explain
Browse files- app.py +6 -4
- xgb/data.png β data.png +0 -0
- xgb/feature.png β feature.png +0 -0
- xgb/instance.png β instance.png +0 -0
- xgb/record.png β record.png +0 -0
app.py
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@@ -225,7 +225,7 @@ With no need for jargon, SSDS delivers tangible value to our fintech operations.
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gr.Markdown("""
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Explain by Dataset
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=============
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@@ -240,7 +240,7 @@ With no need for jargon, SSDS delivers tangible value to our fintech operations.
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Explain by Feature
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=============
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@@ -248,7 +248,7 @@ With no need for jargon, SSDS delivers tangible value to our fintech operations.
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Explain by Record
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=============
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gr.Markdown("""
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Explain by Dataset
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=============
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sorted feature from top(most import)
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Explain by Feature
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=============
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dist lower than 900 spike the price f(x)
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Explain by Record
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the largest contribution to positive price is dist_subway
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Explain by Instance
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=============
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at around 500 dist_subway, it possible for positive impact and negative impact for price
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over all trend is negative that mean, closer to subway is contribute to higher price
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there is a point at 6500 far from subway and it has negative impact on price, despite is is close to store(dist_stores)
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""")
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xgb/data.png β data.png
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xgb/feature.png β feature.png
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xgb/instance.png β instance.png
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xgb/record.png β record.png
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