Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm using the following gnuplot commands to create a plot:

#!/bin/bash
gnuplot << 'EOF'
set term postscript portrait color enhanced
set output 'out.ps'

plot 'data_file' u 3:2 w points , '' u 3:2:($4!=-3.60 ? $1:'aaa') w labels

EOF

where data_file looks like this:

  O4     -1.20     -0.33     -5.20  
O9.5     -1.10     -0.30     -3.60  
  B0     -1.08     -0.30     -3.25  
B0.5     -1.00     -0.28     -2.60  
B1.5     -0.90     -0.25     -2.10  
B2.5     -0.80     -0.22     -1.50  
  B3     -0.69     -0.20     -1.10  

I want gnuplot to label all points with the strings found in column 1, except the one where column 4 is equal to -3.60 in which case I want the aaa string. What I'm getting is that the $4=-3.60 data point is being labeled correctly as aaa, but the rest are not being labeled at all.


Update: gnuplot has no problem showing numbers as labels using the conditional statement, ie: any column but 1 is correctly displayed as a label for each point respecting the conditions imposed. That is, this line displays column 2 (numbres) as point labels respecting the conditional statement:

plot 'data_file' u 3:2 w points , '' u 3:2:($4!=-3.60 ? $2:'aaa') w labels

Update 2: It also has no problem in plotting column 1 as point labels if I plot it as a whole, ie not using a conditional statement. That is, this line plots correctly all the point labels in column 1 (strings):

plot 'data_file' u 3:2 w points , '' u 3:2:1 w labels

So clearly the problem is in using the conditional statement together with the strings column. Any of these used separately works just fine.

share|improve this question

2 Answers 2

up vote 0 down vote accepted

In a more clean way maybe, this should work. It seems label can't display a computed number if it isn't turned in a string.

#!/bin/bash
gnuplot << 'EOF'
set term postscript portrait color enhanced
set output 'out.ps'

plot 'data_file' u 3:2 w points , '' u 3:2:($4!=-3.60 ? sprintf("%d",$1):'aaa') w labels

EOF
share|improve this answer
    
This solution doesn't work for me. All I get is a single label ('aaa') which represents the one label the OP wants to be removed ... doing sprintf("%d",$1) only works if the data in column 1 are integers. doing sprintf("%s",$1) doesn't work either. Am I missing something here? –  mgilson Jul 17 '12 at 12:17
    
I don't have gnuplot around to check, but maybe it's different if the first line of column 1 doesn't contain a number (in that case the whole sprintf thing shouldn't be needed). I confess I did try it on a datafile of mine, and not exactly on the OP's one... I would also try (($4!=-3.60)? ''.$1:'aaa' to force string conversion only if needed. –  T. Verron Jul 17 '12 at 20:12
    
The following works ($4 ne '-3.60' ? stringcolumn(1):'') (stringcolumn is a better way than using string concatenation), but this test is really quite fragile since it is doing a string comparison on -3.60 instead of a float comparison. (e.g. -3.6 will still put a label on there). The issue here is that since gnuplot is plotting labels, it is expecting strings in that field (converting column 4 to strings on input it seems). This also leaves that (empty) string in the output which inflates it. The best solution is the one I propose below (IMHO) -- just move the filter and it works fine –  mgilson Jul 17 '12 at 20:23
    
Also note that ($4!=-3.60)? ''.$1:'aaa' produces the same result as your sprintf version. –  mgilson Jul 17 '12 at 20:25

Is this what you want?

#!/bin/bash

gnuplot << 'EOF'
set term postscript portrait color enhanced
set output 'out.ps'
plot 'data_file' u 3:2 w points , \
     '' u (($4 == -3.60)? 1/0 : $3):2:1 w labels

EOF

All I do here is set (x) points where the column 4 equals -3.6 to NaN (1/0). Since gnuplot ignores those points, life is good. I think the problem with your script is that you were filtering a column where gnuplot expects string input -- although I haven't played around with it enough to verify that. I just switched the filter to a column where gnuplot expects numbers (the x position) and it works just fine.

share|improve this answer
    
Yesss! Thank you so much, I had run out of ideas to try. Cheers! –  Gabriel Jun 27 '12 at 19:34
1  
@Gaba_p -- Glad to help. keep (gnu)plotting! :) –  mgilson Jun 27 '12 at 19:36

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.