he atoi() function takes a string (which represents an integer) as an argument and returns its value.
Following is a simple implementation. We initialize result as 0. We start from the first character and update result for every character.
// A simple C++ program for implementation of atoi#include <stdio.h>// A simple atoi() functionint myAtoi(char *str){ int res = 0; // Initialize result // Iterate through all characters of input string and update result for (int i = 0; str[i] != '\0'; ++i) res = res*10 + str[i] - '0'; // return result. return res;}// Driver program to test above functionint main(){ char str[] = "89789"; int val = myAtoi(str); printf ("%d ", val); return 0;} |
Output:
89789
The above function doesn’t handle negative numbers. Following is a simple extension to handle negative numbers.
// A C++ program for implementation of atoi#include <stdio.h>// A simple atoi() functionint myAtoi(char *str){ int res = 0; // Initialize result int sign = 1; // Initialize sign as positive int i = 0; // Initialize index of first digit // If number is negative, then update sign if (str[0] == '-') { sign = -1; i++; // Also update index of first digit } // Iterate through all digits and update the result for (; str[i] != '\0'; ++i) res = res*10 + str[i] - '0'; // Return result with sign return sign*res;}// Driver program to test above functionint main(){ char str[] = "-123"; int val = myAtoi(str); printf ("%d ", val); return 0;} |
Output:
-123
The above implementation doesn’t handle errors. What if str is NULL or str contains non-numeric characters. Following implementation handles errors.
// A simple C++ program for implementation of atoi#include <stdio.h>// A utility function to check whether x is numericbool isNumericChar(char x){ return (x >= '0' && x <= '9')? true: false;}// A simple atoi() function. If the given string contains// any invalid character, then this function returns 0int myAtoi(char *str){ if (*str == NULL) return 0; int res = 0; // Initialize result int sign = 1; // Initialize sign as positive int i = 0; // Initialize index of first digit // If number is negative, then update sign if (str[0] == '-') { sign = -1; i++; // Also update index of first digit } // Iterate through all digits of input string and update result for (; str[i] != '\0'; ++i) { if (isNumericChar(str[i]) == false) return 0; // You may add some lines to write error message // to error stream res = res*10 + str[i] - '0'; } // Return result with sign return sign*res;}// Driver program to test above functionint main(){ char str[] = "-134"; int val = myAtoi(str); printf("%d ", val); return 0;} |
Time Complexity: O(n) where n is the number of characters in input string.
Exercise
Write your won atof() that takes a string (which represents an floating point value) as an argument and returns its value as double.
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//c#
public static int myAtoi(string s) { if (string.IsNullOrEmpty(s)) { return 0; } int sign = 1; int i = 0; int r= 0; //if number is negative,then update sign. if (s[0]=='-') { sign = -1; i++; //update index of first digit. } for (; i < s.Length; i++) { if (!(s[i]>='0'&&s[i]<='9')) { return 0; } r = r * 10 + s[i]-'0'; //'1'=49;'0'=48; 'A'=65;'a'=97 } return sign * r; }
