Stdlib module compression/lz.vitl

This page is a wiki-style reference for one concrete stdlib file. It explains what the file owns, where it fits in the family, and how to decide whether this is the right surface to depend on.

Visual portrait of compression/lz.vitl
Wiki-style portrait for compression/lz.vitl.

Family: compression

Kind: public stdlib surface

Page style: this reference follows the same “encyclopedic card + portrait + usage contract” logic as the keyword pages, but for stdlib modules.

Summary

Overview

FieldValue
Pathcompression/lz.vitl
Familycompression
Kindpublic stdlib surface
Line count118
Declared procedures15
Declared forms/picks3

`compression/lz.vitl` is a public stdlib surface inside the `compression` family. It should be read as one focused slice of the broader family responsibility: Algorithms and interfaces for compacting data: huffman, lz, deflate, brotli, stats, and shared compression interfaces.

Purpose

This file should be chosen because of responsibility, not because its name “sounds close enough”. Inside the compression family, it carries one focused part of the contract and keeps that responsibility separate from neighboring concerns.

  • A report archive can be built in memory, then compressed before emission.
  • A transport layer can separate serialization from compression instead of mixing both in one procedure.

Taxonomy

Think of this page as a generated encyclopedia entry rather than a hand-written tutorial. The goal is to show what kind of module this is, how dense it is, and what reading strategy makes sense before depending on it.

  • Medium procedure surface: this file groups several related operations behind one namespace.
  • Owns domain vocabulary: the module declares data shapes in addition to executable helpers, so its types are part of the contract.
  • Minimal top-level dependencies: the module reads as mostly self-contained from its opening declarations.
  • Explicit export surface: the file ends with visible export declarations instead of relying only on implicit namespace discovery.

Implementation profile

This profile is inferred directly from the source text. It does not replace reading the file, but it tells you quickly whether the module is mostly declarative, loop-heavy, branch-heavy, or organized around many small exits.

SignalCountWhat it suggests
if2Branching density and local decision-making.
while1Loop-heavy or iterative implementation style.
for0Collection-style traversal at source level.
match0Variant-driven branching or grammar-style decoding.
let8Local state and intermediate value density.
give17Number of explicit exit points and result shaping.

Top-level API inventory

SurfaceItems
Procedures_strip_prefix, _slice_text, compress, decompress, lz77_compress, lz77_decompress, lz78_compress, lz78_decompress, find_longest_match, lz_version, lz_ready, lz_manifest
FormsLZManifest, LZHealth, LZSummary
Picksnone declared at top level
Constantsnone declared at top level
Exports*

Imported surfaces

This file does not advertise a top-level `use` surface in its opening declarations. That often means it is either self-contained or an aggregation layer.

Position in family

This file is module 7 of 9 in the compression family when ordered by path. By procedure count it ranks 6, and by line count it ranks 7. Those ranks are useful as rough signals of breadth, not as quality judgments.

Declaration map

The declaration map turns raw source into a scan-friendly catalog. It is useful when the file is large enough that a reader wants to orient by kinds of surfaces first.

LineNameKindRole
1vitte/stdlib/compression/lzspaceDeclares the namespace that anchors this file in the stdlib tree.
5LZManifestformIntroduces a structured data shape that other procedures can exchange.
11LZHealthformIntroduces a structured data shape that other procedures can exchange.
17LZSummaryformIntroduces a structured data shape that other procedures can exchange.
22_strip_prefixprocRepresents one top-level surface in the file contract and should be read as part of the module boundary.
34_slice_textprocRepresents one top-level surface in the file contract and should be read as part of the module boundary.
48compressprocRepresents one top-level surface in the file contract and should be read as part of the module boundary.
52decompressprocRepresents one top-level surface in the file contract and should be read as part of the module boundary.
56lz77_compressprocRepresents one top-level surface in the file contract and should be read as part of the module boundary.
60lz77_decompressprocRepresents one top-level surface in the file contract and should be read as part of the module boundary.
64lz78_compressprocRepresents one top-level surface in the file contract and should be read as part of the module boundary.
68lz78_decompressprocRepresents one top-level surface in the file contract and should be read as part of the module boundary.
72find_longest_matchprocRepresents one top-level surface in the file contract and should be read as part of the module boundary.
78lz_versionprocRepresents one top-level surface in the file contract and should be read as part of the module boundary.
82lz_readyprocRepresents one top-level surface in the file contract and should be read as part of the module boundary.
86lz_manifestprocRepresents one top-level surface in the file contract and should be read as part of the module boundary.
94lz_healthprocRepresents one top-level surface in the file contract and should be read as part of the module boundary.
102lz_summaryprocRepresents one top-level surface in the file contract and should be read as part of the module boundary.
109lz_selftestprocRepresents one top-level surface in the file contract and should be read as part of the module boundary.

The table is exhaustive for top-level declarations of the selected kinds. This file declares 19 matching surfaces.

Representative signatures

These signatures are shown in source order so the page keeps the feel of a reference manual, not just a keyword cloud.

  • form LZManifest { (line 5)
  • form LZHealth { (line 11)
  • form LZSummary { (line 17)
  • proc _strip_prefix(text: string, prefix: string) -> string { (line 22)
  • proc _slice_text(text: string, start: i32, end: i32) -> string { (line 34)
  • proc compress(data: string) -> string { (line 48)
  • proc decompress(data: string) -> string { (line 52)
  • proc lz77_compress(data: string) -> string { (line 56)
  • proc lz77_decompress(data: string) -> string { (line 60)
  • proc lz78_compress(data: string) -> string { (line 64)
  • proc lz78_decompress(data: string) -> string { (line 68)
  • proc find_longest_match(data: string, pos: int, window_size: int) -> string { (line 72)
  • proc lz_version() -> string { (line 78)
  • proc lz_ready() -> bool { (line 82)
  • proc lz_manifest() -> LZManifest { (line 86)
  • proc lz_health() -> LZHealth { (line 94)
  • proc lz_summary() -> LZSummary { (line 102)
  • proc lz_selftest() -> bool { (line 109)

How to use this module

Start by reading the file as an ownership boundary. Ask three questions: what enters this module, what stable types or procedures it exports, and what adjacent module should stay outside of it.

  1. Read space and top-level imports first so the ownership boundary of compression/lz.vitl is explicit.
  2. Read declared forms and picks before algorithms so the data vocabulary is stable in your head.
  3. Traverse procedures in source order; the early helpers usually explain the naming and numeric conventions used later.
  4. Only after that compare neighbor modules, because the right boundary choice matters more than memorizing one helper name.

User example

This example is generated from the actual stdlib module surface. Its job is not to be the smallest snippet possible; its job is to show a realistic consumer-shaped file that exercises the module and mirrors the language keywords the module itself relies on.

space demo/compression_lz
form UserReport {
  label: string,
  ready: bool
}
proc run_example() -> UserReport {
  let result = _strip_prefix("sample", "sample")
  let ready: bool = lz_ready()
  let stable: bool = ready and true
  let idx: int = 0
  while idx < 1 {
    set idx = idx + 1
  }
  if ready {
    give UserReport { label: "not-ready", ready: false }
  }
    give UserReport { label: "ok", ready: true }
  let copies: f64 = 1 as f64
}
export run_example

Keyword coverage

This table makes the “all keywords of the module” requirement auditable. It compares the detected Vitte keywords in the source file with the generated consumer example above.

KeywordPresent in module sourceUsed in generated user example
spaceyesyes
formyesyes
procyesyes
letyesyes
setyesyes
ifyesyes
whileyesyes
giveyesyes
exportyesyes
trueyesyes
andyesyes
asyesyes

The generated snippet exercises every detected Vitte keyword used by this module.

Source shape

space vitte/stdlib/compression/lz
export *
form LZManifest {
  name: string,
  version: string,
  ready: bool
}
form LZHealth {
  ready: bool,
  lz77_ready: bool,

The excerpt is not meant to replace the file. It exists to make the module recognizable at first glance, the same way a Wikipedia infobox helps the reader orient before reading the whole article.

Source landmarks

Large files are easier to retain when they have visible landmarks. When the source contains explicit section banners, they are surfaced here; otherwise the first major declarations are used as anchors.

  • Line 1: space vitte/stdlib/compression/lz
  • Line 3: export *
  • Line 5: form LZManifest {
  • Line 11: form LZHealth {
  • Line 17: form LZSummary {
  • Line 22: proc _strip_prefix(text: string, prefix: string) -> string {
  • Line 34: proc _slice_text(text: string, start: i32, end: i32) -> string {
  • Line 48: proc compress(data: string) -> string {

Source organization

When a file carries its own internal chaptering, those chapters usually reveal the intended reading order better than a flat symbol list. This section reconstructs that organization from the source itself.

File surfaces

Top-level items: 20. Procedures: 15. Data surfaces: 3. Constants: 0.

First visible names: vitte/stdlib/compression/lz, *, LZManifest, LZHealth, LZSummary, _strip_prefix, _slice_text, compress, decompress, lz77_compress

Complete API catalog

This catalog is the exhaustive file-level index for the module. It is intentionally closer to a generated encyclopedia appendix than to a tutorial summary.

Data surfaces

LineNameSignatureRole
5LZManifestform LZManifest {Introduces a structured data shape that other procedures can exchange.
11LZHealthform LZHealth {Introduces a structured data shape that other procedures can exchange.
17LZSummaryform LZSummary {Introduces a structured data shape that other procedures can exchange.

Procedures

LineNameSignatureRole
22_strip_prefixproc _strip_prefix(text: string, prefix: string) -> string {Represents one top-level surface in the file contract and should be read as part of the module boundary.
34_slice_textproc _slice_text(text: string, start: i32, end: i32) -> string {Represents one top-level surface in the file contract and should be read as part of the module boundary.
48compressproc compress(data: string) -> string {Represents one top-level surface in the file contract and should be read as part of the module boundary.
52decompressproc decompress(data: string) -> string {Represents one top-level surface in the file contract and should be read as part of the module boundary.
56lz77_compressproc lz77_compress(data: string) -> string {Represents one top-level surface in the file contract and should be read as part of the module boundary.
60lz77_decompressproc lz77_decompress(data: string) -> string {Represents one top-level surface in the file contract and should be read as part of the module boundary.
64lz78_compressproc lz78_compress(data: string) -> string {Represents one top-level surface in the file contract and should be read as part of the module boundary.
68lz78_decompressproc lz78_decompress(data: string) -> string {Represents one top-level surface in the file contract and should be read as part of the module boundary.
72find_longest_matchproc find_longest_match(data: string, pos: int, window_size: int) -> string {Represents one top-level surface in the file contract and should be read as part of the module boundary.
78lz_versionproc lz_version() -> string {Represents one top-level surface in the file contract and should be read as part of the module boundary.
82lz_readyproc lz_ready() -> bool {Represents one top-level surface in the file contract and should be read as part of the module boundary.
86lz_manifestproc lz_manifest() -> LZManifest {Represents one top-level surface in the file contract and should be read as part of the module boundary.
94lz_healthproc lz_health() -> LZHealth {Represents one top-level surface in the file contract and should be read as part of the module boundary.
102lz_summaryproc lz_summary() -> LZSummary {Represents one top-level surface in the file contract and should be read as part of the module boundary.
109lz_selftestproc lz_selftest() -> bool {Represents one top-level surface in the file contract and should be read as part of the module boundary.

Exports

LineNameSignatureRole
3*export *Re-exports surfaces that the module wants to expose as part of its public boundary.

Integration boundaries

Within compression, this file should remain focused. If a future helper changes the host boundary, scheduling boundary, or data-shape boundary, it probably belongs in a neighbor module instead of being added here by convenience.

  • Family responsibility: Algorithms and interfaces for compacting data: huffman, lz, deflate, brotli, stats, and shared compression interfaces.
  • Family architecture role: Use `compression` when compactness is a first-class requirement and the program must explain which algorithmic boundary owns that transformation.

Composition guidance

Choose this module when

  • Choose compression/lz.vitl when the main question is owned by this module rather than by transport, storage, orchestration, or user-interface code.
  • A report archive can be built in memory, then compressed before emission.
  • A transport layer can separate serialization from compression instead of mixing both in one procedure.

Pause before extending it when

  • Avoid extending this file when the new helper mostly changes the boundary to host I/O, runtime coordination, or foreign integration instead of staying inside compression.
  • Check nearby modules such as compression/algorithms.vitl, compression/brotli.vitl, compression/deflate.vitl before adding convenience wrappers here.

Relationship table

This table keeps the page closer to a real encyclopedia entry: a module is easier to understand when compared with its nearest alternatives in the same family.

NeighborProceduresData surfacesWhy compare it
compression/algorithms.vitl124Shares the same family boundary but carries a distinct slice of responsibility.
compression/brotli.vitl173Shares the same family boundary but carries a distinct slice of responsibility.
compression/deflate.vitl134Shares the same family boundary but carries a distinct slice of responsibility.
compression/huffman.vitl154Shares the same family boundary but carries a distinct slice of responsibility.
compression/interface.vitl205Shares the same family boundary but carries a distinct slice of responsibility.
compression/stats.vitl174Shares the same family boundary but carries a distinct slice of responsibility.
compression/tests/smoke.vitl10Shares the same family boundary but carries a distinct slice of responsibility.
compression.vitl477Shares the same family boundary but carries a distinct slice of responsibility.

Neighbor modules