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Im still learning C and I have a question regarding char arrays, malloc and structures. I have the following structure.

Function prototype

typedef struct example1{
 char *name[20];
 int ex_id;
 int count;
}example;

In main.c

example *info;
info=(example *)malloc(sizeof(example));
info->name=(char *)malloc(sizeof(char));

printf("Enter ID: ");
scanf("%d", &info[info->count].ex_id);

printf("Enter Name of ID: ");
scanf("%s", info->name[info->count];
getchar();

So my problem is I can't seem to malloc char *name[20] inside my structure. What I want to do with this variable is dynamically store the number of names with a fix strength length of 20 characters. So basically what I want to store is something like this.

info->name[0]="name1";

info->name[1]="name2";

etc...

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1 Answer 1

up vote 0 down vote accepted

char *name[20]; this is an array of char*. But

info->name=(char *)malloc(sizeof(char));

You are allocating just one byte that the char* array elements point to. Allocate 20 bytes for each of the index, as you mentioned:

for (i=0;i<20;i++) 
{
    info->name[i]=(char *)malloc(sizeof(char)*20); 
}

Also, you are treating your struct pointer info as an array:

scanf("%d", &info[info->count].ex_id);

You can't do this, because: info->count is not initialized & holds garbage value. And, you have allocated space for just one object of your struct by:

info=(example *)malloc(sizeof(example));

which makes &info[info->count] valid only when info->count=0, for the rest you have not allocated any space.

share|improve this answer
    
Thank you broken foot that worked out really well. I forgot I also needed to allocate space. –  user2816227 Mar 13 at 21:12
    
Glad could help. Traditionally you up-vote when you like an ans. :) –  brokenfoot Mar 13 at 21:14
    
I don't have enough points to vote up or else I would xD –  user2816227 Mar 13 at 22:04

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