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Project description

Search Data Explorer


Visualize dataframes via plotly in a streamlit dashboard


Installation

Coming soon


Examples

Visualize the iris dataset:

import plotly.express as px
from search_data_explorer import SearchDataExplorer

iris_dataset = px.data.iris()
iris_dataset.to_csv("iris_dataset.csv", index=False)

sde = SearchDataExplorer()
sde.open("iris_dataset.csv")

Or create your own test data and visualize it:

import pandas as pd
from search_data_explorer import SearchDataExplorer

# create so test dataset for this example
df_array = [[0.5, 6, 50, 0.6], [0.9, 7, 40, 0.7], [0.2, 9, 70, 0.8]]
columns = ["x1", "x2", "x3", "score"]
search_data = pd.DataFrame(df_array, columns=columns)
# save the dataframe to file
search_data.to_csv("./search_data.csv")


sde = SearchDataExplorer()
# the dashboard must read the dataframe from a file
sde.open("./search_data.csv")

The search data that is loaded from file must follow the pattern below. The columns can have any name and some plots can handle data other than numerical.

first column name another column name bla bla bla ...
0.756 0.1 0.2 ...
0.823 0.3 0.1 ...
... ... ... ...
... ... ... ...

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