Anahtarı kullanımını içeren bir program deyimleri yazdım... Ancak derleme gösterir:

Hata: örnek etiket Atlamak.

Bunu neden yapıyor?

#include <iostream>
#include <cstdlib>
#include <fstream>
#include <string>

using namespace std;

class contact
{
public:
    string name;
    int phonenumber;
    string address;
    contact() {
        name= "Noname";
        phonenumber= 0;
        address= "Noaddress";
    }
};

int main() {
    contact *d;
    d = new contact[200];
    string name,add;
    int choice,modchoice,t;//Variable for switch statement
    int phno,phno1;
    int i=0;
    int initsize=0, i1=0;//i is declared as a static int variable
    bool flag=false,flag_no_blank=false;

    //TAKE DATA FROM FILES.....
    //We create 3 files names, phone numbers, Address and then abstract the data from these files first!
    fstream f1;
    fstream f2;
    fstream f3;
    string file_input_name;
    string file_input_address;
    int file_input_number;

    f1.open("./names");
    while(f1>>file_input_name){
        d[i].name=file_input_name;
        i  ;
    }
    initsize=i;

    f2.open("./numbers");
    while(f2>>file_input_number){
        d[i1].phonenumber=file_input_number;
        i1  ;
    }
    i1=0;

    f3.open("./address");
    while(f3>>file_input_address){
        d[i1].address=file_input_address;
        i1  ;
    }

    cout<<"\tWelcome to the phone Directory\n";//Welcome Message
    do{
        //do-While Loop Starts
        cout<<"Select :\n1.Add New Contact\n2.Update Existing Contact\n3.Display All Contacts\n4.Search for a Contact\n5.Delete a  Contact\n6.Exit PhoneBook\n\n\n";//Display all options
        cin>>choice;//Input Choice from user

        switch(choice){//Switch Loop Starts
        case 1:
            i  ;//increment i so that values are now taken from the program and stored as different variables
            i1  ;
            do{
                cout<<"\nEnter The Name\n";
                cin>>name;
                if(name==" "){cout<<"Blank Entries are not allowed";
                flag_no_blank=true;
                }
            }while(flag_no_blank==true);
            flag_no_blank=false;
            d[i].name=name;
            cout<<"\nEnter the Phone Number\n";
            cin>>phno;
            d[i1].phonenumber=phno;
            cout<<"\nEnter the address\n";
            cin>>add;
            d[i1].address=add;
            i1  ;
            i  ;
            break;//Exit Case 1 to the main menu
        case 2:
            cout<<"\nEnter the name\n";//Here it is assumed that no two contacts can have same contact number or address but may have the same name.
            cin>>name;
            int k=0,val;
            cout<<"\n\nSearching.........\n\n";
            for(int j=0;j<=i;j  ){
                if(d[j].name==name){
                    k  ;
                    cout<<k<<".\t"<<d[j].name<<"\t"<<d[j].phonenumber<<"\t"<<d[j].address<<"\n\n";
                    val=j;
                }
            }
            char ch;
            cout<<"\nTotal of "<<k<<" Entries were found....Do you wish to edit?\n";
            string staticname;
            staticname=d[val].name;
            cin>>ch;
            if(ch=='y'|| ch=='Y'){
                cout<<"Which entry do you wish to modify ?(enter the old telephone number)\n";
                cin>>phno;
                for(int j=0;j<=i;j  ){
                    if(d[j].phonenumber==phno && staticname==d[j].name){
                        cout<<"Do you wish to change the name?\n";
                        cin>>ch;
                        if(ch=='y'||ch=='Y'){
                            cout<<"Enter new name\n";
                            cin>>name;
                            d[j].name=name;
                        }
                        cout<<"Do you wish to change the number?\n";
                        cin>>ch;
                        if(ch=='y'||ch=='Y'){
                            cout<<"Enter the new number\n";
                            cin>>phno1;
                            d[j].phonenumber=phno1;
                        }
                        cout<<"Do you wish to change the address?\n";
                        cin>>ch;
                        if(ch=='y'||ch=='Y'){
                            cout<<"Enter the new address\n";
                            cin>>add;
                            d[j].address=add;
                        }
                    }
                }
            }
            break;
        case 3 : {
            cout<<"\n\tContents of PhoneBook:\n\n\tNames\tPhone-Numbers\tAddresses";
            for(int t=0;t<=i;t  ){
                cout<<t 1<<".\t"<<d[t].name<<"\t"<<d[t].phonenumber<<"\t"<<d[t].address;
            }
            break;
                 }
        }
    }
    while(flag==false);
    return 0;
}

Sorun değişkenler case { }açık bir blok kullanılmadığı sürece hala case sonraki s görünür bir ilanama başlatılmayacakbaşlatma kodu case bir başkasına ait çünkü.

Eğer foo eşitse aşağıdaki kodda, 1, Her şey tamam, ama eğer 2, Biz eşitse var ama muhtemelen çöp içeren yanlışlıkla i değişken kullanın.

switch(foo) {
  case 1:
    int i = 42; // i exists all the way to the end of the switch
    dostuff(i);
    break;
  case 2:
    dostuff(i*2); // i is *also* in scope here, but is not initialized!
}

Açık bir blok durumunda kaydırma sorunu çözer:

switch(foo) {
  case 1:
    {
        int i = 42; // i only exists within the { }
        dostuff(i);
        break;
    }
  case 2:
    dostuff(123); // Now you cannot use i accidentally
}

Edit

Daha fazla ayrıntı için, switch cümleler goto özellikle süslü bir tür. İşte kod analoguous bir parça aynı sorunu sergileyen ama bir switch yerine: goto kullanarak

int main() {
    if(rand() % 2) // Toss a coin
        goto end;

    int i = 42;

  end:
    // We either skipped the declaration of i or not,
    // but either way the variable i exists here, because
    // variable scopes are resolved at compile time.
    // Whether the *initialization* code was run, though,
    // depends on whether rand returned 0 or 1.
    std::cout << i;
}