I need to use sprintf() to do padding space character in string, however, I hope that the length of the padding can be changed with the length of the string.
The sample code function pcMsgPadding, I want to change left-justify width in sprintf, width depends on iLen.
It’s now a fixed width of 20.
What should i do or is there any other way?
Sample Code:
#define LCD_COLUMNS 20
char *pcMsgPadding(int iLen, const char* pcMsg)
{
char *pcBuf = (char*) malloc(LCD_COLUMNS*sizeof(char));
sprintf(pcBuf, "%-20s", pcMsg);
return pcBuf;
}
void vDisplay(const char* pcMsg)
{
printf(pcMsg);
}
void main()
{
vDisplay(pcMsgPadding(15, "Test Message"));
}
Change it to sprintf(pcBuf, "%*s", iLen, pcMsg);.
The whole program with some problems fixed (added includes, removed the malloc cast, you should not use a variable as first parameter in printf, main must return int):
#include <stdio.h>
#include <stdlib.h>
#define LCD_COLUMNS 20
char *pcMsgPadding(int iLen, const char* pcMsg)
{
char *pcBuf = malloc(LCD_COLUMNS*sizeof(char));
sprintf(pcBuf, "%*s", iLen, pcMsg);
return pcBuf;
}
void vDisplay(const char* pcMsg)
{
printf("%s", pcMsg);
}
int main(void) {
vDisplay(pcMsgPadding(15, "Test Message"));
return 0;
}
Related
I'm totally new in C and I want to write a function :
#include <unistd.h> //import write...
void ft_putchar(char str[20]) {
write(1, &str, 19);
}
char main() {
char str2[20] = "GeeksforGeeks";
ft_putchar(str2[20]);
return(0);
}
Hope this will help you a bit :)
#include <unistd.h> //import write...
void ft_putchar(char *str) { // the size of the buffer is not required
write(1, str, strlen(str)); // 2nd argument is a char*, not a char **
// 3rd one is the actual length of your
// string, not the size of the buffer
}
int main() {
char str2[20] = "GeeksforGeeks";
ft_putchar(str2); // the size of the buffer is not required
return(0);
}
Its a simple input that I want to make for char*. Why is this not working?
It throws me an exception that I can't resolve..
#include "stdafx.h"
#include "stdio.h"
#include "stdlib.h"
char* GetCharSeq()
{
char *s = (char*)malloc(100);
scanf_s("%s", s);
return s;
}
int main()
{
char* charseq;
charseq = GetCharSeq();
return 0;
}
You have undefined behavior in your code. You have it because you provide to few arguments to the scanf_s function.
For every string argument, you need to provide not only the destination string but also the size of the string. So change your call to
scanf_s("%s", s, 100);
modify your code
char* GetCharSeq()
{
char *s = (char*)malloc(100);
gets(s);
return s;
}
This will work.
Here's the code:
#include <stdio.h>
#include <string.h>
void print (void*);
int main (void)
{
char *a = "Mcwhat";
print(&a);
printf("\n%s", a);
return 0;
}
void print (void *text)
{
char* pchar[5];
*pchar = (char*)text;
strcpy( *pchar, "Mcthat" );
}
I am trying to make Mcwhat into Mcthat using a void parameter, but the printf gives me a segmentation fault afterwards. Where is my mistake? I managed to do it char by char but now I want to change the whole string. Didn't found enough material on this in the books on C I have.
Keep it simple and pay attention to the type of your variables :
#include <stdio.h>
#include <string.h>
void print (void*);
int main()
{
char a[] = "Mcwhat"; // a is now a read-write array
print(a); // a decays to a pointer, don't take its adress or you'll get a pointer-to-pointer
printf("\n%s", a);
return 0;
}
void print (void *text)
{
strcpy( text, "Mcthat" ); // Don't dereference text here
}
Note that this "print" function is unsafe in all imaginable ways, but that wasn't the question.
There are lot of issues in your code:
1. Char array should be big enough to store the string. char[5] cannot hold Mswhat.
2. char* pchar [5] declares 5 char pointers, whereas you need one char pointer pointing to a char array.
I have corrected it.
#include <stdio.h>
#include <string.h>
void print (char*);
int main (void)
{
char *a = malloc(10);
strcpy(a,"Mcwhat");
print(a);
printf("\n%s", a);
free(a);
return 0;
}
void print (char *text)
{
char *pchar = text;
strcpy( pchar, "Mcthat" );
}
Just write it like that
void print (char *text)
{
strcpy( text, "Mcthat" );
}
But make sure, the that size of text is large enough to put "Mcthat" inside it.
Also in main:
print(a);
instead of
print(&a); // would requite void print (char** text)
tho whole shebang:
#include <stdio.h>
#include <string.h>
#include <stdlib.h>
void print (void*);
int main (void)
{
char *a = malloc(strlen("Mcwhat")+1);
print(a);
printf("\n%s\n", a);
free(a);
return 0;
}
void print (void *text)
{
strcpy(text, "Mcthat" );
}
This question already has answers here:
Passing address of array as a function parameter
(6 answers)
Closed 9 years ago.
I'm writing a function that gets a string, allocates memory on the heap that's enough to create a copy, creates a copy and returns the address of the beginning of the new copy.
In main I would like to be able to print the new copy and afterwards use free() to free the memory. I think the actual function works although I am not the char pointer has to be static, or does it?
The code in main does not work fine...
#include <stdint.h>
#include <stdlib.h>
#include <stdio.h>
#include <math.h>
int make_copy(char arr[]);
int main()
{
char arrr[]={'a','b','c','d','e','f','\0'};
char *ptr;
ptr=make_copy(arrr);
printf("%s",ptr);
getchar();
return 0;
}
int make_copy(char arr[])
{
static char *str_ptr;
str_ptr=(char*)malloc(sizeof(arr));
int i=0;
for(;i<sizeof str_ptr/sizeof(char);i++)
str_ptr[i]=arr[i];
return (int)str_ptr;
}
OK, so based on the comments. A revised version:
#include <stdint.h>
#include <stdlib.h>
#include <stdio.h>
char* make_copy(char arr[]);
int main()
{
char arrr[]={"abcdef\0"};
char *ptr=make_copy(arrr);
printf("%s",ptr);
getchar();
return 0;
}
char* make_copy(char arr[])
{
static char *str_ptr;
str_ptr=(char*)malloc(strlen(arr)+1);
int i=0;
for(;i<strlen(arr)+1;i++)
str_ptr[i]=arr[i];
return str_ptr;
}
Or even better:
#include <stdint.h>
#include <stdlib.h>
#include <stdio.h>
#include <string.h>
char* make_copy(char arr[]);
int main()
{
char arrr[]={"abcdef\0"};
printf("%s",make_copy(arrr));
getchar();
return 0;
}
char* make_copy(char arr[])
{
char *str_ptr;
str_ptr=(char*)malloc(strlen(arr)+1);
return strcpy(str_ptr,arr);
}
You're on the right track, but there are some issues with your code:
Don't use int when you mean char *. That's just wrong.
Don't list characters when defining a string, write char arrr[] = "abcdef";
Don't scale string alloations by sizeof (char); that's always 1 so it's pointless.
Don't re-implement strcpy() to copy a string.
Don't cast the return value of malloc() in C.
Don't make local variables static for no reason.
Don't use sizeof on an array passed to a function; it doesn't work. You must use strlen().
Don't omit including space for the string terminator, you must add 1 to the length of the string.
UPDATE Your third attempt is getting closer. :) Here's how I would write it:
char * make_copy(const char *s)
{
if(s != NULL)
{
const size_t size = strlen(s) + 1;
char *d = malloc(size);
if(d != NULL)
strcpy(d, s);
return d;
}
return NULL;
}
This gracefully handles a NULL argument, and checks that the memory allocation succeeded before using the memory.
First, don't use sizeof to determine the size of your string in make_copy, use strlen.
Second, why are you converting a pointer (char*) to an integer? A char* is already a pointer (a memory address), as you can see if you do printf("address: %x\n", ptr);.
sizeof(arr) will not give the exact size. pass the length of array to the function if you want to compute array size.
When pass the array to function it will decay to pointer, we cannot find the array size using pointer.
#include <stdio.h>
#include <string.h>
#include <stdlib.h>
char *strdup(const char *str)
{
char *s = (char*)malloc(strlen(str)+1);
if (s == NULL) return NULL;
return strcpy(s, str);
}
int main()
{
char *s = strdup("hello world");
puts(s);
free(s);
}
Points
~ return char* inside of int.
~ you can free the memory using below line
if(make_copy!=NULL)
free(make_copy)
Below is the modified code.
#include <stdint.h>
#include <stdlib.h>
#include <stdio.h>
#include <math.h>
char* make_copy(char arr[]);
int main()
{
char arrr[]={'a','b','c','d','e','f','\0'};
char *ptr;
ptr=make_copy(arrr,sizeof(arrr)/sizeof(char));
printf("%s",ptr);
printf("%p\n %p",ptr,arrr);
getchar();
return 0;
}
char* make_copy(char arr[],int size)
{
char *str_ptr=NULL;
str_ptr=(char*)malloc(size+1);
int i=0;
for(;i<size;i++)
str_ptr[i]=arr[i];
str_ptr[i]=0;
return str_ptr;
}
I want to return a string from a function (in the example funzione) to main. How to do this? Thank you!
#include <stdio.h>
#include <string.h>
#define SIZE (10)
/* TODO*/ funzione (void)
{
char stringFUNC[SIZE];
strcpy (stringFUNC, "Example");
return /* TODO*/;
}
int main()
{
char stringMAIN[SIZE];
/* TODO*/
return 0;
}
[EDITED] For those who need it, the complete version of the previous code (but without stringMAIN) is:
#include <stdio.h>
#include <stdlib.h>
#include <string.h>
#define SIZE (10)
char *funzione (void)
{
char *stringa = malloc(SIZE);
strcpy (stringa, "Example");
return stringa;
}
int main()
{
char *ptr = funzione();
printf ("%s\n", ptr);
free (ptr);
return 0;
}
A string is a block of memory of variable length, and C cannot returns such objects (at least not without breaking compatibility with code that assumes strings cannot be returned)
You can return a pointer to a string, and in this case you have two options:
Option 1. Create the string dynamically within the function:
char *funzione (void)
{
char *res = malloc (strlen("Example")+1); /* or enough room to
keep your string */
strcpy (res, "Example");
return res;
}
In this case, the function that receives the resulting string is responsible for deallocate the memory used to build it. Failure to do so will lead to memory leaks in your program.
int main()
{
char *str;
str = funzione();
/* do stuff with str */
free (str);
return 0;
}
Option 2. Create a static string inside your function and returns it.
char *funzione (void)
{
static char str[MAXLENGTHNEEDED];
strcpy (str, "Example");
return str;
}
In this case you don't need to deallocate the string, but be aware that you won't be able to call this function from different threads in your program. This function is not thread-safe.
int main()
{
char *str;
str = funzione();
/* do stuff with str */
return 0;
}
Note that the object returned is a pointer to the string, so on both methods, the variable that receives the result from funzione() is not a char array, but a pointer to a char array.
#include <stdio.h>
#include <string.h>
#define SIZE 10
const char *funzione (void){
const char *string = "Example";
if(strlen(string) >= SIZE)
return "";
return string;
}
int main(void){
char stringMAIN[SIZE];
strcpy(stringMAIN, funzione());
printf("%s", stringMAIN);
return 0;
}
You can do this as
char *funzione (void)
{
char *stringFUNC = malloc(SIZE);
strcpy (stringFUNC, "Example");
return stringFUNC;
}
In main, call it as
int main()
{
char stringMAIN[SIZE];
char *ptr = funzione ()
...
free(ptr);
return 0;
}