Files
2026-08-14 23:41:57 +08:00

701 lines
27 KiB
Go

// Package session implements local JSONL session persistence and resume
// (US-024, #43). A session is stored as a single append-only JSONL file: the
// first line is a SessionHeader (schema version + metadata), and every
// subsequent line is one persisted message (user / assistant / toolResult),
// using the same "role"-discriminated encoding as agentcore.MessageList.
//
// The format is internally self-consistent and deliberately NOT wire-compatible
// with pi's session files (spec #16, session-format decision #5): pigo owns the schema
// and versions it via SessionHeader.Version so future migrations have a hook.
//
// A persisted session round-trips into an agentcore.AgentContext via Load, so a
// run can be resumed by feeding the reconstructed context to a fresh run and the
// transcript replays correctly in the REPL.
package session
import (
"bufio"
"crypto/rand"
"encoding/hex"
"encoding/json"
"errors"
"fmt"
"io"
"os"
"path/filepath"
"sort"
"strings"
"time"
"github.com/smallnest/pigo/internal/agentcore"
)
// SchemaVersion is the current session file schema version. It is written into
// every SessionHeader and checked on read; an unknown (higher) version is a
// hard error so a newer file is never silently misread by an older binary.
//
// v2 adds the inline "compaction" message role (US-003): a compaction
// checkpoint persisted as one message line.
//
// v3 gives every persisted entry an id/parentId, forming a tree (US-005, #121)
// — the prerequisite for fork/clone/tree navigation. Each message line is
// wrapped as {"id","parentId","timestamp","message":{…}}. v1/v2 files (bare
// message lines) remain fully readable: readSession migrates them on load by
// synthesizing ids and chaining parentId to the previous entry, so old sessions
// still load and resume.
const SchemaVersion = 3
// sessionScanBufInit / sessionScanBufMax bound the line scanner used to read a
// session file. A single line holds one message, which can be large (a long
// tool result), so the max is raised well past bufio.Scanner's 64KiB default.
const (
sessionScanBufInit = 64 * 1024
sessionScanBufMax = 16 * 1024 * 1024
)
// SessionHeader is the first line of a session file: schema version plus the
// metadata needed to list and resume a session without reading its messages.
type SessionHeader struct {
// Version is the schema version (SchemaVersion at write time).
Version int `json:"version"`
// ID is the session identifier, also the file stem (see FileName).
ID string `json:"id"`
// CreatedAt is when the session file was created (RFC 3339, UTC).
CreatedAt time.Time `json:"createdAt"`
// UpdatedAt is when the session was last appended to.
UpdatedAt time.Time `json:"updatedAt"`
// Model / Provider record what the session ran against, for display and to
// re-establish the run configuration on resume. Optional.
Model string `json:"model,omitempty"`
Provider string `json:"provider,omitempty"`
// SystemPrompt is the system prompt the session ran under. Persisted so the
// resumed context is faithful. Optional.
SystemPrompt string `json:"systemPrompt,omitempty"`
// ParentSession is the id of the session this one was forked/cloned from
// (US-006, #122). Empty for a session created from scratch. It records
// lineage only; a fork is otherwise a fully independent session file.
ParentSession string `json:"parentSession,omitempty"`
// Cwd is the absolute working directory the session ran in, recorded so a
// session can be attributed to a project (its stable project id derives from
// this path). Used by /dream distillation to select the current project's
// recent sessions (SPEC §5.3 / §11.3). Optional and additive: older schemas
// omit it and still load; a session with an empty Cwd is treated as
// unattributed and never matches a project-scoped distill.
Cwd string `json:"cwd,omitempty"`
// ContextFrom is the id of the session this one inherited its collapsed
// context from (#480, "infinite context"). Empty when the session started
// with no inherited checkpoint. Optional and additive: older schemas (v1/v2/v3)
// omit it and still load.
ContextFrom string `json:"contextFrom,omitempty"`
// ContextWatermark is the message index up to which context was collapsed
// into an inherited checkpoint (#480). Messages before this index live in the
// checkpoint summary rather than the replayed transcript. Optional/additive.
ContextWatermark int `json:"contextWatermark,omitempty"`
}
// Entry wraps one persisted message with the tree metadata introduced in schema
// v3 (US-005, #121): a stable ID plus the ParentID it descends from. A linear
// session is the degenerate tree where every entry's ParentID is the previous
// entry's ID; the first entry has an empty ParentID (a root). The wrapper is
// what lets a session fork/clone later — PathToLeaf walks the ParentID chain to
// reconstruct the linear conversation feeding any leaf.
type Entry struct {
// ID is this entry's stable identifier (see newEntryID). Unique within a file.
ID string
// ParentID is the ID this entry descends from; empty for a root entry.
ParentID string
// Timestamp is when the entry was persisted (RFC 3339, UTC).
Timestamp time.Time
// Message is the wrapped agent message (user / assistant / toolResult / …).
Message agentcore.Message
}
// entryWire is the on-disk JSON shape of an Entry: the message is carried as a
// raw object so it round-trips through MessageList's role-discriminated decoder
// (agentcore.Message is a sealed interface with no default unmarshaler).
type entryWire struct {
ID string `json:"id"`
ParentID string `json:"parentId,omitempty"`
Timestamp time.Time `json:"timestamp"`
Message json.RawMessage `json:"message"`
}
// MarshalJSON emits the entry as {"id","parentId","timestamp","message":{…}}.
func (e Entry) MarshalJSON() ([]byte, error) {
mb, err := json.Marshal(e.Message)
if err != nil {
return nil, fmt.Errorf("session: encode entry message: %w", err)
}
return json.Marshal(entryWire{ID: e.ID, ParentID: e.ParentID, Timestamp: e.Timestamp, Message: mb})
}
// UnmarshalJSON decodes an entry line, decoding the inner message with the same
// discriminated logic as agentcore.MessageList (by wrapping it in a one-element
// array).
func (e *Entry) UnmarshalJSON(data []byte) error {
var w entryWire
if err := json.Unmarshal(data, &w); err != nil {
return err
}
e.ID = w.ID
e.ParentID = w.ParentID
e.Timestamp = w.Timestamp
if len(w.Message) == 0 {
return fmt.Errorf("session: entry missing message")
}
var one agentcore.MessageList
if err := json.Unmarshal([]byte("["+string(w.Message)+"]"), &one); err != nil {
return fmt.Errorf("session: decode entry message: %w", err)
}
if len(one) != 1 {
return fmt.Errorf("session: entry decoded to %d messages, want 1", len(one))
}
e.Message = one[0]
return nil
}
// newEntryID returns a fresh 8-hex-character entry id (4 random bytes). This
// mirrors pi's generateEntryId (uuidv7().slice(-8)) in width; pigo does not need
// the time-ordering of uuidv7 because entry order is already given by the
// ParentID chain, so a simple random id suffices and collisions within a single
// file are astronomically unlikely.
func newEntryID() string {
var b [4]byte
if _, err := rand.Read(b[:]); err != nil {
// crypto/rand.Read never fails in practice; fall back to a timestamp-derived
// id so a session write never aborts on this path.
return fmt.Sprintf("%08x", time.Now().UnixNano()&0xffffffff)
}
return hex.EncodeToString(b[:])
}
// PathToLeaf walks the ParentID chain from the entry identified by leafID back
// to its root and returns the entries in root→leaf order — the linear
// conversation that feeds the given leaf (US-005 acceptance criterion c). An
// empty leafID (or an unknown one) yields nil. If the chain references a missing
// parent the walk stops at the last resolvable ancestor rather than failing, so
// a partially corrupt file still yields the recoverable prefix.
func PathToLeaf(entries []Entry, leafID string) []Entry {
if leafID == "" {
return nil
}
byID := make(map[string]Entry, len(entries))
for _, e := range entries {
byID[e.ID] = e
}
var rev []Entry
seen := make(map[string]bool, len(entries))
for id := leafID; id != ""; {
e, ok := byID[id]
if !ok || seen[id] {
break // missing parent or a cycle: stop at the last good ancestor
}
seen[id] = true
rev = append(rev, e)
id = e.ParentID
}
// rev is leaf→root; reverse to root→leaf.
for i, j := 0, len(rev)-1; i < j; i, j = i+1, j-1 {
rev[i], rev[j] = rev[j], rev[i]
}
return rev
}
// FileName returns the on-disk file name for a session id (id + ".jsonl").
func FileName(id string) string { return id + ".jsonl" }
// TreeLine pairs one entry with its rendered display line, so a caller can print
// the tree AND map a 1-based selection index back to the entry it refers to (the
// slice order is the render order — a stable pre-order DFS). See RenderTreeLines.
type TreeLine struct {
Entry Entry
Text string
}
// RenderTreeLines renders the entry forest as human-readable lines for a pure
// line REPL — no TUI, no cursor control (US-007, #123). Each entry becomes one
// line with ├─/└─ connectors showing structure; the entry whose id == leafID is
// tagged "← current" so the active branch is obvious. Roots (entries with an
// empty or dangling ParentID) anchor the forest; children are ordered by
// timestamp then id for stable output. The returned slice is in render order, so
// element i corresponds to the i-th printed line (and 1-based selector n → [n-1]).
func RenderTreeLines(entries []Entry, leafID string) []TreeLine {
present := make(map[string]bool, len(entries))
for _, e := range entries {
present[e.ID] = true
}
childrenOf := make(map[string][]Entry, len(entries))
var roots []Entry
for _, e := range entries {
if e.ParentID == "" || !present[e.ParentID] {
roots = append(roots, e)
} else {
childrenOf[e.ParentID] = append(childrenOf[e.ParentID], e)
}
}
sortEntries(roots)
for k := range childrenOf {
sortEntries(childrenOf[k])
}
var lines []TreeLine
var walk func(e Entry, prefix string, isRoot, isLast bool)
walk = func(e Entry, prefix string, isRoot, isLast bool) {
connector := ""
if !isRoot {
if isLast {
connector = "└─ "
} else {
connector = "├─ "
}
}
marker := ""
if e.ID == leafID {
marker = " ← current"
}
lines = append(lines, TreeLine{Entry: e, Text: prefix + connector + entrySummary(e) + marker})
childPrefix := prefix
if !isRoot {
if isLast {
childPrefix += " "
} else {
childPrefix += "│ "
}
}
kids := childrenOf[e.ID]
for i, k := range kids {
walk(k, childPrefix, false, i == len(kids)-1)
}
}
for i, r := range roots {
walk(r, "", true, i == len(roots)-1)
}
return lines
}
// sortEntries orders entries by timestamp, breaking ties by id so the render is
// deterministic even when entries share a timestamp (common within one turn).
func sortEntries(es []Entry) {
sort.SliceStable(es, func(i, j int) bool {
if !es[i].Timestamp.Equal(es[j].Timestamp) {
return es[i].Timestamp.Before(es[j].Timestamp)
}
return es[i].ID < es[j].ID
})
}
// entrySummary renders a one-line, role-tagged preview of an entry's message for
// the tree display (a full message would wrap and ruin the ASCII structure).
func entrySummary(e Entry) string {
switch m := e.Message.(type) {
case agentcore.UserMessage:
return "user: " + treeOneLine(agentcore.ContentToText(m.Content))
case agentcore.AssistantMessage:
text := treeOneLine(agentcore.ContentToText(m.Content))
calls := m.ToolCalls()
if len(calls) > 0 {
names := make([]string, len(calls))
for i, c := range calls {
names[i] = c.Name
}
tools := "[→ " + strings.Join(names, ", ") + "]"
if text != "" {
return "assistant: " + text + " " + tools
}
return "assistant " + tools
}
return "assistant: " + text
case agentcore.ToolResultMessage:
return "tool result: " + treeOneLine(agentcore.ContentToText(m.Content))
case agentcore.CompactionMessage:
return "compaction: " + treeOneLine(m.Summary)
default:
return e.Message.Role()
}
}
// treeOneLine collapses a possibly multi-line message into a single trimmed,
// truncated line so tree rows stay on one physical line.
func treeOneLine(s string) string {
s = strings.TrimSpace(s)
if i := strings.IndexByte(s, '\n'); i >= 0 {
s = s[:i] + " …"
}
const max = 72
if len(s) > max {
s = s[:max] + " …"
}
return s
}
// NewID returns a time-ordered session id: a UTC timestamp stem that sorts
// lexicographically by creation time (e.g. "20260710-142530-uniq"). The suffix
// disambiguates sessions created within the same second.
func NewID(now time.Time) string {
return fmt.Sprintf("%s-%06d", now.UTC().Format("20060102-150405"), now.UTC().Nanosecond()/1000%1_000_000)
}
// Store persists sessions as JSONL files under a directory (typically
// ~/.pigo/sessions). The zero value is unusable; construct with NewStore.
type Store struct {
dir string
}
// NewStore returns a Store rooted at dir, creating the directory if needed.
func NewStore(dir string) (*Store, error) {
if dir == "" {
return nil, fmt.Errorf("session: store dir must not be empty")
}
if err := os.MkdirAll(dir, 0o755); err != nil {
return nil, fmt.Errorf("session: create store dir: %w", err)
}
return &Store{dir: dir}, nil
}
// Dir returns the store's root directory.
func (s *Store) Dir() string { return s.dir }
// path returns the on-disk path for a session id.
func (s *Store) path(id string) string { return filepath.Join(s.dir, FileName(id)) }
// Save writes header and messages to a fresh session file, overwriting any
// existing file for the same id. The header's Version is forced to
// SchemaVersion; CreatedAt/UpdatedAt are left as the caller set them. Save is
// the whole-session write; Append adds messages to an existing file.
func (s *Store) Save(header SessionHeader, messages agentcore.MessageList) error {
header.Version = SchemaVersion
if header.ID == "" {
return fmt.Errorf("session: header ID must not be empty")
}
return s.atomicWrite(header.ID, func(w io.Writer) error {
return writeSession(w, header, messages)
})
}
// SaveEntries writes header plus the given entries verbatim — preserving each
// entry's id/parentId — to a fresh session file, overwriting any existing file
// for header.ID. Unlike Save (which generates fresh ids and a linear chain from
// a MessageList), SaveEntries persists an already-known tree, which is what Fork
// needs: it copies a path of existing entries into a new session file without
// disturbing their identifiers. The header's Version is forced to SchemaVersion.
func (s *Store) SaveEntries(header SessionHeader, entries []Entry) error {
header.Version = SchemaVersion
if header.ID == "" {
return fmt.Errorf("session: header ID must not be empty")
}
return s.atomicWrite(header.ID, func(w io.Writer) error {
return writeSessionEntries(w, header, entries)
})
}
// atomicWrite writes a session file for id by streaming through write into a
// temp file and atomically renaming it into place, so a concurrent reader never
// sees a half-written file. It is the shared write plumbing behind Save and
// SaveEntries.
func (s *Store) atomicWrite(id string, write func(w io.Writer) error) error {
tmp := s.path(id) + ".tmp"
f, err := os.Create(tmp)
if err != nil {
return fmt.Errorf("session: create %s: %w", tmp, err)
}
w := bufio.NewWriter(f)
if err := write(w); err != nil {
f.Close()
os.Remove(tmp)
return err
}
if err := w.Flush(); err != nil {
f.Close()
os.Remove(tmp)
return fmt.Errorf("session: flush %s: %w", tmp, err)
}
if err := f.Close(); err != nil {
os.Remove(tmp)
return fmt.Errorf("session: close %s: %w", tmp, err)
}
// Atomic replace so a reader never sees a half-written file.
if err := os.Rename(tmp, s.path(id)); err != nil {
os.Remove(tmp)
return fmt.Errorf("session: commit %s: %w", id, err)
}
return nil
}
// writeSession emits the header line followed by one entry line per message.
// Each message is wrapped in an Entry: ids are generated fresh and ParentID is
// chained to the previous entry so a linear session is persisted as a linear
// tree (schema v3). The chain is what PathToLeaf later walks.
func writeSession(w io.Writer, header SessionHeader, messages agentcore.MessageList) error {
enc := json.NewEncoder(w)
if err := enc.Encode(header); err != nil {
return fmt.Errorf("session: encode header: %w", err)
}
now := time.Now().UTC()
parentID := ""
for i, m := range messages {
e := Entry{ID: newEntryID(), ParentID: parentID, Timestamp: now, Message: m}
if err := enc.Encode(e); err != nil {
return fmt.Errorf("session: encode message[%d]: %w", i, err)
}
parentID = e.ID
}
return nil
}
// writeSessionEntries emits the header line followed by the given entries
// verbatim, preserving their ids and parentIds. It is the whole-tree counterpart
// to writeSession (which synthesizes a fresh linear chain from a MessageList).
func writeSessionEntries(w io.Writer, header SessionHeader, entries []Entry) error {
enc := json.NewEncoder(w)
if err := enc.Encode(header); err != nil {
return fmt.Errorf("session: encode header: %w", err)
}
for i, e := range entries {
if err := enc.Encode(e); err != nil {
return fmt.Errorf("session: encode entry[%d]: %w", i, err)
}
}
return nil
}
// Load reads a session file and returns its header and messages. It validates
// the schema version (an unknown version is rejected) and decodes each entry
// line, returning the messages in file order (root→leaf for a linear session).
// Old v1/v2 files (bare message lines) are migrated transparently. Load is the
// linear view; LoadEntries exposes the id/parentId tree metadata.
func (s *Store) Load(id string) (SessionHeader, agentcore.MessageList, error) {
header, entries, err := s.LoadEntries(id)
if err != nil {
return SessionHeader{}, nil, err
}
msgs := make(agentcore.MessageList, len(entries))
for i, e := range entries {
msgs[i] = e.Message
}
return header, msgs, nil
}
// LoadEntries reads a session file and returns its header plus the tree entries
// (id/parentId + message) in file order. v1/v2 files are migrated on load:
// every bare message line is wrapped in an Entry with a synthesized id and its
// ParentID chained to the previous entry, so old sessions load and resume
// exactly as they did before (US-005 acceptance criterion b/d).
func (s *Store) LoadEntries(id string) (SessionHeader, []Entry, error) {
f, err := os.Open(s.path(id))
if err != nil {
return SessionHeader{}, nil, fmt.Errorf("session: open %s: %w", id, err)
}
defer f.Close()
return readSession(f)
}
// readSession decodes a session stream: header line first, then entries. For
// schema v3 each line is an Entry ({id,parentId,timestamp,message}). For older
// v1/v2 files each line is a bare message; readSession migrates them by
// synthesizing ids and chaining parentId to the previous entry.
func readSession(r io.Reader) (SessionHeader, []Entry, error) {
sc := bufio.NewScanner(r)
// Session lines can be large (long tool results); grow the buffer well past
// the default 64KB token cap.
sc.Buffer(make([]byte, 0, sessionScanBufInit), sessionScanBufMax)
if !sc.Scan() {
if err := sc.Err(); err != nil {
return SessionHeader{}, nil, fmt.Errorf("session: read header: %w", err)
}
return SessionHeader{}, nil, fmt.Errorf("session: empty file (no header)")
}
var header SessionHeader
if err := json.Unmarshal(sc.Bytes(), &header); err != nil {
return SessionHeader{}, nil, fmt.Errorf("session: parse header: %w", err)
}
if header.Version == 0 {
return SessionHeader{}, nil, fmt.Errorf("session: header missing version")
}
if header.Version > SchemaVersion {
return SessionHeader{}, nil, fmt.Errorf("session: file schema version %d newer than supported %d", header.Version, SchemaVersion)
}
// v3+ lines are wrapped entries; v1/v2 lines are bare messages that we migrate.
wrapped := header.Version >= 3
var entries []Entry
parentID := ""
for line := 2; sc.Scan(); line++ {
raw := sc.Bytes()
if len(strings.TrimSpace(string(raw))) == 0 {
continue // tolerate blank lines
}
var e Entry
if wrapped {
if err := json.Unmarshal(raw, &e); err != nil {
return SessionHeader{}, nil, fmt.Errorf("session: parse entry line %d: %w", line, err)
}
} else {
// Migrate a bare v1/v2 message line: reuse MessageList's discriminated
// decoding, then synthesize the tree metadata (id + parentId chain).
var one agentcore.MessageList
if err := json.Unmarshal([]byte("["+string(raw)+"]"), &one); err != nil {
return SessionHeader{}, nil, fmt.Errorf("session: parse message line %d: %w", line, err)
}
if len(one) != 1 {
return SessionHeader{}, nil, fmt.Errorf("session: message line %d decoded to %d messages, want 1", line, len(one))
}
e = Entry{ID: newEntryID(), ParentID: parentID, Timestamp: header.UpdatedAt, Message: one[0]}
}
entries = append(entries, e)
parentID = e.ID
}
if err := sc.Err(); err != nil {
return SessionHeader{}, nil, fmt.Errorf("session: scan: %w", err)
}
return header, entries, nil
}
// List returns the headers of all sessions in the store, sorted by UpdatedAt
// descending (most recently used first). Files that fail to parse are skipped
// rather than failing the whole listing, so one corrupt session does not hide
// the rest.
func (s *Store) List() ([]SessionHeader, error) {
entries, err := os.ReadDir(s.dir)
if err != nil {
return nil, fmt.Errorf("session: read store dir: %w", err)
}
var headers []SessionHeader
for _, e := range entries {
if e.IsDir() || !strings.HasSuffix(e.Name(), ".jsonl") {
continue
}
id := strings.TrimSuffix(e.Name(), ".jsonl")
h, err := s.loadHeader(id)
if err != nil {
continue // skip unreadable/corrupt session
}
headers = append(headers, h)
}
sort.Slice(headers, func(i, j int) bool {
return headers[i].UpdatedAt.After(headers[j].UpdatedAt)
})
return headers, nil
}
// loadHeader reads only the header line of a session file (cheap for listing).
func (s *Store) loadHeader(id string) (SessionHeader, error) {
f, err := os.Open(s.path(id))
if err != nil {
return SessionHeader{}, err
}
defer f.Close()
sc := bufio.NewScanner(f)
sc.Buffer(make([]byte, 0, sessionScanBufInit), sessionScanBufMax)
if !sc.Scan() {
return SessionHeader{}, fmt.Errorf("session: empty file")
}
var header SessionHeader
if err := json.Unmarshal(sc.Bytes(), &header); err != nil {
return SessionHeader{}, err
}
if header.Version == 0 {
return SessionHeader{}, fmt.Errorf("session: missing version")
}
return header, nil
}
// Append adds messages to an existing session file and bumps its UpdatedAt to
// updatedAt. It is the incremental-persistence primitive: a driver that wants to
// grow a session turn-by-turn appends only the newly produced messages rather
// than rewriting the whole file itself. If the session does not exist it is an
// error — use Save to create one first.
//
// Because the header lives on the first line and JSONL is otherwise
// append-only, updating UpdatedAt requires rewriting the file; Append does a
// load-modify-save under the hood, which is simple and correct for the session
// sizes pigo produces.
func (s *Store) Append(id string, updatedAt time.Time, messages agentcore.MessageList) error {
header, existing, err := s.Load(id)
if err != nil {
return err
}
header.UpdatedAt = updatedAt
existing = append(existing, messages...)
return s.Save(header, existing)
}
// AppendBranch appends messages as a chain descending from parentLeafID,
// preserving every existing entry — and therefore any other branches — in the
// session file (US-007, #123). It is the tree-aware counterpart to Append (which
// rewrites the file as a single linear chain): where Append flattens, AppendBranch
// grows the on-disk tree, so switching the active leaf to a historical entry and
// continuing produces a real sibling branch rather than truncating history.
//
// Each message becomes a fresh entry (new id, ParentID chained to the previous
// one, first chained to parentLeafID). An empty parentLeafID roots the new chain.
// header (Version forced to SchemaVersion, UpdatedAt as the caller set it) is
// rewritten as line 1. It returns the id of the new leaf — the last appended
// entry — so the caller can track the active branch. If the session file does not
// yet exist it is created (the fresh-session first-turn case).
func (s *Store) AppendBranch(header SessionHeader, parentLeafID string, messages agentcore.MessageList) (string, error) {
if header.ID == "" {
return "", fmt.Errorf("session: header ID must not be empty")
}
var entries []Entry
if _, existing, err := s.LoadEntries(header.ID); err == nil {
entries = existing
} else if !errors.Is(err, os.ErrNotExist) {
return "", err
}
now := time.Now().UTC()
parent := parentLeafID
leaf := parentLeafID
for _, m := range messages {
e := Entry{ID: newEntryID(), ParentID: parent, Timestamp: now, Message: m}
entries = append(entries, e)
parent = e.ID
leaf = e.ID
}
if err := s.SaveEntries(header, entries); err != nil {
return "", err
}
return leaf, nil
}
// Fork creates a new session whose contents are the linear path from the root
// down to leafID in the source session, copied verbatim (each entry keeps its
// id/parentId). The new session gets a fresh id (derived from now) and its
// header carries ParentSession = sourceID so the lineage is recorded. It returns
// the new session's header and its entries.
//
// This is the primitive behind /fork and /clone (US-006, #122):
//
// - /clone passes the current leaf id → the entire current conversation is
// duplicated into an independent session (position "at").
// - /fork passes a historical user message's PARENT id → the new session holds
// everything up to but excluding that message, so the user re-prompts from
// that point on a fresh branch (position "before").
//
// Because the copy lands in a brand-new file, appending to either the source or
// the fork never touches the other — the two branches are fully isolated. An
// empty leafID copies nothing but the header (an empty new session rooted at the
// source), which is the correct behavior for forking before the very first
// message.
func (s *Store) Fork(sourceID, leafID string, now time.Time) (SessionHeader, []Entry, error) {
srcHeader, entries, err := s.LoadEntries(sourceID)
if err != nil {
return SessionHeader{}, nil, err
}
path := PathToLeaf(entries, leafID)
newHeader := SessionHeader{
ID: NewID(now),
CreatedAt: now,
UpdatedAt: now,
Model: srcHeader.Model,
Provider: srcHeader.Provider,
SystemPrompt: srcHeader.SystemPrompt,
ParentSession: sourceID,
}
if err := s.SaveEntries(newHeader, path); err != nil {
return SessionHeader{}, nil, err
}
return newHeader, path, nil
}