[a9d5684] | 1 | """ |
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| 2 | Prototype plottable object support. |
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| 3 | |
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| 4 | The main point of this prototype is to provide a clean separation between |
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| 5 | the style (plotter details: color, grids, widgets, etc.) and substance |
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| 6 | (application details: which information to plot). Programmers should not be |
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| 7 | dictating line colours and plotting symbols. |
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| 8 | |
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| 9 | Unlike the problem of style in CSS or Word, where most paragraphs look |
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| 10 | the same, each line on a graph has to be distinguishable from its neighbours. |
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| 11 | Our solution is to provide parametric styles, in which a number of |
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| 12 | different classes of object (e.g., reflectometry data, reflectometry |
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| 13 | theory) representing multiple graph primitives cycle through a colour |
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| 14 | palette provided by the underlying plotter. |
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| 15 | |
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| 16 | A full treatment would provide perceptual dimensions of prominence and |
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| 17 | distinctiveness rather than a simple colour number. |
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| 18 | |
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| 19 | """ |
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| 20 | |
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| 21 | # Design question: who owns the color? |
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| 22 | # Is it a property of the plottable? |
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| 23 | # Or of the plottable as it exists on the graph? |
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| 24 | # Or if the graph? |
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| 25 | # If a plottable can appear on multiple graphs, in some case the |
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| 26 | # color should be the same on each graph in which it appears, and |
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| 27 | # in other cases (where multiple plottables from different graphs |
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| 28 | # coexist), the color should be assigned by the graph. In any case |
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| 29 | # once a plottable is placed on the graph its color should not |
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| 30 | # depend on the other plottables on the graph. Furthermore, if |
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| 31 | # a plottable is added and removed from a graph and added again, |
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| 32 | # it may be nice, but not necessary, to have the color persist. |
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| 33 | # |
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| 34 | # The safest approach seems to be to give ownership of color |
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| 35 | # to the graph, which will allocate the colors along with the |
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| 36 | # plottable. The plottable will need to return the number of |
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| 37 | # colors that are needed. |
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| 38 | # |
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| 39 | # The situation is less clear for symbols. It is less clear |
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| 40 | # how much the application requires that symbols be unique across |
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| 41 | # all plots on the graph. |
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| 42 | |
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| 43 | # Support for ancient python versions |
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| 44 | import copy |
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| 45 | import numpy |
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| 46 | import sys |
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[3477478] | 47 | import logging |
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[a9d5684] | 48 | |
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| 49 | if 'any' not in dir(__builtins__): |
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| 50 | def any(L): |
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| 51 | for cond in L: |
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| 52 | if cond: |
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| 53 | return True |
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| 54 | return False |
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[3477478] | 55 | |
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[a9d5684] | 56 | def all(L): |
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| 57 | for cond in L: |
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| 58 | if not cond: |
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| 59 | return False |
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| 60 | return True |
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| 61 | |
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| 62 | |
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[3477478] | 63 | class Graph(object): |
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[a9d5684] | 64 | """ |
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| 65 | Generic plottables graph structure. |
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[3477478] | 66 | |
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[a9d5684] | 67 | Plot styles are based on color/symbol lists. The user gets to select |
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| 68 | the list of colors/symbols/sizes to choose from, not the application |
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| 69 | developer. The programmer only gets to add/remove lines from the |
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| 70 | plot and move to the next symbol/color. |
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| 71 | |
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| 72 | Another dimension is prominence, which refers to line sizes/point sizes. |
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| 73 | |
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| 74 | Axis transformations allow the user to select the coordinate view |
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| 75 | which provides clarity to the data. There is no way we can provide |
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| 76 | every possible transformation for every application generically, so |
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| 77 | the plottable objects themselves will need to provide the transformations. |
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| 78 | Here are some examples from reflectometry: :: |
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[3477478] | 79 | |
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[a9d5684] | 80 | independent: x -> f(x) |
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| 81 | monitor scaling: y -> M*y |
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| 82 | log: y -> log(y if y > min else min) |
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| 83 | cos: y -> cos(y*pi/180) |
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| 84 | dependent: x -> f(x,y) |
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| 85 | Q4: y -> y*x^4 |
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| 86 | fresnel: y -> y*fresnel(x) |
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| 87 | coordinated: x,y = f(x,y) |
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| 88 | Q: x -> 2*pi/L (cos(x*pi/180) - cos(y*pi/180)) |
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| 89 | y -> 2*pi/L (sin(x*pi/180) + sin(y*pi/180)) |
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| 90 | reducing: x,y = f(x1,x2,y1,y2) |
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| 91 | spin asymmetry: x -> x1, y -> (y1 - y2)/(y1 + y2) |
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| 92 | vector net: x -> x1, y -> y1*cos(y2*pi/180) |
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[3477478] | 93 | |
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[a9d5684] | 94 | Multiple transformations are possible, such as Q4 spin asymmetry |
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| 95 | |
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| 96 | Axes have further complications in that the units of what are being |
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| 97 | plotted should correspond to the units on the axes. Plotting multiple |
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| 98 | types on the same graph should be handled gracefully, e.g., by creating |
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| 99 | a separate tab for each available axis type, breaking into subplots, |
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| 100 | showing multiple axes on the same plot, or generating inset plots. |
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| 101 | Ultimately the decision should be left to the user. |
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| 102 | |
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| 103 | Graph properties such as grids/crosshairs should be under user control, |
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| 104 | as should the sizes of items such as axis fonts, etc. No direct |
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| 105 | access will be provided to the application. |
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| 106 | |
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| 107 | Axis limits are mostly under user control. If the user has zoomed or |
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| 108 | panned then those limits are preserved even if new data is plotted. |
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| 109 | The exception is when, e.g., scanning through a set of related lines |
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| 110 | in which the user may want to fix the limits so that user can compare |
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| 111 | the values directly. Another exception is when creating multiple |
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| 112 | graphs sharing the same limits, though this case may be important |
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| 113 | enough that it is handled by the graph widget itself. Axis limits |
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| 114 | will of course have to understand the effects of axis transformations. |
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| 115 | |
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| 116 | High level plottable objects may be composed of low level primitives. |
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| 117 | Operations such as legend/hide/show copy/paste, etc. need to operate |
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| 118 | on these primitives as a group. E.g., allowing the user to have a |
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| 119 | working canvas where they can drag lines they want to save and annotate |
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| 120 | them. |
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| 121 | |
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| 122 | Graphs need to be printable. A page layout program for entire plots |
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| 123 | would be nice. |
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[3477478] | 124 | |
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[a9d5684] | 125 | """ |
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| 126 | def _xaxis_transformed(self, name, units): |
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| 127 | """ |
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| 128 | Change the property of the x axis |
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| 129 | according to an axis transformation |
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| 130 | (as opposed to changing the basic properties) |
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| 131 | """ |
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| 132 | if units != "": |
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| 133 | name = "%s (%s)" % (name, units) |
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| 134 | self.prop["xlabel"] = name |
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| 135 | self.prop["xunit"] = units |
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[3477478] | 136 | |
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[a9d5684] | 137 | def _yaxis_transformed(self, name, units): |
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| 138 | """ |
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| 139 | Change the property of the y axis |
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| 140 | according to an axis transformation |
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| 141 | (as opposed to changing the basic properties) |
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| 142 | """ |
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| 143 | if units != "": |
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| 144 | name = "%s (%s)" % (name, units) |
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| 145 | self.prop["ylabel"] = name |
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| 146 | self.prop["yunit"] = units |
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[3477478] | 147 | |
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[a9d5684] | 148 | def xaxis(self, name, units): |
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| 149 | """ |
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| 150 | Properties of the x axis. |
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| 151 | """ |
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| 152 | if units != "": |
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| 153 | name = "%s (%s)" % (name, units) |
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| 154 | self.prop["xlabel"] = name |
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| 155 | self.prop["xunit"] = units |
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| 156 | self.prop["xlabel_base"] = name |
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| 157 | self.prop["xunit_base"] = units |
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| 158 | |
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| 159 | def yaxis(self, name, units): |
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| 160 | """ |
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| 161 | Properties of the y axis. |
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| 162 | """ |
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| 163 | if units != "": |
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| 164 | name = "%s (%s)" % (name, units) |
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| 165 | self.prop["ylabel"] = name |
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| 166 | self.prop["yunit"] = units |
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| 167 | self.prop["ylabel_base"] = name |
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| 168 | self.prop["yunit_base"] = units |
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[3477478] | 169 | |
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[a9d5684] | 170 | def title(self, name): |
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| 171 | """ |
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| 172 | Graph title |
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| 173 | """ |
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| 174 | self.prop["title"] = name |
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[3477478] | 175 | |
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[a9d5684] | 176 | def get(self, key): |
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| 177 | """ |
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| 178 | Get the graph properties |
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| 179 | """ |
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| 180 | if key == "color": |
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| 181 | return self.color |
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| 182 | elif key == "symbol": |
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| 183 | return self.symbol |
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| 184 | else: |
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| 185 | return self.prop[key] |
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| 186 | |
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| 187 | def set(self, **kw): |
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| 188 | """ |
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| 189 | Set the graph properties |
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| 190 | """ |
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| 191 | for key in kw: |
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| 192 | if key == "color": |
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| 193 | self.color = kw[key] % len(self.colorlist) |
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| 194 | elif key == "symbol": |
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| 195 | self.symbol = kw[key] % len(self.symbollist) |
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| 196 | else: |
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| 197 | self.prop[key] = kw[key] |
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| 198 | |
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| 199 | def isPlotted(self, plottable): |
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| 200 | """Return True is the plottable is already on the graph""" |
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| 201 | if plottable in self.plottables: |
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| 202 | return True |
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| 203 | return False |
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| 204 | |
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| 205 | def add(self, plottable, color=None): |
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| 206 | """Add a new plottable to the graph""" |
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| 207 | # record the colour associated with the plottable |
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| 208 | if not plottable in self.plottables: |
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| 209 | if color is not None: |
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| 210 | self.plottables[plottable] = color |
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| 211 | else: |
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| 212 | self.color += plottable.colors() |
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| 213 | self.plottables[plottable] = self.color |
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| 214 | |
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| 215 | def changed(self): |
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| 216 | """Detect if any graphed plottables have changed""" |
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| 217 | return any([p.changed() for p in self.plottables]) |
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[3477478] | 218 | |
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[a9d5684] | 219 | def get_range(self): |
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| 220 | """ |
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| 221 | Return the range of all displayed plottables |
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| 222 | """ |
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[3477478] | 223 | min_value = None |
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| 224 | max_value = None |
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[a9d5684] | 225 | for p in self.plottables: |
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| 226 | if p.hidden == True: |
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| 227 | continue |
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| 228 | if not p.x == None: |
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| 229 | for x_i in p.x: |
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[3477478] | 230 | if min_value == None or x_i < min_value: |
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| 231 | min_value = x_i |
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| 232 | if max_value == None or x_i > max_value: |
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| 233 | max_value = x_i |
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| 234 | return min_value, max_value |
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| 235 | |
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[a9d5684] | 236 | def replace(self, plottable): |
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| 237 | """Replace an existing plottable from the graph""" |
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| 238 | selected_color = None |
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| 239 | selected_plottable = None |
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| 240 | for p in self.plottables.keys(): |
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| 241 | if plottable.id == p.id: |
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| 242 | selected_plottable = p |
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| 243 | selected_color = self.plottables[p] |
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| 244 | break |
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| 245 | if selected_plottable is not None and selected_color is not None: |
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| 246 | del self.plottables[selected_plottable] |
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| 247 | self.plottables[plottable] = selected_color |
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| 248 | |
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| 249 | def delete(self, plottable): |
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| 250 | """Remove an existing plottable from the graph""" |
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| 251 | if plottable in self.plottables: |
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| 252 | del self.plottables[plottable] |
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| 253 | self.color = len(self.plottables) |
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[3477478] | 254 | |
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[a9d5684] | 255 | def reset_scale(self): |
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| 256 | """ |
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| 257 | Resets the scale transformation data to the underlying data |
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| 258 | """ |
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| 259 | for p in self.plottables: |
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| 260 | p.reset_view() |
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| 261 | |
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| 262 | def reset(self): |
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| 263 | """Reset the graph.""" |
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| 264 | self.color = -1 |
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| 265 | self.symbol = 0 |
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| 266 | self.prop = {"xlabel": "", "xunit": None, |
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| 267 | "ylabel": "", "yunit": None, |
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| 268 | "title": ""} |
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| 269 | self.plottables = {} |
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[3477478] | 270 | |
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[a9d5684] | 271 | def _make_labels(self): |
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| 272 | """ |
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| 273 | """ |
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| 274 | # Find groups of related plottables |
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| 275 | sets = {} |
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| 276 | for p in self.plottables: |
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| 277 | if p.__class__ in sets: |
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| 278 | sets[p.__class__].append(p) |
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| 279 | else: |
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| 280 | sets[p.__class__] = [p] |
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| 281 | # Ask each plottable class for a set of unique labels |
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| 282 | labels = {} |
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| 283 | for c in sets: |
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| 284 | labels.update(c.labels(sets[c])) |
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| 285 | return labels |
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[3477478] | 286 | |
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[a9d5684] | 287 | def get_plottable(self, name): |
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| 288 | """ |
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| 289 | Return the plottable with the given |
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| 290 | name if it exists. Otherwise return None |
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| 291 | """ |
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| 292 | for item in self.plottables: |
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| 293 | if item.name == name: |
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| 294 | return item |
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| 295 | return None |
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[3477478] | 296 | |
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[a9d5684] | 297 | def returnPlottable(self): |
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| 298 | """ |
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| 299 | This method returns a dictionary of plottables contained in graph |
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| 300 | It is just by Plotpanel to interact with the complete list of plottables |
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| 301 | inside the graph. |
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| 302 | """ |
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| 303 | return self.plottables |
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[3477478] | 304 | |
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| 305 | def render(self, plot): |
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[a9d5684] | 306 | """Redraw the graph""" |
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| 307 | plot.connect.clearall() |
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| 308 | plot.clear() |
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| 309 | plot.properties(self.prop) |
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| 310 | labels = self._make_labels() |
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| 311 | for p in self.plottables: |
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| 312 | if p.custom_color is not None: |
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| 313 | p.render(plot, color=p.custom_color, symbol=0, |
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[3477478] | 314 | markersize=p.markersize, label=labels[p]) |
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[a9d5684] | 315 | else: |
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| 316 | p.render(plot, color=self.plottables[p], symbol=0, |
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[3477478] | 317 | markersize=p.markersize, label=labels[p]) |
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[a9d5684] | 318 | plot.render() |
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[3477478] | 319 | |
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[a9d5684] | 320 | def __init__(self, **kw): |
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| 321 | self.reset() |
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| 322 | self.set(**kw) |
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| 323 | # Name of selected plottable, if any |
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| 324 | self.selected_plottable = None |
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| 325 | |
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| 326 | |
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| 327 | # Transform interface definition |
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| 328 | # No need to inherit from this class, just need to provide |
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| 329 | # the same methods. |
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[3477478] | 330 | class Transform(object): |
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[a9d5684] | 331 | """ |
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| 332 | Define a transform plugin to the plottable architecture. |
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[3477478] | 333 | |
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[a9d5684] | 334 | Transforms operate on axes. The plottable defines the |
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| 335 | set of transforms available for it, and the axes on which |
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| 336 | they operate. These transforms can operate on the x axis |
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| 337 | only, the y axis only or on the x and y axes together. |
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[3477478] | 338 | |
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[a9d5684] | 339 | This infrastructure is not able to support transformations |
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| 340 | such as log and polar plots as these require full control |
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| 341 | over the drawing of axes and grids. |
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[3477478] | 342 | |
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[a9d5684] | 343 | A transform has a number of attributes. |
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[3477478] | 344 | |
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[51f14603] | 345 | name |
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| 346 | user visible name for the transform. This will |
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| 347 | appear in the context menu for the axis and the transform |
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| 348 | menu for the graph. |
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[3477478] | 349 | |
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[51f14603] | 350 | type |
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| 351 | operational axis. This determines whether the |
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| 352 | transform should appear on x,y or z axis context |
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| 353 | menus, or if it should appear in the context menu for |
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| 354 | the graph. |
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[3477478] | 355 | |
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[51f14603] | 356 | inventory |
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[3477478] | 357 | (not implemented) |
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[51f14603] | 358 | a dictionary of user settable parameter names and |
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| 359 | their associated types. These should appear as keyword |
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| 360 | arguments to the transform call. For example, Fresnel |
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| 361 | reflectivity requires the substrate density: |
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[3477478] | 362 | ``{ 'rho': type.Value(10e-6/units.angstrom**2) }`` |
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[51f14603] | 363 | Supply reasonable defaults in the callback so that |
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| 364 | limited plotting clients work even though they cannot |
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| 365 | set the inventory. |
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[3477478] | 366 | |
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[a9d5684] | 367 | """ |
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| 368 | def __call__(self, plottable, **kwargs): |
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| 369 | """ |
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| 370 | Transform the data. Whenever a plottable is added |
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| 371 | to the axes, the infrastructure will apply all required |
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| 372 | transforms. When the user selects a different representation |
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| 373 | for the axes (via menu, script, or context menu), all |
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| 374 | plottables on the axes will be transformed. The |
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| 375 | plottable should store the underlying data but set |
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| 376 | the standard x,dx,y,dy,z,dz attributes appropriately. |
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[3477478] | 377 | |
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[a9d5684] | 378 | If the call raises a NotImplemented error the dataline |
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| 379 | will not be plotted. The associated string will usually |
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| 380 | be 'Not a valid transform', though other strings are possible. |
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| 381 | The application may or may not display the message to the |
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| 382 | user, along with an indication of which plottable was at fault. |
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[3477478] | 383 | |
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[a9d5684] | 384 | """ |
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| 385 | raise NotImplemented, "Not a valid transform" |
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| 386 | |
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| 387 | # Related issues |
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| 388 | # ============== |
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| 389 | # |
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| 390 | # log scale: |
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| 391 | # All axes have implicit log/linear scaling options. |
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| 392 | # |
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| 393 | # normalization: |
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| 394 | # Want to display raw counts vs detector efficiency correction |
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| 395 | # Want to normalize by time/monitor/proton current/intensity. |
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| 396 | # Want to display by eg. counts per 3 sec or counts per 10000 monitor. |
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| 397 | # Want to divide by footprint (ab initio, fitted or measured). |
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| 398 | # Want to scale by attenuator values. |
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| 399 | # |
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| 400 | # compare/contrast: |
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| 401 | # Want to average all visible lines with the same tag, and |
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| 402 | # display difference from one particular line. Not a transform |
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| 403 | # issue? |
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| 404 | # |
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| 405 | # multiline graph: |
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| 406 | # How do we show/hide data parts. E.g., data or theory, or |
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| 407 | # different polarization cross sections? One way is with |
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| 408 | # tags: each plottable has a set of tags and the tags are |
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| 409 | # listed as check boxes above the plotting area. Click a |
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| 410 | # tag and all plottables with that tag are hidden on the |
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| 411 | # plot and on the legend. |
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| 412 | # |
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| 413 | # nonconformant y-axes: |
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| 414 | # What do we do with temperature vs. Q and reflectivity vs. Q |
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| 415 | # on the same graph? |
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| 416 | # |
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| 417 | # 2D -> 1D: |
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| 418 | # Want various slices through the data. Do transforms apply |
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| 419 | # to the sliced data as well? |
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| 420 | |
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| 421 | |
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| 422 | class Plottable(object): |
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| 423 | """ |
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| 424 | """ |
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| 425 | # Short ascii name to refer to the plottable in a menu |
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| 426 | short_name = None |
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| 427 | # Fancy name |
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| 428 | name = None |
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| 429 | # Data |
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[3477478] | 430 | x = None |
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| 431 | y = None |
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[a9d5684] | 432 | dx = None |
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| 433 | dy = None |
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| 434 | # Parameter to allow a plot to be part of the list without being displayed |
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| 435 | hidden = False |
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| 436 | # Flag to set whether a plottable has an interactor or not |
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| 437 | interactive = True |
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| 438 | custom_color = None |
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| 439 | markersize = 5 # default marker size is 'size 5' |
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[3477478] | 440 | |
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[a9d5684] | 441 | def __init__(self): |
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| 442 | self.view = View() |
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| 443 | self._xaxis = "" |
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| 444 | self._xunit = "" |
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| 445 | self._yaxis = "" |
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| 446 | self._yunit = "" |
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[3477478] | 447 | |
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[a9d5684] | 448 | def __setattr__(self, name, value): |
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| 449 | """ |
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| 450 | Take care of changes in View when data is changed. |
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| 451 | This method is provided for backward compatibility. |
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| 452 | """ |
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| 453 | object.__setattr__(self, name, value) |
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| 454 | if name in ['x', 'y', 'dx', 'dy']: |
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| 455 | self.reset_view() |
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[3477478] | 456 | # print "self.%s has been called" % name |
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[a9d5684] | 457 | |
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| 458 | def set_data(self, x, y, dx=None, dy=None): |
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| 459 | """ |
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| 460 | """ |
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| 461 | self.x = x |
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| 462 | self.y = y |
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| 463 | self.dy = dy |
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| 464 | self.dx = dx |
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| 465 | self.transformView() |
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[3477478] | 466 | |
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[a9d5684] | 467 | def xaxis(self, name, units): |
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| 468 | """ |
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| 469 | Set the name and unit of x_axis |
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[3477478] | 470 | |
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[a9d5684] | 471 | :param name: the name of x-axis |
---|
| 472 | :param units: the units of x_axis |
---|
[3477478] | 473 | |
---|
[a9d5684] | 474 | """ |
---|
| 475 | self._xaxis = name |
---|
| 476 | self._xunit = units |
---|
| 477 | |
---|
| 478 | def yaxis(self, name, units): |
---|
| 479 | """ |
---|
| 480 | Set the name and unit of y_axis |
---|
[3477478] | 481 | |
---|
[a9d5684] | 482 | :param name: the name of y-axis |
---|
| 483 | :param units: the units of y_axis |
---|
[3477478] | 484 | |
---|
[a9d5684] | 485 | """ |
---|
| 486 | self._yaxis = name |
---|
| 487 | self._yunit = units |
---|
[3477478] | 488 | |
---|
[a9d5684] | 489 | def get_xaxis(self): |
---|
| 490 | """Return the units and name of x-axis""" |
---|
| 491 | return self._xaxis, self._xunit |
---|
[3477478] | 492 | |
---|
[a9d5684] | 493 | def get_yaxis(self): |
---|
| 494 | """ Return the units and name of y- axis""" |
---|
| 495 | return self._yaxis, self._yunit |
---|
| 496 | |
---|
| 497 | @classmethod |
---|
| 498 | def labels(cls, collection): |
---|
| 499 | """ |
---|
| 500 | Construct a set of unique labels for a collection of plottables of |
---|
| 501 | the same type. |
---|
[3477478] | 502 | |
---|
[a9d5684] | 503 | Returns a map from plottable to name. |
---|
[3477478] | 504 | |
---|
[a9d5684] | 505 | """ |
---|
| 506 | n = len(collection) |
---|
[3477478] | 507 | label_dict = {} |
---|
[a9d5684] | 508 | if n > 0: |
---|
| 509 | basename = str(cls).split('.')[-1] |
---|
| 510 | if n == 1: |
---|
[3477478] | 511 | label_dict[collection[0]] = basename |
---|
[a9d5684] | 512 | else: |
---|
| 513 | for i in xrange(len(collection)): |
---|
[3477478] | 514 | label_dict[collection[i]] = "%s %d" % (basename, i) |
---|
| 515 | return label_dict |
---|
[a9d5684] | 516 | |
---|
[3477478] | 517 | # #Use the following if @classmethod doesn't work |
---|
[a9d5684] | 518 | # labels = classmethod(labels) |
---|
| 519 | def setLabel(self, labelx, labely): |
---|
| 520 | """ |
---|
| 521 | It takes a label of the x and y transformation and set View parameters |
---|
[3477478] | 522 | |
---|
[a9d5684] | 523 | :param transx: The label of x transformation is sent by Properties Dialog |
---|
| 524 | :param transy: The label of y transformation is sent Properties Dialog |
---|
[3477478] | 525 | |
---|
[a9d5684] | 526 | """ |
---|
| 527 | self.view.xLabel = labelx |
---|
| 528 | self.view.yLabel = labely |
---|
[3477478] | 529 | |
---|
[a9d5684] | 530 | def set_View(self, x, y): |
---|
| 531 | """Load View""" |
---|
| 532 | self.x = x |
---|
| 533 | self.y = y |
---|
| 534 | self.reset_view() |
---|
[3477478] | 535 | |
---|
[a9d5684] | 536 | def reset_view(self): |
---|
| 537 | """Reload view with new value to plot""" |
---|
| 538 | self.view = View(self.x, self.y, self.dx, self.dy) |
---|
| 539 | self.view.Xreel = self.view.x |
---|
| 540 | self.view.Yreel = self.view.y |
---|
| 541 | self.view.DXreel = self.view.dx |
---|
| 542 | self.view.DYreel = self.view.dy |
---|
[3477478] | 543 | |
---|
[a9d5684] | 544 | def render(self, plot): |
---|
| 545 | """ |
---|
| 546 | The base class makes sure the correct units are being used for |
---|
| 547 | subsequent plottable. |
---|
[3477478] | 548 | |
---|
[a9d5684] | 549 | For now it is assumed that the graphs are commensurate, and if you |
---|
[3477478] | 550 | put a Qx object on a Temperature graph then you had better hope |
---|
[a9d5684] | 551 | that it makes sense. |
---|
[3477478] | 552 | |
---|
[a9d5684] | 553 | """ |
---|
| 554 | plot.xaxis(self._xaxis, self._xunit) |
---|
| 555 | plot.yaxis(self._yaxis, self._yunit) |
---|
[3477478] | 556 | |
---|
[a9d5684] | 557 | def is_empty(self): |
---|
| 558 | """ |
---|
| 559 | Returns True if there is no data stored in the plottable |
---|
| 560 | """ |
---|
| 561 | if not self.x == None and len(self.x) == 0 \ |
---|
| 562 | and not self.y == None and len(self.y) == 0: |
---|
| 563 | return True |
---|
| 564 | return False |
---|
[3477478] | 565 | |
---|
[a9d5684] | 566 | def colors(self): |
---|
| 567 | """Return the number of colors need to render the object""" |
---|
| 568 | return 1 |
---|
[3477478] | 569 | |
---|
[a9d5684] | 570 | def transformView(self): |
---|
| 571 | """ |
---|
| 572 | It transforms x, y before displaying |
---|
| 573 | """ |
---|
| 574 | self.view.transform(self.x, self.y, self.dx, self.dy) |
---|
[3477478] | 575 | |
---|
[a9d5684] | 576 | def returnValuesOfView(self): |
---|
| 577 | """ |
---|
| 578 | Return View parameters and it is used by Fit Dialog |
---|
| 579 | """ |
---|
| 580 | return self.view.returnXview() |
---|
[3477478] | 581 | |
---|
[a9d5684] | 582 | def check_data_PlottableX(self): |
---|
| 583 | """ |
---|
| 584 | Since no transformation is made for log10(x), check that |
---|
| 585 | no negative values is plot in log scale |
---|
| 586 | """ |
---|
| 587 | self.view.check_data_logX() |
---|
[3477478] | 588 | |
---|
[a9d5684] | 589 | def check_data_PlottableY(self): |
---|
| 590 | """ |
---|
[3477478] | 591 | Since no transformation is made for log10(y), check that |
---|
[a9d5684] | 592 | no negative values is plot in log scale |
---|
| 593 | """ |
---|
| 594 | self.view.check_data_logY() |
---|
[3477478] | 595 | |
---|
[a9d5684] | 596 | def transformX(self, transx, transdx): |
---|
| 597 | """ |
---|
| 598 | Receive pointers to function that transform x and dx |
---|
| 599 | and set corresponding View pointers |
---|
[3477478] | 600 | |
---|
[a9d5684] | 601 | :param transx: pointer to function that transforms x |
---|
| 602 | :param transdx: pointer to function that transforms dx |
---|
[3477478] | 603 | |
---|
[a9d5684] | 604 | """ |
---|
| 605 | self.view.setTransformX(transx, transdx) |
---|
[3477478] | 606 | |
---|
[a9d5684] | 607 | def transformY(self, transy, transdy): |
---|
| 608 | """ |
---|
| 609 | Receive pointers to function that transform y and dy |
---|
| 610 | and set corresponding View pointers |
---|
[3477478] | 611 | |
---|
[a9d5684] | 612 | :param transy: pointer to function that transforms y |
---|
| 613 | :param transdy: pointer to function that transforms dy |
---|
[3477478] | 614 | |
---|
[a9d5684] | 615 | """ |
---|
| 616 | self.view.setTransformY(transy, transdy) |
---|
[3477478] | 617 | |
---|
[a9d5684] | 618 | def onReset(self): |
---|
| 619 | """ |
---|
| 620 | Reset x, y, dx, dy view with its parameters |
---|
| 621 | """ |
---|
| 622 | self.view.onResetView() |
---|
[3477478] | 623 | |
---|
[a9d5684] | 624 | def onFitRange(self, xmin=None, xmax=None): |
---|
| 625 | """ |
---|
| 626 | It limits View data range to plot from min to max |
---|
[3477478] | 627 | |
---|
[a9d5684] | 628 | :param xmin: the minimum value of x to plot. |
---|
| 629 | :param xmax: the maximum value of x to plot |
---|
[3477478] | 630 | |
---|
[a9d5684] | 631 | """ |
---|
| 632 | self.view.onFitRangeView(xmin, xmax) |
---|
[3477478] | 633 | |
---|
| 634 | |
---|
| 635 | class View(object): |
---|
[a9d5684] | 636 | """ |
---|
| 637 | Representation of the data that might include a transformation |
---|
| 638 | """ |
---|
| 639 | x = None |
---|
| 640 | y = None |
---|
| 641 | dx = None |
---|
| 642 | dy = None |
---|
| 643 | |
---|
| 644 | def __init__(self, x=None, y=None, dx=None, dy=None): |
---|
| 645 | """ |
---|
| 646 | """ |
---|
| 647 | self.x = x |
---|
| 648 | self.y = y |
---|
| 649 | self.dx = dx |
---|
| 650 | self.dy = dy |
---|
| 651 | # To change x range to the reel range |
---|
| 652 | self.Xreel = self.x |
---|
| 653 | self.Yreel = self.y |
---|
| 654 | self.DXreel = self.dx |
---|
| 655 | self.DYreel = self.dy |
---|
| 656 | # Labels of x and y received from Properties Dialog |
---|
| 657 | self.xLabel = "" |
---|
| 658 | self.yLabel = "" |
---|
| 659 | # Function to transform x, y, dx and dy |
---|
| 660 | self.funcx = None |
---|
| 661 | self.funcy = None |
---|
| 662 | self.funcdx = None |
---|
| 663 | self.funcdy = None |
---|
| 664 | |
---|
| 665 | def transform(self, x=None, y=None, dx=None, dy=None): |
---|
| 666 | """ |
---|
| 667 | Transforms the x,y,dx and dy vectors and stores |
---|
| 668 | the output in View parameters |
---|
| 669 | |
---|
| 670 | :param x: array of x values |
---|
| 671 | :param y: array of y values |
---|
| 672 | :param dx: array of errors values on x |
---|
| 673 | :param dy: array of error values on y |
---|
[3477478] | 674 | |
---|
[a9d5684] | 675 | """ |
---|
| 676 | # Sanity check |
---|
| 677 | # Do the transofrmation only when x and y are empty |
---|
[cad617b] | 678 | has_err_x = not (dx is None or len(dx) == 0) |
---|
| 679 | has_err_y = not (dy is None or len(dy) == 0) |
---|
[3477478] | 680 | |
---|
[cad617b] | 681 | if(x is not None) and (y is not None): |
---|
| 682 | if not dx is None and not len(dx) == 0 and not len(x) == len(dx): |
---|
[a9d5684] | 683 | msg = "Plottable.View: Given x and dx are not" |
---|
| 684 | msg += " of the same length" |
---|
| 685 | raise ValueError, msg |
---|
| 686 | # Check length of y array |
---|
| 687 | if not len(y) == len(x): |
---|
| 688 | msg = "Plottable.View: Given y " |
---|
| 689 | msg += "and x are not of the same length" |
---|
| 690 | raise ValueError, msg |
---|
[3477478] | 691 | |
---|
[cad617b] | 692 | if not dy is None and not len(dy) == 0 and not len(y) == len(dy): |
---|
[a9d5684] | 693 | msg = "Plottable.View: Given y and dy are not of the same " |
---|
| 694 | msg += "length: len(y)=%s, len(dy)=%s" % (len(y), len(dy)) |
---|
| 695 | raise ValueError, msg |
---|
| 696 | self.x = [] |
---|
| 697 | self.y = [] |
---|
| 698 | if has_err_x: |
---|
| 699 | self.dx = [] |
---|
| 700 | else: |
---|
| 701 | self.dx = None |
---|
| 702 | if has_err_y: |
---|
| 703 | self.dy = [] |
---|
| 704 | else: |
---|
| 705 | self.dy = None |
---|
| 706 | if not has_err_x: |
---|
| 707 | dx = numpy.zeros(len(x)) |
---|
| 708 | if not has_err_y: |
---|
| 709 | dy = numpy.zeros(len(y)) |
---|
| 710 | for i in range(len(x)): |
---|
| 711 | try: |
---|
| 712 | tempx = self.funcx(x[i], y[i]) |
---|
| 713 | tempy = self.funcy(y[i], x[i]) |
---|
| 714 | if has_err_x: |
---|
| 715 | tempdx = self.funcdx(x[i], y[i], dx[i], dy[i]) |
---|
| 716 | if has_err_y: |
---|
| 717 | tempdy = self.funcdy(y[i], x[i], dy[i], dx[i]) |
---|
| 718 | self.x.append(tempx) |
---|
| 719 | self.y.append(tempy) |
---|
| 720 | if has_err_x: |
---|
| 721 | self.dx.append(tempdx) |
---|
| 722 | if has_err_y: |
---|
| 723 | self.dy.append(tempdy) |
---|
[cd54205] | 724 | except Exception: |
---|
| 725 | pass |
---|
[a9d5684] | 726 | # Sanity check |
---|
| 727 | if not len(self.x) == len(self.y): |
---|
| 728 | msg = "Plottable.View: transformed x " |
---|
| 729 | msg += "and y are not of the same length" |
---|
| 730 | raise ValueError, msg |
---|
[cd54205] | 731 | if has_err_x and not (len(self.x) == len(self.dx)): |
---|
[a9d5684] | 732 | msg = "Plottable.View: transformed x and dx" |
---|
| 733 | msg += " are not of the same length" |
---|
| 734 | raise ValueError, msg |
---|
[cd54205] | 735 | if has_err_y and not (len(self.y) == len(self.dy)): |
---|
[a9d5684] | 736 | msg = "Plottable.View: transformed y" |
---|
| 737 | msg += " and dy are not of the same length" |
---|
| 738 | raise ValueError, msg |
---|
| 739 | # Check that negative values are not plot on x and y axis for |
---|
| 740 | # log10 transformation |
---|
| 741 | self.check_data_logX() |
---|
| 742 | self.check_data_logY() |
---|
| 743 | # Store x ,y dx,and dy in their full range for reset |
---|
| 744 | self.Xreel = self.x |
---|
| 745 | self.Yreel = self.y |
---|
| 746 | self.DXreel = self.dx |
---|
| 747 | self.DYreel = self.dy |
---|
[3477478] | 748 | |
---|
[a9d5684] | 749 | def onResetView(self): |
---|
| 750 | """ |
---|
| 751 | Reset x,y,dx and y in their full range and in the initial scale |
---|
| 752 | in case their previous range has changed |
---|
| 753 | """ |
---|
| 754 | self.x = self.Xreel |
---|
| 755 | self.y = self.Yreel |
---|
| 756 | self.dx = self.DXreel |
---|
| 757 | self.dy = self.DYreel |
---|
[3477478] | 758 | |
---|
[a9d5684] | 759 | def setTransformX(self, funcx, funcdx): |
---|
| 760 | """ |
---|
| 761 | Receive pointers to function that transform x and dx |
---|
| 762 | and set corresponding View pointers |
---|
[3477478] | 763 | |
---|
[a9d5684] | 764 | :param transx: pointer to function that transforms x |
---|
| 765 | :param transdx: pointer to function that transforms dx |
---|
| 766 | """ |
---|
| 767 | self.funcx = funcx |
---|
| 768 | self.funcdx = funcdx |
---|
[3477478] | 769 | |
---|
[a9d5684] | 770 | def setTransformY(self, funcy, funcdy): |
---|
| 771 | """ |
---|
| 772 | Receive pointers to function that transform y and dy |
---|
| 773 | and set corresponding View pointers |
---|
[3477478] | 774 | |
---|
[a9d5684] | 775 | :param transx: pointer to function that transforms y |
---|
| 776 | :param transdx: pointer to function that transforms dy |
---|
| 777 | """ |
---|
| 778 | self.funcy = funcy |
---|
| 779 | self.funcdy = funcdy |
---|
[3477478] | 780 | |
---|
[a9d5684] | 781 | def returnXview(self): |
---|
| 782 | """ |
---|
| 783 | Return View x,y,dx,dy |
---|
| 784 | """ |
---|
| 785 | return self.x, self.y, self.dx, self.dy |
---|
[3477478] | 786 | |
---|
[a9d5684] | 787 | def check_data_logX(self): |
---|
| 788 | """ |
---|
| 789 | Remove negative value in x vector to avoid plotting negative |
---|
| 790 | value of Log10 |
---|
| 791 | """ |
---|
| 792 | tempx = [] |
---|
| 793 | tempdx = [] |
---|
| 794 | tempy = [] |
---|
| 795 | tempdy = [] |
---|
| 796 | if self.dx == None: |
---|
| 797 | self.dx = numpy.zeros(len(self.x)) |
---|
| 798 | if self.dy == None: |
---|
| 799 | self.dy = numpy.zeros(len(self.y)) |
---|
| 800 | if self.xLabel == "log10(x)": |
---|
| 801 | for i in range(len(self.x)): |
---|
| 802 | try: |
---|
[3477478] | 803 | if self.x[i] > 0: |
---|
[a9d5684] | 804 | tempx.append(self.x[i]) |
---|
| 805 | tempdx.append(self.dx[i]) |
---|
| 806 | tempy.append(self.y[i]) |
---|
| 807 | tempdy.append(self.dy[i]) |
---|
| 808 | except: |
---|
[3477478] | 809 | logging.error("check_data_logX: skipping point x %g", self.x[i]) |
---|
| 810 | logging.error(sys.exc_value) |
---|
[a9d5684] | 811 | self.x = tempx |
---|
| 812 | self.y = tempy |
---|
| 813 | self.dx = tempdx |
---|
| 814 | self.dy = tempdy |
---|
[3477478] | 815 | |
---|
[a9d5684] | 816 | def check_data_logY(self): |
---|
| 817 | """ |
---|
| 818 | Remove negative value in y vector |
---|
| 819 | to avoid plotting negative value of Log10 |
---|
[3477478] | 820 | |
---|
[a9d5684] | 821 | """ |
---|
| 822 | tempx = [] |
---|
| 823 | tempdx = [] |
---|
| 824 | tempy = [] |
---|
| 825 | tempdy = [] |
---|
| 826 | if self.dx == None: |
---|
| 827 | self.dx = numpy.zeros(len(self.x)) |
---|
| 828 | if self.dy == None: |
---|
| 829 | self.dy = numpy.zeros(len(self.y)) |
---|
[3477478] | 830 | if self.yLabel == "log10(y)": |
---|
[a9d5684] | 831 | for i in range(len(self.x)): |
---|
| 832 | try: |
---|
[3477478] | 833 | if self.y[i] > 0: |
---|
[a9d5684] | 834 | tempx.append(self.x[i]) |
---|
| 835 | tempdx.append(self.dx[i]) |
---|
| 836 | tempy.append(self.y[i]) |
---|
| 837 | tempdy.append(self.dy[i]) |
---|
| 838 | except: |
---|
[3477478] | 839 | logging.error("check_data_logY: skipping point %g", self.y[i]) |
---|
| 840 | logging.error(sys.exc_value) |
---|
| 841 | |
---|
[a9d5684] | 842 | self.x = tempx |
---|
| 843 | self.y = tempy |
---|
| 844 | self.dx = tempdx |
---|
| 845 | self.dy = tempdy |
---|
[3477478] | 846 | |
---|
[a9d5684] | 847 | def onFitRangeView(self, xmin=None, xmax=None): |
---|
| 848 | """ |
---|
| 849 | It limits View data range to plot from min to max |
---|
[3477478] | 850 | |
---|
[a9d5684] | 851 | :param xmin: the minimum value of x to plot. |
---|
| 852 | :param xmax: the maximum value of x to plot |
---|
[3477478] | 853 | |
---|
[a9d5684] | 854 | """ |
---|
| 855 | tempx = [] |
---|
| 856 | tempdx = [] |
---|
| 857 | tempy = [] |
---|
| 858 | tempdy = [] |
---|
| 859 | if self.dx == None: |
---|
| 860 | self.dx = numpy.zeros(len(self.x)) |
---|
| 861 | if self.dy == None: |
---|
| 862 | self.dy = numpy.zeros(len(self.y)) |
---|
[3477478] | 863 | if xmin != None and xmax != None: |
---|
[a9d5684] | 864 | for i in range(len(self.x)): |
---|
[3477478] | 865 | if self.x[i] >= xmin and self.x[i] <= xmax: |
---|
[a9d5684] | 866 | tempx.append(self.x[i]) |
---|
| 867 | tempdx.append(self.dx[i]) |
---|
| 868 | tempy.append(self.y[i]) |
---|
| 869 | tempdy.append(self.dy[i]) |
---|
| 870 | self.x = tempx |
---|
| 871 | self.y = tempy |
---|
| 872 | self.dx = tempdx |
---|
| 873 | self.dy = tempdy |
---|
| 874 | |
---|
[3477478] | 875 | |
---|
[a9d5684] | 876 | class Data2D(Plottable): |
---|
| 877 | """ |
---|
| 878 | 2D data class for image plotting |
---|
| 879 | """ |
---|
| 880 | def __init__(self, image=None, qx_data=None, qy_data=None, |
---|
[3477478] | 881 | err_image=None, xmin=None, xmax=None, ymin=None, |
---|
| 882 | ymax=None, zmin=None, zmax=None): |
---|
[a9d5684] | 883 | """ |
---|
| 884 | Draw image |
---|
| 885 | """ |
---|
| 886 | Plottable.__init__(self) |
---|
| 887 | self.name = "Data2D" |
---|
| 888 | self.label = None |
---|
| 889 | self.data = image |
---|
| 890 | self.qx_data = qx_data |
---|
| 891 | self.qy_data = qx_data |
---|
| 892 | self.err_data = err_image |
---|
| 893 | self.source = None |
---|
| 894 | self.detector = [] |
---|
[3477478] | 895 | |
---|
| 896 | # # Units for Q-values |
---|
[a9d5684] | 897 | self.xy_unit = 'A^{-1}' |
---|
[3477478] | 898 | # # Units for I(Q) values |
---|
[a9d5684] | 899 | self.z_unit = 'cm^{-1}' |
---|
| 900 | self._zaxis = '' |
---|
| 901 | # x-axis unit and label |
---|
| 902 | self._xaxis = '\\rm{Q_{x}}' |
---|
| 903 | self._xunit = 'A^{-1}' |
---|
| 904 | # y-axis unit and label |
---|
| 905 | self._yaxis = '\\rm{Q_{y}}' |
---|
| 906 | self._yunit = 'A^{-1}' |
---|
[3477478] | 907 | |
---|
| 908 | # ## might remove that later |
---|
| 909 | # # Vector of Q-values at the center of each bin in x |
---|
[a9d5684] | 910 | self.x_bins = [] |
---|
[3477478] | 911 | # # Vector of Q-values at the center of each bin in y |
---|
[a9d5684] | 912 | self.y_bins = [] |
---|
[3477478] | 913 | |
---|
| 914 | # x and y boundaries |
---|
[a9d5684] | 915 | self.xmin = xmin |
---|
| 916 | self.xmax = xmax |
---|
| 917 | self.ymin = ymin |
---|
| 918 | self.ymax = ymax |
---|
[3477478] | 919 | |
---|
[a9d5684] | 920 | self.zmin = zmin |
---|
| 921 | self.zmax = zmax |
---|
| 922 | self.id = None |
---|
[3477478] | 923 | |
---|
[a9d5684] | 924 | def xaxis(self, label, unit): |
---|
| 925 | """ |
---|
| 926 | set x-axis |
---|
[3477478] | 927 | |
---|
[a9d5684] | 928 | :param label: x-axis label |
---|
| 929 | :param unit: x-axis unit |
---|
[3477478] | 930 | |
---|
[a9d5684] | 931 | """ |
---|
| 932 | self._xaxis = label |
---|
| 933 | self._xunit = unit |
---|
[3477478] | 934 | |
---|
[a9d5684] | 935 | def yaxis(self, label, unit): |
---|
| 936 | """ |
---|
| 937 | set y-axis |
---|
[3477478] | 938 | |
---|
[a9d5684] | 939 | :param label: y-axis label |
---|
| 940 | :param unit: y-axis unit |
---|
[3477478] | 941 | |
---|
[a9d5684] | 942 | """ |
---|
| 943 | self._yaxis = label |
---|
| 944 | self._yunit = unit |
---|
[3477478] | 945 | |
---|
[a9d5684] | 946 | def zaxis(self, label, unit): |
---|
| 947 | """ |
---|
| 948 | set z-axis |
---|
[3477478] | 949 | |
---|
[a9d5684] | 950 | :param label: z-axis label |
---|
| 951 | :param unit: z-axis unit |
---|
[3477478] | 952 | |
---|
[a9d5684] | 953 | """ |
---|
| 954 | self._zaxis = label |
---|
| 955 | self._zunit = unit |
---|
[3477478] | 956 | |
---|
[a9d5684] | 957 | def setValues(self, datainfo=None): |
---|
| 958 | """ |
---|
| 959 | Use datainfo object to initialize data2D |
---|
[3477478] | 960 | |
---|
[a9d5684] | 961 | :param datainfo: object |
---|
[3477478] | 962 | |
---|
[a9d5684] | 963 | """ |
---|
| 964 | self.image = copy.deepcopy(datainfo.data) |
---|
| 965 | self.qx_data = copy.deepcopy(datainfo.qx_data) |
---|
| 966 | self.qy_data = copy.deepcopy(datainfo.qy_data) |
---|
| 967 | self.err_image = copy.deepcopy(datainfo.err_data) |
---|
[3477478] | 968 | |
---|
[a9d5684] | 969 | self.xy_unit = datainfo.Q_unit |
---|
| 970 | self.z_unit = datainfo.I_unit |
---|
| 971 | self._zaxis = datainfo._zaxis |
---|
[3477478] | 972 | |
---|
[a9d5684] | 973 | self.xaxis(datainfo._xunit, datainfo._xaxis) |
---|
| 974 | self.yaxis(datainfo._yunit, datainfo._yaxis) |
---|
[3477478] | 975 | # x and y boundaries |
---|
[a9d5684] | 976 | self.xmin = datainfo.xmin |
---|
| 977 | self.xmax = datainfo.xmax |
---|
| 978 | self.ymin = datainfo.ymin |
---|
| 979 | self.ymax = datainfo.ymax |
---|
[3477478] | 980 | # # Vector of Q-values at the center of each bin in x |
---|
[a9d5684] | 981 | self.x_bins = datainfo.x_bins |
---|
[3477478] | 982 | # # Vector of Q-values at the center of each bin in y |
---|
[a9d5684] | 983 | self.y_bins = datainfo.y_bins |
---|
[3477478] | 984 | |
---|
[a9d5684] | 985 | def set_zrange(self, zmin=None, zmax=None): |
---|
| 986 | """ |
---|
| 987 | """ |
---|
| 988 | if zmin < zmax: |
---|
| 989 | self.zmin = zmin |
---|
| 990 | self.zmax = zmax |
---|
| 991 | else: |
---|
| 992 | raise "zmin is greater or equal to zmax " |
---|
[3477478] | 993 | |
---|
[a9d5684] | 994 | def render(self, plot, **kw): |
---|
| 995 | """ |
---|
| 996 | Renders the plottable on the graph |
---|
[3477478] | 997 | |
---|
[a9d5684] | 998 | """ |
---|
| 999 | plot.image(self.data, self.qx_data, self.qy_data, |
---|
| 1000 | self.xmin, self.xmax, self.ymin, |
---|
| 1001 | self.ymax, self.zmin, self.zmax, **kw) |
---|
[3477478] | 1002 | |
---|
[a9d5684] | 1003 | def changed(self): |
---|
| 1004 | """ |
---|
| 1005 | """ |
---|
| 1006 | return False |
---|
[3477478] | 1007 | |
---|
[a9d5684] | 1008 | @classmethod |
---|
| 1009 | def labels(cls, collection): |
---|
| 1010 | """Build a label mostly unique within a collection""" |
---|
[3477478] | 1011 | label_dict = {} |
---|
[a9d5684] | 1012 | for item in collection: |
---|
| 1013 | if item.label == "Data2D": |
---|
| 1014 | item.label = item.name |
---|
[3477478] | 1015 | label_dict[item] = item.label |
---|
| 1016 | return label_dict |
---|
[a9d5684] | 1017 | |
---|
| 1018 | |
---|
| 1019 | class Data1D(Plottable): |
---|
| 1020 | """ |
---|
| 1021 | Data plottable: scatter plot of x,y with errors in x and y. |
---|
| 1022 | """ |
---|
[3477478] | 1023 | |
---|
[a9d5684] | 1024 | def __init__(self, x, y, dx=None, dy=None): |
---|
| 1025 | """ |
---|
| 1026 | Draw points specified by x[i],y[i] in the current color/symbol. |
---|
| 1027 | Uncertainty in x is given by dx[i], or by (xlo[i],xhi[i]) if the |
---|
| 1028 | uncertainty is asymmetric. Similarly for y uncertainty. |
---|
| 1029 | |
---|
| 1030 | The title appears on the legend. |
---|
| 1031 | The label, if it is different, appears on the status bar. |
---|
| 1032 | """ |
---|
| 1033 | Plottable.__init__(self) |
---|
| 1034 | self.name = "data" |
---|
| 1035 | self.label = "data" |
---|
| 1036 | self.x = x |
---|
| 1037 | self.y = y |
---|
| 1038 | self.dx = dx |
---|
| 1039 | self.dy = dy |
---|
| 1040 | self.source = None |
---|
| 1041 | self.detector = None |
---|
| 1042 | self.xaxis('', '') |
---|
| 1043 | self.yaxis('', '') |
---|
| 1044 | self.view = View(self.x, self.y, self.dx, self.dy) |
---|
| 1045 | self.symbol = 0 |
---|
| 1046 | self.custom_color = None |
---|
| 1047 | self.markersize = 5 |
---|
| 1048 | self.id = None |
---|
| 1049 | self.zorder = 1 |
---|
| 1050 | self.hide_error = False |
---|
[3477478] | 1051 | |
---|
[a9d5684] | 1052 | def render(self, plot, **kw): |
---|
| 1053 | """ |
---|
| 1054 | Renders the plottable on the graph |
---|
| 1055 | """ |
---|
| 1056 | if self.interactive == True: |
---|
| 1057 | kw['symbol'] = self.symbol |
---|
| 1058 | kw['id'] = self.id |
---|
| 1059 | kw['hide_error'] = self.hide_error |
---|
| 1060 | kw['markersize'] = self.markersize |
---|
| 1061 | plot.interactive_points(self.view.x, self.view.y, |
---|
| 1062 | dx=self.view.dx, dy=self.view.dy, |
---|
[3477478] | 1063 | name=self.name, zorder=self.zorder, **kw) |
---|
[a9d5684] | 1064 | else: |
---|
[3477478] | 1065 | kw['id'] = self.id |
---|
[a9d5684] | 1066 | kw['hide_error'] = self.hide_error |
---|
| 1067 | kw['symbol'] = self.symbol |
---|
| 1068 | kw['color'] = self.custom_color |
---|
| 1069 | kw['markersize'] = self.markersize |
---|
| 1070 | plot.points(self.view.x, self.view.y, dx=self.view.dx, |
---|
[3477478] | 1071 | dy=self.view.dy, zorder=self.zorder, |
---|
| 1072 | marker=self.symbollist[self.symbol], **kw) |
---|
| 1073 | |
---|
[a9d5684] | 1074 | def changed(self): |
---|
| 1075 | return False |
---|
| 1076 | |
---|
| 1077 | @classmethod |
---|
| 1078 | def labels(cls, collection): |
---|
| 1079 | """Build a label mostly unique within a collection""" |
---|
[3477478] | 1080 | label_dict = {} |
---|
[a9d5684] | 1081 | for item in collection: |
---|
| 1082 | if item.label == "data": |
---|
| 1083 | item.label = item.name |
---|
[3477478] | 1084 | label_dict[item] = item.label |
---|
| 1085 | return label_dict |
---|
| 1086 | |
---|
| 1087 | |
---|
[a9d5684] | 1088 | class Theory1D(Plottable): |
---|
| 1089 | """ |
---|
| 1090 | Theory plottable: line plot of x,y with confidence interval y. |
---|
| 1091 | """ |
---|
| 1092 | def __init__(self, x, y, dy=None): |
---|
| 1093 | """ |
---|
| 1094 | Draw lines specified in x[i],y[i] in the current color/symbol. |
---|
| 1095 | Confidence intervals in x are given by dx[i] or by (xlo[i],xhi[i]) |
---|
| 1096 | if the limits are asymmetric. |
---|
[3477478] | 1097 | |
---|
[a9d5684] | 1098 | The title is the name that will show up on the legend. |
---|
| 1099 | """ |
---|
| 1100 | Plottable.__init__(self) |
---|
[3477478] | 1101 | msg = "Theory1D is no longer supported, please use Data1D and change symbol.\n" |
---|
[a9d5684] | 1102 | raise DeprecationWarning, msg |
---|
[3477478] | 1103 | |
---|
[a9d5684] | 1104 | class Fit1D(Plottable): |
---|
| 1105 | """ |
---|
| 1106 | Fit plottable: composed of a data line plus a theory line. This |
---|
| 1107 | is treated like a single object from the perspective of the graph, |
---|
| 1108 | except that it will have two legend entries, one for the data and |
---|
| 1109 | one for the theory. |
---|
| 1110 | |
---|
| 1111 | The color of the data and theory will be shared. |
---|
[3477478] | 1112 | |
---|
[a9d5684] | 1113 | """ |
---|
| 1114 | def __init__(self, data=None, theory=None): |
---|
| 1115 | """ |
---|
| 1116 | """ |
---|
| 1117 | Plottable.__init__(self) |
---|
| 1118 | self.data = data |
---|
| 1119 | self.theory = theory |
---|
| 1120 | |
---|
| 1121 | def render(self, plot, **kw): |
---|
| 1122 | """ |
---|
| 1123 | """ |
---|
| 1124 | self.data.render(plot, **kw) |
---|
| 1125 | self.theory.render(plot, **kw) |
---|
| 1126 | |
---|
| 1127 | def changed(self): |
---|
| 1128 | """ |
---|
| 1129 | """ |
---|
| 1130 | return self.data.changed() or self.theory.changed() |
---|
| 1131 | |
---|
| 1132 | |
---|
| 1133 | # --------------------------------------------------------------- |
---|
| 1134 | class Text(Plottable): |
---|
| 1135 | """ |
---|
| 1136 | """ |
---|
| 1137 | def __init__(self, text=None, xpos=0.5, ypos=0.9, name='text'): |
---|
| 1138 | """ |
---|
| 1139 | Draw the user-defined text in plotter |
---|
| 1140 | We can specify the position of text |
---|
| 1141 | """ |
---|
| 1142 | Plottable.__init__(self) |
---|
| 1143 | self.name = name |
---|
| 1144 | self.text = text |
---|
| 1145 | self.xpos = xpos |
---|
| 1146 | self.ypos = ypos |
---|
[3477478] | 1147 | |
---|
[a9d5684] | 1148 | def render(self, plot, **kw): |
---|
| 1149 | """ |
---|
| 1150 | """ |
---|
| 1151 | from matplotlib import transforms |
---|
| 1152 | |
---|
| 1153 | xcoords = transforms.blended_transform_factory(plot.subplot.transAxes, |
---|
| 1154 | plot.subplot.transAxes) |
---|
| 1155 | plot.subplot.text(self.xpos, |
---|
| 1156 | self.ypos, |
---|
| 1157 | self.text, |
---|
| 1158 | label=self.name, |
---|
[3477478] | 1159 | transform=xcoords) |
---|
| 1160 | |
---|
[a9d5684] | 1161 | def setText(self, text): |
---|
| 1162 | """Set the text string.""" |
---|
| 1163 | self.text = text |
---|
| 1164 | |
---|
| 1165 | def getText(self, text): |
---|
| 1166 | """Get the text string.""" |
---|
| 1167 | return self.text |
---|
| 1168 | |
---|
| 1169 | def set_x(self, x): |
---|
| 1170 | """ |
---|
| 1171 | Set the x position of the text |
---|
| 1172 | ACCEPTS: float |
---|
| 1173 | """ |
---|
| 1174 | self.xpos = x |
---|
| 1175 | |
---|
| 1176 | def set_y(self, y): |
---|
| 1177 | """ |
---|
| 1178 | Set the y position of the text |
---|
| 1179 | ACCEPTS: float |
---|
| 1180 | """ |
---|
| 1181 | self.ypos = y |
---|
[3477478] | 1182 | |
---|
[a9d5684] | 1183 | |
---|
| 1184 | # --------------------------------------------------------------- |
---|
| 1185 | class Chisq(Plottable): |
---|
| 1186 | """ |
---|
| 1187 | Chisq plottable plots the chisq |
---|
| 1188 | """ |
---|
| 1189 | def __init__(self, chisq=None): |
---|
| 1190 | """ |
---|
| 1191 | Draw the chisq in plotter |
---|
| 1192 | We can specify the position of chisq |
---|
| 1193 | """ |
---|
| 1194 | Plottable.__init__(self) |
---|
| 1195 | self.name = "chisq" |
---|
| 1196 | self._chisq = chisq |
---|
| 1197 | self.xpos = 0.5 |
---|
| 1198 | self.ypos = 0.9 |
---|
[3477478] | 1199 | |
---|
[a9d5684] | 1200 | def render(self, plot, **kw): |
---|
| 1201 | """ |
---|
| 1202 | """ |
---|
| 1203 | if self._chisq == None: |
---|
| 1204 | chisqTxt = r'$\chi^2=$' |
---|
| 1205 | else: |
---|
| 1206 | chisqTxt = r'$\chi^2=%g$' % (float(self._chisq)) |
---|
| 1207 | |
---|
| 1208 | from matplotlib import transforms |
---|
| 1209 | |
---|
| 1210 | xcoords = transforms.blended_transform_factory(plot.subplot.transAxes, |
---|
[3477478] | 1211 | plot.subplot.transAxes) |
---|
[a9d5684] | 1212 | plot.subplot.text(self.xpos, |
---|
| 1213 | self.ypos, |
---|
| 1214 | chisqTxt, label='chisq', |
---|
[3477478] | 1215 | transform=xcoords) |
---|
| 1216 | |
---|
[a9d5684] | 1217 | def setChisq(self, chisq): |
---|
| 1218 | """ |
---|
| 1219 | Set the chisq value. |
---|
| 1220 | """ |
---|
| 1221 | self._chisq = chisq |
---|
| 1222 | |
---|
| 1223 | |
---|
| 1224 | ###################################################### |
---|
| 1225 | |
---|
| 1226 | def sample_graph(): |
---|
| 1227 | import numpy as nx |
---|
[3477478] | 1228 | |
---|
[a9d5684] | 1229 | # Construct a simple graph |
---|
| 1230 | if False: |
---|
[3477478] | 1231 | x = nx.array([1, 2, 3, 4, 5, 6], 'd') |
---|
| 1232 | y = nx.array([4, 5, 6, 5, 4, 5], 'd') |
---|
[a9d5684] | 1233 | dy = nx.array([0.2, 0.3, 0.1, 0.2, 0.9, 0.3]) |
---|
| 1234 | else: |
---|
| 1235 | x = nx.linspace(0, 1., 10000) |
---|
| 1236 | y = nx.sin(2 * nx.pi * x * 2.8) |
---|
| 1237 | dy = nx.sqrt(100 * nx.abs(y)) / 100 |
---|
| 1238 | data = Data1D(x, y, dy=dy) |
---|
| 1239 | data.xaxis('distance', 'm') |
---|
| 1240 | data.yaxis('time', 's') |
---|
| 1241 | graph = Graph() |
---|
| 1242 | graph.title('Walking Results') |
---|
| 1243 | graph.add(data) |
---|
| 1244 | graph.add(Theory1D(x, y, dy=dy)) |
---|
| 1245 | return graph |
---|
| 1246 | |
---|
| 1247 | |
---|
| 1248 | def demo_plotter(graph): |
---|
| 1249 | import wx |
---|
| 1250 | from pylab_plottables import Plotter |
---|
[3477478] | 1251 | # from mplplotter import Plotter |
---|
[a9d5684] | 1252 | |
---|
| 1253 | # Make a frame to show it |
---|
| 1254 | app = wx.PySimpleApp() |
---|
| 1255 | frame = wx.Frame(None, -1, 'Plottables') |
---|
| 1256 | plotter = Plotter(frame) |
---|
| 1257 | frame.Show() |
---|
| 1258 | |
---|
| 1259 | # render the graph to the pylab plotter |
---|
| 1260 | graph.render(plotter) |
---|
[3477478] | 1261 | |
---|
| 1262 | class GraphUpdate(object): |
---|
[a9d5684] | 1263 | callnum = 0 |
---|
[3477478] | 1264 | |
---|
[a9d5684] | 1265 | def __init__(self, graph, plotter): |
---|
| 1266 | self.graph, self.plotter = graph, plotter |
---|
[3477478] | 1267 | |
---|
[a9d5684] | 1268 | def __call__(self): |
---|
| 1269 | if self.graph.changed(): |
---|
| 1270 | self.graph.render(self.plotter) |
---|
| 1271 | return True |
---|
| 1272 | return False |
---|
[3477478] | 1273 | |
---|
[a9d5684] | 1274 | def onIdle(self, event): |
---|
| 1275 | self.callnum = self.callnum + 1 |
---|
[3477478] | 1276 | if self.__call__(): |
---|
[a9d5684] | 1277 | pass # event.RequestMore() |
---|
| 1278 | update = GraphUpdate(graph, plotter) |
---|
| 1279 | frame.Bind(wx.EVT_IDLE, update.onIdle) |
---|
| 1280 | app.MainLoop() |
---|