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Browse files- Week_1_project_visualization.py +54 -0
- app.py +54 -0
Week_1_project_visualization.py
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import pandas as pd
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import plotly.express as px
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import streamlit as st
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# Display title and text
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st.title("Week 1 - Data and visualization")
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st.markdown("Here we can see the dataframe we've created during this weeks project.")
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# Read dataframe
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dataframe = pd.read_csv(
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"WK1_Airbnb_Amsterdam_listings_proj_solution.csv",
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names=[
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"Airbnb Listing ID",
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"Price",
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"Latitude",
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"Longitude",
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"Meters from chosen location",
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"Location",
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],
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)
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# We have a limited budget, therefore we would like to exclude
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# listings with a price above 100 pounds per night
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dataframe = dataframe[dataframe["Price"] <= 100]
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# Display as integer
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dataframe["Airbnb Listing ID"] = dataframe["Airbnb Listing ID"].astype(int)
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# Round of values
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dataframe["Price"] = "£ " + dataframe["Price"].round(2).astype(str)
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# Rename the number to a string
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dataframe["Location"] = dataframe["Location"].replace(
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{1.0: "To visit", 0.0: "Airbnb listing"}
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)
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# Display dataframe and text
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st.dataframe(dataframe)
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st.markdown("Below is a map showing all the Airbnb listings with a red dot and the location we've chosen with a blue dot.")
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# Create the plotly express figure
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fig = px.scatter_mapbox(
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lat=dataframe["Latitude"],
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lon=dataframe["Longitude"],
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color=dataframe["Location"],
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zoom=11,
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height=500,
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width=800,
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hover_name=dataframe["Price"],
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labels={"color": "Locations"},
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)
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fig.update_geos(center=dict(lat=dataframe.iloc[0][2], lon=dataframe.iloc[0][3]))
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fig.update_layout(mapbox_style="stamen-terrain")
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# Show the figure
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st.plotly_chart(fig, use_container_width=True)
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app.py
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import pandas as pd
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import plotly.express as px
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import streamlit as st
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# Display title and text
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st.title("Week 1 - Data and visualization")
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st.markdown("Here we can see the dataframe we've created during this weeks project.")
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# Read dataframe
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dataframe = pd.read_csv(
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"WK1_Airbnb_Amsterdam_listings_proj_solution.csv",
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names=[
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"Airbnb Listing ID",
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"Price",
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"Latitude",
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"Longitude",
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"Meters from chosen location",
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"Location",
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],
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)
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# We have a limited budget, therefore we would like to exclude
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# listings with a price above 100 pounds per night
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dataframe = dataframe[dataframe["Price"] <= 100]
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# Display as integer
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dataframe["Airbnb Listing ID"] = dataframe["Airbnb Listing ID"].astype(int)
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# Round of values
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dataframe["Price"] = "£ " + dataframe["Price"].round(2).astype(str)
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# Rename the number to a string
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dataframe["Location"] = dataframe["Location"].replace(
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{1.0: "To visit", 0.0: "Airbnb listing"}
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)
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# Display dataframe and text
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st.dataframe(dataframe)
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st.markdown("Below is a map showing all the Airbnb listings with a red dot and the location we've chosen with a blue dot.")
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# Create the plotly express figure
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fig = px.scatter_mapbox(
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lat=dataframe["Latitude"],
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lon=dataframe["Longitude"],
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color=dataframe["Location"],
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zoom=11,
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height=500,
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width=800,
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hover_name=dataframe["Price"],
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labels={"color": "Locations"},
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)
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fig.update_geos(center=dict(lat=dataframe.iloc[0][2], lon=dataframe.iloc[0][3]))
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fig.update_layout(mapbox_style="stamen-terrain")
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# Show the figure
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st.plotly_chart(fig, use_container_width=True)
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