FIX MERGE IDOT
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@@ -2,33 +2,20 @@
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import pandas as pd
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import numpy as np
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global games_merged_dat
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# reading the data
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# -> MAKE SURE OF THE DATA FRAMES NAMES PEFORE YOU RUN IT
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games_dat = pd.read_csv("Games.xls")
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games_sales_dat = pd.read_csv("vgsales-12-4-2019-short.csv")
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df1 = pd.read_csv("output_6th_df.csv")
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df2 = pd.read_csv("vgsales-12-4-2019-short.csv")
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# ----------------------------------------------------------
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# print(pf1.head)
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# print(pf2.head)
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# ---------------------------------------------------------
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# merging
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combined_df = df1.merge(df2, left_on="Name", right_on="Name", how="left")
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print(combined_df)
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combined_df.to_csv("output_final_df.csv")
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df = combined_df
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# ---------------------------------------------------------
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games_merged_dat = games_dat.merge(games_sales_dat, left_on="Name", right_on="Name", how="left")
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print(games_merged_dat)
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games_merged_dat.to_csv("output_final_df.csv")
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# Defining useful Functions to be used later
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def slice_column(input_df, output_df, column, expression=" "):
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unclean = input_df[column].to_list()
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clean = list()
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@@ -22,37 +22,34 @@ global crime_US
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global crime_CA
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# Loading Datasets
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game_sales_dat = pd.read_csv('datasets/videogames/vgsales-12-4-2019-short.csv')
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games_dat = pd.read_csv('datasets/videogames/Games.xls')
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games_merged = pd.read_csv('datasets/videogames/merged_games.csv')
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crime_CA = pd.read_excel('datasets/crime/clean_crime_canada_dataset.xlsx')
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crime_US = pd.read_csv('datasets/crime/report.csv')
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# Printing information regarding datasets
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print("Game Datasets' Info:\n")
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game_sales_dat.info()
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games_dat.info()
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games_merged.info()
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print("Crime Datasets' Info:\n")
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crime_US.info()
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crime_CA.info()
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# Printing First n values (index start: 0)
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print("Game Sale Data:\n", game_sales_dat.head(10))
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print("Game Scores:\n", games_dat.head(10))
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print("Game Sale Data:\n", games_merged.head(5))
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print("US Crime Data:\n", crime_US.head(10))
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print("CA Crime Data:\n", crime_CA.head(10))
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print("US Crime Data:\n", crime_US.head(5))
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print("CA Crime Data:\n", crime_CA.head(5))
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# Regarding the Games.xls dataset:
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# Coercing the non-numeric values will result in NaN
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# thus allowing easier removal through `.notnull()`
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games_dat['Score'] = pd.to_numeric(games_dat['Score'], errors = 'coerce')
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games_merged['Score'] = pd.to_numeric(games_merged['Score'], errors = 'coerce')
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games_dat = games_dat[games_dat['Score'].notnull()]
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games_merged = games_merged[games_merged['Score'].notnull()]
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print("Game Scores (Cleaned):\n", games_dat.head())
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games_dat.info()
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print("Game Scores (Cleaned):\n", games_merged.head())
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games_merged.info()
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# Regarding the vgsales-12-4-2019 dataset
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# Considering we will be using a US (probs CA too) crime datasets
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@@ -60,8 +57,8 @@ games_dat.info()
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NA_col_list = ['PAL_Sales', 'JP_Sales', 'Other_Sales', 'Global_Sales']
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GLO_col_list = ['PAL_Sales', 'JP_Sales', 'Other_Sales', 'NA_Sales']
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game_sales_NA = game_sales_dat.drop(columns = NA_col_list, axis = 1)
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game_sales_GLO = game_sales_dat.drop(columns = GLO_col_list, axis = 1)
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game_sales_NA = games_merged.drop(columns = NA_col_list, axis = 1)
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game_sales_GLO = games_merged.drop(columns = GLO_col_list, axis = 1)
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print(f"Game Sales for NA:\n{game_sales_NA.head(10)} \nWith minimum year being: {game_sales_NA['Year'].min()}")
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print(f"Game Sales Globally:\n{game_sales_GLO.head(10)}\nWith minimum year being: {game_sales_GLO['Year'].min()}")
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