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jupytext-notebook-helper

Small runtime helpers for teaching notebooks written in the jupytext percent format and built with jupytext-filter (student/teacher/colab versions).

Extracted from master_mind.teaching.utils so it can be reused across courses without pulling in the whole master-mind framework.

from jupytext_notebook_helper import *   # test_mode, skip_plots, print_header, is_notebook
  • test_mode / skip_plots — driven by the TESTING_MODE env var (off | on | full).
  • print_header(title) — formatted header when run as a script; jupytext-filter turns it into a markdown header in notebooks.
  • On script execution (e.g. make check), matplotlib.pyplot.show() is patched to render figures inline in the terminal via imgcat.

Intended to be imported from a teacher-only cell: students never see the test-mode machinery, and the package is not required on Colab.

Imports in the build

The filter (python -m jupytext_notebook_helper.filter) manages imports by parsing the source — no explicit imports/copy cell tags are needed anymore (they still work but warn that they are redundant).

Imports can live anywhere; they are gathered automatically. You no longer have to keep imports in a dedicated cell (the old imports-tagged section): put each import next to the code that first needs it, in any cell. Every top-level import across all cells is collected, de-duplicated, and emitted in one place — the cell containing the # [[imports]] marker if you add one (to control where the block lands), otherwise a cell inserted just before the first code cell. The original import lines are removed from wherever they appeared:

# %% [markdown]
# ## Part 1

# %%
import numpy as np          # gathered — moved out of this cell
x = np.zeros(3)

# %% [markdown]
# ## Part 2

# %%
from collections import defaultdict   # gathered from here too
counts = defaultdict(int)

Both imports end up together in a single imports cell, while the cells above keep only x = np.zeros(3) and counts = defaultdict(int). Add a # [[imports]] marker cell if you want to choose exactly where that block goes.

If the same module/symbol is pulled in under more than one alias, the build logs a warning. Imports inside [[remove]] / [[student]] blocks are left in place, so teacher-only imports never leak into the shared cell. Imports nested inside a function or if are also left alone — only module-level (top-level) imports are gathered.

Internal library imports are inlined (with dependency tracking). An import whose module resolves to a file under --src-root (default src/) is treated as internal: instead of importing it, the filter copies the requested symbols straight into the notebook. Only what you ask for — plus its transitive dependencies — is copied, so unused and side-effectful top-level code in the library module is left behind:

# src/mylib.py
import numpy as np
CONST = 3
def _scale(x): return x * CONST
def area(r):   return _scale(np.pi) * r
def unused():  ...            # never copied

# %% in the notebook
from mylib import area        # -> `CONST`, `_scale`, `area` inlined here;
                              #    `import numpy as np` added to the imports cell

Use targeted imports (from mylib import area, plot) instead of from mylib import *; * still works and inlines every public symbol. Inlined modules become Makefile build dependencies, so notebooks rebuild when a library module changes.

Whole-module inclusion for dotted use. When you want to keep interacting with a module by its dotted name, import mylib.my.module includes the whole module as a real module object, so mylib.my.module.foo() keeps working exactly like a normal import (no tree-shaking — the entire module, side effects and all, travels with the notebook; any internal modules it imports come along too):

# %% in the notebook
import mylib.my.module
mylib.my.module.foo()      # dotted access preserved

Use from mylib.my.module import foo when you only want foo (tree-shaken, no side effects); use import mylib.my.module when you want the full module and dotted interaction.

Testing: three levels

  • make check — runs each source as a script, importing internal helpers normally from src/. Fast, but because the whole module is importable it cannot reveal a missing inlined dependency.
  • make check-resolved (python -m jupytext_notebook_helper.run) — runs each source with internal imports resolved to the inlined subset, i.e. exactly the code a student notebook will contain. A tree-shaking bug then surfaces as a NameError — reported at the real source location, because every chunk is compiled against the file it came from (notebook cell → .py; inlined symbol → its src/ module).
  • Building the notebook itself is the final level.

Both check and check-resolved accept a single source, e.g. make check-resolved:tp1-embeddings, and record pass/fail (make show-tests / make show-resolved).

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