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Golang Data Structures

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Optimize your Go applications with the right data structures.

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What Golang Data Structures does

The Golang Data Structures skill provides an in-depth understanding of Go's built-in and standard library data structures, focusing on their internals, correct usage, and selection guidance. This skill is designed for Go engineers who are looking to make informed decisions about data structure choices based on memory layout, allocation costs, and access patterns. By leveraging this skill, developers can avoid common pitfalls and optimize their applications effectively.

The skill covers essential topics such as slices, maps, arrays, and various container types. It emphasizes best practices like preallocating slices and maps to avoid performance overhead from repeated growth and rehashing. Additionally, it explains the importance of using the right data structure for specific use cases, such as choosing container/heap for priority queues and strings.Builder for efficient string concatenation. The skill also provides insights into generic collections introduced in Go 1.18, guiding users on how to implement type-safe containers with the tightest constraints.

For those interested in the internals of slices and maps, the skill offers detailed explanations of their structures, growth mechanics, and performance characteristics. This knowledge is crucial for optimizing memory usage and ensuring efficient data handling in Go applications. The skill also highlights the use of pointer types, including unsafe.Pointer and weak.Pointer, to manage memory effectively in low-level scenarios.

Overall, the Golang Data Structures skill is an invaluable resource for Go developers aiming to enhance their understanding of data structures and improve the performance of their applications. It equips users with the knowledge needed to select and implement the most appropriate data structures for their specific needs, ultimately leading to more efficient and maintainable code.

When to use it

Use this skill when designing Go applications that require careful consideration of data structure performance and memory usage.

When not to use it

This skill may not be suitable for beginners who are unfamiliar with Go's data structures or for projects that do not require optimization of data handling.

What you can build with it

Optimizing Application Performance

When developing a Go application that requires efficient data handling, this skill helps in selecting the right data structures to enhance performance.

Implementing Generic Containers

For projects utilizing Go 1.18's generics, this skill provides insights on creating type-safe generic collections tailored to specific needs.

Understanding Data Structure Internals

If you're looking to deepen your knowledge of how Go's data structures work under the hood, this skill offers detailed explanations and best practices.

How to install Golang Data Structures

View source

1. Install with the skills CLI

npx skills add samber/cc-skills-golang/golang-data-structures --agent claude-code

2. Or install it manually

Download the skill folder and drop it into ~/.claude/skills/ for all projects, or .claude/skills/ to scope it to one repo. Restart Claude Code so it picks up the new skill.

Anthropic's agentic coding CLI, and the reference implementation of Agent Skills. Drop a skill folder into ~/.claude/skills and Claude Code loads it automatically whenever a task matches the skill's description. Claude Code docs

Inside SKILL.md

Written by samber

Persona: You are a Go engineer who understands data structure internals. You choose the right structure for the job — not the most familiar one — by reasoning about memory layout, allocation cost, and access patterns.

Go Data Structures

Built-in and standard library data structures: internals, correct usage, and selection guidance. For safety pitfalls (nil maps, append aliasing, defensive copies) see samber/cc-skills-golang@golang-safety skill. For channels and sync primitives see samber/cc-skills-golang@golang-concurrency skill. For string/byte/rune choice see samber/cc-skills-golang@golang-design-patterns skill.

Best Practices Summary

  1. Preallocate slices and maps with make(T, 0, n) / make(map[K]V, n) when size is known or estimable — avoids repeated growth copies and rehashing
  2. Arrays SHOULD be preferred over slices only for fixed, compile-time-known sizes (hash digests, IPv4 addresses, matrix dimensions)
  3. NEVER rely on slice capacity growth timing — the growth algorithm changed between Go versions and may change again; your code should not depend on when a new backing array is allocated
  4. Use container/heap for priority queues, container/list only when frequent middle insertions are needed, container/ring for fixed-size circular buffers
  5. strings.Builder MUST be preferred for building strings; bytes.Buffer MUST be preferred for bidirectional I/O (implements both io.Reader and io.Writer)
  6. Generic data structures SHOULD use the tightest constraint possible — comparable for keys, custom interfaces for ordering
  7. unsafe.Pointer MUST only follow the 6 valid conversion patterns from the Go spec — NEVER store in a uintptr variable across statements
  8. weak.Pointer[T] (Go 1.24+) SHOULD be used for caches and canonicalization maps to allow GC to reclaim entries

Slice Internals

A slice is a 3-word header: pointer, length, capacity. Multiple slices can share a backing array (→ see samber/cc-skills-golang@golang-safety for aliasing traps and the header diagram).

Capacity Growth

  • < 256 elements: capacity doubles
  • = 256 elements: grows by ~25% (newcap += (newcap + 3*256) / 4)

  • Each growth copies the entire backing array — O(n)

Preallocation

// Exact size known
users := make([]User, 0, len(ids))

// Approximate size known
results := make([]Result, 0, estimatedCount)

// Pre-grow before bulk append (Go 1.21+)
s = slices.Grow(s, additionalNeeded)

slices Package (Go 1.21+)

Key functions: Sort/SortFunc, BinarySearch, Contains, Compact, Grow. For Clone, Equal, DeleteFunc → see samber/cc-skills-golang@golang-safety skill.

Slice Internals Deep Dive — Full slices package reference, growth mechanics, len vs cap, header copying, backing array aliasing.

Map Internals

Maps are hash tables with 8-entry buckets and overflow chains. They are reference types — assigning a map copies the pointer, not the data.

Preallocation

m := make(map[string]*User, len(users)) // avoids rehashing during population

maps Package Quick Reference (Go 1.21+)

FunctionPurpose
Collect (1.23+)Build map from iterator
Insert (1.23+)Insert entries from iterator
All (1.23+)Iterator over all entries
Keys, ValuesIterators over keys/values

For Clone, Equal, sorted iteration → see samber/cc-skills-golang@golang-safety skill.

Map Internals Deep Dive — How Go maps store and hash data, bucket overflow chains, why maps never shrink (and what to do about it), comparing map performance to alternatives.

Arrays

Fixed-size, value types. Copied entirely on assignment. Use for compile-time-known sizes:

type Digest [32]byte           // fixed-size, value type
var grid [3][3]int             // multi-dimensional
cache := map[[2]int]Result{}   // arrays are comparable — usable as map keys

Prefer slices for everything else — arrays cannot grow and pass by value (expensive for large sizes).

container/ Standard Library

PackageData StructureBest For
container/listDoubly-linked listLRU caches, frequent middle insertion/removal
container/heapMin-heap (priority queue)Top-K, scheduling, Dijkstra
container/ringCircular bufferRolling windows, round-robin
bufioBuffered reader/writer/scannerEfficient I/O with small reads/writes

Container types use any (no type safety) — consider generic wrappers. Container Patterns, bufio, and Examples — When to use each container type, generic wrappers to add type safety, and bufio patterns for efficient I/O.

strings.Builder vs bytes.Buffer

Use strings.Builder for pure string concatenation (avoids copy on String()), bytes.Buffer when you need io.Reader or byte manipulation. Both support Grow(n). Details and comparison

Generic Collections (Go 1.18+)

Use the tightest constraint possible. comparable for map keys, cmp.Ordered for sorting, custom interfaces for domain-specific ordering.

type Set[T comparable] map[T]struct{}

func (s Set[T]) Add(v T)          { s[v] = struct{}{} }
func (s Set[T]) Contains(v T) bool { _, ok := s[v]; return ok }

Writing Generic Data Structures — Using Go 1.18+ generics for type-safe containers, understanding constraint satisfaction, and building domain-specific generic types.

Pointer Types

TypeUse CaseZero Value
*TNormal indirection, mutation, optional valuesnil
unsafe.PointerFFI, low-level memory layout (6 spec patterns only)nil
weak.Pointer[T] (1.24+)Caches, canonicalization, weak referencesN/A

Pointer Types Deep Dive — Normal pointers, unsafe.Pointer (the 6 valid spec patterns), and weak.Pointer[T] for GC-safe caches that don't prevent cleanup.

Copy Semantics Quick Reference

TypeCopy BehaviorIndependence
int, float, bool, stringValue (deep copy)Fully independent
array, structValue (deep copy)Fully independent
sliceHeader copied, backing array sharedUse slices.Clone
mapReference copiedUse maps.Clone
channelReference copiedSame channel
*T (pointer)Address copiedSame underlying value
interfaceValue copied (type + value pair)Depends on held type

Third-Party Libraries

For advanced data structures (trees, sets, queues, stacks) beyond the standard library:

  • emirpasic/gods — comprehensive collection library (trees, sets, lists, stacks, maps, queues)
  • deckarep/golang-set — thread-safe and non-thread-safe set implementations
  • gammazero/deque — fast double-ended queue

When using third-party libraries, refer to their official documentation and code examples for current API signatures. For Go package docs, symbols, versions, importers, and known vulnerabilities, → See samber/cc-skills-golang@golang-pkg-go-dev skill (godig) — prefer it over Context7 for Go package facts. To navigate this library's usage in your own code (definitions, call sites, diagnostics), → See samber/cc-skills-golang@golang-gopls skill (gopls). Context7 remains a fallback for docs not indexed on pkg.go.dev.

Cross-References

  • → See samber/cc-skills-golang@golang-performance skill for struct field alignment, memory layout optimization, and cache locality
  • → See samber/cc-skills-golang@golang-safety skill for nil map/slice pitfalls, append aliasing, defensive copying, slices.Clone/Equal
  • → See samber/cc-skills-golang@golang-concurrency skill for channels, sync.Map, sync.Pool, and all sync primitives
  • → See samber/cc-skills-golang@golang-design-patterns skill for string vs []byte vs []rune, iterators, streaming
  • → See samber/cc-skills-golang@golang-structs-interfaces skill for struct composition, embedding, and generics vs any
  • → See samber/cc-skills-golang@golang-code-style skill for slice/map initialization style

Common Mistakes

MistakeFix
Growing a slice in a loop without preallocationEach growth copies the entire backing array — O(n) per growth. Use make([]T, 0, n) or slices.Grow
Using container/list when a slice would sufficeLinked lists have poor cache locality (each node is a separate heap allocation). Benchmark first
bytes.Buffer for pure string buildingBuffer's String() copies the underlying bytes. strings.Builder avoids this copy
unsafe.Pointer stored as uintptr across statementsGC can move the object between statements — the uintptr becomes a dangling reference
Large struct values in maps (copying overhead)Map access copies the entire value. Use map[K]*V for large value types to avoid the copy

References

Frequently asked questions about Golang Data Structures

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