4

It is morse code program.
I am getting error of too many initializers for char b[]. How can I get rid of this error?

#include<iostream>
using namespace std;

int main(){
    char a[72]={'A','a','B','b','C','c','D','d','E','e','F','f','G','g','H','h','I','i','J','j','K','k','L','l','M','m','N','n','O','o','P','p','Q','q','R','r','S','s','T','t','U','u','V','v','W','w','X','x','Y','y','z','Z','0','1','2','3','4','5','6','7','8','9','.',',','?','\'','!','/','(',')','&','@'};
    char b[]={".-",".-","-...","-...","-.-.","-.-.","-..","-..",".",".","..-.","..-.","--.","--.","....","....","..","..",".---",".---","-.-","-.-",".-..",".-..","--","--","-.","-.","---","---",".--.",".--.","--.-","--.-",".-.",".-.","...","...","-","-","..-","..-","...-","...-",".--",".--","-..-","-..-","-.--","-.--","--..","--..","-----","-----",".----",".----","..---","..---","...--","...--","....-","....-",".....",".....","-....","-....","--...","--...","---..","---..","----.","----.",".-.-.-",".-.-.-","--..--","--..--","..--..","..--..",".----.",".----.","-.-.-","-.-.--","-..-.","-..-.","-.--.","-.--.","-.--.-","-.--.-",".-...",".-..."};

    char c[40]; 
    cout<<"Enter code ";
    cin.getline(c,40);
    for(int i=0;i<1;i++){
        for(int j=0;j<72;j++){ 
            if(b[j]==c[i]){
                cout<<a[j];
            }
        }
    }
    return 0;
}
5
  • 1
    I suggest using an std::map<char, std::string > for this. It will make it a lot easier. This way you'll be able to access the morse code for any character by charmap['a'] where charmap is your map of characters
    – olevegard
    Feb 5 '14 at 15:18
  • 3
    ".-" is in itself an array of chars.
    – user529758
    Feb 5 '14 at 15:18
  • As for your comment on Davids answer, if your teacher restricted you not to use strings, did you think about a possible solution not to use any strings for the morse codes representation? Have a look here to get a hint. Feb 5 '14 at 15:52
  • for(int i=0;i<1;i++) -- ?! Feb 5 '14 at 15:55
  • vote for my question cuz my account is blocked
    – Artiza Ali
    Feb 5 '14 at 17:32
10

You have said that b is an array of char. But you are supplying string literals rather than individual characters. It's impossible to know what you really mean to do. Perhaps you actually want b to be an array of strings:

const char* b[] = {".-", ".-", "-...", "-...", ...};
6
  • 1
    const char* b[] = {".-", ".-", "-...", "-...", ...}; will this work. I have to make program of Morse code but i am restricted by my instructor not to use string.
    – Artiza Ali
    Feb 5 '14 at 15:25
  • 1
    Does your instructor hate his students?! Not using string is really harmful. Anyway, it is what it is. Feb 5 '14 at 15:29
  • @ArtizaAli 'restricted by my instructor not to use string' One could follow the idea of the morse alphabet tree to solve the task without using any string literals. Feb 5 '14 at 15:31
  • he always give us challanging task
    – Artiza Ali
    Feb 5 '14 at 15:54
  • David the methode that u told me above is working but when i input a code in output the whole code
    – Artiza Ali
    Feb 5 '14 at 17:21
3

A char array cannot contain strings! You should initialize it with individual chars!

For example: char b[] = { 'I', 'O', 'U' };

When you desire string literals, you can use the following:

const char* b[] = { "II", "OO", "UU" };
2

Either b should be an array of const char* or you should put char in the initializer list instead of string literals.

const char* b[]={".-",".-", ...}

or

char b[] = {'a', 'b', ...};
1
  • plz inbox me the syntax. that you wanna tell me
    – Artiza Ali
    Feb 5 '14 at 15:28
1

You are not trying to store chars in b, but strings. Declare b as const char *b[72] = ... instead.

1
  • const char *b[], rather. String literals may not be modified.
    – user529758
    Feb 5 '14 at 15:19
0

write

static const char *a[72] =
{
    'A', 'a', 'B', 'b', 'C', 'c', 'D', 'd', 'E', 'e', 'F', 'f', 'G', 'g',
    'H', 'h', 'I', 'i', 'J', 'j', 'K', 'k', 'L', 'l', 'M', 'm', 'N', 'n',
    'O', 'o', 'P', 'p', 'Q', 'q', 'R', 'r', 'S', 's', 'T', 't', 'U', 'u',
    'V', 'v', 'W', 'w', 'X', 'x', 'Y', 'y', 'z', 'Z', '0', '1', '2', '3',
    '4', '5', '6', '7', '8', '9', '.', ',', '?', '\'', '!', '/', '(', ')',
    '&', '@'
};

static const char *b[] =
{
    ".-", ".-", "-...", "-...", "-.-.", "-.-.", "-..", "-..", ".", ".",
    "..-.", "..-.", "--.", "--.", "....", "....", "..", "..", ".---", ".---",
    "-.-", "-.-", ".-..", ".-..", "--", "--", "-.", "-.", "---", "---",
    ".--.", ".--.", "--.-", "--.-", ".-.", ".-.", "...", "...", "-", "-",
    "..-", "..-", "...-", "...-", ".--", ".--", "-..-", "-..-", "-.--", "-.--",
    "--..", "--..", "-----", "-----", ".----", ".----", "..---", "..---", "...--",
    "...--", "....-", "....-", ".....", ".....", "-....", "-....",
    "--...", "--...", "---..", "---..", "----.", "----.", ".-.-.-",
    ".-.-.-", "--..--", "--..--", "..--..", "..--..", ".----.", ".----.",
    "-.-.-", "-.-.--", "-..-.", "-..-.", "-.--.", "-.--.", "-.--.-", "-.--.-",
    ".-...", ".-..."
};

I think it will help you...

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