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B-Tree: Definition and Python Example


B-Tree: Definition and Python Example

What is a B-Tree?

A B-Tree is a self-balancing tree data structure that maintains sorted data and allows search, sequential access, insertions, and deletions in logarithmic time.

  • Each node can have multiple keys.
  • Designed for disk-based storage for efficiency.
  • Commonly used in database indexes.

Formal definition: A B-Tree of order m is a tree where each node contains at most m-1 keys, has at most m children, all leaves are at the same depth, and keys within a node are sorted.

Why B-Trees Are Used in Databases

  • Efficient for range queries (>, <, BETWEEN)
  • Efficient for exact lookups (=)
  • Can store many keys per node, reducing disk I/O
  • Supports fast insertion and deletion while staying balanced

Practical Python Example

We can use the BTrees package:

# Install package if needed:
# pip install BTrees

from BTrees.OOBTree import OOBTree

# Create a B-Tree
btree = OOBTree()

# Insert key-value pairs
btree['ana@email.com'] = {"name": "Ana", "age": 25}
btree['bob@email.com'] = {"name": "Bob", "age": 30}
btree['carol@email.com'] = {"name": "Carol", "age": 28}

# Lookup by key (exact match)
user = btree.get('ana@email.com')
print("Exact search:", user)

# Range search (all users with email <= 'bob@email.com')
print("Range search:")
for key, value in btree.items(max='bob@email.com'):
    print(key, value)

Output:

Exact search: {'name': 'Ana', 'age': 25}

Range search:
ana@email.com {'name': 'Ana', 'age': 25}
bob@email.com {'name': 'Bob', 'age': 30}

This demonstrates:

  • Fast exact lookup (O(log n))
  • Efficient range query
  • Automatically keeps keys sorted

Mapping to Databases

  • btree['ana@email.com'] ≈ SELECT * FROM users WHERE email='ana@email.com';
  • btree.items(max='bob@email.com') ≈ SELECT * FROM users WHERE email <= 'bob@email.com';


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