ceckenrode commited on
Commit
57a7ac5
·
1 Parent(s): 439a5de

Update app.py

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Files changed (1) hide show
  1. app.py +0 -33
app.py CHANGED
@@ -1,4 +1,3 @@
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- #pass="Leswhdc2023$!"
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  import streamlit as st
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  import pandas as pd
@@ -9,38 +8,6 @@ from pandas_profiling import ProfileReport
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  st.title("File Upload and Profiling")
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- # uploaded_file = st.file_uploader("Upload a CSV file", type="csv")
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-
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- # RunProfiler=False
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- # if uploaded_file is not None:
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- # if RunProfiler:
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-
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- # # Load the data using pandas
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- # df = pd.read_csv(uploaded_file)
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-
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- # # Generate the pandas profiling report
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- # profile = ProfileReport(df, explorative=True)
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-
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- # # Display the pandas profiling report using streamlit
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- # st.header("Data Profiling Report")
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- # st.write(profile.to_html(), unsafe_allow_html=True)
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-
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- # # Display word statistics for each categorical string column
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- # cat_cols = df.select_dtypes(include='object').columns
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- # st.header("Word Statistics for Categorical Columns")
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- # for col in cat_cols:
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- # st.subheader(col)
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- # word_count = df[col].str.split().apply(len).value_counts().sort_index()
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- # st.bar_chart(word_count)
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-
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- # # Grouped count by each feature
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- # num_cols = df.select_dtypes(include=['float', 'int']).columns
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- # st.header("Grouped Count by Each Feature")
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- # for col in num_cols:
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- # st.subheader(col)
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- # count_by_feature = df.groupby(col).size().reset_index(name='count')
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- # st.bar_chart(count_by_feature)
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-
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  # Upload a CSV dataset
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  uploaded_file = st.file_uploader("Upload your dataset", type=["csv"])
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  if uploaded_file is not None:
 
 
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  import streamlit as st
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  import pandas as pd
 
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  st.title("File Upload and Profiling")
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  # Upload a CSV dataset
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  uploaded_file = st.file_uploader("Upload your dataset", type=["csv"])
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  if uploaded_file is not None: