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The code below requests 5 numbers and prints asterisks of given numbers. How does number variable remember 5 numbers? Doesn't the next number entered destruct value inside variable? I don't understand. Can you explain it to me?

Below code gives output:

Enter 5 numbers between 1 and 30: 28 5 13 24 7

#include <stdio.h> 
int main( void ){    
    int i;      
    int j;      /* inner counter */   
    int number; /* current number */   
    printf( "Enter 5 numbers between 1 and 30: " );  /* loop 5 times */   
    for ( i = 1; i <= 5; i++ ) {
        scanf( "%d", &number );      /* print asterisks corresponding to current input */      
            for ( j = 1; j <= number; j++ )      
            printf( "*" );

    printf( "\n" );
    } /* end for */   
return 0; 
share|improve this question
Bad question. It doesn't remember the numbers. It prints it out and then it's replaced by the next number entered. – QuentinUK Feb 26 '13 at 14:21
When I first look at the code, I expect to see something like first the number is entered than it is printed, the next number is entered, its asterisks are printed isn't it? But when I compiled and ran it, it takes whole 5 numbers bulk, then it prints them all bulk???? – Lyrk Feb 26 '13 at 14:27
@user1939432 It wasn't clear from your original question that you wanted to understand why entering all five numbers separated by a space on the console had the same effect as entering the five numbers one-at-a-time by hitting return. – chrisaycock Feb 26 '13 at 14:40
Maybe thing that is problematic for me is Stdin thing. – Lyrk Feb 26 '13 at 14:46

5 Answers 5

up vote 4 down vote accepted

The answer to your question is: The text will be dumped in the stdin when you press "enter". scanf(..) reads from the stdin and thus parses all the 5 integers for you (one by one). scanf will only block if stdin is empty. So the values are not store in the number variable but on stdin.

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Thanks they are located in stdin then and called back by the loop and assigned to variable 5 times. I see – Lyrk Feb 26 '13 at 14:38

It's because the printing happens in between each read. Notice that scanf is inside the loop for ( i = 1; i <= 5; i++ ) and so is the second loop for ( j = 1; i <= number; j++ ).

So what actually happens is:
1. Read input into number
2. Print asterisks
3. Goto 1.

The code does not actually remember all 5 numbers - it only remembers the current number.

share|improve this answer
Then why is the output bulk ? – Lyrk Feb 26 '13 at 14:29
Try inputting only one number at the prompt and not 5 and see what happens. – William Feb 26 '13 at 15:34
Note that scanf reads until whitespace, not until the end of the line. But when you click enter, the whole input is put into stdin and then later read by the program, as brano said above. – William Feb 26 '13 at 15:41

Yeah it is very IQ type Question. Look at the Line printf( "Enter 5 numbers between 1 and 30: " );

than their is a "for loop" to take values. This loop cover the rest of the code. So when first "number" take value the 2nd "for loop" starts it works & after finishing return to the 1st "for loop" to take the 2nd Input from keyboard & so on...

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It doesn't hold all 5 numbers. Your code sets the value of number and then prints the relevant number of * characters. It then receives a new value on successive iterations of your first for loop. The variable is re-used, rather than being set to multiple values at the same time.

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Why the downvote? – RainbowFish Feb 26 '13 at 14:24

Everytime you enter a number in the program, 'int number' gets set to that number.

The old value has been replaced and is no longer accessible.

Read about it here

May I suggest not starting programming with C and maybe starting with something like Python.

share|improve this answer
It is too late I think – Lyrk Feb 26 '13 at 14:30

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