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How do you escape the % sign when using printf in C?

printf("hello\%"); /* not like this */
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10 Answers 10

up vote 143 down vote accepted

You can escape it by posting a double '%' like this: %%

Using your example:

printf("hello%%");

Escaping '%' sign is only for printf. If you do:

char a[5];
strcpy(a, "%%");
printf("This is a's value: %s\n", a);

It will print: This is a's value: %%

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4  
"printf("hello%%");" is right. But it's not a escape I think. use printf("hello\045"); –  Lai Jiangshan Dec 11 '09 at 3:12
    
@Pablo Santa Cruz: this method to "escape" % is specific to printf, correct? –  Lazer Mar 27 '10 at 12:20
    
@eSKay: correct. Only for printf. –  Pablo Santa Cruz Mar 27 '10 at 13:04
6  
This is a special case of the very common rule in escaping systems that to get a literal escape symbol you use <escape symbol><escape symbol>. –  dmckee Jul 1 '10 at 14:49
3  
Lai Jiangshan, this won't work. \045 is compile-time escape that is part of the language and will turn into % when compiled. printf is a run-time function, so it deals with bytes of your string, not with C source code, and it has its own escape sequences that are parts of the function. In short, printf is a "language inside a language", and printf("This is a's value: %s\n", a); gives the same result as printf("This is a's value: \045\0163\012", a);. –  SiPlus May 7 '13 at 14:23

As others have said, %% will escape the %.

Note, however, that you should never do this:

char c[100];
char *c2;
...
printf(c); /* OR */
printf(c2);

Whenever you have to print a string, always, always, always print it using

printf("%s", c)

to prevent an embedded % from causing problems [memory violations, segfault, etc]

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The warning is generally appropriate however there may be situations in which you want to do "this" - as long as you know that the string you provide will be interpreted as a format string. –  PP. Dec 7 '09 at 14:17
1  
I came up with an alternate solution once - copy the buffer to another buffer and then go through it doubling up the % signs. I eventually came across this idea and replaced a 20-30 line function with one line. Don't worry, I did beat myself severely about the head, as I deserved. –  Graeme Perrow Dec 7 '09 at 14:19
    
True, but don't forget that 99% of the time when you get a format string, you get the arguments as a va_list, so you need to use vprintf. Thus, I'm technically correct ;) –  Mikeage Dec 7 '09 at 14:20
1  
It's so much easier to do puts( c ). If –  William Pursell Dec 7 '09 at 14:48
1  
puts appends a newline. That's often unwanted behavior. –  Mikeage Dec 8 '09 at 10:51

If there are no formats in the string, you can use puts (or fputs):

puts("hello%");

if there is a format in the string:

printf("%.2f%%", 53.2);

As noted in the comments, puts appends a \n to the output and fputs does not.

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3  
+1 , so many people forget about (or have never heard of) puts(). I see so many people using printf() for strings that have nothing to expand. This is the best answer. –  Tim Post Dec 8 '09 at 5:54
1  
Worth mentioning fputs() also, as it directly reciprocates to fprintf(). –  Tim Post Dec 8 '09 at 5:55
    
puts also appends a newline [even if you already have one]. If you want that, great. Otherwise... –  Mikeage Dec 8 '09 at 10:51
    
@Sinan Ünür: thanks for reminding me about puts. I never thought of puts for printing strings and jumped straight to printf. Not anymore. –  Lazer Mar 24 '10 at 17:03

Nitpick:
You don't really escape the % in the string that specifies the format for the printf() (and scanf()) family of functions.

The %, in the printf() (and scanf()) family of functions, starts a conversion specification. One of the rules for conversion specification states that a % as a conversion specifier (immediately following the % that started the conversion specification) causes a '%' character to be written with no argument converted.

The string really has 2 '%' characters inside (as opposed to escaping characters: "a\bc" is a string with 3 non null characters; "a%%b" is a string with 4 non null characters).

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1  
techinically, it is still "escaping"; characters that are special need a way to "escape" their special meaning and be back to their "character nature" –  ShinTakezou Jul 1 '10 at 8:29

With itself...

printf("hello%%"); /* like this */
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use a double %%

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The backslash in C is used to escape characters in strings. Strings would not recognize % as a special character, and therefore no escape would be necessary. Printf is another matter: use %% to print one %.

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Like this:

printf("hello%%");
//-----------^^ inside printf, use two percent signs together
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Use this:

#include <stdio.h>
printf("hello%s%s");

A Complete list of format specifiers used with printf can be found here:

http://www.mekong.net/tech/printf.htm

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Yup, use printf("hello%%"); and it's done.

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