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I am creating an application for various kinds of plot/chart drawing in Mathematica. Ultimately it will have a GUI, but the first step is to get the code right, and simple enough for a GUI to manage. I am having difficulty setting legends to have no frame around them.

Here is a minimal example (with some options on BarChart already customised using SetOptions.

mydata = {4.5644, 5.546, 6.8674, 2.7688, 1.742, 5.3952, 4.3392, 4.5016, \
 3.7748, 1.838, 2.24, 0.693, 2.818, 4.9, 3.939, 3.459, 3.755, 4.475, \
 3.857, 3.215, 2.206, 2.206, 2.117, 3.403, 3.277, 3.761, 4.276, 2.559, \
 3.486, 4.778, 2.281, 2.865, 3.629, 4.916, 4.572, 5.244, 5.395, 2.865, \
 -0.524, 5.01, 4.401, 4.513, 4.54}

BarChart[mydata, 
 ChartStyle -> {Join[
  Table[RGBColor[0.5, 0.5, 0.95], {Length[mydata] - 3}], {Magenta,
   Magenta, Magenta}]}, PlotRange -> {-2, 8}, 
 ChartLegends -> {Join[
  Table[None, {Length[mydata] - 3}], {Placed[
   Style["Forecasts", FontFamily -> "Arial", FontSize -> 18], 
   Bottom]}]}, BarSpacing -> 0.4, 
 LegendAppearance ->  Directive[Background -> Red, 
   Frame -> None, ImageSize -> 15]]

And here is what I get: enter image description here

Try as I might, I can't get rid of that border round the legend. You can see that LegendAppearance does nothing - I've tried a few other approaches to it, too.

I'm reticent to code up little rectangles by hand, because that will be very difficult to get right in the eventual GUI. ChartLabels won't work either, because that is already being used for date labels in the real version of the graph.

Does anyone have any suggestions?

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3 Answers

up vote 8 down vote accepted

You can temporarily, globally kill the frame by setting:

SetOptions[Legending`GridLegend, Legending`LegendContainer -> Identity]

To restore the default behavior, set:

SetOptions[Legending`GridLegend, Legending`LegendContainer -> Automatic]
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+1: sorry, I'm home sick and only just got around to checking that it worked. It does work on v8, and it is the sort of thing I can put in the package as a default. Thank you! –  Verbeia Aug 17 '11 at 0:46
    
Very, very interesting: ?Legending'* (where that quote mark is a backquote) gives a whole bunch of undocumented bits and pieces.: AssembleLegendContainer ContourLegend Legend LegendImage LegendPane Legends BubbleScaleLegend CurveLegend LegendContainer LegendItemLayout LegendPosition Le‌​gendSize ColorGradientLegend GridLegend LegendHeading LegendLayout LegendReap LegendSow –  Verbeia Aug 17 '11 at 0:58
1  
@Verbeia thanks for confirming that it works, and I hope it is helpful. Pardon me if I sounded impatient. I was not. Rather, a working solution usually gets at least one vote after eight hours, so I thought perhaps this undocumented option had been removed in version 8. (BTW, I think you can embed the backtick by using double backticks for the code block. Let me try: ?Legending`*) –  Mr.Wizard Aug 17 '11 at 1:00
1  
+1 for the backtick thing, and don't worry, the combination of timezone differences and a relatively small population of users means that sometimes nothing happens for a while. I find it hard to find questions that haven't already been answered really well, because most of the questions are posed when it's bedtime in Australia. –  Verbeia Aug 17 '11 at 1:10
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I can't find any options to turn the frame off. The documentation for LegendAppearance is fairly minimal and the styling of legends in general does not get much discussion (see [2] and links within).

The easiest solution I can think of is to manually modify the graphics. Charts with legends produce Labeled graphics objects. For a single legend, the Labeled object that is produced looks like Labeled[Graphics[...], Framed[...], pos], so all you need to do is remove the Framed part. This could be done just be removing all Framed heads using a ReplaceAll (e.g. BarChart[...] /. Framed -> Identity), but maybe something more targeted would be safer.

mydata = {4.5644, 5.546, 6.8674, 2.7688, 1.742, 5.3952, 4.3392, 
   4.5016, 3.7748, 1.838, 2.24, 0.693, 2.818, 4.9, 3.939, 3.459, 
   3.755, 4.475, 3.857, 3.215, 2.206, 2.206, 2.117, 3.403, 3.277, 
   3.761, 4.276, 2.559, 3.486, 4.778, 2.281, 2.865, 3.629, 4.916, 
   4.572, 5.244, 5.395, 2.865, -0.524, 5.01, 4.401, 4.513, 4.54};

bc = BarChart[{Legended[Style[mydata[[;; -4]], Red], "Data"], 
   Legended[Style[mydata[[-3 ;;]], Blue], "Forecasts"]}, 
  PlotRange -> {-2, 8}, BarSpacing -> 0.4, LegendAppearance -> "Row"]

with frame

bc /. Labeled[g_, Framed[leg_], pos_] :> Labeled[g, leg, pos]

with frame removed

The above could also be produced using Replace[bc, Framed[leg_] :> leg, {1}] or MapAt[Apply[Identity, #] &, bc, 2] or similar constructions. It wouldn't take much to modify the code if you have more labels or different types of graphics objects.

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+1 I was about to suggest the same solution, but yours is more complete. The name LegendAppearance suggests more than it what it seems to do in practice. –  Sjoerd C. de Vries Aug 16 '11 at 8:01
    
+1 - thanks Simon, the second example (using /. Labeled[g_, Framed[leg_], pos_] :> Labeled[g, leg, pos]) does exactly what it should, even if the plot itself has a Frame. It will be interesting to work out the general case adn see if that can be done in a GUI. –  Verbeia Aug 16 '11 at 8:20
    
@Simon InputForm[bc], possibly followed by (InputForm[bc /. {Framed[legend_] :> legend}])[[1]], helps clarify why your solution works. [[1]] removes the InputForm[] wrapper. –  David Carraher Aug 16 '11 at 9:04
    
@David: Replacement rules (and Map, Apply, etc..) always act on the FullForm of an expression. But yes, I did use InputForm[bc] to see what was going on in order to construct my answer. @Sjoerd Thanks for the edit! –  Simon Aug 16 '11 at 10:14
2  
@Simon. (Minor point). Adding the option FrameStyle-> None also seems to work. Your method can be used for quite subtle control of legend appearance. For example: bc /. Labeled[g_, Framed[leg_], pos_] :> Labeled[g, Framed[leg, FrameStyle -> None, RoundingRadius -> 10, Background -> Yellow], pos]. Thanks. –  TomD Aug 16 '11 at 11:11
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Not as versatile as Simon's method given above, but nevertheless possibly worth posting. (I found this out while reading this question)

Using Part, where bc is as defined in Simon's answer:

bc[[2]] = bc[[2, 1]]; bc

giving

enter image description here

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