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import streamlit as st | |
import pandas as pd | |
import plotly.express as px | |
from data_manager import get_data | |
from wordcloud import WordCloud, STOPWORDS | |
import matplotlib.pyplot as plt | |
def display_companies_by_sector(df): | |
sector_counts = df['libelle_section_naf'].value_counts().reset_index() | |
sector_counts.columns = ['Secteur', 'Nombre'] | |
fig = px.bar(sector_counts, x='Secteur', y='Nombre', | |
color='Nombre', labels={'Nombre': ''}, template='plotly_white') | |
fig.update_layout(xaxis_tickangle=-45, showlegend=False) | |
fig.update_traces(showlegend=False) | |
st.plotly_chart(fig) | |
def display_company_sizes(df): | |
fig = px.histogram(df, x='tranche_effectif_entreprise', | |
labels={'tranche_effectif_entreprise':"Taille de l'entreprise", 'count':'Nombre'}, template='plotly_white') | |
fig.update_traces(marker_color='green') | |
fig.update_layout(yaxis_title="Nombre") | |
st.plotly_chart(fig) | |
def display_companies_by_commune(df): | |
commune_counts = df['commune'].value_counts(normalize=True).reset_index() | |
commune_counts.columns = ['Commune', 'Pourcentage'] | |
fig = px.pie(commune_counts, values='Pourcentage', names='Commune', | |
template='plotly_white', hole=.3) | |
fig.update_traces(textinfo='percent+label') | |
st.plotly_chart(fig) | |
def display_rse_actions_wordcloud(df): | |
st.header("Nuage de mots Actions RSE") | |
custom_stopwords = set(["l", "d", "d ", "des", "qui", "ainsi", "toute", "hors", "plus", "cette", "afin", "via", "d'", "sa", "dans", "ont", "avec", "aux", "ce", "chez", "ont", "cela", "la", "un", "avons", "par", "c'est", "s'est", "aussi", "leurs", "d'un", "nos", "les", "sur", "ses", "tous", "nous", "du", "notre", "de", "et", "est", "pour", "le", "une", "se", "en", "au", "à", "que", "sont", "leur", "son"]) | |
stopwords = STOPWORDS.union(custom_stopwords) | |
text = " ".join(action for action in df['action_rse'].dropna()) | |
wordcloud = WordCloud(stopwords=stopwords, background_color="white", width=800, height=400).generate(text) | |
fig, ax = plt.subplots() | |
ax.imshow(wordcloud, interpolation='bilinear') | |
ax.axis('off') | |
st.pyplot(fig) | |
def main(): | |
data, _ = get_data() | |
df = pd.DataFrame(data) | |
if not df.empty: | |
st.markdown("## OPEN DATA Bordeaux Métropole RSE") | |
st.markdown("### Statistiques sur les entreprises engagées RSE") | |
st.header("Répartition des entreprises par secteur d'activité") | |
display_companies_by_sector(df) | |
st.header("Distribution des tailles d'entreprises") | |
display_company_sizes(df) | |
st.header("Pourcentage d'entreprises par Commune") | |
display_companies_by_commune(df) | |
display_rse_actions_wordcloud(df) | |
if __name__ == "__main__": | |
main() | |