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From the docs:

$(patsubst PATTERN,REPLACEMENT,TEXT)

Finds whitespace-separated words in TEXT that match PATTERN and replaces them with REPLACEMENT. Here PATTERN may contain a % which acts as a wildcard, matching any number of any characters within a word.
...
Whitespace between words is folded into single space characters; leading and trailing whitespace is discarded.



Now, given a makefile, is:

# The pattern for patsubst, does NOT contain '%'
foo := $(patsubst  x,y,x    x    x)
# The pattern for patsubst, does contain '%'
bar := $(patsubst x%,y,x    x    x)


# The variable 'foo', is a result from a patsubst-pattern, that did NOT contain a '%'
# The variable 'bar', is a result from a patsubst-pattern, that did contain a '%'
all ::
    @echo 'foo is: "$(foo)"'
    @echo 'bar is: "$(bar)"'



Executing, we get:

foo is: "y    y    y"
bar is: "y y y"



So, it is obvious, that Make, may or may not "fold" all whitespace into one and single whitespace.

Or, did I do something wrong.

1 Answer 1

29

In fact all is explained in the doc:

Finds whitespace-separated words in TEXT ...

means that one or more spaces have to separate the words.

... that match PATTERN ...

means that it select only words that match a pattern (which can include some spaces).

... and replaces them with REPLACEMENT.

means that the selected patterns will be replace by a replacement.


A picture is worth a thousand words.

For PATTERN = X:

           +----  SEPARATORS  ----+
           |                      |
   +-------+-------+     +--------+------+
   |               |     |               | 
X  space space space  X  space space space  x
|                     |                     |
+---------------------+---------------------+
                      |
                   PATTERNS

For PATTERN = X%:

                 +----  SEPARATORS  ---+
                 |                     |
               +-+-+                 +-+-+
               |   |                 |   | 
X  space space space  X  space space space  x
|            |        |            |        |
+------+-----+        +------+-----+        |
       |                     |              |
       +---  PATTERNS  ------+--------------+

Interesting thing:

When you use the % character in your pattern, you can re-use it in the replacement, like this:

$(patsubst x%,y%,xa xb xc)
# Will be "ya yb yc"

But when you have space character in the % variable, make will strip them in the replacement.

$(patsubst x%,y%,xa   xb   xc)
# Will also be "ya yb yc"

EDIT: After reading the source code, the interesting things are:

So here is the behavior:

  1. If no % in the pattern, this is a simple substitution (which keep the spaces).
  2. Else it split the text by words and get rid of all spaces (using the isblank function).
  3. Finally, it does the replacement
4
  • 1
    Yes...Your final paragraph. It's easy to show, that contrary to pattern-rules and pattern-specific variables, Make accepts an empty string, as a match for %. Yes, %-matching rules, are not consistent across features of Make. And, can we both agree, that % matched (in my example) the empty-string, and only it. You sort of proved it :)
    – Ji Cha
    Aug 24, 2015 at 10:18
  • @JiCha To be clear, in your example % matched space space in the input string. And will effectively by replaced by the empty-string in the output string. Aug 24, 2015 at 11:21
  • I strongly disagree. The rules for $(patsubst pattern,replacement,text) when there is a % in the pattern, are: 1)If text is empty OR rendered empty after variable-expansion, then, the function expands - always - to an empty string. 2) If, text is non-empty, then if it contains WS, then first split up words, effectively getting rid of all white-space, and then do - per each argument - the pattern-matching, where the matching rules do not require the % to match a non-empty string. Yes, it semantics, but it matters, as proven in last paragraph of your post.
    – Ji Cha
    Aug 24, 2015 at 12:07
  • 1
    @JiCha See my edit at the end. You are right, it effectively getting rid of spaces characters before to do the replacement when the pattern have a %. Aug 24, 2015 at 13:29

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