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I need to reference the stem twice in the replacement for a variable substitution:

O23=$(OROOTS:%=$(ODIR)/overx-%2wk-%3wk.mlb)

I need to perform two replacements with the same stem, but the substitution uses patsubst which only does the first. How can we accomplish both?

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3 Answers 3

up vote 2 down vote accepted

By kludgery:

O23=$(join $(OROOTS:%=$(ODIR)/overx-%2wk), $(OROOTS:%=-%3wk.mlb))
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Short of using $(shell), I can think of no better option. You win... this time. –  Jack Kelly Mar 8 '11 at 1:11

In fact, Jack got it almost right -- foreach to the rescue! We know the full stem anyway and stick it into a var, and foreach expands all occurrences of the var:

O23 := $(foreach root,$(OROOTS),$(ODIR)/overx-$(root)2wk-$(root)3wk.mlb)

I'll check Beta's anyway for the new perspective.

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I have to admit, that is more elegant. –  Beta Mar 8 '11 at 6:38
    
I have to admit, that is more elegant. –  Jack Kelly Mar 11 '11 at 2:30

By $(shell):

O23 := $(foreach O,$(OROOTS),$(shell echo '$(O)' | awk '{print "overx-"$$0"2wk-"$$0"3wk.mlb"}'))

I think Beta's kludgery is probably better, since it doesn't have to fork out to awk for every word in $(OROOTS).

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