Print an int in binary representation using C - c
I'm looking for a function to allow me to print the binary representation of an int. What I have so far is;
char *int2bin(int a)
{
char *str,*tmp;
int cnt = 31;
str = (char *) malloc(33); /*32 + 1 , because its a 32 bit bin number*/
tmp = str;
while ( cnt > -1 ){
str[cnt]= '0';
cnt --;
}
cnt = 31;
while (a > 0){
if (a%2==1){
str[cnt] = '1';
}
cnt--;
a = a/2 ;
}
return tmp;
}
But when I call
printf("a %s",int2bin(aMask)) // aMask = 0xFF000000
I get output like;
0000000000000000000000000000000000xtpYy (And a bunch of unknown characters.
Is it a flaw in the function or am I printing the address of the character array or something? Sorry, I just can't see where I'm going wrong.
NB The code is from here
EDIT: It's not homework FYI, I'm trying to debug someone else's image manipulation routines in an unfamiliar language. If however it's been tagged as homework because it's an elementary concept then fair play.
Here's another option that is more optimized where you pass in your allocated buffer. Make sure it's the correct size.
// buffer must have length >= sizeof(int) + 1
// Write to the buffer backwards so that the binary representation
// is in the correct order i.e. the LSB is on the far right
// instead of the far left of the printed string
char *int2bin(int a, char *buffer, int buf_size) {
buffer += (buf_size - 1);
for (int i = 31; i >= 0; i--) {
*buffer-- = (a & 1) + '0';
a >>= 1;
}
return buffer;
}
#define BUF_SIZE 33
int main() {
char buffer[BUF_SIZE];
buffer[BUF_SIZE - 1] = '\0';
int2bin(0xFF000000, buffer, BUF_SIZE - 1);
printf("a = %s", buffer);
}
A few suggestions:
null-terminate your string
don't use magic numbers
check the return value of malloc()
don't cast the return value of malloc()
use binary operations instead of arithmetic ones as you're interested in the binary representation
there's no need for looping twice
Here's the code:
#include <stdlib.h>
#include <limits.h>
char * int2bin(int i)
{
size_t bits = sizeof(int) * CHAR_BIT;
char * str = malloc(bits + 1);
if(!str) return NULL;
str[bits] = 0;
// type punning because signed shift is implementation-defined
unsigned u = *(unsigned *)&i;
for(; bits--; u >>= 1)
str[bits] = u & 1 ? '1' : '0';
return str;
}
Your string isn't null-terminated. Make sure you add a '\0' character at the end of the string; or, you could allocate it with calloc instead of malloc, which will zero the memory that is returned to you.
By the way, there are other problems with this code:
As used, it allocates memory when you call it, leaving the caller responsible for free()ing the allocated string. You'll leak memory if you just call it in a printf call.
It makes two passes over the number, which is unnecessary. You can do everything in one loop.
Here's an alternative implementation you could use.
#include <stdlib.h>
#include <limits.h>
char *int2bin(unsigned n, char *buf)
{
#define BITS (sizeof(n) * CHAR_BIT)
static char static_buf[BITS + 1];
int i;
if (buf == NULL)
buf = static_buf;
for (i = BITS - 1; i >= 0; --i) {
buf[i] = (n & 1) ? '1' : '0';
n >>= 1;
}
buf[BITS] = '\0';
return buf;
#undef BITS
}
Usage:
printf("%s\n", int2bin(0xFF00000000, NULL));
The second parameter is a pointer to a buffer you want to store the result string in. If you don't have a buffer you can pass NULL and int2bin will write to a static buffer and return that to you. The advantage of this over the original implementation is that the caller doesn't have to worry about free()ing the string that gets returned.
A downside is that there's only one static buffer so subsequent calls will overwrite the results from previous calls. You couldn't save the results from multiple calls for later use. Also, it is not threadsafe, meaning if you call the function this way from different threads they could clobber each other's strings. If that's a possibility you'll need to pass in your own buffer instead of passing NULL, like so:
char str[33];
int2bin(0xDEADBEEF, str);
puts(str);
Here is a simple algorithm.
void decimalToBinary (int num) {
//Initialize mask
unsigned int mask = 0x80000000;
size_t bits = sizeof(num) * CHAR_BIT;
for (int count = 0 ;count < bits; count++) {
//print
(mask & num ) ? cout <<"1" : cout <<"0";
//shift one to the right
mask = mask >> 1;
}
}
this is what i made to display an interger as a binairy code it is separated per 4 bits:
int getal = 32; /** To determain the value of a bit 2^i , intergers are 32bits long**/
int binairy[getal]; /** A interger array to put the bits in **/
int i; /** Used in the for loop **/
for(i = 0; i < 32; i++)
{
binairy[i] = (integer >> (getal - i) - 1) & 1;
}
int a , counter = 0;
for(a = 0;a<32;a++)
{
if (counter == 4)
{
counter = 0;
printf(" ");
}
printf("%i", binairy[a]);
teller++;
}
it could be a bit big but i always write it in a way (i hope) that everyone can understand what is going on. hope this helped.
#include<stdio.h>
//#include<conio.h> // use this if you are running your code in visual c++, linux don't
// have this library. i have used it for getch() to hold the screen for input char.
void showbits(int);
int main()
{
int no;
printf("\nEnter number to convert in binary\n");
scanf("%d",&no);
showbits(no);
// getch(); // used to hold screen...
// keep code as it is if using gcc. if using windows uncomment #include & getch()
return 0;
}
void showbits(int n)
{
int i,k,andmask;
for(i=15;i>=0;i--)
{
andmask = 1 << i;
k = n & andmask;
k == 0 ? printf("0") : printf("1");
}
}
Just a enhance of the answer from #Adam Markowitz
To let the function support uint8 uint16 uint32 and uint64:
#include <inttypes.h>
#include <stdint.h>
#include <stdio.h>
#include <string.h>
// Convert integer number to binary representation.
// The buffer must have bits bytes length.
void int2bin(uint64_t number, uint8_t *buffer, int bits) {
memset(buffer, '0', bits);
buffer += bits - 1;
for (int i = bits - 1; i >= 0; i--) {
*buffer-- = (number & 1) + '0';
number >>= 1;
}
}
int main(int argc, char *argv[]) {
char buffer[65];
buffer[8] = '\0';
int2bin(1234567890123, buffer, 8);
printf("1234567890123 in 8 bits: %s\n", buffer);
buffer[16] = '\0';
int2bin(1234567890123, buffer, 16);
printf("1234567890123 in 16 bits: %s\n", buffer);
buffer[32] = '\0';
int2bin(1234567890123, buffer, 32);
printf("1234567890123 in 32 bits: %s\n", buffer);
buffer[64] = '\0';
int2bin(1234567890123, buffer, 64);
printf("1234567890123 in 64 bits: %s\n", buffer);
return 0;
}
The output:
1234567890123 in 8 bits: 11001011
1234567890123 in 16 bits: 0000010011001011
1234567890123 in 32 bits: 01110001111110110000010011001011
1234567890123 in 64 bits: 0000000000000000000000010001111101110001111110110000010011001011
Two things:
Where do you put the NUL character? I can't see a place where '\0' is set.
Int is signed, and 0xFF000000 would be interpreted as a negative value. So while (a > 0) will be false immediately.
Aside: The malloc function inside is ugly. What about providing a buffer to int2bin?
A couple of things:
int f = 32;
int i = 1;
do{
str[--f] = i^a?'1':'0';
}while(i<<1);
It's highly platform dependent, but
maybe this idea above gets you started.
Why not use memset(str, 0, 33) to set
the whole char array to 0?
Don't forget to free()!!! the char*
array after your function call!
Two simple versions coded here (reproduced with mild reformatting).
#include <stdio.h>
/* Print n as a binary number */
void printbitssimple(int n)
{
unsigned int i;
i = 1<<(sizeof(n) * 8 - 1);
while (i > 0)
{
if (n & i)
printf("1");
else
printf("0");
i >>= 1;
}
}
/* Print n as a binary number */
void printbits(int n)
{
unsigned int i, step;
if (0 == n) /* For simplicity's sake, I treat 0 as a special case*/
{
printf("0000");
return;
}
i = 1<<(sizeof(n) * 8 - 1);
step = -1; /* Only print the relevant digits */
step >>= 4; /* In groups of 4 */
while (step >= n)
{
i >>= 4;
step >>= 4;
}
/* At this point, i is the smallest power of two larger or equal to n */
while (i > 0)
{
if (n & i)
printf("1");
else
printf("0");
i >>= 1;
}
}
int main(int argc, char *argv[])
{
int i;
for (i = 0; i < 32; ++i)
{
printf("%d = ", i);
//printbitssimple(i);
printbits(i);
printf("\n");
}
return 0;
}
//This is what i did when our teacher asked us to do this
int main (int argc, char *argv[]) {
int number, i, size, mask; // our input,the counter,sizeofint,out mask
size = sizeof(int);
mask = 1<<(size*8-1);
printf("Enter integer: ");
scanf("%d", &number);
printf("Integer is :\t%d 0x%X\n", number, number);
printf("Bin format :\t");
for(i=0 ; i<size*8 ;++i ) {
if ((i % 4 == 0) && (i != 0)) {
printf(" ");
}
printf("%u",number&mask ? 1 : 0);
number = number<<1;
}
printf("\n");
return (0);
}
the simplest way for me doing this (for a 8bit representation):
#include <stdio.h>
#include <stdlib.h>
#include <math.h>
char *intToBinary(int z, int bit_length){
int div;
int counter = 0;
int counter_length = (int)pow(2, bit_length);
char *bin_str = calloc(bit_length, sizeof(char));
for (int i=counter_length; i > 1; i=i/2, counter++) {
div = z % i;
div = div / (i / 2);
sprintf(&bin_str[counter], "%i", div);
}
return bin_str;
}
int main(int argc, const char * argv[]) {
for (int i = 0; i < 256; i++) {
printf("%s\n", intToBinary(i, 8)); //8bit but you could do 16 bit as well
}
return 0;
}
Here is another solution that does not require a char *.
#include <stdio.h>
#include <stdlib.h>
void print_int(int i)
{
int j = -1;
while (++j < 32)
putchar(i & (1 << j) ? '1' : '0');
putchar('\n');
}
int main(void)
{
int i = -1;
while (i < 6)
print_int(i++);
return (0);
}
Or here for more readability:
#define GRN "\x1B[32;1m"
#define NRM "\x1B[0m"
void print_int(int i)
{
int j = -1;
while (++j < 32)
{
if (i & (1 << j))
printf(GRN "1");
else
printf(NRM "0");
}
putchar('\n');
}
And here is the output:
11111111111111111111111111111111
00000000000000000000000000000000
10000000000000000000000000000000
01000000000000000000000000000000
11000000000000000000000000000000
00100000000000000000000000000000
10100000000000000000000000000000
#include <stdio.h>
#define BITS_SIZE 8
void
int2Bin ( int a )
{
int i = BITS_SIZE - 1;
/*
* Tests each bit and prints; starts with
* the MSB
*/
for ( i; i >= 0; i-- )
{
( a & 1 << i ) ? printf ( "1" ) : printf ( "0" );
}
return;
}
int
main ()
{
int d = 5;
printf ( "Decinal: %d\n", d );
printf ( "Binary: " );
int2Bin ( d );
printf ( "\n" );
return 0;
}
Not so elegant, but accomplishes your goal and it is very easy to understand:
#include<stdio.h>
int binario(int x, int bits)
{
int matriz[bits];
int resto=0,i=0;
float rest =0.0 ;
for(int i=0;i<8;i++)
{
resto = x/2;
rest = x%2;
x = resto;
if (rest>0)
{
matriz[i]=1;
}
else matriz[i]=0;
}
for(int j=bits-1;j>=0;j--)
{
printf("%d",matriz[j]);
}
printf("\n");
}
int main()
{
int num,bits;
bits = 8;
for (int i = 0; i < 256; i++)
{
num = binario(i,bits);
}
return 0;
}
#include <stdio.h>
int main(void) {
int a,i,k=1;
int arr[32]; \\ taken an array of size 32
for(i=0;i <32;i++)
{
arr[i] = 0; \\initialised array elements to zero
}
printf("enter a number\n");
scanf("%d",&a); \\get input from the user
for(i = 0;i < 32 ;i++)
{
if(a&k) \\bit wise and operation
{
arr[i]=1;
}
else
{
arr[i]=0;
}
k = k<<1; \\left shift by one place evry time
}
for(i = 31 ;i >= 0;i--)
{
printf("%d",arr[i]); \\print the array in reverse
}
return 0;
}
void print_binary(int n) {
if (n == 0 || n ==1)
cout << n;
else {
print_binary(n >> 1);
cout << (n & 0x1);
}
}
Related
Converting int to binary String in C
I'm trying to convert an integer to a binary String (see code below). I've already looked at several similar code snippets, and can't seem to find the reason as to why this does not work. It not only doesn't produce the correct output, but no output at all. Can somebody please explain to me in detail what I'm doing wrong?
#include <stdio.h>
#include <stdlib.h>
char* toBinaryString(int n) {
char *string = malloc(sizeof(int) * 8 + 1);
if (!string) {
return NULL;
}
for (int i = 31; i >= 0; i--) {
string[i] = n & 1;
n >> 1;
}
return string;
}
int main() {
char* string = toBinaryString(4);
printf("%s", string);
free(string);
return 0;
}
The line
string[i] = n & 1;
is assigning integers 0 or 1 to string[i]. They are typically different from the characters '0' and '1'. You should add '0' to convert the integers to characters.
Also, as #EugeneSh. pointed out, the line
n >> 1;
has no effect. It should be
n >>= 1;
to update the n's value.
Also, as #JohnnyMopp pointed out, you should terminate the string by adding a null-character.
One more point it that you should check if malloc() succeeded. (It is done in the function toBinaryString, but there is no check in main() before printing its result)
Finally, It doesn't looks so good to use a magic number 31 for the initialization of for loop while using sizeof(int) for the size for malloc().
Fixed code:
#include <stdio.h>
#include <stdlib.h>
char* toBinaryString(int n) {
int num_bits = sizeof(int) * 8;
char *string = malloc(num_bits + 1);
if (!string) {
return NULL;
}
for (int i = num_bits - 1; i >= 0; i--) {
string[i] = (n & 1) + '0';
n >>= 1;
}
string[num_bits] = '\0';
return string;
}
int main() {
char* string = toBinaryString(4);
if (string) {
printf("%s", string);
free(string);
} else {
fputs("toBinaryString() failed\n", stderr);
}
return 0;
}
The values you are putting into the string are either a binary zero or a binary one, when what you want is the digit 0 or the digit one. Try string[i] = (n & 1) + '0';. Binary 0 and 1 are non-printing characters, so that's why you get no output.
#define INT_WIDTH 32
#define TEST 1
char *IntToBin(unsigned x, char *buffer) {
char *ptr = buffer + INT_WIDTH;
do {
*(--ptr) = '0' + (x & 1);
x >>= 1;
} while(x);
return ptr;
}
#if TEST
#include <stdio.h>
int main() {
int n;
char str[INT_WIDTH+1]; str[INT_WIDTH]='\0';
while(scanf("%d", &n) == 1)
puts(IntToBin(n, str));
return 0;
}
#endif
How to convert ascii string to binary?
I'm trying to convert an ascii string to a binary string in C. I found this example Converting Ascii to binary in C but I rather not use a recursive function. I tried to write an iterative function as opposed to a recursive function, but the binary string is missing the leading digit. I'm using itoa to convert the string, however itoa is a non standard function so I used the implementation from What is the proper way of implementing a good "itoa()" function? , the one provided by Minh Nguyen.
#include <stdio.h>
#include <stdint.h>
#include <stdlib.h>
#include <string.h>
#include <errno.h>
int32_t ascii_to_binary(char *input, char **out, uint64_t len)
{
uint32_t i;
uint32_t str_len = len * 8;
if(len == 0)
{
printf("Length argument is zero\n");
return (-1);
}
(*out) = malloc(str_len + 1);
if((*out) == NULL)
{
printf("Can't allocate binary string: %s\n", strerror(errno));
return (-1);
}
if(memset((*out), 0, (str_len)) == NULL)
{
printf("Can't initialize memory to zero: %s\n", strerror(errno));
return (-1);
}
for(i = 0; i < len; i++)
itoa((int32_t)input[i], &(*out)[(i * 8)], 2);
(*out)[str_len] = '\0';
return (str_len);
}
int main(void)
{
int32_t rtrn = 0;
char *buffer = NULL;
rtrn = ascii_to_binary("a", &buffer, 1);
if(rtrn < 0)
{
printf("Can't convert string\n");
return (-1);
}
printf("str: %s\n", buffer);
return (0);
}
I get 1100001 for ascii character a, but I should get 01100001, so how do I convert the ascii string to the whole binary string?
You could change the for loop to something like this:
for(i = 0; i < len; i++) {
unsigned char ch = input[i];
char *o = *out + 8 * i;
int b;
for (b = 7; b >= 0; b--)
*o++ = (ch & (1 << b)) ? '1' : '0';
}
or similar:
for(i = 0; i < len; i++) {
unsigned char ch = input[i];
char *o = &(*out)[8 * i];
unsigned char b;
for (b = 0x80; b; b >>= 1)
*o++ = ch & b ? '1' : '0';
}
This program gets and integer ( which contains 32 bits ) and converts it to binary, Work on it to get it work for ascii strings :
#include <stdio.h>
int main()
{
int n, c, k;
printf("Enter an integer in decimal number system\n");
scanf("%d", &n);
printf("%d in binary number system is:\n", n);
for (c = 31; c >= 0; c--)
{
k = n >> c;
if (k & 1)
printf("1");
else
printf("0");
}
printf("\n");
return 0;
}
Best just write a simple function to do this using bitwise operators...
#define ON_BIT = 0x01
char *strToBin(char c) {
static char strOutput[10];
int bit;
/*Shifting bits to the right, but don't want the output to be in reverse
* so indexing bytes with this...
*/
int byte;
/* Add a nul at byte 9 to terminate. */
strOutput[8] = '\0';
for (bit = 0, byte = 7; bit < 8; bit++, byte--) {
/* Shifting the bits in c to the right, each time and'ing it with
* 0x01 (00000001).
*/
if ((c >> bit) & BIT_ON)
/* We know this is a 1. */
strOutput[byte] = '1';
else
strOutput[byte] = '0';
}
return strOutput;
}
Something like that should work, there's loads of ways you can do it. Hope this helps.
Add one to a binary representation with padding of 0
I have a character representation of a binary number, and I wish to perform arithmetic, plus 1, on it. I want to keep the padding of 0.
Right now I have :
int value = fromBinary(binaryCharArray);
value++;
int fromBinary(char *s) {
return (int)strtol(s, NULL, 2);
}
I need to transform the value++ to binary representation and if I have 0 to pad I need to pad it.
0110 -> 6
6++ -> 7
7 -> 0111 <- that's what I should get from transforming it back in a character representation
In my problem it will never go above 15.
This is what I have so far
char *toBinary(int value)
{
char *binaryRep = malloc(4 * sizeof(char));
itoa(value, binaryRep, 2);
if (strlen(binaryRep) < 4)
{
int index = 0;
while (binaryRep[index] != '1')
{
binaryRep[index] = '0';
index++;
}
}
return binaryRep;
}
Try this
#include <stdio.h>
int main(void)
{
unsigned int x;
char binary[5]; /* You need 5 bytes for a 4 character string */
x = 6;
for (size_t n = 0 ; n < 4 ; ++n)
{
/* shift right `n' bits and check that the bit is set */
binary[3 - n] = (((x >> n) & 1) == 1) ? '1' : '0';
}
/* nul terminate `binary' so it's a valid c string */
binary[4] = '\0';
fprintf(stderr, "%s\n", binary);
return 0;
}
char *binaryRep = malloc(4* sizeof(char));
binaryRep[4] = '\0';
for (int i = (sizeof(int)) - 1; i >= 0; i--) {
binaryRep[i] = (value & (1 << i)) ? '1' : '0';
}
return binaryRep;
This does what I need.
#include <stdio.h>
#include <stdlib.h>
#include <string.h>
#include <ctype.h>
/*___________________________________________________________
*/
int from_bin(char *buff){
int d=0;
while(*buff){
d<<=1;
d+=(*buff=='1')?1:0;
buff++;
}
return d;
}
/*___________________________________________________________
*/
int to_bin(int d,char *buff,int len){
int ret=0;
if(len<4)return -1;
if(d & ~0xf){
ret=to_bin(d>>4,buff,len-4);
if(ret==-1) return -1;
buff+=ret;
}
buff[4]=0;
buff[3]=((d & 0x1)?'1':'0');
d>>=1;
buff[2]=((d & 0x1)?'1':'0');
d>>=1;
buff[1]=((d & 0x1)?'1':'0');
d>>=1;
buff[0]=((d & 0x1)?'1':'0');
d>>=1;
return ret+4;
}
/*___________________________________________________________
*/
int main(void){
int n;
char buff[33]="0011";
n=from_bin(buff);
n+=1;
if(to_bin(n,buff,8)==-1){
printf("ERROR: buffer too small\n");
}else{
printf("bin of %d= '%s'\n",n,buff);
}
return 0;
}
Converting CS_UID to write it to UART
this is my first time posting, so please be patient with
me.. I need help with my Code.. i am very unexperienced. I want to write
the CS_UID (the unique ID of my microcontroller) to UART, using this
function:
void appWriteDataToUart(uint8_t* aData, uint8_t aLength);
Therefore I think I need to convert the hexadecimal CS_UID (64bit long)
which is defined as follows for example:
#define CS_UID 0x1234567890abcdff
into something that makes sense and is possible to be written to UART.
Someone told me this would help:
#include <stdio.h>
#include <string.h>
int hex_to_int(char c) {
int first = c / 16 - 3;
int second = c % 16;
int result = first*10 + second;
if(result > 9) result--;
return result;
}
int hex_to_ascii(char c, char d) {
int high = hex_to_int(c) * 16;
int low = hex_to_int(d);
return high+low;
}
int main() {
const char* st = "48656C6C6F3B";
int length = strlen(st);
int i;
char buf = 0;
for(i = 0; i < length; i++){
if(i % 2 != 0){
printf("%c", hex_to_ascii(buf, st[i]));
}else{
buf = st[i];
}
}
}
But I don't know how to use that. I'm clueless. These functions return
int and use printf and %c.
I tried it like this but it doesn't work:
#include <stdio.h>
#include <string.h>
#define CS_UID 0x1234567890abcdff
int hex_to_int(char c) {
int first = c / 16 - 3;
int second = c % 16;
int result = first*10 + second;
if(result > 9) result--;
return result;
}
int hex_to_ascii(char c, char d) {
int high = hex_to_int(c) * 16;
int low = hex_to_int(d);
return high+low;
}
int main (void) {
char st[16] = CS_UID;
char csuid_array[8]; //this is the array i want to write to UART later? right or wrong?
int length = strlen(st);
int j;
char buf = 0;
for (j=0; j < length; j++){
if(j % 2 != 0){
csuid_array[j] = hex_to_ascii(buf,st[j]);
}
else{
buf = st[j];
}
}
return 0;
}
i'd appreciate any help or other solution!
Thanks in advance.
I'll assume that you want to send the ASCII representation of the value so that it is human readable on a terminal program. printf() (and sprintf()) can do the conversion for you, so you don't need those other "hex" routines. #define CS_UID 0x1234567890abcdffU uint8_t csuid_array[19]; // extra bytes for "0x" and NULL terminator sprintf((char*)csuid_array, "0x%016llX", CSUID); // that's two letter 'l' between '%016' and 'X' appWriteDataToUart(csuid_array, 18); // extra bytes for "0x"
Converting an integer to binary in C
I'm trying to convert an integer 10 into the binary number 1010.
This code attempts it, but I get a segfault on the strcat():
int int_to_bin(int k)
{
char *bin;
bin = (char *)malloc(sizeof(char));
while(k>0) {
strcat(bin, k%2);
k = k/2;
bin = (char *)realloc(bin, sizeof(char) * (sizeof(bin)+1));
}
bin[sizeof(bin)-1] = '\0';
return atoi(bin);
}
How do I convert an integer to binary in C?
If you want to transform a number into another number (not number to string of characters), and you can do with a small range (0 to 1023 for implementations with 32-bit integers), you don't need to add char* to the solution
unsigned int_to_int(unsigned k) {
if (k == 0) return 0;
if (k == 1) return 1; /* optional */
return (k % 2) + 10 * int_to_int(k / 2);
}
HalosGhost suggested to compact the code into a single line
unsigned int int_to_int(unsigned int k) {
return (k == 0 || k == 1 ? k : ((k % 2) + 10 * int_to_int(k / 2)));
}
You need to initialise bin, e.g.
bin = malloc(1);
bin[0] = '\0';
or use calloc:
bin = calloc(1, 1);
You also have a bug here:
bin = (char *)realloc(bin, sizeof(char) * (sizeof(bin)+1));
this needs to be:
bin = (char *)realloc(bin, sizeof(char) * (strlen(bin)+1));
(i.e. use strlen, not sizeof).
And you should increase the size before calling strcat.
And you're not freeing bin, so you have a memory leak.
And you need to convert 0, 1 to '0', '1'.
And you can't strcat a char to a string.
So apart from that, it's close, but the code should probably be more like this (warning, untested !):
int int_to_bin(int k)
{
char *bin;
int tmp;
bin = calloc(1, 1);
while (k > 0)
{
bin = realloc(bin, strlen(bin) + 2);
bin[strlen(bin) - 1] = (k % 2) + '0';
bin[strlen(bin)] = '\0';
k = k / 2;
}
tmp = atoi(bin);
free(bin);
return tmp;
}
Just use itoa to convert to a string, then use atoi to convert back to decimal.
unsigned int_to_int(unsigned int k) {
char buffer[65]; /* any number higher than sizeof(unsigned int)*bits_per_byte(8) */
return atoi( itoa(k, buffer, 2) );
}
The working solution for Integer number to binary conversion is below.
int main()
{
int num=241; //Assuming 16 bit integer
for(int i=15; i>=0; i--) cout<<((num >> i) & 1);
cout<<endl;
for(int i=0; i<16; i++) cout<<((num >> i) & 1);
cout<<endl;
return 0;
}
You can capture the cout<< part based on your own requirement.
Well, I had the same trouble ... so I found this thread
I think the answer from user:"pmg" does not work always.
unsigned int int_to_int(unsigned int k) {
return (k == 0 || k == 1 ? k : ((k % 2) + 10 * int_to_int(k / 2)));
}
Reason: the binary representation is stored as an integer. That is quite limited.
Imagine converting a decimal to binary:
dec 255 -> hex 0xFF -> bin 0b1111_1111
dec 1023 -> hex 0x3FF -> bin 0b11_1111_1111
and you have to store this binary representation as it were a decimal number.
I think the solution from Andy Finkenstadt is the closest to what you need
unsigned int_to_int(unsigned int k) {
char buffer[65]; // any number higher than sizeof(unsigned int)*bits_per_byte(8)
return itoa( atoi(k, buffer, 2) );
}
but still this does not work for large numbers.
No suprise, since you probably don't really need to convert the string back to decimal. It makes less sense. If you need a binary number usually you need for a text somewhere, so leave it in string format.
simply use itoa()
char buffer[65];
itoa(k, buffer, 2);
You can use function this function to return char* with string representation of the integer:
char* itob(int i) {
static char bits[8] = {'0','0','0','0','0','0','0','0'};
int bits_index = 7;
while ( i > 0 ) {
bits[bits_index--] = (i & 1) + '0';
i = ( i >> 1);
}
return bits;
}
It's not a perfect implementation, but if you test with a simple printf("%s", itob(170)), you'll get 01010101 as I recall 170 was. Add atoi(itob(170)) and you'll get the integer but it's definitely not 170 in integer value.
You could use this function to get array of bits from integer.
int* num_to_bit(int a, int *len){
int arrayLen=0,i=1;
while (i<a){
arrayLen++;
i*=2;
}
*len=arrayLen;
int *bits;
bits=(int*)malloc(arrayLen*sizeof(int));
arrayLen--;
while(a>0){
bits[arrayLen--]=a&1;
a>>=1;
}
return bits;
}
void intToBin(int digit) {
int b;
int k = 0;
char *bits;
bits= (char *) malloc(sizeof(char));
printf("intToBin\n");
while (digit) {
b = digit % 2;
digit = digit / 2;
bits[k] = b;
k++;
printf("%d", b);
}
printf("\n");
for (int i = k - 1; i >= 0; i--) {
printf("%d", bits[i]);
}
}
You can convert decimal to bin, hexa to decimal, hexa to bin, vice-versa etc by following this example.
CONVERTING DECIMAL TO BIN
int convert_to_bin(int number){
int binary = 0, counter = 0;
while(number > 0){
int remainder = number % 2;
number /= 2;
binary += pow(10, counter) * remainder;
counter++;
}
}
Then you can print binary equivalent like this:
printf("08%d", convert_to_bin(13)); //shows leading zeros
Result in string
The following function converts an integer to binary in a string (n is the number of bits):
// Convert an integer to binary (in a string)
void int2bin(unsigned integer, char* binary, int n=8)
{
for (int i=0;i<n;i++)
binary[i] = (integer & (int)1<<(n-i-1)) ? '1' : '0';
binary[n]='\0';
}
Test online on repl.it.
Source : AnsWiki.
Result in string with memory allocation
The following function converts an integer to binary in a string and allocate memory for the string (n is the number of bits):
// Convert an integer to binary (in a string)
char* int2bin(unsigned integer, int n=8)
{
char* binary = (char*)malloc(n+1);
for (int i=0;i<n;i++)
binary[i] = (integer & (int)1<<(n-i-1)) ? '1' : '0';
binary[n]='\0';
return binary;
}
This option allows you to write something like printf ("%s", int2bin(78)); but be careful, memory allocated for the string must be free later.
Test online on repl.it.
Source : AnsWiki.
Result in unsigned int
The following function converts an integer to binary in another integer (8 bits maximum):
// Convert an integer to binary (in an unsigned)
unsigned int int_to_int(unsigned int k) {
return (k == 0 || k == 1 ? k : ((k % 2) + 10 * int_to_int(k / 2)));
}
Test online on repl.it
Display result
The following function displays the binary conversion
// Convert an integer to binary and display the result
void int2bin(unsigned integer, int n=8)
{
for (int i=0;i<n;i++)
putchar ( (integer & (int)1<<(n-i-1)) ? '1' : '0' );
}
Test online on repl.it.
Source : AnsWiki.
You can add the functions to the standard library and use it whenever you need.
Here is the code in C++
#include <stdio.h>
int power(int x, int y) //calculates x^y.
{
int product = 1;
for (int i = 0; i < y; i++)
{
product = product * x;
}
return (product);
}
int gpow_bin(int a) //highest power of 2 less/equal to than number itself.
{
int i, z, t;
for (i = 0;; i++)
{
t = power(2, i);
z = a / t;
if (z == 0)
{
break;
}
}
return (i - 1);
}
void bin_write(int x)
{
//printf("%d", 1);
int current_power = gpow_bin(x);
int left = x - power(2, current_power);
int lower_power = gpow_bin(left);
for (int i = 1; i < current_power - lower_power; i++)
{
printf("0");
}
if (left != 0)
{
printf("%d", 1);
bin_write(left);
}
}
void main()
{
//printf("%d", gpow_bin(67));
int user_input;
printf("Give the input:: ");
scanf("%d", &user_input);
printf("%d", 1);
bin_write(user_input);
}
#define BIT_WIDTH 32
char *IntToBin(unsigned n, char *buffer) {
char *ptr = buffer + BIT_WIDTH;
do {
*(--ptr) = (n & 1) + '0';
n >>= 1;
} while(n);
return ptr;
}
#define TEST 1
#if TEST
#include <stdio.h>
int main() {
int n;
char buff[BIT_WIDTH + 1];
buff[BIT_WIDTH] = '\0';
while(scanf("%d", &n) == 1)
puts(IntToBin(n, buff));
return 0;
}
#endif
short a;
short b;
short c;
short d;
short e;
short f;
short g;
short h;
int i;
char j[256];
printf("BINARY CONVERTER\n\n\n");
//uses <stdlib.h>
while(1)
{
a=0;
b=0;
c=0;
d=0;
e=0;
f=0;
g=0;
h=0;
i=0;
gets(j);
i=atoi(j);
if(i>255){
printf("int i must not pass the value 255.\n");
i=0;
}
if(i>=128){
a=1;
i=i-128;}
if(i>=64){
b=1;
i=i-64;}
if(i>=32){
c=1;
i=i-32;}
if(i>=16){
d=1;
i=i-16;}
if(i>=8){
e=1;
i=i-8;}
if(i>=4){
f=1;
i=i-4;}
if(i>=2){
g=1;
i=i-2;}
if(i>=1){
h=1;
i=i-1;}
printf("\n%d%d%d%d%d%d%d%d\n\n",a,b,c,d,e,f,g,h);
}