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I want to read numbers(integer type) separated by spaces using scanf() function.
I have read the following

C, reading multiple numbers from single input line (scanf?)
how to read scanf with spaces
It doesn't help me much. How can I read numbers with space as delimiter. For e.g. I have following numbers as input 2 5 7 4 3 8 18 now I want to store these in different variables.
Please help.

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link . Will that help? – ngen May 3 '12 at 6:09
That is for reading white spaces. I want to read numbers separated by white spaces. – Jaguar May 3 '12 at 6:13
Is it for a dynamically length string or a fixed set of numberss? – ngen May 3 '12 at 8:01
It is for fixed set of numbers. – Jaguar May 3 '12 at 8:22
Then why bothering with all the jumble code. Follow that Answer . That's what you want then. It's not working for you?. – ngen May 3 '12 at 8:44

6 Answers 6

up vote 15 down vote accepted

I think by default values read by scanf with space/enter. Well you can provide space between '%d' if you are printing integers. Also same for other cases.

scanf("%d %d %d", &var1, &var2, &var3);

Similarly if you want to read comma separated values use :

scanf("%d,%d,%d", &var1, &var2, &var3);
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scanf ignores whitespace with most % directives, so you generally don't want spaces in your format strings. So for the first case (whitespace delimited integers), you want scanf("%d%d%d", &var, &var2, &var3); The extra spaces don't actually hurt anything here (they have no effect), but in other cases you don't want them unless you need them. – Chris Dodd Feb 7 '13 at 21:23
Why do you have to use &var1 here (is var1 an int type variable?)? Isn't that just a 'label' for var1's memory adress? – YoTengoUnLCD Oct 4 at 23:24

read as "%s[^\n]"

and then read each char of the string , and do a atoi if it is a char , else ignore

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It should be as simple as using a list of receiving variables:

scanf("%i %i %i", &var1, &var2, &var3);

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what is fp here? In the above case the delimiter is \n, I want to use space as delimiter. – Jaguar May 3 '12 at 6:10
Sorry, I removed it since it is not pertinent in this example. You don't need to specify the space delimiter somewhere, it is implicit in your format string. – user694833 May 3 '12 at 6:36
int main()
char string[200];
int g,a,i,G[20],A[20],met;


return 0;

int convert_input(int K[],char string[200])
int j=0,i=0,temp=0;
    while(string[i]!=' ' && string[i]!='\0')
        temp=temp*10 + (string[i++]-'0') ;
    if(string[i]==' ')
return j-1;
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Would come kind of description not help? – Bridge May 31 '12 at 8:06

scanf uses any whitespace as a delimiter, so if you just say scanf("%d", &var) it will skip any whitespace and then read an integer (digits up to the next non-digit) and nothing more.

Note that whitespace is any whitespace -- spaces, tabs, newlines, or carriage returns. Any of those are whitespace and any one or more of them will serve to delimit successive integers.

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int main(){
    int A[1000];
    char *tok = NULL;
    char *savePtr = NULL;
    char str[1000] = "";
    int totalElement=0;
    printf("Enter space seperated string\n");
    scanf("%[^\n]s", str);
    savePtr = str;

    while((tok=strtok_r(savePtr, " ", &savePtr))){
        A[totalElement++] = atoi(tok);

    for(int i = 0; i < totalElement; i++)
        printf("%d ", A[i]);
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