Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.
int main()
{
int a = 0;
int BUFSIZE = 1000;
char *string1[20];
FILE *fp1 = fopen("input1.txt", "r");
if (fp1 == 0)
{
    fprintf(stderr, "Error while opening");
    return 0;
}
string1[a] = (char *)malloc(BUFSIZE);
while (fgets(string1[a], BUFSIZE, fp1)!=NULL)
{
    a++;
    string1[a] = (char *)malloc(BUFSIZE);
} 
printf("%c", string1[3]);
}

Hi, I get the above code, which reads a string from a text file and store it in an array. Now I want to output a certain element of array string1, but apparently printf doesn't work. Besides, what does char *string1[20] exactly define? Does it have something to do with pointer? Thank you!

share|improve this question
    
Not something,it has everything to do with pointers. –  Mukul Goel Nov 10 '12 at 19:16

5 Answers 5

up vote 6 down vote accepted
char *string1[20]

declares an array, named string1, of 20 pointers to char. Thus string1[3] is a pointer to char, and not a char, as would be required for the %c format.

Since string1[3] was - if at all - filled via fgets, it contains a 0-terminated string, so you can print it out using

printf("%s\n", string1[3]);

If you want to print a single character, you'd use

printf("%c\n", string1[3][4]);

for example.

share|improve this answer
    
It doesn't work...my program breaks when debugging –  phil Nov 10 '12 at 19:53
    
And 20 means 20 pointers to char? But string1 can store a string with a length longer than 20, right? I once edited input1.txt, typed a very long string, and the code can still read it correctly, why? –  phil Nov 10 '12 at 19:55
    
What, exactly, doesn't work? Of course you must not print out string1[i] if that hasn't been filled with a 0-terminated string by fgets (and been allocated enough memory before). –  Daniel Fischer Nov 10 '12 at 19:55
    
Both printf("%s\n", string1[3]); and printf("%c\n", string1[3][4]); make the program break...string1 was filled via fgets –  phil Nov 10 '12 at 20:00
1  
string1 can hold 20 pointers to char. Each of them can be a pointer to a single char or, more commonly, a pointer to a block of memory that is used as an array of chars. After you allocated string1[a] = malloc(BUFSIZE);, check whether malloc returned NULL, if not, string1[a] now contains a pointer to a memory block large enough to hold BUFSIZE chars, for example a 0-terminated string of length at most BUFSIZE-1 (not counting the 0-terminator). If you then call fgets(string1[a], BUFSIZE, fp1);, and that doesn't return NULL, the memory block then contains a C-string. –  Daniel Fischer Nov 10 '12 at 20:01

char *string[20]; Is a array of pointers to char, it can be used to store latter on an array of "strings". I said "string" because in c you don't have the string type.

share|improve this answer
char* string1[20];

defines a pointer to a char array, which is not what you want. You want a char array.

If you remove the * in the declaration of string1 like this

char string1[20];

it should work.

Edit: Daniel Fisher is right...it's an array of pointers to char.
Nevertheless it is not clear, what you attempt to do.
If you want to just read the file into a single array, you could do this:

int BUFSIZE = 1000;
char string[BUFSIZE];
FILE *fp1 = fopen("input1.txt", "r");
if ( fp1 == 0 )
{
    fprintf(stderr, "Error while opening");
    return 0;
}
fgets(string1, BUFSIZE, fp1);
printf("%s", string1); // print the whole file content
printf("%c", string1[3]); // print the fourth character
share|improve this answer
    
No, it's an array of pointers to char. –  Daniel Fischer Nov 10 '12 at 19:17
    
You are right, actually I just need to read the file, which contains only one string, into a single array. Each element of the array should indicate a character, not a string. So the code I posted is not appropriate. I tried your code, but got no result...it just exited directly –  phil Nov 10 '12 at 20:35

char* defines a pointer to a char.

char string[20] defines an array of 20 chars.

char* string[5] defines an array of 5 char* or pointer to char.

If you have an array of char and you want to use it as a null terminated string for example, you need to take the address of the first element like so:

char array[20];
char* pointer = &array[0];

So in your case, char* string[20] is an array of char pointer.

share|improve this answer

It has everything to do with pointers.

To print value of string1 use the value at opperator *
Basically the string1 does not actually contain anything it points to the data. So you dont want the value of string1[20] , you want the value at it

 printf("%c", *string1[19]);

Should do

share|improve this answer
    
Try *string1[20] instead, and it might crash because the array as 20 elements and you're dereferencing the 21st element. –  Eric Fortin Nov 10 '12 at 19:29
    
Aaah..shoot.. Thanks for the correction sir.. ,:-D –  Mukul Goel Nov 10 '12 at 19:35
    
It is still not right, as of now, you are taking the address of the the 20th char pointer. –  Eric Fortin Nov 10 '12 at 19:47
    
Didn't work...I read a string with length 7, printf("%c", &string1[19]) gave me a meaningless value, then I tried printf("%c", &string1[3]), but got a blank. –  phil Nov 10 '12 at 19:52
    
@phil , you should not expect a meaningful value at 20th place whem you are reading a string of length 7 . The –  Mukul Goel Nov 10 '12 at 19:57

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.