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i am able to covert char to char* using below function

char* char_to_chars(char ch) {
    char ch2[10];
    ch2[0] = ch;
    char *ch3 = &ch2[0];
    return ch3;
}

and i am calling above function here it gives what i want but still there some problem and i don't know what's wrong with it

char *ch2=char_to_chars(ch);

but when i write cout<<ch2; it prints address

and when i write cout<<*ch2; it prints character that has been converted

i want to do like when i write cout<<ch2 it should print character that has been converted

what should i need change in my function or somewhere else

UPDATE

i am doing concatenation using this code.

char*lval = "bhavik";
char* concat(const char *nval) {
    int len = strlen(lval) + strlen(nval) + 1;
    char *temp = lval;
    lval = (char*) malloc(len * sizeof (char));
    strcpy(lval, temp);
    strcat(lval, nval);
    return lval;
}

is this good ?

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closed as off-topic by Code-Apprentice, GManNickG, rightfold, jman, Shafik Yaghmour Jul 4 '13 at 23:16

This question appears to be off-topic. The users who voted to close gave this specific reason:

  • "Questions must demonstrate a minimal understanding of the problem being solved. Tell us what you've tried to do, why it didn't work, and how it should work. See also: Stack Overflow question checklist" – GManNickG, Community, jman, Shafik Yaghmour
If this question can be reworded to fit the rules in the help center, please edit the question.

10  
Returning a pointer to a non-static local variable is pointless because dereferencing it is undefined behavior. –  user142019 Jul 3 '13 at 18:38
2  
Use std::string and call it a day. –  Etienne de Martel Jul 3 '13 at 18:41
6  
@BhavikPatel In that case, I suggest you read a good book about C++ to help you grasp pointers and other basic concepts of C++. –  user142019 Jul 3 '13 at 18:41
5  
What is the purpose of converting a char to a char*? –  Code-Apprentice Jul 3 '13 at 18:42
2  
@BhavikPatel you probably want to fix that then, that's by far the better solution. –  Michael Rawson Jul 3 '13 at 19:19

3 Answers 3

up vote 1 down vote accepted

The problem is that you initialize the ch2 array in the stack (as a local variable). When the function returns, the stack frame is cleaned, which "deletes" your array (in reality the stack frame is cleaned off, and is used in other function calls and local variables, gets overwritten with other values, so the pointer you return will point to junk). You need to malloc the array in heap.

This way uses the heap:

char* char_to_chars(char ch) {
    char *ch2 = malloc(10 * sizeof(char));
    ch2[0] = ch;
    return ch2;
}

If you want to concatenate two char*'s, you can use the builtin strcat and strncat functions. Just watch out that you have enough memory allocated.

share|improve this answer
    
done using your code,this is what i actually wanted –  Bhavik Patel Jul 3 '13 at 18:43
1  
Why the -1? How can I improve my post? –  jh314 Jul 3 '13 at 18:44
    
Considering the OP comment on concatenation, I don't think this really solves his problem. –  Shafik Yaghmour Jul 3 '13 at 18:48
1  
@BhavikPatel: Does this solve your problem? Now you have a resource management problem. You have to call free() to release this allocated memory at some point. –  Blastfurnace Jul 3 '13 at 18:56
2  
+1 since I don't think a -1 as score is justified for this answer. –  Layne Jul 3 '13 at 19:08

After discussion in the comments to the OP, it seems that you are asking about the wrong problem. From what I understand, you want to concat the char on the end of an existing char*. If the char* points to a null-terminated string (commonly called a C-string), then you should simply copy the char to the end of the existing C-string and move the NULL character to the location just after the added char. Be sure that you actually have allocated enough memory to the char* so that you can leagally do this.

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+1 for actually understanding the root issue. –  Shafik Yaghmour Jul 3 '13 at 18:51
    
ok let's go more inside see my updated question –  Bhavik Patel Jul 3 '13 at 18:56

When you run cout<<ch2; you aren't outputting the value it is pointing to, you are outputting the address of that value in memory. It is not possible for you to print out the value being pointed to without dereferencing the pointer by running cout << *ch2;

There are also a few tips I want to share with you. Firstly, I would highly recommend giving your variables better names than ch1, ch2, ch3, etc. That's just sloppy and it doesn't scale at all. Secondly, your function does a lot of unnecessary actions. Try doing it this way:

char* char_to_chars(char ch) {
char* convertedChar = new char;
*convertedChar = ch;
return convertedChar;
}

This creates a new pointer and allocates space on the heap to store a value. This is a much clearer and efficient way to convert a char into a pointer. However, you could also do it without a function:

char* somePointer = &yourCharToConvert;

But long story short, if you are trying to output the value stored in the pointer just by typing cout<<ch2;, thats not gonna work

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