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draft 2026-07-22

alktype — Validation

The validation layer: custom keyword validators for all 19 AlkType:* kinds, the AlkTypeError enum, load-time vs access-time validation strategy, and the AlkTypeEngine as the compiled form of a schema.

Validation Strategy

Validation is delegated to the jsonschema crate (v0.46.5, Draft 2020-12). The alktype engine does not implement its own validation — it registers custom keyword validators for each AlkType:* kind and lets jsonschema handle the structural validation (object properties, required fields, array items, enum values).

The strategy is decided in ADR-004:

  1. Load time: Parse the schema JSON, build the layout engine, build the jsonschema validator. This is the AlkTypeEngine::compile(schema) constructor.
  2. Access time: Use the compiled engine for repeated read/write operations. Validation is opt-in per operation.

What validation validates

The jsonschema validator operates on serde_json::Value instances — it validates JSON representations of data, not raw byte buffers. This is the correct separation of concerns:

  • JSON validation (jsonschema): validates that a JSON document conforms to the schema. Used for validating hand-written schemas, TypeBox output, JSON payloads, or the JSON representation of a binary struct after deserialization.
  • Binary access validation (data access layer): the read/write functions perform type-level validation at access time — range checks for integers, UTF-8 validity for strings, buffer bounds checking. These return AlkTypeError::Access with field paths.

The "schema is the format" principle means the same schema describes both the JSON shape and the binary layout. The jsonschema validator checks the JSON shape; the data access layer checks the binary layout. A consumer that wants to validate a binary buffer end-to-end reads the buffer into a Value tree via the data access layer, then validates that Value against the jsonschema validator. This is a two-step process, not a single validate(buffer) call.

The AlkTypeEngine struct

The AlkTypeEngine is the compiled form of a schema. It supports both layout modes (ADR-002) via an internal Layout enum:

pub struct AlkTypeEngine {
    layout: Layout,                   // packed or aligned (private enum)
    validator: jsonschema::Validator, // compiled once at load time
    endian: Endian,                   // parsed from the schema's "endian" annotation
    schema: Value,                    // the normalized schema (refs resolved)
}

// Private — the consumer selects via LayoutMode at compile time.
enum Layout {
    Packed { builder: LayoutBuilder },
    Aligned { offset_map: OffsetMap },
}

The consumer selects the mode at construction time via LayoutMode (see layout-engine.md §"Mode Selection"). The Layout enum is private — the engine exposes mode-appropriate accessors instead:

impl AlkTypeEngine {
    pub fn compile(schema: &mut Value, mode: LayoutMode) -> Result<Self, AlkTypeError>;
    pub fn mode(&self) -> LayoutMode;
    pub fn endian(&self) -> Endian;
    pub fn offset_map(&self) -> Option<&OffsetMap>;          // Some in aligned mode
    pub fn layout_builder(&self) -> Option<&LayoutBuilder>;  // Some in packed mode
    pub fn sequential_reader(&self) -> Option<SequentialReader>; // owned fresh reader (ADR-007)
}

compile takes &mut Value because it normalizes $ref values in place (via normalize_refs) before computing the layout and building the validator. The schema field retains the normalized schema for read_field's kind lookup and for sequential_reader()'s factory construction. The validator is mode-agnostic (it operates on Value, not raw bytes).

The Layout::Packed variant stores only the LayoutBuilder (write-side). The SequentialReader (read-side) is not stored — it has mutable cursor state that the consumer owns, so sequential_reader() constructs a fresh reader on each call (ADR-007).

The read_field/write_field methods on AlkTypeEngine are the aligned-mode data-access API — see data-access.md §"Higher-level read/write".

Custom Keyword Validators

Each AlkType:* kind gets a Keyword implementation registered via jsonschema::options().with_keyword(...). The validators check leaf type constraints; jsonschema handles all structural validation.

Numeric type validators

AlkType:Float32 / AlkType:Float64:

  • Value must be a finite number.
  • For Float32: value must be representable as f32 (no precision loss beyond f32's mantissa).

AlkType:Int8 / AlkType:Int16 / AlkType:Int32:

  • Value must be an integer within the type's range.
  • Int8: -128..127, Int16: -32768..32767, Int32: -2147483648..2147483647.

AlkType:Uint8 / AlkType:Uint16 / AlkType:Uint32:

  • Value must be a non-negative integer within the type's range.
  • Uint8: 0..255, Uint16: 0..65535, Uint32: 0..4294967295.

String and binary validators

AlkType:String:

  • Value must be a valid UTF-8 string.
  • If maxLength is specified in the schema, the string's byte length must not exceed it.

AlkType:Bytes:

  • Value must be a string (JSON represents binary data as a string — JSON has no native byte type).
  • If maxLength is specified, the byte length must not exceed it.
  • Binary representation: In the binary layout, TBytes is raw bytes with no encoding (not base64, not hex). The JSON representation (for validation) uses a string; the binary representation (for data access) uses &[u8] directly.

AlkType:Enum:

  • The AlkType:Enum custom keyword signals that the type is an enum for layout purposes (the engine needs to know it's a fixed-size u32 index, not a variable-length string). The built-in enum keyword provides the value list and handles value-membership validation. The custom keyword validator is a no-op beyond the built-in check — it exists solely for the layout engine to recognize the type.

AlkType:Timestamp:

  • Value must be a valid RFC 3339 timestamp string (the internet profile of ISO 8601, e.g., "2026-07-20T15:30:00Z").

Composite type validators

AlkType:Struct:

  • Value must be an object.
  • Each property must match its declared AlkType:* kind.
  • Required fields must be present.
  • The jsonschema crate's built-in properties and required keywords handle the structural checks — the custom keyword only needs to validate that each field's value matches its AlkType:* kind.

AlkType:Union:

  • The discriminator value must be one of the mapping keys.
  • The variant struct must match the declared schema for that discriminator value.

AlkType:Array:

  • Value must be an array.
  • Each element must match the array's declared element type.
  • If minItems/maxItems is specified, the array length must be within bounds.

Other validators

AlkType:Boolean:

  • Value must be true or false.

AlkType:Record:

  • Value must be an object.
  • All values must match the record's declared value type (specified via the "values" property in the schema, e.g., "values": { "AlkType:Float32": true }).

Validator implementation pattern

Each custom keyword implementation is ~10 lines. Example for AlkType:Float32:

struct Float32Validator;

impl Keyword for Float32Validator {
    fn validate<'i>(&self, instance: &'i Value) -> Result<(), ValidationError<'i>> {
        match instance {
            Value::Number(n) if n.as_f64().map_or(false, |f| f.is_finite()) => Ok(()),
            _ => Err(ValidationError::custom("expected finite f32-compatible number")),
        }
    }
    fn is_valid(&self, instance: &Value) -> bool {
        instance.as_f64().map_or(false, |f| f.is_finite())
    }
}

Registration:

let validator = jsonschema::options()
    .with_keyword("AlkType:Float32", |parent, value, path| {
        Ok(Box::new(Float32Validator))
    })
    .build(&schema)?;

The factory closure receives the parent schema object, the keyword's value, and the schema path. This enables cross-keyword awareness — for example, a AlkType:Struct validator can inspect the parent's properties to validate each field against its declared AlkType:* kind.

AlkTypeError

A single AlkTypeError enum covers all error conditions across the engine's three phases (schema parsing, offset computation, read/write) plus validation. Decided in ADR-004.

pub enum AlkTypeError {
    /// Schema parsing errors (invalid JSON, missing keywords, unknown AlkType kinds).
    Schema(String),
    /// Offset computation errors (field not found, unsupported type).
    Offset { field_path: String, reason: String },
    /// Read/write errors (buffer too short, invalid UTF-8, value out of range).
    Access { field_path: String, reason: String },
    /// Validation errors (delegated to jsonschema).
    Validation(ValidationError<'static>),
}
  • Schema — for errors during AlkTypeEngine::compile(). Invalid JSON, missing required keywords, unknown AlkType:* kinds.
  • Offset — for errors during offset computation. Field not found in the schema, type not supported for offset computation, recursive depth exceeded. Carries the field path.
  • Access — for errors during read/write. Buffer too short, invalid UTF-8 in a string field, value out of range for the target type. Carries the field path.
  • Validation — wraps jsonschema's ValidationError. The 'static lifetime is correct — the validator owns its schema reference and lives for the lifetime of the AlkTypeEngine.

Field-path-carrying errors

Read/write and offset errors include the field path for debugging:

Err(AlkTypeError::Access {
    field_path: "header.version".to_string(),
    reason: "buffer too short: need 4 bytes at offset 12, have 2".to_string(),
})

This makes debugging binary format issues tractable — the error tells you exactly which field failed and why.

Validation Timing

Load time: AlkTypeEngine::compile()

The expensive work happens once at schema load time:

  1. Normalize $ref values in the schema (normalize_refs).
  2. Parse the schema's "endian" annotation.
  3. Compute the layout (LayoutBuilder/SequentialReader for packed, OffsetMap for aligned).
  4. Build the jsonschema validator (jsonschema::options().with_keyword(...).build(&schema)?).

The result is a AlkTypeEngine that can be used for repeated operations.

Access time: engine.validate_json(&Value) / engine.is_valid_json(&Value)

Validation is opt-in per operation. The consumer calls engine.validate_json(instance) when validation is desired, or engine.is_valid_json(instance) for a boolean check. The jsonschema validator is already compiled — these are fast checks against the compiled validator.

pub fn validate_json(&self, instance: &Value) -> Result<(), AlkTypeError>;
pub fn is_valid_json(&self, instance: &Value) -> bool;

The argument is a serde_json::Value (the JSON representation of the data), not a raw byte buffer — see §"What validation validates" above. To validate a binary buffer end-to-end, the consumer reads it into a Value tree via the data access layer, then validates that Value.

High-throughput paths can skip validation. Security-sensitive paths (parsing incoming frames from untrusted peers) can validate every frame. The choice is the consumer's.

Relationship to Read/Write

Validation and data access are independent operations on the same data. The consumer can:

  1. Validate the JSON representation of a buffer to ensure it conforms to the schema.
  2. Read fields from the binary buffer at computed offsets.
  3. Both — validate the JSON representation first, then read the binary buffer (defense in depth).

The engine does not couple validation and access. A consumer that trusts its data source can skip validation and go straight to read/write. A consumer that parses untrusted input can validate the JSON representation first, then access the binary buffer.

Design Decisions

Decision ADR Summary
Error handling and validation ADR-004 AlkTypeError enum; load-time build, access-time check; field-path-carrying errors; jsonschema ValidationError wrapping
Purpose and scope ADR-001 Why jsonschema not a custom engine

Open Questions

None specific to validation. The three alktype OQs (OQ-001, OQ-002, OQ-003) are about layout, platform support, and schema construction — not validation.

References

  • @alkdev/alknet: docs/research/alknet-typedef/findings.md §"Validation" — the POC's custom keyword validators for all 17 kinds
  • ADR-004 — error handling and validation strategy
  • schema-layer.md — the 19 AlkType kinds that the validators check
  • data-access.md — read/write functions that operate on the same buffers