yaml-rt is a YAML 1.2.2 parser and editor for Rust that keeps the original
source text intact. It is designed for tools that need to change YAML without
reformatting everything around the change: comments, whitespace, line endings,
scalar styles, directives, tags, anchors, aliases, document markers, and
original spelling are retained where practical.
Untouched documents are emitted byte-for-byte. Edits are applied as localized source patches, so a changed value normally produces only the diff you asked for.
Version 0.1 is suitable for production use within the guarantees and limitations documented below. Public APIs may still evolve between 0.x releases.
Use yaml-rt when you are building a configuration editor, migration tool,
formatter-aware automation, or command-line utility where preserving a human's
YAML matters. For ordinary typed data interchange where presentation does not
matter, the optional Serde integration provides a more conventional conversion
API.
The facade crate enables typed-overlay derives by default:
[dependencies]
yaml-rt = "0.1.0"Choose features explicitly when needed:
[dependencies]
yaml-rt = { version = "0.1.0", default-features = false }
# or
yaml-rt = { version = "0.1.0", features = ["serde"] }Install the command-line editor with:
cargo install yaml-rt-cli --lockedThe installed binary is named yaml-rt.
Parse a document, queue an edit, and render the minimally changed source:
use yaml_rt::{YamlDoc, YamlError};
fn main() -> Result<(), YamlError> {
let input = "\
# local development
server:
host: \"localhost\"
port: 8080 # keep this comment
";
let mut doc = YamlDoc::parse(input)?;
doc.set_scalar(&["server", "port"], "9090")?;
assert_eq!(
doc.to_string(),
"\
# local development
server:
host: \"localhost\"
port: 9090 # keep this comment
"
);
Ok(())
}YamlDoc::to_string() previews the source with pending patches applied.
YamlDoc::commit_edits() reparses that result and makes it the new baseline for
subsequent edits.
Mapping keys can be renamed without moving or reconstructing their entries.
YamlDoc::rename_key_at() accepts a JSON Pointer to the member value, while
YamlDoc::rename_keys_at() applies one decoded destination name to several
members transactionally. Key quoting changes only when required to keep the
new name a YAML string; entry position, values, comments, tags, anchors, and
surrounding whitespace remain source-owned.
The lower-level API exposes the lossless concrete syntax tree, semantic node metadata, JSON Pointer operations, fragments, diagnostics with spans, and patch-oriented editing primitives.
YamlRt maps Rust configuration models onto YAML without turning the
Rust value into the source of truth. Reading does not discard syntax, and
writing patches only modeled values unless configured otherwise.
use yaml_rt::{FromYamlDoc, ToYamlDoc, YamlDoc, YamlError, YamlRt};
#[derive(Debug, PartialEq, Eq, YamlRt)]
struct Config {
host: String,
#[yaml(default = 8080)]
port: u16,
#[yaml(rename = "log-level")]
log_level: String,
}
fn main() -> Result<(), YamlError> {
let input = "\
host: \"localhost\"
port: 3000 # selected by the user
log-level: info
extra: keep-me
";
let mut doc = YamlDoc::parse(input)?;
let mut config = Config::from_yaml_doc(&doc)?;
config.port = 9090;
config.apply_to_yaml_doc(&mut doc)?;
assert_eq!(
doc.to_string(),
"\
host: \"localhost\"
port: 9090 # selected by the user
log-level: info
extra: keep-me
"
);
Ok(())
}Supported field attributes are:
rename = "yaml-key"alias = "legacy-key"defaultanddefault = expressioncomment = "Comment for inserted entries."skipskip_serializing_if = "path::to::predicate"flattenwith = "module::path"
Rust doc comments become comments for newly inserted entries when no explicit
comment attribute is present. Struct-level policies control unknown fields
with preserve_unknown_fields or prune_unknown_fields, and insertion order
with insert_order = "append" or insert_order = "struct".
flatten accepts both nested derived structs and one catch-all
BTreeMap<String, T> or HashMap<String, T> across the recursively flattened
field graph. The catch-all map reads every entry not claimed by a canonical
field name, alias, skipped field, or nested flattened struct. Applying the
overlay synchronizes those entries exactly: existing entries are patched in
place, missing map keys are removed from YAML, and new keys are inserted
deterministically. A catch-all entry that collides with a modeled key is
rejected before edits are queued.
Single-field tuple structs are transparent automatically. Their inner value is
represented directly, so struct Port(u16) reads and writes 8080, not a
mapping or tag. The unnamed field may use yaml(with = "module").
Enums use the same YAML representation as yaml-rt-serde: unit variants are
strings, and variants with data use local tags.
# use yaml_rt::YamlRt;
#[derive(YamlRt)]
#[yaml(rename_all = "lowercase")]
enum Mode {
A, // a
Value(u16), // !value 42
Pair(u8, bool), // !pair [1, true]
Server { host: String }, // !server {host: api}
}Enum variants support rename and repeated alias. Enum-level rename_all
accepts lowercase, snake_case, kebab-case, SCREAMING_SNAKE_CASE,
camelCase, and PascalCase, following Serde's variant transformations.
Aliases are accepted when reading; new values emit the canonical name. An
existing alias spelling is retained while the variant stays the same.
Same-variant writes patch newtype payloads, tuple elements, and struct fields incrementally. That retains scalar spelling, collection style, comments, anchors, and unknown struct-variant fields. Switching variants replaces the enum node deterministically, retains its anchor and surrounding entry comment, and removes comments owned by the old payload.
Common configuration shapes are supported directly:
| Shape | Coverage |
|---|---|
| Scalars | String, bool, char, all signed and unsigned integer widths including 128-bit values, f32, and f64 |
| Wrappers | Option<T>, Box<T>, and fixed arrays [T; N] |
| Collections | Vec<T>, BTreeMap<String, T>, and HashMap<String, T> |
| Structs | Named mapping structs and transparent single-field tuple structs |
| Enums | Unit, newtype, tuple, and named-field variants; data variants use local YAML tags |
| Nested models | Derived structs, newtypes, and enums inside the wrappers and collections above |
| Generics | Type, lifetime, and const generics with inferred field bounds and retained user where clauses |
| Document roots | Typed scalar, sequence, mapping, newtype, and enum roots |
| Presentation | Existing block and flow collections are patched in their original style |
Sequence elements are matched positionally. Existing elements retain comments,
unknown nested keys, anchors, tags, spelling, and style; appended elements use
deterministic formatting. Typed maps synchronize modeled keys exactly while a
derived struct still preserves unknown fields by default. A semantically
unchanged scalar is not rewritten, so spellings such as TRUE and 0x10
survive. Missing and explicit-null Option<T> fields both read as None;
writing None emits null unless skip_serializing_if omits the field.
Use with when a field has a configuration representation different from its
Rust type. The adapter module declares a supported YAML representation and two
conversions:
use std::time::Duration;
use yaml_rt::YamlError;
mod duration_seconds {
use super::{Duration, YamlError};
pub type Repr = u64;
pub fn from_yaml(value: Repr) -> Result<Duration, YamlError> {
Ok(Duration::from_secs(value))
}
pub fn to_yaml(value: &Duration) -> Result<Repr, YamlError> {
Ok(value.as_secs())
}
}
# use yaml_rt::YamlRt;
#[derive(YamlRt)]
struct Service {
#[yaml(with = "duration_seconds", rename = "timeout-seconds")]
timeout: Duration,
}Repr must implement YamlValue + ToYamlFragment and can be a scalar or a
collection. rename, alias, default, comment, and
skip_serializing_if continue to apply around a named-field adapter. Adapters
also work on transparent newtype fields and unnamed enum payload fields. See the
config_models example for nested
struct sequences, a flow-style update, optional/null fields, generics, and the
duration adapter together, and the
enum_overlays example for
transparent newtypes and tagged enums.
YamlRt is a lossless overlay, not a general-purpose Serde data-model
implementation: it reads from an existing YamlDoc and applies localized
patches back to that same source. Serde conversion creates ordinary Rust
values and deterministic YAML when retaining the original presentation is not
required.
Enable the serde feature when source presentation does not need to survive a
typed conversion:
use serde::{Deserialize, Serialize};
#[derive(Debug, PartialEq, Serialize, Deserialize)]
struct Service {
name: String,
replicas: u16,
}
fn main() -> Result<(), yaml_rt::Error> {
let service: Service = yaml_rt::from_str("name: api\nreplicas: 3\n")?;
assert_eq!(
service,
Service {
name: "api".to_owned(),
replicas: 3,
}
);
assert_eq!(
yaml_rt::to_string(&service)?,
"name: api\nreplicas: 3\n"
);
Ok(())
}For dynamic YAML, the same feature exposes a yaml_serde-compatible value
model with ordered mappings, local tags, indexing, typed conversion, and
explicit merge-key expansion:
use yaml_rt::{Value, from_str, from_value, to_value};
# fn main() -> Result<(), yaml_rt::Error> {
let mut value: Value = from_str("service: {name: api, replicas: 2}\n")?;
value["service"]["replicas"] = Value::from(3);
assert_eq!(value["service"]["name"], "api");
let replicas: u16 = from_value(value["service"]["replicas"].clone())?;
assert_eq!(replicas, 3);
assert_eq!(to_value(vec![1_u8, 2])?[0], 1);
# Ok(())
# }Value, Number, Sequence, Mapping, Index, to_value, and
from_value are available from yaml-rt-serde directly and through the
facade. Number additionally retains i128 and u128 values. Value
conversion resolves aliases and intentionally discards comments, anchors,
styles, and original scalar spelling. YAML << keys remain ordinary mapping
entries until Value::apply_merge() is called.
Serde serialization emits deterministic block-style YAML. Use a typed round-trip overlay instead when comments, quoting, whitespace, or other source presentation must be retained.
The CLI queries YAML with RFC 9535 JSONPath and applies JSON Pointer operations while preserving the rest of the document:
# Find every service port and print JSON Pointer/value pairs.
yaml-rt query '$.services[*].port' config.yaml
# Read a node.
yaml-rt get /server/port config.yaml
# Read every matching node as a YAML document stream.
yaml-rt get --query '$.services[*].port' config.yaml
# Replace a value and print the edited document.
yaml-rt replace /server/port --value 9090 config.yaml
# Replace every node selected by JSONPath.
yaml-rt replace --query '$.services[*].port' --value 9090 config.yaml
# Rename a mapping key without moving its entry.
yaml-rt rename-key /server/old-name --to new-name config.yaml
# Give every selected mapping member the same new key name.
yaml-rt rename-key --query '$.services[*].legacy-port' --to port config.yaml
# Edit a file atomically in place.
yaml-rt add /server/debug --value true --in-place config.yaml
# Copy a complete YAML node from a file.
yaml-rt add /server/tls --value-file tls.yaml config.yaml
# Select the second document in a YAML stream.
yaml-rt get /name --doc 1 stream.yaml
# Apply several changes transactionally from YAML or JSON.
yaml-rt patch --patch-file changes.yaml --in-place config.yaml
# Recursively edit every .yaml or .yml file under a directory.
yaml-rt replace /server/port --value 9090 --in-place configs/Available operations are query, get, add, remove, replace,
rename-key, move, copy, test, and patch. Query results are emitted in
nodelist order as one compact JSON Pointer/value pair per line. JSONPath
evaluation uses the YAML 1.2 core schema and rejects YAML values that are not
JSON-compatible, including non-string or duplicate mapping keys and non-finite
numbers.
get, add, remove, replace, rename-key, and test also accept
--query QUERY in place of their positional JSON Pointer. get --query emits
each match as a separate --- YAML document in nodelist order. Query-targeted
mutations apply to all matched nodes transactionally and duplicate targets are
edited once. Removal and value replacement normalize overlapping ancestor and
descendant selections; key rename resolves all owning mapping entries before
editing, so nested keys can be renamed together. A mutation or test fails
when the query matches nothing, while get succeeds with empty output.
rename-key takes the decoded destination name through --to KEY. Every
selected node must be a mapping member, and every affected mapping must retain
unique final string keys. Plain, single-quoted, and double-quoted keys are
supported in both implicit and explicit-key syntax. Block-scalar, alias, and
complex key occurrences are rejected transactionally.
patch accepts an RFC 6902-style operation sequence through either
--patch YAML or --patch-file FILE. JSON patch documents are valid because
JSON is a subset of YAML; YAML syntax additionally permits complete YAML nodes
as operation values. Operations run in order against the selected document,
and the entire patch is rolled back if any operation or test fails.
An input may be a single file, a directory, or - for standard input. Omitting
the input scans the current directory. Directory inputs are searched
recursively for .yaml and .yml files using case-insensitive extensions;
hidden paths are included, symbolic links are skipped, and files are processed
in sorted relative-path order. A directory with no matching files succeeds
without output.
Batch query and get --query output identifies each input containing a match
with an ==> relative/path.yaml <== header and a blank line between files;
files without matches produce no section. Pointer-based batch get identifies
every successful input. The --output option writes the same combined stream
to one file. Batch mutations
require --in-place; each file is replaced atomically only after its operation
succeeds. Failures are reported with relative paths, processing continues for
the remaining files, and the command exits unsuccessfully if any file or
directory traversal failed.
Single-file mutations write to standard output unless --output or
--in-place is used. Values passed with --value or --value-file must be
complete YAML nodes. --patch-file - reads the patch from standard input only
when the target YAML does not also use -; both inputs cannot use standard
input at once.
Run yaml-rt help <operation> for operation-specific arguments.
| Package | Purpose | Published |
|---|---|---|
yaml-rt-core |
Dependency-free source model, parser, CST, semantic graph, diagnostics, editor, and emitter | Yes |
yaml-rt-rfc9535 |
Native RFC 9535 JSONPath parsing and evaluation over YamlDoc |
Yes |
yaml-rt-derive |
YamlRt procedural derive |
Yes |
yaml-rt-serde |
Serde serializer and deserializer | Yes |
yaml-rt |
Facade re-exporting the public APIs | Yes |
yaml-rt-cli |
yaml-rt command-line editor |
Yes |
yaml-rt-bench |
Local comparison benchmarks | No |
fuzz |
Separate cargo-fuzz workspace | No |
The facade features are:
| Feature | Default | Effect |
|---|---|---|
derive |
Yes | Re-exports yaml_rt_derive::YamlRt |
serde |
No | Re-exports the yaml-rt-serde conversion API |
yaml-rt-core has no third-party dependencies and retains the foundational RFC
6901 JsonPointer API. Its YamlPatch and YamlPatchOperation APIs parse and
transactionally apply RFC 6902-style operation sequences with full YAML values.
The independently usable yaml-rt-rfc9535 crate depends on regex for the
standard match() and search() functions. Its JSONPath parser, semantic
evaluator, compatibility validator, and pointer construction operate directly
on YamlDoc without a generic JSON value dependency. Compact JSON rendering
remains private to yaml-rt-cli; the RFC 9535 crate is not re-exported by the
yaml-rt facade.
The parser is tested against all 402 cases in the YAML Test Suite tag
data-2022-01-17, including semantic JSON comparisons where fixtures provide
them. The expected-failure list is empty.
The conformance harness is opt-in for ordinary package tests. A complete local run uses the pinned submodule:
YAML_TEST_SUITE_RUN_ALL=1 \
YAML_TEST_SUITE_CHECK_JSON=1 \
cargo test -p yaml-rt-core --test yaml_test_suite- Parsing and emitting an untouched valid document is byte-identical.
- Local edits retain unrelated source bytes and aim for the smallest practical diff.
- Batch patches are transactional; a failing operation leaves the target document unchanged.
- User-visible syntax and diagnostics carry source spans.
- YAML streams, directives, tags, anchors, aliases, explicit document markers, collection styles, scalar styles, comments, whitespace, and line endings are represented by the lossless model.
- Typed round-trip overlays preserve unknown fields by default.
- This is a round-trip editor, not a canonical YAML formatter.
- Editing an anchored node does not propagate the edit through aliases; aliases continue to refer to the same anchor in the emitted YAML.
- CLI
copyandmovereject cases where anchor ownership would become ambiguous or invalid. - JSON Pointer lookup reports duplicate mapping keys and cannot address non-string mapping keys.
- Mapping-key rename supports plain, single-quoted, and double-quoted string key occurrences; block-scalar, alias, and complex keys are not rewritten.
- CLI and patch
testoperations compare YAML values using the supported YAML 1.2 core scalar and collection model; they are not a general tag-aware application schema. - Serde
Valueconversion does not preserve presentation metadata and only expands merge keys whenValue::apply_merge()is requested. - Typed-overlay
flattenhas intentionally conservative combinations with field and struct policies; unsupported combinations produce derive errors. - Typed mappings use string keys. Borrowed overlay fields, standalone unit structs, standalone multi-field tuple structs, and full Serde attribute compatibility remain future work.
- Enum data variants use local tags only. Internally tagged, adjacently tagged, externally mapped, and untagged enum representations are not implemented.
- Collection identity is positional for sequences. Mapping insertion accepts
string keys only; newly inserted
HashMapkeys are sorted for deterministic output while existing source order is retained. - Flow collections may be nested up to 1,024 levels. Deeper input is rejected with a span-aware parser diagnostic.
These constraints are checked rather than silently producing lossy or surprising output.
The 0.1 line is production-usable for the documented behavior. Patch releases will preserve source and semantic behavior unless fixing a correctness or safety issue. Because the project is pre-1.0, public Rust APIs and CLI details may change in minor releases; such changes are documented in the changelog and follow Conventional Commits.
The lossless CST remains the source of truth. Semantic information and typed
Rust values are overlays that read from it and queue source patches. See
docs/architecture.md for the component boundaries and
data flow. Block parsing advances a sequential line cursor over compact entry
and collection frames in one iterative state machine. Flow collections are
parsed left-to-right with a bounded explicit frame stack. Both machines
register semantic metadata directly in CST nodes during recognition, so deeply
nested input does not rely on call-stack recursion, no completed-CST semantic
pass is required, and each CST node is attached in its grammatical context
exactly once.
Near-term work focuses on expanding ergonomic edit operations, richer schema-aware scalar handling, broader typed-overlay shapes, sustained fuzzing, and performance profiling while retaining zero dependencies in the core crate.
The workspace requires Rust 1.96 or newer and tests the latest stable toolchain. Useful release-readiness commands are:
cargo fmt --all -- --check
cargo test --workspace --all-features --locked
cargo clippy \
-p yaml-rt-core -p yaml-rt-derive -p yaml-rt-serde \
-p yaml-rt -p yaml-rt-cli \
--all-targets --all-features --locked -- -D warnings
RUSTDOCFLAGS="-D warnings" \
cargo doc --workspace --all-features --no-depsSee RELEASING.md for the publication process.
Licensed under either the Apache License, Version 2.0 or the MIT license, at your option.