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Files & data

Read and write files safely; parse JSON, CSV, and common text formats.

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Files & data medium

How to Build a CSV Comparison Tool That Highlights Every Changed Cell in Python

Read two CSV files with DictReader, compare cell by cell, and return a list of dictionaries describing each changed cell using only the standard library.

csv comparison diff
Python
import csv
from pathlib import Path

def csv_cell_diff(file_a: str, file_b: str) -> list[dict]:
    rows_a = list(csv.DictReader(Path(file_a).open('r', newline='')))
    rows_b = list(csv.DictReader(Path(file_b).open('r', newline='')))
    if not rows_a or not rows_b:
        return []
    columns = list(rows_a[0].key…
41 0 Open
Files & data medium

How to Parse Apache Log Files in Python

Parse Apache common log format lines into structured dictionaries using Python's standard library.

apache regex log-parsing
Python
import re
from pathlib import Path

def parse_apache_line(line):
    pattern = r'^(\S+) (\S+) (\S+) \[([^\]]+)\] "(\S+) (\S+) (\S+)" (\d{3}) (\S+)'
    match = re.match(pattern, line)
    if not match:
        return None
    ip, ident, user, timestamp, method, path, protocol, status, size = match.groups()
    return …
15 0 Open
Files & data medium

Join two CSV files on shared key column in Python

Merge rows from two CSV files by a common key column, outputting combined records to a new file.

csv join dictreader
Python
import csv

def join_csv(file1, file2, key, output="joined.csv"):
    # Read first CSV into dict keyed by the join column
    with open(file1, newline="") as f1:
        reader1 = csv.DictReader(f1)
        data1 = {row[key]: row for row in reader1}

    # Read second CSV and merge matching rows
    with open(file2, n…
15 0 Open
Files & data medium

Read Parquet-Like Columnar CSV Chunks in Python

A Python generator that reads a CSV file column-by-column, yielding dictionary chunks where each key points to a list of values—mirroring how Parquet stores data columnar.

csv columnar generator
Python
```python
import csv
from pathlib import Path
from typing import Iterator, List

def read_parquet_like_columnar(csv_path: str, column_names: List[str], chunk_size: int = 2) -> Iterator[dict]:
    """Read CSV data in columnar chunks, similar to how parquet stores columns."""
    csv_file = Path(csv_path)
    with csv_f…
13 0 Open

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