < " << x.ayah() << endl;
if( x.anak2 == nama2() ) cout << x.anak2() << " < " << x.ayah() << endl;
if( x.anak2 == nama3() ) cout << x.anak2() << " < " << x.ayah() << endl;
if( x.anak2 == nama4() ) cout << x.anak2() << " < " << x.ayah() << endl;
if( x.anak2 == nama5() ) cout << x.anak2() << " < " << x.ayah() << endl;
if( x.anak2 == nama6() ) cout << x.anak2() << " < " << x.ayah() << endl;
if( x.anak3 == nama1() ) cout << x.anak3() << " < " << x.ayah() << endl;
if( x.anak3 == nama2() ) cout << x.anak3() << " < " << x.ayah() << endl;
if( x.anak3 == nama3() ) cout << x.anak3() << " < " << x.ayah() << endl;
if( x.anak3 == nama4() ) cout << x.anak3() << " < " << x.ayah() << endl;
if( x.anak3 == nama5() ) cout << x.anak3() << " < " << x.ayah() << endl;
if( x.anak3 == nama6() ) cout << x.anak3() << " < " << x.ayah() << endl;
};
};
int main()
{
string nama1, nama2, nama3, nama4, nama5, nama6;
fscanf ( stdin, " %s %s %s %s %s %s", &nama1, &nama2, &nama3, &nama4, &nama5, &nama6);
populasi a (nama1, nama2, nama3, nama4, nama5, nama6);
string ayah, anak1, anak2, anak3;
fscanf ( stdin, " %s > %s %s %s", &ayah, &anak1, &anak2, &anak3);
status b ( ayah, anak1, anak2, anak3);
fscanf ( stdin, " %s > %s %s %s", &ayah, &anak1, &anak2, &anak3);
status c ( ayah, anak1, anak2, anak3);
fscanf ( stdin, " %s > %s %s %s", &ayah, &anak1, &anak2, &anak3);
status d ( ayah, anak1, anak2, anak3);
fscanf ( stdin, " %s > %s %s %s", &ayah, &anak1, &anak2, &anak3);
status e ( ayah, anak1, anak2, anak3);
fscanf ( stdin, " %s > %s %s %s", &ayah, &anak1, &anak2, &anak3);
status f ( ayah, anak1, anak2, anak3);
fscanf ( stdin, " %s > %s %s %s", &ayah, &anak1, &anak2, &anak3);
status g ( ayah, anak1, anak2, anak3);
a.cek(b);
a.cek(c);
a.cek(d);
a.cek(e);
a.cek(f);
a.cek(g);
return 0;
}
答案 0 :(得分:1)
可悲的是,你真的以非常“C”的方式处理这个问题,并错过了C ++标准库的解析输入,存储文本和关联容器的工具(可以存储与“keys”关联的值)然后通过指定相同的“密钥”来找到它们。)
鉴于每个人只有一种与他们相关的数据 - 他们的名字 - 在这个程序中不需要或受益于用户定义的类。 std::string类可以轻松存储其名称。您的类存储了多个名称,但C ++标准库容器能够更好地执行此操作。
#include <sstream>
#include <iostream>
#include <map>
int main()
{
std::string first_line;
if (!getline(std::cin, line))
{
std::cerr << "failed to read a line of names\n";
return 1;
}
// read and remember father/child relationships...
typedef std::map<std::string, std::string> Map;
Map child_to_father;
std::string father, child;
char c = '>';
while (iss >> father >> c && c == '>' && iss >> child)
child_to_father[child] = father;
if (!is.eof() || is.bad() || c != '>')
{
std::cerr << "error reading 'father > child' line\n";
return 1;
}
// now report the matches for names on the first line...
std::istringstream iss(first_line);
while (iss >> child)
{
Map::const_iterator i = child_to_father.find(name);
if (i != child_to_father.end())
std::cout << child << " < " << father << '\n';
}
}