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Stonecharioteer on Tech

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TIL: Programming Challenges, System Tools, and Learning R...
2020-07-27 · via Stonecharioteer on Tech

Today I discovered a wealth of programming challenges, advanced data structures, and learning resources that span from competitive programming to systems development and functional programming concepts.

Advent of Code offers annual programming challenges that are more engaging than typical competitive programming platforms:

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# Automated feature engineering example
import featuretools as ft
import pandas as pd

# Create sample transaction data
customers = pd.DataFrame({
    'customer_id': [1, 2, 3],
    'join_date': pd.to_datetime(['2020-01-01', '2020-02-01', '2020-03-01']),
    'age': [25, 35, 45]
})

transactions = pd.DataFrame({
    'transaction_id': range(1, 11),
    'customer_id': [1, 1, 2, 2, 2, 3, 3, 3, 3, 3],
    'amount': [10, 25, 15, 30, 20, 50, 35, 40, 25, 60],
    'timestamp': pd.date_range('2020-01-15', periods=10, freq='7D')
})

# Create entity set
es = ft.EntitySet(id='customer_data')

# Add entities
es = es.add_dataframe(
    dataframe_name='customers',
    dataframe=customers,
    index='customer_id',
    time_index='join_date'
)

es = es.add_dataframe(
    dataframe_name='transactions',
    dataframe=transactions,
    index='transaction_id',
    time_index='timestamp'
)

# Add relationship
relationship = ft.Relationship(
    parent_dataframe_name='customers',
    parent_column_name='customer_id',
    child_dataframe_name='transactions',
    child_column_name='customer_id'
)
es = es.add_relationship(relationship)

# Automatically generate features
feature_matrix, feature_defs = ft.dfs(
    entityset=es,
    target_dataframe_name='customers',
    max_depth=2
)

print("Generated features:")
for feature in feature_defs:
    print(f"- {feature}")

print("\nFeature matrix:")
print(feature_matrix)

Today’s exploration of Advent of Code and competitive programming resources highlights several advantages over traditional algorithm practice:

The GPU hash table and Rust concurrent data structures demonstrate modern approaches to parallelism:

The combination of theoretical courses and practical exercises provides a comprehensive learning approach:

This exploration reinforced that effective learning combines theoretical understanding with practical application, while modern development increasingly requires awareness of concurrent and parallel programming patterns.