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So I'm getting this warning in the last line of this block of code I wrote.

int main(int argc, char **argv)   
{
 while(1) {
char buffer[400];
char str;

if(strcmp(argv[1],"start") == 0 )
    { printf("myshell: process has started \n");
            int i=0;
            while (str = strtok(buffer," ") == NULL) {          
            argv[i] = str;  //**This line causes the warning!

Is it because of how I declare str? Is that incorrect? Thank you!

As the title suggests, the warning is warning: assignment makes point from integer without cast.

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marked as duplicate by chollida, WhozCraig, Joseph Quinsey, Maroun Maroun, Anatoliy Nikolaev Feb 19 '14 at 7:31

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
Post the error please. –  Roecrew Feb 19 '14 at 2:37
    
You're assigning a char to a char*. And that shouldn't be the only warning/error you get in this. The previous line is just as bad, and doesn't do what you think it does. You're missing a set of parens. –  WhozCraig Feb 19 '14 at 2:38
    
@WhozCraig How can I fix this? I tried making char str into char *str but that's not it. Also, what makes you say about the more errors? I'm compiling my code and it's the only one I'm getting, should I be concerned? –  user3295674 Feb 19 '14 at 2:41
    
@user3295674 just because it compiles doesn't mean it is correct. Ex: the condition in your while-clause. It is assigning the expression strtok(buffer, " ") == NULL to a char variable. It is not assigning strtok(buffer, " ") to a char*, then testing for NULL. –  WhozCraig Feb 19 '14 at 2:50

2 Answers 2

up vote 0 down vote accepted

I'm not sure how this could result in a cast error but I do see an error in your code. The first call to strtok initializes the token'izer since you pass it a buffer. The second call, assuming you want it to find the next token, should have a null value instead of the same buffer.

Look at this example...

So what you want is:

...
int i=0;
str = strtok(buffer, " ");
do {          
    argv[i] = str;  //**This line causes the warning!
    ...
} while (str = strtok(NULL, " ") != NULL);
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...you also need to fix the "char str;" to "char* str" as WhozCriag mentions. –  John Yost Feb 19 '14 at 2:58
    
Would it need extra parenthesis around (str = strok(NULL, " ")) in the last line? Also, would this also work? int i=0; str = strtok(buffer, " "); while (str == NULL) { argv[i] = str; i = i+1; } –  user3295674 Feb 19 '14 at 3:04
    
Yes and no. "while (str == NULL) {..." would never enter the loop assuming the buffer had at least one space. The first call to strtok returns a pointer to the first string, not null. So I think you mean "while (str != NULL) {..." –  John Yost Feb 19 '14 at 3:06

The prototype of strtok() is char *strtok(char *str, const char *delim);, the return value of strtok() is char *, therefore the type of str should be char *.

What is more, str = strtok(buffer," ") == NULL means str = (strtok(buffer," ") == NULL), probably not what you want, I guess you mean (str = strtok(buffer," ")) == NULL.

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