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| from pathlib import Path | |
| from kaggle import api as kapi | |
| import pandas as pd | |
| from sklearn.model_selection import train_test_split as sk_train_test_split | |
| def download_dataset(dest_dir, dataset, filename): | |
| if (Path(dest_dir) / filename).exists(): | |
| print('Dataset already exists, do not download') | |
| return | |
| print('Downloading dataset...') | |
| kapi.dataset_download_file(dataset=dataset, file_name=filename, path=dest_dir, quiet=False) | |
| # Takes a lot of RAM | |
| def read_dataset(dest_dir, filename) -> pd.DataFrame: | |
| print('Reading dataset...') | |
| json_file_path = Path(dest_dir) / filename | |
| df = pd.read_json(json_file_path, lines=True) | |
| print('Dataset read') | |
| return df | |
| def download_and_read_dataset(dest_dir, dataset, filename): | |
| download_dataset(dest_dir=dest_dir, dataset=dataset, filename=filename) | |
| return read_dataset(dest_dir=dest_dir, filename=filename) | |
| def filter_columns(df: pd.DataFrame, columns) -> pd.DataFrame: | |
| print("Removing unwanted columns...") | |
| df = df[columns] | |
| print("Columns removed...") | |
| return df | |
| def create_features_labels(df: pd.DataFrame, old_label, new_label): | |
| def transform_categories(categories): | |
| categories = categories.split() | |
| category = categories[0] | |
| if '.' in category: | |
| return category[: category.index(".")] | |
| return category | |
| labels = df[old_label].apply(transform_categories) | |
| labels = labels.rename(new_label) | |
| features = df.drop(old_label, axis=1) | |
| return features, labels | |
| def train_test_split(X, y, test_size=0.25): | |
| return sk_train_test_split(X, y, test_size=test_size, stratify=y) | |
| def write_dataset(dest_dir, X, y, filename, to_json : bool = True): | |
| dest_dir = Path(dest_dir) | |
| df = pd.concat((X, y), axis=1) | |
| if to_json: | |
| df.to_json(dest_dir / filename, orient="records", lines=True) | |
| else: | |
| df.to_csv(dest_dir / filename) | |