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.

There is an example in the Mathematica 7 help for Plot > Options > ColorFunctionScaling.

Table[Plot[Sin[4 Pi x], {x, 0, 1/2}, PlotStyle -> Thick, 
  ColorFunction -> Function[{x, y}, Hue[x]], 
  ColorFunctionScaling -> cf], {cf, {False, True}}]

enter image description here

When I evaluate it myself on Mathematica 7, both output plots look like the one on the left.

However, if I evaluate this, I get the plot on the right, as shown above:

Plot[Sin[4 Pi x], {x, 0, 1/2}, PlotStyle -> Thick, 
 ColorFunction -> Function[{x, y}, Hue[x]], 
 ColorFunctionScaling -> True]

Why might the example as given fail?


Alexey and Simon demonstrated that this is not the result of HoldAll, as I presumed before.

The existence of the example leads me to suspect it once worked, and the information that it works on version 8 tells me that the behavior has changed. What precisely has changed?

share|improve this question
    
Since this behaviour does not occur in the current v8, I changed the link to point to the legacy v7 documentation. (I hope that's ok!) –  Simon Mar 23 '11 at 7:33
    
@Simon thanks, that's better. –  Mr.Wizard Mar 23 '11 at 7:36

3 Answers 3

Your question is really interesting. The mentioned method of supplying option values to built-in functions is widely used in the Documentation. The fact that it fails only for ColorFunctionScaling looks like a bug. And information that in v.8 this problem does not exist confirms that this is a bug in v.7.

In any way consider the following:

In[1]:= SetAttributes[f, HoldAll]
f[__, OptionsPattern[ColorFunctionScaling -> False]] := 
 OptionValue[ColorFunctionScaling]
Table[f[Sin[4 Pi x], {x, 0, 1/2}, 
  ColorFunctionScaling -> cf], {cf, {False, True}}]


Out[3]= {False, True}

You can see that HoldAll attribute in really does not prevent substituting of cf.

In this way, it is really interesting what was the cause of described buggy behavior of Plot with Table in v.7?

share|improve this answer
    
Alexey, I missed this reply. Let me think about that! +1 –  Mr.Wizard Apr 12 '11 at 9:01
2  
@Mr.Wizard HoldAll does prevent the substitution all right. What you observed is due to the Block-like (dynamic) scoping mechanism used by Table, plus the magic used in OptionValue, which uses the run-time value for cf. You can use Trace to see that OptionValue expands into OptionValue[ColorFunctionScaling->False,{ColorFunctionScaling->cf},ColorFunctio‌​nScaling], and then it is this evaluation where the value for the cf is being substituted. Older OptionQ - based way of option checks was much more direct and easier to understand, and did not involve any magic. –  Leonid Shifrin Apr 12 '11 at 13:05
    
@Leonid I did not see this until now (I believe only the first @person gets notified). Would you please post this as an answer, with more detail? –  Mr.Wizard May 1 '11 at 13:11
1  
@Mr.Wizard I would prefer to not post this as an answer since my comment is tangential to the question being asked, but is a comment to @Alexey's observation. Also, I don't know how to explain it better. @Alexey noted that HoldAll for f did not prevent the substitution of cf by its value, and I noted that that substitution was happening not when f[args] was evaluated (l.h.s), but when OptionValue on the r.h.s of the definition for f was evaluated. So, my point was that it was a consequence of OptionValue's evaluation and had nothing to do with the HoldAll attribute of f. –  Leonid Shifrin May 1 '11 at 16:41

The evaluation order seems slightly out. It works if you force cf to be substituted in before the Plot command is looked at. To do this we use the With[{x=x},...] construct:

Table[With[{cf = cf}, 
  Plot[Sin[4 Pi x], {x, 0, 1/2}, PlotStyle -> Thick, 
   ColorFunction -> Function[{x, y}, Hue[x]], 
   ColorFunctionScaling -> cf]], {cf, {False, True}}]

plot

It's strange that you don't need such a kludge in Mathematica version 8.

It's even stranger that the Mathematica 7 documentation has an example where the pre-evaluated graphics does not match what is produced by that version. (Nice find, btw)

share|improve this answer
1  
Beat me to it! I suspect this was a bug with the variable localization of cf inside Plot/Table, and apparently fixed in 8.0, as you noted. –  Michael Pilat Mar 23 '11 at 7:21
    
What else does this effect? I thought Table was a valid scoping construct, and that this would/should not happen. –  Mr.Wizard Mar 23 '11 at 7:27
4  
@Mr.Wizard: Table uses Block-like scoping and Plot is HoldAll, so if Plot doesn't evaluate the value it won't resolve to its value. –  Brett Champion Mar 23 '11 at 13:31
    
@Brett Now I see. I should have realized this, and I am surprised I didn't have problems with this before. I didn't even check for that as I was confident the option value was evaluated. I blame myself for being ignorant of this, but I console myself I am not the first (re: help file). –  Mr.Wizard Mar 23 '11 at 14:07
2  
@Brett @Mr.Wizard: I'm not sure if it's quite that simple. Other Plot options are happy to be placed into a table, e.g. Table[Plot[Sin[4 Pi x], {x, 0, 1/2}, PlotStyle -> {tt}], {tt, {nonesense, Thin, Thick}}]. Or do the same with the ColorFunction ranging over {Hue, GrayLevel}.... –  Simon Mar 23 '11 at 21:14
up vote 1 down vote accepted

This bug in fact is related to the HoldAll attribute, but I was fooled by this auto-load issue into thinking it was not. This can be seen by executing this:

Plot[Sin[x], {x, 0, Pi}];

Unprotect[Plot]
ClearAttributes[Plot, HoldAll]

Table[Plot[Sin[4 Pi x], {x, 0, 1/2}, PlotStyle -> Thick, 
  ColorFunction -> Function[{x, y}, Hue[x]], 
  ColorFunctionScaling -> cf], {cf, {False, True}}]

The first Plot is needed to activate the package load.

One can therefore get the correct behavior by wrapping ColorFunctionScaling -> ... in Evaluate:

Table[Plot[Sin[4 Pi x], {x, 0, 1/2}, PlotStyle -> Thick, 
  ColorFunction -> Function[{x, y}, Hue[x]], 
  Evaluate[ColorFunctionScaling -> cf]], {cf, {False, True}}]

enter image description here

share|improve this answer
    
Interestingly, which package is loaded and what is the mechanism for loading the package? Definition[Plot] does not give the answer. –  Alexey Popkov May 2 '11 at 16:45
    
@Alexey, did you see the question here? Using Plot the first time loads some .mx file that resets its attributes, so if you try the code above in a fresh kernel, without the first Plot line, Plot has attribute HoldAll again when the plots are created. –  Mr.Wizard May 3 '11 at 0:30
    
I did and in that case the mechanism can be found by looking at the definition for LogLinearPlot: Unprotect[LogLinearPlot]; ClearAttributes[LogLinearPlot,ReadProtected]; Definition[LogLinearPlot] explains what happens. In the case of Plot it does not work. –  Alexey Popkov May 3 '11 at 3:58

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.