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Can you please explain one thing in the following code:

#include<stdio.h>

int main()
{
int n;char ch,ch1;
scanf("%d\n",&n);
printf("d-%d \n",n);

scanf("\n%c",&ch);
printf("ch-%d \n",ch);

scanf("\n%c",&ch1);
printf("ch1-%d \n",ch1);

printf("%d %d %d\n",n,ch,ch1);
return 0;
}

why is it that after entering the value of n,it directly asks for the value of ch and then directly executes the statements to print their respective values ie the statements:

printf("d-%d \n",n);
printf("ch-%d \n",ch);
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2  
Ugh. Not sure where my comments are, perhaps there has been some data loss. Anyway, @OP: since this is a question that can directly be answered by reading man 3 scanf, it is not suited for Stack Overflow. –  user529758 Jan 5 at 19:51
1  
Also, dupe1, dupe2. (This user is asking the same question twice a day. That's not normal.) –  user529758 Jan 5 at 19:55
2  
Re-opening since I just closed one of the other questions as a duplicate of this (and the other as a duplicate of that). –  Shog9 Jan 5 at 20:14
    
@Shog9 Shouldn't the original one be left open and the two later ones be closed as dupes? –  user529758 Jan 5 at 20:15
2  
This was the best of the three, IMHO. The first one in particular deserved that "minimal understanding" closure. –  Shog9 Jan 5 at 20:15

2 Answers 2

up vote 5 down vote accepted

scanf("%d\n",&n); skips any number of trailing white-spaces (including none) after actual the input. It can also be written asscanf("%d ",&n);.

scanf("\n%c",&ch); skips any number of leading white-spaces (including none) before the actual input. It can also be written as scanf(" %c",&ch);.

NOTE: A white-space in a format specifier is able to skip any number of white-spaces.

Now what does it mean by skipping white-spaces ?

It means scanf repeatedly reads white-space characters from input until it reaches a non-white-space character. Now there is no white-space characters left in the buffer.
When it encounters a non-white-space character, then this character is put back to be read again during the scanning of the next input item or during the next call of scanf.

Now coming to your question.

Why do interleaved scanf() + printf() statements result in both scanf() calls executing first, then both printf() calls?

I am assuming the input for n is 15. When you press Enter key then the \n character goes with 15 in the input buffer. scanf("%d\n",&n); reads the 15 and then skips \n. Now this scanf waits for a non-white-space character to be entered (unlike what you supposed that 15 should be printed) . When you enter a, it puts it back for the next call of scanf. The next statement scanf("\n%c",&ch); reads this a from the buffer and do not let the user to input the value for ch. Since the value of n and ch both is now read by these scanfs, it appears to be that both of

printf("d-%d \n",n);
printf("ch-%d \n",ch);   

executes after both of the scanfs call (which is not the case!).

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I tried my best. Hope you will understand. If you have any question regarding this , then let me know. –  haccks Jan 5 at 20:27

Any whitespace in a scanf format is like any other whitespace in a scanf format. It simply tells scanf to skip any whitespace in the input.

Most format codes doesn't need it though as they skip leading whitespace automatically, but one that does (unless you want to actually read a whitespace character) is the "%c" format code.

You might also want to read this reference.

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according to me, the OP problem is in understanding the buffered nature of the input and the fact that the \n char is around although invisbile — but I may be wrong of course –  ShinTakezou Jan 5 at 19:43

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