Question

基于Sjoerd，From Cartesian Plot to Polar Histogram using Mathematica上的出色解决方案和扩展程序，请考虑以下内容：

list = {{21, 16}, {16, 14}, {11, 11}, {11, 12}, 
        {13, 15}, {18, 17}, {19, 11}, {17, 16}, {16, 19}}

ScreenCenter = {20, 15}

ListPolarPlot[{ArcTan[##], EuclideanDistance[##]} & @@@ (# - ScreenCenter & /@ list), 
              PolarAxes -> True, PolarGridLines -> Automatic, Joined -> False, 
              PolarTicks -> {"Degrees", Automatic}, 
              BaseStyle -> {FontFamily -> "Arial", FontWeight -> Bold, 
              FontSize -> 12}, PlotStyle -> {Red, PointSize -> 0.02}]

enter image description here

Module[{Countz, maxScale, angleDivisions, dAng},
        Countz = Reverse[BinCounts[Flatten@Map[ArcTan[#[[1]] - ScreenCenter[[1]], #[[2]] - 
                 ScreenCenter[[2]]] &, list, {1}], {-\[Pi], \[Pi], \[Pi]/6}]];
        maxScale = 4;
        angleDivisions = 12;
        dAng = (2 \[Pi])/angleDivisions;

SectorChart[{ConstantArray[1, Length[Countz]], Countz}\[Transpose],
             SectorOrigin -> {-\[Pi]/angleDivisions, "Counterclockwise"},
             PolarAxes -> True,
             PolarGridLines -> Automatic,
             PolarTicks -> {Table[{i \[Degree] + \[Pi]/angleDivisions,i \[Degree]}, 
             {i, 0, 345, 30}], Automatic},
             ChartStyle -> {Directive[EdgeForm[{Black, Thickness[0.005]}], Red]}, 
             BaseStyle -> {FontFamily -> "Arial", FontWeight -> Bold, 
             FontSize -> 12}, ImageSize -> 400]]

enter image description here

正如您所见，直方图显示了旋转对称性。我尝试了一切，以获得那些直，但没有成功。没有反向，这是最糟糕的。我试过RotateRight没有成功。我觉得问题出在我的BinCount中。 ArcTan从-Pi输出到Pi，而Sjoerd建议我需要从0到2Pi。但我不明白该怎么做。

编辑：问题解决了。感谢Sjoerd，Belisarius，Heike解决方案，我能够在给定图像重心的情况下显示眼睛固定位置的直方图。

enter image description here

Answer 1

现在就检查，但你的第一个情节似乎有缺陷：

list = {{21, 16}, {16, 14}, {11, 11}, {11, 12}, {13, 15}, 
        {18, 17}, {19, 11}, {17, 16}, {16, 19}};
ScreenCenter = {20, 15};

Show[ListPlot[list, PlotStyle -> Directive[PointSize[Medium], Purple]], 
     Graphics[
              {Red, PointSize[Large], Point[ScreenCenter], 
               Circle[ScreenCenter, 10]}], 
AspectRatio -> 1, Axes -> False]

enter image description here

ListPolarPlot[{ArcTan[Sequence @@ ##], Norm[##]} &/@ (#-ScreenCenter & /@ list), 
 PolarAxes -> True, 
 PolarGridLines -> Automatic, 
 Joined -> False, 
 PolarTicks -> {"Degrees", Automatic}, 
 BaseStyle -> {FontFamily -> "Arial", FontWeight -> Bold, FontSize -> 12},
 PlotStyle -> {Red, PointSize -> 0.02}]

enter image description here

修改

我没有按照你的所有代码，但屏幕中心的反思似乎解决了这个问题：

Module[{Countz, maxScale, angleDivisions, dAng}, Countz = BinCounts[ {ArcTan[Sequence @@ ##]} & /@ (# + ScreenCenter & /@ -list), {-Pi, Pi, Pi/6}]; maxScale = 4; angleDivisions = 12; dAng = (2 Pi)/angleDivisions; SectorChart[{ConstantArray[1, Length[Countz]], Countz}\[Transpose], SectorOrigin -> {-Pi/angleDivisions, "Counterclockwise"}, PolarAxes -> True, PolarGridLines -> Automatic, PolarTicks -> {Table[{i \[Degree] + Pi/angleDivisions, i \[Degree]}, {i, 0, 345, 30}], Automatic}, ChartStyle -> {Directive[EdgeForm[{Black, Thickness[0.005]}], Red]}, BaseStyle -> {FontFamily -> "Arial", FontWeight -> Bold, FontSize -> 12}, ImageSize -> 400]]

修改

在这里你可能会看到我的代码中的小错位，这是在Heike的答案中解决的（投票给它！）

Show[Module[{Countz, maxScale, angleDivisions, dAng}, Countz = BinCounts[{ArcTan[ Sequence @@ ##]} & /@ (# + ScreenCenter & /@ -list), {-\[Pi], \[Pi], \[Pi]/6}]; maxScale = 4; angleDivisions = 12; dAng = (2 \[Pi])/angleDivisions; SectorChart[{ConstantArray[1, Length[Countz]], Countz}\[Transpose], SectorOrigin -> {-\[Pi]/angleDivisions, "Counterclockwise"}, PolarAxes -> True, PolarGridLines -> Automatic, PolarTicks -> {Table[{i \[Degree] + \[Pi]/angleDivisions, i \[Degree]}, {i, 0, 345, 30}], Automatic}, ChartStyle -> {Directive[EdgeForm[{Black, Thickness[0.005]}], Red]}, BaseStyle -> {FontFamily -> "Arial", FontWeight -> Bold, FontSize -> 12}, ImageSize -> 400]], ListPlot[Plus[# - ScreenCenter] & /@ list/2.5, PlotMarkers -> Image[CrossMatrix[10], ImageSize -> 10]] ]

Answer 2

您可以使用ChartElementFunction选项准确定位扇区。 ChartElementFunction的第一个参数的格式为{{angleMin, angleMax}, {rMin,rMax}}。第一个扇区的边界为{angleMin, angleMax} = {-Pi/12, Pi/12}，第二个扇区为{Pi/12, 3 Pi/12}等。因此，要获得正确的旋转，您可以执行类似

的操作

Module[{Countz, maxScale, angleDivisions, dAng},
 maxScale = 4;
 angleDivisions = 12;
 dAng = (2 \[Pi])/angleDivisions;
 Countz = BinCounts[
   Flatten@Map[ArcTan @@ (# - ScreenCenter) &, list, {1}], 
    {-Pi, Pi, dAng}];

 SectorChart[{ConstantArray[1, Length[Countz]], Countz}\[Transpose], 
  SectorOrigin -> {-\[Pi]/angleDivisions, "Counterclockwise"}, 
  PolarAxes -> True, PolarGridLines -> Automatic, 
  PolarTicks -> {Table[{i \[Degree] + \[Pi]/angleDivisions, 
      i \[Degree]}, {i, 0, 345, 30}], Automatic}, 
  ChartStyle -> {Directive[EdgeForm[{Black, Thickness[0.005]}], Red]},
  BaseStyle -> {FontFamily -> "Arial", FontWeight -> Bold, FontSize -> 12}, 
  ImageSize -> 400,

  ChartElementFunction -> 
   Function[{range}, Disk[{0, 0}, range[[2, 2]], - 11 Pi/12 + range[[1]]]]]]

enter image description here

Arctan Binning，从剧情到直方图，技巧

2 个答案: