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@ -26,6 +26,7 @@ class TriPlot_TimeAxe(Axes): |
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self.v_max = v_max |
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self.phi = phi |
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self.v_ref = np.zeros(self.phasor.shape) |
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self.parameters = {} |
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return |
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def setup(self): |
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@ -49,6 +50,12 @@ class TriPlot_TimeAxe(Axes): |
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self.scatter(3*[self.phi*PI/180], |
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[self.v_max*np.cos((self.phi-i*120)*PI/180) for i in range(3)], |
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c=["C0", "C1", "C2"])) |
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self.timegraph_plot.append( |
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self.plot([0, 2*PI], 2*[self.v_max/np.sqrt(2)], c='C4', ls=':')[0] |
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) |
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self.timegraph_plot.append( |
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self.text(0, 0, r"$V_{eff}$", c="C4") |
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) |
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return |
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@ -62,6 +69,10 @@ class TriPlot_TimeAxe(Axes): |
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[self.v_max*np.cos((self.phi-i*120)*PI/180) for i in range(3)]] |
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).T |
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) |
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self.timegraph_plot[5].set_ydata(2*[self.v_max/np.sqrt(2)]) |
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self.timegraph_plot[5].set_visible(self.parameters["v_eff"]) |
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self.timegraph_plot[6].set_position((23/12*PI, 10+self.v_max/np.sqrt(2))) |
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self.timegraph_plot[6].set_visible(self.parameters["v_eff"]) |
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return |
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def set_vmax(self, v_max): |
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@ -74,6 +85,7 @@ class TriPlot_TimeAxe(Axes): |
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return |
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def set_parameters(self, p): |
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self.parameters["v_eff"] = p.get("v_eff", False) |
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return |
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@ -153,6 +165,14 @@ class TriPlot_VectAxe(PolarAxes): |
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) |
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for i in range(3) |
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] |
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self.plot_list.append( |
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self.plot( |
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self.theta, self.v_max/np.sqrt(2)*np.ones(self.theta.shape), |
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c='C4', ls=':', visible=self.parameters.get("v_eff", False) |
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)[0] |
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) |
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return |
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def refresh(self): |
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@ -190,6 +210,8 @@ class TriPlot_VectAxe(PolarAxes): |
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PI*(1-np.sign(np.cos((self.phi-i*120)*PI/180)))/2, 0) |
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+ self.transData |
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) |
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self.plot_list[4].set_ydata(self.v_max/np.sqrt(2)*np.ones(self.theta.shape)) |
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self.plot_list[4].set_visible(self.parameters.get("v_eff", False)) |
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return |
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def set_vmax(self, v_max): |
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@ -203,6 +225,7 @@ class TriPlot_VectAxe(PolarAxes): |
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def set_parameters(self, p): |
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self.parameters["projection"] = p.get("projection", False) |
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self.parameters["v_eff"] = p.get("v_eff", False) |
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return |
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@ -237,10 +260,31 @@ class TriPlot_3DAxe(Axes3D): |
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self.set_ylim([-1.6*self.v_max, 1.6*self.v_max]) |
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self.view_init(vertical_axis='y') |
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self.set_zlim([0, 2*PI]) |
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self.set_zticks([i*PI/6 for i in range(13)]) |
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self.set_zticklabels([str(30*i)+"°" for i in range(13)]) |
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self.set_box_aspect((4,1,1)) |
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self.set_zticks([i*PI/2 for i in range(5)]) |
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self.set_zticklabels([str(90*i)+"°" for i in range(5)]) |
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#self.set_box_aspect((4,1,1)) |
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self.set_facecolor("#00000000") |
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self.set_title("Visualisation 3D") |
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self.set_xlabel("Partie réelle") |
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self.set_ylabel("Partie imaginaire") |
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self.set_zlabel("Angle") |
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# Début de code pour un plan "phi" dans l'espace 3D |
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# matplotlib ne gère pas les transformations 3D... |
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# X = [-self.v_max, self.v_max] |
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# Y = [-self.v_max, self.v_max] |
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# XX, YY = np.meshgrid(X, Y) |
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# Z = np.zeros((2,2)) |
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# self.plot_list.append( |
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# self.plot_surface(XX, YY, Z, color="#ff000080") |
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# ) |
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# self.plot_list[-1].set_transform( |
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# np.array([[0, 0, 0, 0], |
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# [0, 0, 0, 0], |
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# [0, 0, 0, self.phi*PI/180], |
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# [0, 0, 0, 1]]) |
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# ) |
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return |
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def set_vmax(self, v_max): |
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@ -257,12 +301,15 @@ class TriPlot_3DAxe(Axes3D): |
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return |
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def refresh(self): |
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for i, plot in enumerate(self.plot_list): |
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for i, plot in enumerate(self.plot_list[:3]): |
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plot.set_data_3d( |
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self.v_re[i,:], |
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self.v_im[i,:], |
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self.theta |
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) |
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return |
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class TriPlot: |
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@ -284,9 +331,9 @@ class TriPlot: |
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self.timeaxe = TriPlot_TimeAxe(self.v_max, self.phi, |
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self.fig, [0.1, 0.5, 0.4, 0.4]) |
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self.vectaxe = TriPlot_VectAxe(self.v_max, self.phi, |
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self.fig, [0.5, 0.2, 0.5, 0.6]) |
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self.fig, [0.5, 0.1, 0.4, 0.4]) |
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self.axe3D = TriPlot_3DAxe(self.v_max, self.phi, |
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self.fig, [0.1, -0.15, 0.4, 0.8]) |
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self.fig, [0.5, 0.6, 0.4, 0.4]) |
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self.axes = [self.vectaxe, self.timeaxe, self.axe3D] |
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self.amp_slider = Slider( |
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ax=plt.axes([0.01, 0.1, 0.03, 0.8]), |
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@ -311,7 +358,7 @@ class TriPlot: |
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) |
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self.parameters_check = CheckButtons( |
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ax=plt.axes([0.9, 0.8, 0.1, 0.2]), |
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labels=["Projection"] |
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labels=["Projection", "Valeur efficace"] |
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) |
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self.sliders = [self.amp_slider, self.phi_slider] |
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@ -366,6 +413,7 @@ class TriPlot: |
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def set_parameters(self, p): |
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self.parameters["projection"] = p[0] |
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self.parameters["v_eff"] = p[1] |
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for axe in self.axes: |
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axe.set_parameters(self.parameters) |
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return |
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