markov.gno
4.75 Kb · 140 lines
1// Package markov is a deterministic Markov-chain text generator — a port of
2// Go's canonical example "Generating arbitrary text: a Markov chain algorithm"
3// (https://go.dev/doc/codewalk/markov/) with math/rand replaced by a
4// caller-supplied seed.
5//
6// It is a pure library: it imports no chain APIs and reads no ambient state.
7// A [Chain] maps every PrefixLen-word prefix to the list of words observed to
8// follow it (duplicates kept, so frequency biases the walk), storing that map
9// in a persistent avl.Tree. Build folds text into the chain; Generate walks it
10// from the start prefix, picking one suffix per step from a small LCG seeded by
11// the uint64 the caller passes — so generation is deterministic and replayable,
12// and the caller decides where entropy comes from (on-chain, the block height).
13//
14// A realm wires it up by holding a *Chain in a package-level var, calling Build
15// to grow the corpus and Generate with a height-derived seed. For a complete,
16// live example see the demo realm
17// [r/moul/x/daily/markovdemo](/r/moul/x/daily/markovdemo/v0).
18package markov
19
20import (
21 "strings"
22
23 "gno.land/p/nt/avl/v0"
24)
25
26// PrefixLen is the number of words in a prefix. Two is the classic choice from
27// the Go codewalk: long enough to sound plausible, short enough to keep the
28// chain well-connected.
29const PrefixLen = 2
30
31// Prefix is a sliding window of the last PrefixLen words seen. It mirrors the
32// Prefix type in the original program.
33type Prefix []string
34
35// key joins the prefix into the string used as the chain's map key. Two empty
36// strings (the initial prefix) join to a single space " ", which is exactly
37// the start-of-text key both Build and Generate begin from.
38func (p Prefix) key() string { return strings.Join(p, " ") }
39
40// shift drops the oldest word and appends word, advancing the window by one.
41func (p Prefix) shift(word string) {
42 copy(p, p[1:])
43 p[len(p)-1] = word
44}
45
46// suffixList is the value stored per prefix: every word observed to follow it,
47// in order (duplicates kept so frequency biases the random walk, just like the
48// original []string in the chain map).
49type suffixList struct {
50 words []string
51}
52
53// Chain is a Markov chain over a persistent avl.Tree. table maps prefix key ->
54// *suffixList; prefix is the rolling build window so successive Build calls
55// extend one continuous corpus rather than restarting; words is the running
56// word count.
57type Chain struct {
58 table avl.Tree
59 prefix Prefix
60 words int
61}
62
63// New returns an empty Chain ready to Build into.
64func New() *Chain {
65 return &Chain{prefix: make(Prefix, PrefixLen)}
66}
67
68// Build tokenizes text on whitespace and folds each word into the chain,
69// recording it as a suffix of the current prefix and then shifting. It returns
70// the number of words added. This is the analogue of Chain.Build from the
71// codewalk.
72func (c *Chain) Build(text string) int {
73 added := 0
74 for _, w := range strings.Fields(text) {
75 k := c.prefix.key()
76 var sl *suffixList
77 if c.table.Has(k) {
78 sl = c.table.Get(k).(*suffixList)
79 } else {
80 sl = &suffixList{}
81 }
82 sl.words = append(sl.words, w)
83 c.table.Set(k, sl)
84 c.prefix.shift(w)
85 c.words++
86 added++
87 }
88 return added
89}
90
91// Generate walks the chain from the start prefix, picking one suffix per step
92// via an LCG seeded by seed, and returns up to n words. It stops early if it
93// reaches a prefix with no recorded suffixes (a dead end). Pure: the same
94// (n, seed) always yields the same words for a given chain.
95func (c *Chain) Generate(n int, seed uint64) []string {
96 if n <= 0 {
97 return nil
98 }
99 p := make(Prefix, PrefixLen)
100 rng := seed
101 out := make([]string, 0, n)
102 for i := 0; i < n; i++ {
103 k := p.key()
104 if !c.table.Has(k) {
105 break
106 }
107 choices := c.table.Get(k).(*suffixList).words
108 if len(choices) == 0 {
109 break
110 }
111 rng = nextRand(rng)
112 // use high bits of the LCG state — its low bits have short periods
113 idx := int((rng >> 33) % uint64(len(choices)))
114 next := choices[idx]
115 out = append(out, next)
116 p.shift(next)
117 }
118 return out
119}
120
121// Stats returns (totalWords, prefixCount) for the current chain.
122func (c *Chain) Stats() (int, int) {
123 return c.words, c.table.Size()
124}
125
126// Iterate calls fn for each prefix in ascending key order, passing the prefix
127// key and the list of words recorded to follow it. Returning true from fn stops
128// the iteration early; Iterate reports whether it was stopped that way.
129func (c *Chain) Iterate(fn func(prefix string, suffixes []string) bool) bool {
130 return c.table.Iterate("", "", func(k string, v interface{}) bool {
131 return fn(k, v.(*suffixList).words)
132 })
133}
134
135// nextRand is a 64-bit linear congruential generator (the PCG/Knuth
136// multiplier + increment). Deterministic and dependency-free — all the
137// entropy comes from the caller's seed.
138func nextRand(s uint64) uint64 {
139 return s*6364136223846793005 + 1442695040888963407
140}