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I wrote a program which involves use of switch statements... However on compilation it shows:

Error: Jump to case label.

Why does it do that?

#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;
}
share|improve this question
1  
Can you provide error code? –  Anton Semenov Apr 16 '11 at 9:06
1  
What code are you trying to compile? What compiler are you using? Have you enclosed each case block in braces? –  Cody Gray Apr 16 '11 at 9:10
    
that's one impressively roundabout error message –  jozxyqk Aug 28 '13 at 7:34

2 Answers 2

up vote 108 down vote accepted

The problem is that variables declared in one case are still visible in the subsequent cases unless an explicit { } block is used, but they will not be initialized because the initialization code belongs to another case.

In the following code, if foo equals 1, everything is ok, but if it equals 2, we'll accidentally use the i variable which does exist but probably contains garbage.

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!
}

Wrapping the case in an explicit block solves the problem:

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

To further elaborate, switch statements are just a particularly fancy kind of a goto. Here's an analoguous piece of code exhibiting the same issue but using a goto instead of a switch:

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;
}
share|improve this answer
    
See this fixed LLVM bug report for other explanations: llvm.org/bugs/show_bug.cgi?id=7789 –  Francesco Apr 16 '11 at 9:35
    
Great answer! really clear up my mind on this. –  ls. Jun 27 '11 at 11:32

Declaration of new variables in case statements is what causing problems. Enclosing all case statements in {} will limit the scope of newly declared variables to the currently executing case which solves the problem.

switch(choice)
{
    case 1: {
       // .......
    }break;
    case 2: {
       // .......
    }break;
    case 3: {
       // .......
    }break;
}    
share|improve this answer
    
cleaner fix instruction –  yc_yuy Jan 15 '14 at 9:43

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