| name | docstrings |
| description | Add or normalise Julia docstrings on public symbols (exported types, functions, and constants) so the package's public API is fully self-documenting and the Documenter.jl docs build passes its checkdocs check. After writing docstrings, also updates docs/src/API/ pages so every exported symbol appears exactly once, organised into logical categories, with stale entries removed. Invoke this skill whenever the user mentions: docstring, missing doc, undocumented symbol, API doc, checkdocs warning, docs/src/API, @docs block, or asks to document a type or function, sync the API pages, or keep the API index up to date. Also use it when the user asks to "write docs for" or "add docs to" source files, or when a CI failure mentions missing or incomplete docstrings.
|
docstrings
Add or normalise Julia docstrings on public symbols (exported types, functions,
and constants) across the package source. The goal is complete, consistent API
documentation that renders correctly under Documenter.jl and follows whichever
docstring convention is already established in the package — typically
DocStringExtensions macros such as $(TYPEDEF), $(TYPEDFIELDS), and
$(TYPEDSIGNATURES). Completing this skill makes the package's public API fully
self-documenting and satisfies any checkdocs requirement in the docs build.
Workflow
Step 1 — Detect the existing convention
Use an Explore subagent to read 2–3 symbols that already have complete docstrings
to calibrate style. This avoids consuming the main context window with large file
reads. Ask the Explore agent to return the verbatim docstring text for each symbol.
Identify:
- Whether DocStringExtensions macros are used, and which ones (
$(TYPEDEF),
$(TYPEDFIELDS), $(TYPEDSIGNATURES), $(METHODLIST)).
- How prose is structured relative to macro-generated content (e.g. does prose
come before or after
$(TYPEDFIELDS)?).
- What field documentation pattern is preferred: inline string literals above
each struct field vs. a separate prose block.
- Which format is used for struct docstrings: the old format (an indented
type-name header on the first line, no
$(TYPEDEF), manual # Constructor
section), or the new format (prose only, $(TYPEDEF) for the signature,
$(METHODLIST) for constructors). Normalise old-format structs to new-format
during Step 3.
This detected baseline becomes the style target for every new or normalised
docstring. Do not impose a different convention — match what is already there.
Step 2 — Enumerate candidates
Discover the package name from Project.toml (the name = field). Then run:
grep -nE '^(function |struct |abstract type |mutable struct |const )' src/**/*.jl
Cross-file exports: exported names may be declared in a central module file
(e.g. src/CalibrateEmulateSample.jl, or the per-module files src/Emulator.jl,
src/MarkovChainMonteCarlo.jl, src/Utilities.jl) while the definition lives in a
different file. Read each module file for all export statements so you catch every
public symbol regardless of where it is defined.
For each exported symbol, check whether a non-empty docstring immediately precedes
the definition. Produce a prioritised list:
- Missing entirely — no docstring at all.
- Old-format struct — indented type name on first line, no
$(TYPEDEF),
or redundant manual # Constructor / # Constructors section alongside
$(METHODLIST).
- Empty or stub — only a bare macro line (e.g.
$(TYPEDSIGNATURES)) with
no prose.
- Incomplete — prose present but key sections absent (missing
# Arguments,
# Examples, or field strings not describing semantic role).
Also scan every function in the file for old-style docstrings, regardless of
whether it is exported. An old-style docstring is one that uses an indented
function-name header (e.g. my_func(arg1, arg2)), a $(FUNCTIONNAME)(args...)
header line, and/or an Args: / Arguments: block with the `name` - description
format. Convert these to the $(TYPEDSIGNATURES) convention in the same editing
pass — the whole file should end up stylistically uniform.
Step 3 — Draft docstrings
For each candidate, write a docstring that matches the detected convention.
Getters and simple accessors
Simple getters for exported process/struct types (e.g.
get_prior_mean(p::MyProcess)) are public API and must be documented if
exported. A one-line $(TYPEDSIGNATURES) + short prose sentence suffices; no
# Arguments or # Examples is needed unless the semantics are non-obvious.
Old-format struct docstrings
If a struct docstring starts with an indented type name (e.g. MyStruct{...}),
convert it to the new format:
- Remove the indented type name from the docstring.
- Add
$(TYPEDEF) immediately after the opening prose sentence.
- Replace any manual
# Constructor or # Constructors section (listing
function signatures) with a # Constructors section containing only
$(METHODLIST). If $(METHODLIST) is already present alongside the manual
list, remove the manual list.
- Preserve any genuine prose that was in the old
# Constructor section if it
explains non-obvious behaviour; discard boilerplate signature repetition.
Named constructors (factory functions)
$(METHODLIST) only lists methods whose name matches the struct type. Exported functions
that build an instance of the struct but carry a different name — factory functions such
as forward_map_wrapper for ForwardMapWrapper — are invisible to $(METHODLIST)
and must be surfaced manually in the struct docstring.
When such functions exist, add a prose note inside the # Constructors section,
immediately before $(METHODLIST):
"""
Wrapper for an explicit forward map `G(θ)` that can be used in place of an
`Emulator` when the forward model is cheap enough to call directly during MCMC.
$(TYPEDEF)
# Fields
$(TYPEDFIELDS)
# Constructors
For most cases, prefer the `forward_map_wrapper()` factory function
(see its own docstring for details and a usage example).
$(METHODLIST)
"""
struct ForwardMapWrapper{FT, VV, PD, NI}
...
end
The note should:
- Name the function in backticks.
- Give a one-line hint about when to prefer it over the direct constructor.
- Optionally include a minimal usage snippet if the factory is the primary entry point
and no separate
# Examples block exists on the factory function itself.
The factory function still needs its own full docstring ($(TYPEDSIGNATURES),
# Arguments, # Examples if non-trivial). The struct-level note is a pointer,
not a replacement.
Detecting named constructors during Step 2: when enumerating candidates, flag
exported functions whose name differs from any type name but whose body or doc
clearly returns an instance of a specific struct. Common signals: the function name
ends with a domain term (e.g. constrained_gaussian, from_file), its return
statement calls the struct constructor directly, or the existing codebase already
mentions the relationship somewhere in prose.
Multiple dispatch — one docstring per concept
When a function has multiple dispatch methods, document only the primary
user-facing overload and leave all other overloads undocumented. Competing
docstrings fragment the rendered API docs and create maintenance burden.
The primary overload is the method whose argument type is the broadest
user-facing type — e.g. Emulator rather than GaussianProcess{GPJL}
or ScalarRandomFeatureInterface.
Type-parameter specialisations count as overloads. If the same function name
is defined for where {FT, P <: MyProcess{FT, TypeA}} and
where {FT, P <: MyProcess{FT, TypeB}}, these are two dispatch methods of the
same concept. Document only one — typically the first defined, or the more
general one — and leave the rest undocumented.
Some functions serve as internal dispatch hooks — specialised methods called by the
package framework rather than by users directly (e.g. a backend-dispatched internal
update). These must not be documented even if they are exported, because
documenting them fragments the API and creates maintenance burden. Identify them by
checking whether the function is mentioned in user-facing tutorials or the
docs/src/*.md narrative pages; if it only appears in internal call chains, skip it.
Old-style function docstrings (all functions, not just exported)
Convert any docstring that uses an indented function-name header, a $(FUNCTIONNAME)
header, or an Args: / Arguments: section to the $(TYPEDSIGNATURES) style, even
for internal (non-exported) helpers. The canonical old-style markers are:
- First line indented with spaces:
my_func(arg, ...) — replace with $(TYPEDSIGNATURES).
- First line is
$(FUNCTIONNAME)(args...) or $(DocStringExtensions.FUNCTIONNAME)(args...) —
replace the entire header line with $(TYPEDSIGNATURES) and convert any signature
description into prose below it.
- Argument block labelled
Args: or Arguments: with `name` - description lines — replace
with a # Arguments section using - `name`: description format.
Doing this in the same pass keeps the file stylistically uniform and prevents
old-style docstrings from persisting as invisible technical debt.
General rules
- Use the same macro set as the best-documented symbols already in the package.
- Preserve any inline field string literals already present above struct fields —
do not merge them into the struct-level docstring.
- Prose should answer: what does this symbol represent or do, when would a caller
use it, and what are the physical units of key quantities.
- Do not duplicate content that macros generate automatically (e.g. do not
restate field types when
$(TYPEDFIELDS) already renders them).
- Physical quantities: always include units in square brackets, e.g.
[m/day].
- For functions with more than two arguments, or whose argument semantics are
not obvious from the name alone, add a
# Arguments section listing each
parameter as - `name`: description [unit if applicable].
- For every non-trivial public function where a minimal runnable example can be
written, add a
# Examples section with a jldoctest block so Documenter.jl
can verify the example stays correct as the code evolves.
- Always use the unqualified macro forms:
$(TYPEDSIGNATURES), $(TYPEDEF),
$(TYPEDFIELDS), $(METHODLIST) — never $(DocStringExtensions.TYPEDSIGNATURES)
etc. Julia propagates using DocStringExtensions from a module to all files it
includes, so the short forms are always in scope within a package.
- Only write
[`name`](@ref) cross-reference links to symbols that have a
@docs entry on some API page. For concrete subtypes that are described under
their abstract parent's docstring but not individually listed in @docs, use
plain backtick code instead (e.g. `GPJL` rather than [`GPJL`](@ref)).
Broken @ref links cause docs build errors that are hard to trace back to the
offending docstring.
- Fix obvious typos (missing quotes, misspelled words) in existing docstrings
encountered during the editing pass rather than deferring them.
Step 4 — Apply edits
When editing files that contain non-ASCII characters (e.g. author names with
accented letters like "Garbuno-Iñigo" or "Nüsken"), the file may store
characters in Unicode NFD form while the Edit tool normalises to NFC, causing
match failures. If an Edit call fails with a "not found" error on a string you
can see in the file, use a Python one-liner to apply the replacement with
NFD-normalised strings:
python3 - <<'EOF'
import unicodedata, pathlib
p = pathlib.Path("src/MyFile.jl")
text = p.read_text()
old = unicodedata.normalize('NFD', "the old string here")
new = unicodedata.normalize('NFD', "the new string here")
p.write_text(text.replace(old, new, 1))
EOF
After a Python edit, re-read the file before making any further Edit calls to
the same file (the Edit tool tracks file state from the last Read).
Step 5 — Sync docs/src/API/ pages
After all source-file edits are applied, update the Documenter.jl API pages so
that every exported, documented symbol appears exactly once, organised into
logical categories. The goal is that a reader browsing docs/src/API/ sees a
complete, non-redundant index of the public API — nothing missing, nothing
stale.
5a — Build the source-to-page map
Read docs/make.jl and extract the api array to see which display name maps
to which page path (e.g. "Inversion" => "API/Inversion.md"). For each page,
read its @meta block to find CurrentModule = .... This tells you which
module's exports the page is responsible for.
5b — Collect current @docs entries per page
For each API page, extract every symbol entry listed inside ```@docs ```
blocks. Some entries carry type-signature qualifiers (e.g.
predict(emulator::Emulator)) — track both the raw entry string and
the base name (everything before the first ().
5c — Find missing and stale entries
Exported but not defined (phantom exports). Before anything else, check
that every exported name actually resolves to a definition — a function, type,
or constant — somewhere in the source files of that module. If an exported name
has no definition anywhere, it is a phantom export: remove the export
statement (or just that name from a multi-name export line) from the source
file. Do not add phantom exports to any API page.
Missing from the API. A symbol is missing from a page when it is
exported from that page's CurrentModule, its base name does not appear in any
@docs block on any API page, and it has a definition in the source. If it
lacks a docstring, go back and write one now (following the conventions from
Steps 1–3) before adding it to the API page — an undocumented entry in a
@docs block will cause the docs build to error. Every exported, defined
symbol must end up with a docstring and an API page entry.
Re-exported symbols. Before adding a symbol to a page, verify the symbol is
defined in the page's CurrentModule — not merely imported or re-exported from
another module via import or using ... : name. If it is imported, it belongs
on the source module's page only; adding it to the importing module's page creates
a duplicate @docs entry that causes a docs build error. A reliable check: grep
the source files of CurrentModule for the function or type definition — if the
only match is an import statement, it lives elsewhere.
Stale API entries. An entry is stale when the base name is no longer
exported from the module, or the symbol no longer has a definition in the
source.
Run all four checks before making edits so you can see the full diff in one
pass.
5d — Place missing symbols into appropriate sections
Insert each missing symbol into the section of its API page that best matches
its role. Use the existing section headings on the page as the primary guide —
## Getter functions, ## Error metrics, etc. are already established
categories; add the new symbol to the most thematically fitting one.
When no existing section fits, create a new ## heading that names the
functional group (e.g. ## Accelerators, ## Utility functions) and open a
fresh ```@docs ``` block below it. Avoid catch-all sections like
## Miscellaneous; if you find yourself reaching for that, split more finely.
Broad heuristics for categorisation when the page has no existing sections to
guide you:
- Struct / abstract type → primary types section (first block on page)
- Functions starting with
get_ → ## Getter functions
- Functions starting with
compute_, construct_, build_ → a computation
or construction section
- Update or step functions → an operations section
- Error-metric functions →
## Error metrics
- Scheduler or controller types/functions → their own named section
For a multiple-dispatch function where only the primary overload is documented
(per Step 3), list only that overload. If the existing page convention uses
type-qualified entries (e.g. foo(x::MyType)), follow that convention;
otherwise use the plain name.
5e — Remove stale entries
For each stale API entry:
- Delete the line from its
@docs block. If that empties the block, delete
the block. If that empties the section, delete the section heading too.
- If the symbol is stale because it is no longer defined (phantom export),
also remove the
export statement from the source file. For multi-name
export lines (e.g. export foo, bar, baz), remove only the stale name and
leave the rest intact.
5f — Ensure no symbol appears on two pages
Each base name must appear on at most one API page. If you find a duplicate,
keep it on the page whose CurrentModule matches the module where the symbol
is defined, and remove it from the other page.
Step 6 — Verify
Find the package name from Project.toml, then confirm the package loads
without error:
julia --project -e 'import Pkg; Pkg.instantiate(); using CalibrateEmulateSample'
If a docs build is configured (docs/make.jl is present), run it and resolve
any checkdocs warnings introduced by the new docstrings.
Step 7 — Offer to improve the skill
Once the docs build is clean, ask the user: "Would you like to improve the
docstrings skill itself using skill-creator? You can share suggestions, or I
can analyse patterns from this session — recurring edge cases, formatting
decisions, or anything that felt awkward — to refine the skill for next time."
Formatting rules
These rules encode the conventions most Julia packages following DocStringExtensions
expect. Apply them consistently.
- Triple-quoted strings for all docstrings.
- First line: concise one-line summary — imperative mood for functions
(
"Return the...", "Compute..."), noun phrase for types and constants.
- Second line: blank.
- Body: prose, then any macro invocations.
$(TYPEDSIGNATURES) must be the
very first line of a function docstring and is the sole source of the method
signature — never write a manual indented signature as well.
- No trailing whitespace inside the docstring.
- No emojis.
- Backtick all identifiers in prose: any
snake_case name or quoted string key
that appears in prose outside a code fence or existing backtick span must be
wrapped in backticks. This is especially important for Dict option keys in
# Arguments sub-lists (e.g. `"cov_sample_multiplier"` not
"cov_sample_multiplier") — without backticks, Documenter.jl's markdown parser
may treat underscores as italic markers.
- Physical units in square brackets:
[m/day], [kg/m³], [day], etc.
- Field string literals (the string above each struct field) are distinct
from the struct-level docstring. Preserve both; do not merge them.
- Field string literals must describe the field's semantic role, not its type.
Never write a type name inside brackets (e.g.
"[Date]", "[Dict]") —
$(TYPEDFIELDS) already renders the type. Reserve square-bracket notation
exclusively for physical units.
- Avoid vague labels such as "data object" or "container". Say what the field
represents in domain terms (e.g. "mapping of basin ID to forcing timeseries"
rather than "dictionary of forcing timeseries data objects").
- Multiple-dispatch — one docstring per concept: Document only the primary
user-facing overload (the method taking the top-level composite type). All
other dispatch methods remain undocumented. Do not add
$(METHODLIST) to
function docstrings — $(TYPEDSIGNATURES) already surfaces all overloads.
$(METHODLIST) belongs only in struct docstrings (inside # Constructors).
# Arguments section: add after the opening prose for any function with
more than two parameters, or where argument semantics are non-obvious. Format:
- `name`: description [unit].
# Examples section: add for every non-trivial public function where a
minimal runnable example is feasible. Use jldoctest blocks with julia>
prompts and include expected output.
- In every
jldoctest block, separate each julia> prompt from the next with
a blank line. Documenter.jl rejects blocks where two prompts appear
consecutively without an intervening blank line. If a statement produces no
output, end it with a semicolon and add a blank line before the next prompt.
- If the doctest references any name from the package, the first statement must
be
julia> using CalibrateEmulateSample (followed by a blank line). Do not assume
the package is already in scope.
Quality criteria
| Criterion | Weight | What to check |
|---|
| Completeness | High | Every exported symbol has a non-empty docstring after the task is applied. |
| Convention parity | High | New docstrings use the same macro set and structural pattern as the best-documented symbols already present. Old-format struct docstrings have been normalised. |
| Informativeness | Medium | Prose answers "what, when, why". Units present for physical quantities. # Arguments section present where needed. # Examples jldoctest block present for non-trivial public functions. |
| No duplication | Medium | Prose does not duplicate macro-generated content. Field string literals do not restate the field's type. No redundant manual # Constructor section alongside $(METHODLIST). |
| API page coverage | High | Every exported, documented symbol appears exactly once across docs/src/API/ pages. No stale entries. Symbols are grouped into descriptive sections. |
| Correctness | High | Package loads without error; docs build (if configured) completes without new warnings. |
Examples
Struct: old format → new format
## Before — OLD format: indented type name, no $(TYPEDEF), manual # Constructor section
"""
GaussianProcess{GPPackage, FT <: AbstractFloat, VV <: AbstractVector} <: MachineLearningTool
A Gaussian process emulator dispatched by `GPPackage` (e.g., `GPJL`, `SKLJL`, or `AGPJL`).
# Constructor
GaussianProcess(package::GPJL(); kernel=nothing, noise_learn=true) # GaussianProcesses.jl backend
GaussianProcess(package::SKLJL(); kernel=nothing, noise_learn=true) # scikit-learn backend
# Fields
$(TYPEDFIELDS)
# Constructors
$(METHODLIST)
"""
struct GaussianProcess{GPPackage, FT <: AbstractFloat, VV <: AbstractVector} <: MachineLearningTool
...
end
## After — NEW format: prose only, $(TYPEDEF) for signature, $(METHODLIST) for constructors
"""
A Gaussian process emulator parameterised by `GPPackage` (e.g., `GPJL`, `SKLJL`, or `AGPJL`),
dispatching to different GP backends via the type parameter.
$(TYPEDEF)
# Fields
$(TYPEDFIELDS)
# Constructors
$(METHODLIST)
"""
struct GaussianProcess{GPPackage, FT <: AbstractFloat, VV <: AbstractVector} <: MachineLearningTool
...
end
Function: stub docstring improved
## Before — function with an empty stub docstring
"""
$(TYPEDSIGNATURES)
"""
function advance(x::MyStruct, dt::Float64)
...
end
## After — prose, Arguments, and Examples sections added
"""
$(TYPEDSIGNATURES)
Advance `x` by one time step of length `dt` [days] and return the updated state.
# Arguments
- `x`: current state to advance.
- `dt`: time step length [days].
# Examples
```jldoctest
julia> using CalibrateEmulateSample
julia> m = MyStruct(1.0, Date(2000, 1, 1), 10);
julia> advance(m, 0.5)
...
"""
function advance(x::MyStruct, dt::Float64)
...
end
### Multiple-dispatch: type-parameter specialisations
```julia
## Before — both specialisations documented (anti-pattern)
"""
$(TYPEDSIGNATURES)
Predict using the GaussianProcesses.jl backend.
"""
function predict(gp::GP, new_inputs; kwargs...) where {FT, GP <: GaussianProcess{GPJL, FT}}
...
end
"""
$(TYPEDSIGNATURES)
Predict using the scikit-learn backend.
"""
function predict(gp::GP, new_inputs; kwargs...) where {FT, GP <: GaussianProcess{SKLJL, FT}}
...
end
## After — only the first overload documented; second left bare
"""
$(TYPEDSIGNATURES)
Return the emulator predictions (posterior mean and covariance) for `new_inputs`.
Dispatches to the GP backend specified by the `GPPackage` type parameter.
"""
function predict(gp::GP, new_inputs; kwargs...) where {FT, GP <: GaussianProcess{GPJL, FT}}
...
end
function predict(gp::GP, new_inputs; kwargs...) where {FT, GP <: GaussianProcess{SKLJL, FT}}
...
end
Simple getter: minimal docstring
## Before — getter with no docstring
get_machine_learning_tool(emulator::Emulator) = emulator.machine_learning_tool
## After — one-liner is enough
"""
$(TYPEDSIGNATURES)
Return the `MachineLearningTool` (e.g. `GaussianProcess`, `ScalarRandomFeatureInterface`)
stored in `emulator`.
"""
get_machine_learning_tool(emulator::Emulator) = emulator.machine_learning_tool