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I have got this code that reads an integer using scanf and checks if it is actually an integer by looking at the buffer.

int e_1; 
char c[1];
// noNeedToCleanBuffer is used to avoid buffer cleaning the first time.
int noNeedToCleanBuffer = 1;
do {
    // Clears the buffer.
    if (!noNeedToCleanBuffer)
        while ((c[0] = getchar()) != '\n') ;

    noNeedToCleanBuffer = 0;
    printf("Input an integer value: \n");
    e_1 = scanf("%d", &n);  

    c[0] = getchar();
} while ((e_1 != 1 && c[0] != 10) || (e_1 == 1 && c[0] != 10));

However I cannot figure out how to check if the input is between INT_MIN and INT_MAX (I get these from limits.h).

I was thinking of getting the number as a string and compare it with two strings that would represent INT_MIN and INT_MAX, but since I am using the standard c99 I am not allowed to use atoi() or itoa().

share|improve this question
You can use strtol() and such, that's in C99.. – cha0site Feb 24 '12 at 22:29 this would convert it to a long int and not to an int. thanks anyway – user1054204 Feb 24 '12 at 22:34
What's wrong with it being a long? You can then easily check the long against INT_MIN and INT_MAX, as longs are always larger (or equal to) ints, and you can use strtol() to do the error handling in case of things that don't even fit in a long. Also, note that atoi() (but not itoa()) are in C99, but it doesn't do error checking. – cha0site Feb 26 '12 at 20:34
long is larger than int depending on what machine I am running the program. so I cannot rely on that. – user1054204 Feb 26 '12 at 20:38
No, long is larger or equal to int on all conforming implementations. 2 <= sizeof(int) <= 4 <= sizeof(long). This is guaranteed by the standard (actually, IIRC the standard specifies it in bits and not bytes, but that's irrelevant to this discussion). So you can use this approach portably. – cha0site Feb 26 '12 at 20:48

3 Answers 3

The value of a variable that is of any given data type (including int) will always be within the range of that data type. This is defined and enforced by the platform for which the application is compiled.

If you just want to go through an exercise of "proving" that the variable is within the bounds of your type, you have to cast it to a variable of such a type that can accommodate a greater range of values. For example:

int foo = /* some value to test */;
long bar = (long)foo;

if ( (bar < (long)INT_MIN) || (bar > (long)INT_MAX) ) return false;
share|improve this answer

Use s conversion specifier with scanf to read the string and use strtol function to check the number.

  • strtol let you first check if number is in the correct format (an integer) and if it is representable as a long integer
  • Then check the long number is between INT_MIN and INT_MAX.
share|improve this answer
up vote 0 down vote accepted

If you really just want to check store it-

1.)Store in long and then check

2.)Store the number in string then convert the INT_MAX into a string by getting each digit and storing in string and then using strcmp()

num = INT_MAX;
i = 0;

while(num != 0){
    str[i] = num % 10;
    num = num / 10;

The number would be opposite in this string you can get it reversed quite easily by a simple loop

Then use strcmp();

share|improve this answer
1. long does not have a wider range of acceptable inputs than int, except than in some machines. 2. this could work, but I was wondering if there is a function that does the conversion and it's allowed to be used under c99 – user1054204 Feb 24 '12 at 22:39
@sic2 i dont really see any problem with the string method – user1065734 Feb 24 '12 at 22:45
I just thought this could be expensive, but I just realized that the time complexity is O(log(n)) – user1054204 Feb 24 '12 at 22:48
yes it will be of order log(n) PROBLEM solved? – user1065734 Feb 24 '12 at 22:51
yes, cheers man – user1054204 Feb 24 '12 at 22:55

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