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I'm trying to format a number that has a value from 0 to 9,999. I would like the 2 most significant digits to always display, i.e.

5000 -> 50
0000 -> 00

If either of the least significant digits are non-zero they should be displayed, i.e.

150 -> 015
101 -> 0101

It can be done with some hackery, but can C's printf do this directly?

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I'm not sure I understand your format. If 5000 becomes 50 why does 150 become 015 instead of 15? –  Mala Jan 27 '11 at 17:58
    
I'm doing cents, and if needed thousandths, and if needed ten-thousandths. –  Jonathan Jan 27 '11 at 18:13

3 Answers 3

up vote 1 down vote accepted

Ugly, but working as far as I can tell:

printf("%d", value / 1000);
printf("%d", (value % 1000) / 100);
if(value % 100) printf("%d", (value % 100) / 10);
if(value % 10)  printf("%d", value % 10);

I'll try to golf it some more:

printf("%02d", value / 100);
if(value % 10) printf("%02d", value % 100);
else if(value % 100) printf("%d", (value % 100) / 10);

int hi = value / 100, lo = value % 100;
printf(lo ? "%02d%0*d" : "%02d", hi, 1 + !!(lo % 10), lo % 10 ? lo : lo / 10);
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It's not pretty, but it's what I asked for. I implemented it the obvious and more efficient way instead. –  Jonathan Jan 29 '11 at 4:05

Yes you can use printf for this

int v = 5000;
if ((v % 100) != 0)
    printf("%04d", v);
else
    printf("%02d", v/100);
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Obviously a third case can be added to handle "150" correctly, but is this the only way? –  Jonathan Jan 27 '11 at 18:06
    
Yes, you can add as many cases as you'd like. It was only an example how to format numbers with printf. I do not think there are better ways to do it in C –  Elalfer Jan 27 '11 at 18:26

printf("%d", v/(v%100?v%10?100:10:1));

Try this:

printf("%.*d", 4-!(v%100)-!(v%10), v/(v%100?v%10?100:10:1));

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For v==1, should print "0001", not "1" –  aschepler Jan 27 '11 at 21:59
    
OK, I'll fix it. –  R.. Jan 27 '11 at 22:10
    
fails for 5000 and 0 –  Christoph Jan 27 '11 at 22:34

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