Update my_pages/rashomon_effect.py
Browse files- my_pages/rashomon_effect.py +22 -7
my_pages/rashomon_effect.py
CHANGED
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@@ -4,7 +4,17 @@ import numpy as np
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from utils import go_to
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def render():
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st.
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# Generate synthetic data
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np.random.seed(42)
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@@ -21,7 +31,10 @@ def render():
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ax.scatter(x, y, c=colors, alpha=0.6)
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ax.set_xlabel("Annual Income")
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ax.set_ylabel("Credit Score")
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ax.set_title(title)
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# Decision boundary
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if decision_boundary is not None:
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@@ -46,23 +59,25 @@ def render():
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return fig
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# Top scatter plot (centered to match smaller width)
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col1, col2, col3
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with
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st.pyplot(plot_scatter(income, credit, colors, title="Original Data"))
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with col2:
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st.pyplot(plot_scatter(income, credit, colors, title="Vertical Boundary",
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decision_boundary=55, boundary_type="vertical"))
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left_selected = st.button("Choose Vertical Boundary")
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with
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st.pyplot(plot_scatter(income, credit, colors, title="Horizontal Boundary",
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decision_boundary=55, boundary_type="horizontal"))
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right_selected = st.button("Choose Horizontal Boundary")
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# Show new individual based on selection
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if left_selected:
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new_point = (40, 80) # High credit score, low income
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with
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st.pyplot(plot_scatter(income, credit, colors,
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title="Vertical Boundary + New Individual",
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decision_boundary=55, boundary_type="vertical",
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@@ -70,7 +85,7 @@ def render():
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st.warning("This individual was rejected by your chosen model. Why not choose a model that helps them?")
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elif right_selected:
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new_point = (80, 40) # Low credit score, high income
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with
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st.pyplot(plot_scatter(income, credit, colors,
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title="Horizontal Boundary + New Individual",
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decision_boundary=55, boundary_type="horizontal",
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from utils import go_to
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def render():
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st.markdown(
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"""
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<div style='text-align: center; font-size:18px; color:gray;'>
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Consider data about individuals who paid back their loans (green) and those who defaulted (red). <br>
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Which model out of the two will you choose as your final model to give loan applications? <br><br>
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</div>
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""",
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unsafe_allow_html=True
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)
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st.markdown("---")
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# Generate synthetic data
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np.random.seed(42)
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ax.scatter(x, y, c=colors, alpha=0.6)
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ax.set_xlabel("Annual Income")
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ax.set_ylabel("Credit Score")
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# ax.set_title(title)
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fig.patch.set_alpha(0)
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ax.patch.set_alpha(0)
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# Decision boundary
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if decision_boundary is not None:
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return fig
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# Top scatter plot (centered to match smaller width)
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col1, col2, col3 = st.columns([1.5, 1, 1.5])
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with col2:
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st.pyplot(plot_scatter(income, credit, colors, title="Original Data"))
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col1, col2, col3, col4 = st.columns([1, 1, 1, 1])
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with col2:
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st.pyplot(plot_scatter(income, credit, colors, title="Vertical Boundary",
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decision_boundary=55, boundary_type="vertical"))
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left_selected = st.button("Choose Vertical Boundary")
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with col3:
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st.pyplot(plot_scatter(income, credit, colors, title="Horizontal Boundary",
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decision_boundary=55, boundary_type="horizontal"))
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right_selected = st.button("Choose Horizontal Boundary")
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col1, col2, col3 = st.columns([1.5, 1, 1.5])
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# Show new individual based on selection
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if left_selected:
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new_point = (40, 80) # High credit score, low income
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with col2:
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st.pyplot(plot_scatter(income, credit, colors,
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title="Vertical Boundary + New Individual",
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decision_boundary=55, boundary_type="vertical",
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st.warning("This individual was rejected by your chosen model. Why not choose a model that helps them?")
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elif right_selected:
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new_point = (80, 40) # Low credit score, high income
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with col2:
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st.pyplot(plot_scatter(income, credit, colors,
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title="Horizontal Boundary + New Individual",
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decision_boundary=55, boundary_type="horizontal",
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