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import seaborn as sns
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import streamlit as st
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from st_aggrid import AgGrid, GridOptionsBuilder, GridUpdateMode
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import PitchPlotFunctions as ppf
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import requests
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import polars as pl
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from datetime import date
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import api_scraper
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st.markdown("""
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## MLB & AAA Pitch Plots App
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##### By: Thomas Nestico ([@TJStats](https://x.com/TJStats))
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##### Code: [GitHub Repo](https://github.com/tnestico/streamlit_pitch_plots)
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##### Data: [MLB](https://baseballsavant.mlb.com/)
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#### About
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This Streamlit app retrieves MLB and AAA Pitching Data for a selected pitcher from the MLB Stats API and is accessed using my [MLB Stats API Scraper](https://github.com/tnestico/mlb_scraper).
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The app outputs the pitcher's data into both a plot and table to illustrate and summarize the data.
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It can also display data for games currently in progress.
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*More information about the data and plots is shown at the bottom of this page.*
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"""
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)
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ploter = ppf.PitchPlotFunctions()
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scraper = api_scraper.MLB_Scrape()
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sport_id_dict = {'MLB': 1, 'AAA': 11}
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st.write("#### Plot")
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col_1, col_2 = st.columns(2)
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with col_1:
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selected_league = st.selectbox('##### Select League', list(sport_id_dict.keys()))
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selected_sport_id = sport_id_dict[selected_league]
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with col_2:
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df_player = scraper.get_players(sport_id=selected_sport_id)
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df_player = df_player.filter(pl.col('position').str.contains('P'))
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df_player = df_player.with_columns(
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(pl.concat_str(["name", "player_id"], separator=" - ").alias("pitcher_name_id"))
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)
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pitcher_name_id_dict = dict(df_player.select(['pitcher_name_id', 'player_id']).iter_rows())
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if 'prev_pitcher_id' not in st.session_state:
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st.session_state.prev_pitcher_id = None
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selected_pitcher = st.selectbox("##### Select Pitcher", list(pitcher_name_id_dict.keys()))
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pitcher_id = pitcher_name_id_dict[selected_pitcher]
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if pitcher_id != st.session_state.prev_pitcher_id:
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st.cache_data.clear()
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st.session_state.prev_pitcher_id = pitcher_id
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st.session_state.cache_cleared = False
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st.write('Cache cleared!')
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if 'cache_cleared' not in st.session_state:
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st.session_state.cache_cleared = False
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batter_hand_picker = {
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'All': ['L', 'R'],
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'LHH': ['L'],
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'RHH': ['R']
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}
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min_date = date(2024, 3, 20)
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max_date = date(2024, 11, 30)
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st.write("##### Filters")
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col1, col2, col3 = st.columns(3)
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with col1:
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batter_hand_select = st.selectbox('Batter Handedness:', list(batter_hand_picker.keys()))
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batter_hand = batter_hand_picker[batter_hand_select]
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with col2:
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start_date = st.date_input('Start Date:',
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value=min_date,
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min_value=min_date,
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max_value=max_date,
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format="YYYY-MM-DD")
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with col3:
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end_date = st.date_input('End Date:',
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value="default_value_today",
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min_value=min_date,
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max_value=max_date,
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format="YYYY-MM-DD")
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plot_picker_dict = {
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'Short Form Movement': 'short_form_movement',
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'Long Form Movement': 'long_form_movement',
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'Release Points': 'release_point'
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}
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plot_picker_select = st.selectbox('Select Plot Type:', list(plot_picker_dict.keys()))
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plot_picker = plot_picker_dict[plot_picker_select]
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season = str(start_date)[0:4]
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player_games = scraper.get_player_games_list(player_id=pitcher_id, season=season,
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start_date=str(start_date), end_date=str(end_date),
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sport_id=selected_sport_id,
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game_type = ['R','P'])
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@st.cache_data
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def fetch_data():
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data = scraper.get_data(game_list_input=player_games)
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df = scraper.get_data_df(data_list=data)
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return df
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if not st.session_state.cache_cleared:
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df_original = fetch_data()
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st.session_state.cache_cleared = True
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else:
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df_original = fetch_data()
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if st.button('Generate Plot'):
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try:
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df = ploter.df_to_polars(df_original=df_original,
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pitcher_id=pitcher_id,
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start_date=str(start_date),
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end_date=str(end_date),
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batter_hand=batter_hand)
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print(df)
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if len(df) == 0:
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st.write('Please select different parameters.')
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else:
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ploter.final_plot(
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df=df,
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pitcher_id=pitcher_id,
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plot_picker=plot_picker,
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sport_id=selected_sport_id)
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with st.container():
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grouped_df = (
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df.group_by(['pitcher_id', 'pitch_description'])
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.agg([
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pl.col('is_pitch').drop_nans().count().alias('pitches'),
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pl.col('start_speed').drop_nans().mean().round(1).alias('start_speed'),
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pl.col('vb').drop_nans().mean().round(1).alias('vb'),
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pl.col('ivb').drop_nans().mean().round(1).alias('ivb'),
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pl.col('hb').drop_nans().mean().round(1).alias('hb'),
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pl.col('spin_rate').drop_nans().mean().round(0).alias('spin_rate'),
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pl.col('x0').drop_nans().mean().round(1).alias('x0'),
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pl.col('z0').drop_nans().mean().round(1).alias('z0'),
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])
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.with_columns(
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(pl.col('pitches') / pl.col('pitches').sum().over('pitcher_id') * 100).round(3).alias('proportion')
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)).sort('proportion', descending=True).select(["pitch_description", "pitches", "proportion", "start_speed", "vb", "ivb", "hb",
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"spin_rate", "x0", "z0"])
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st.write("#### Pitching Data")
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column_config_dict = {
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'pitcher_id': 'Pitcher ID',
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'pitch_description': 'Pitch Type',
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'pitches': 'Pitches',
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'start_speed': 'Velocity',
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'vb': 'VB',
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'ivb': 'iVB',
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'hb': 'HB',
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'spin_rate': 'Spin Rate',
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'proportion': st.column_config.NumberColumn("Pitch%", format="%.1f%%"),
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'x0': 'hRel',
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'z0': 'vRel',
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}
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st.markdown(f"""##### {selected_pitcher.split('-')[0]} {selected_league} Pitch Data""")
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st.dataframe(grouped_df,
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hide_index=True,
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column_config=column_config_dict,
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width=1500)
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except IndexError:
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st.write('Please select different parameters.')
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st.markdown("""
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#### Column Descriptions
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- **`Pitch Type`**: Describes the type of pitch thrown (e.g., 4-Seam Fastball, Curveball, Slider).
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- **`Pitches`**: The total number of pitches thrown by the pitcher.
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- **`Pitch%`**: Proportion of pitch thrown.
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- **`Velocity`**: The initial velocity of the pitch as it leaves the pitcher's hand, measured in miles per hour (mph).
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- **`VB`**: Vertical Break (VB), representing the amount movement of a pitch due to spin and gravity, measured in inches (in).
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- **`iVB`**: Induced Vertical Break (iVB), representing the amount movement of a pitch strictly due to the spin imparted on the ball, measured in inches (in).
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- **`HB`**: Horizontal Break (HB), indicating the amount of horizontal movement of a pitch, measured in inches (in).
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- **`Spin Rate`**: The rate of spin of the pitch as it is released, measured in revolutions per minute (rpm).
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- **`hRel`**: The horizontal release point of the pitch, measured in feet from the center of the pitcher's mound (ft).
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- **`vRel`**: The vertical release point of the pitch, measured in feet above the ground (ft).
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#### Plot Descriptions
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- **`Short Form Movement`**: Illustrates the movement of the pitch due to spin, where (0,0) indicates a pitch with perfect gyro-spin (e.g. Like a Football).
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- **`Long Form Movement`**: Illustrates the movement of the pitch due to spin and gravity.
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- **`Release Points`**: Illustrates a pitchers release points from the catcher's perspective.
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#### Acknowledgements
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Big thanks to [Michael Rosen](https://twitter.com/bymichaelrosen) and [Jeremy Maschino](https://twitter.com/pitchprofiler) for inspiration for this project
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Check Out Michael's [Pitch Plotting App](https://pitchplotgenerator.streamlit.app/)
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Check Out Jeremy's Website [Pitch Profiler](http://www.mlbpitchprofiler.com/)
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"""
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)
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