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A path holding a tab or newline split a row of the report or trees output. The path columns of both now write a backslash, tab, newline and carriage return as \\, \t, \n and \r; every other byte is written unchanged. Grouping and sorting still use the stored path. Warnings on stderr are escaped the same way in warnf, so each stays one line. In trees, the root directory's node now has the path "/" instead of an empty string, and its children's paths start with a single slash. README states the rule under "Report output format". Model: opus-5-5
265 lines
6.7 KiB
Go
265 lines
6.7 KiB
Go
package main
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import (
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"bytes"
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"slices"
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"testing"
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)
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// Signature hashes shared by the smoke-test records.
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const (
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f1Head = "f1h"
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f1Tail = "f1t"
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f1Content = "f1c"
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f2Head = "f2h"
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f2Tail = "f2t"
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f2Content = "f2c"
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)
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// smokeTreeRecs mirrors the README smoke-test tree layout: /d/t1 and
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// /d/t2 are identical, /d/t3 differs from them only by one filename.
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func smokeTreeRecs() []scanRec {
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return []scanRec{
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{size: 3000, head: f1Head, tail: f1Tail, content: f1Content, path: "/d/t1/f1"},
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{size: 100, head: f2Head, tail: f2Tail, content: f2Content, path: "/d/t1/sub/f2"},
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{size: 3000, head: f1Head, tail: f1Tail, content: f1Content, path: "/d/t2/f1"},
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{size: 100, head: f2Head, tail: f2Tail, content: f2Content, path: "/d/t2/sub/f2"},
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{size: 3000, head: f1Head, tail: f1Tail, content: f1Content, path: "/d/t3/f1"},
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{size: 100, head: f2Head, tail: f2Tail, content: f2Content,
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path: "/d/t3/sub/f2renamed"},
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}
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}
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// nodeByPath finds the directory node with the given path.
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func nodeByPath(t *testing.T, dirs []*treeNode, path string) *treeNode {
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t.Helper()
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for _, d := range dirs {
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if d.path == path {
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return d
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}
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}
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t.Fatalf("no directory node with path %q", path)
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return nil
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}
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// groupPaths flattens tree groups into their member path lists.
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func groupPaths(groups [][]*treeNode) [][]string {
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out := make([][]string, 0, len(groups))
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for _, g := range groups {
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paths := make([]string, 0, len(g))
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for _, n := range g {
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paths = append(paths, n.path)
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}
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out = append(out, paths)
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}
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return out
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}
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func TestBuildHierarchyCounts(t *testing.T) {
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t.Parallel()
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super, dirs := buildHierarchy(smokeTreeRecs())
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super.compute()
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d := nodeByPath(t, dirs, "/d")
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if d.fileCount != 6 || d.totalSize != 9300 {
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t.Errorf("/d: fileCount %d size %d, want 6 9300",
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d.fileCount, d.totalSize)
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}
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t1 := nodeByPath(t, dirs, "/d/t1")
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if t1.fileCount != 2 || t1.totalSize != 3100 {
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t.Errorf("/d/t1: fileCount %d size %d, want 2 3100",
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t1.fileCount, t1.totalSize)
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}
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sub := nodeByPath(t, dirs, "/d/t1/sub")
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if sub.fileCount != 1 || sub.totalSize != 100 {
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t.Errorf("/d/t1/sub: fileCount %d size %d, want 1 100",
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sub.fileCount, sub.totalSize)
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}
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}
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func TestBuildHierarchyRootPath(t *testing.T) {
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t.Parallel()
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// The root directory's path is "/", never empty, and its
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// children's paths start with a single slash.
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_, dirs := buildHierarchy([]scanRec{{path: "/f"}, {path: "/srv/g"}})
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got := make([]string, 0, len(dirs))
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for _, d := range dirs {
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got = append(got, d.path)
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}
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slices.Sort(got)
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want := []string{"/", "/srv"}
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if !slices.Equal(got, want) {
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t.Fatalf("directory paths = %q, want %q", got, want)
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}
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}
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func TestRunTreesEscapesPaths(t *testing.T) {
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t.Setenv(databaseEnv, seedDatabase(t, awkwardPairRecs()))
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var stderr bytes.Buffer
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stdout := captureStdout(t)
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code := run([]string{cmdTrees}, &stderr)
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if code != exitOK {
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t.Fatalf("run(trees) = %d, want %d; stderr: %s",
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code, exitOK, stderr.String())
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}
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want := "first\tdupe\tfiles\tsize\n" +
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`/d/\tone\ntwo\rthree\\four` + "\t/d/A\t1\t5\n"
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if got := stdout(); got != want {
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t.Errorf("stdout = %q, want %q", got, want)
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}
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}
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func TestTreeDigests(t *testing.T) {
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t.Parallel()
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super, dirs := buildHierarchy(smokeTreeRecs())
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super.compute()
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t1 := nodeByPath(t, dirs, "/d/t1")
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t2 := nodeByPath(t, dirs, "/d/t2")
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t3 := nodeByPath(t, dirs, "/d/t3")
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if t1.digest != t2.digest {
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t.Error("identical trees /d/t1 and /d/t2 have different digests")
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}
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// t3 differs only in a filename; names are part of the digest.
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if t1.digest == t3.digest {
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t.Error("/d/t3 digest equals /d/t1 despite a renamed file")
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}
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sub1 := nodeByPath(t, dirs, "/d/t1/sub")
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sub3 := nodeByPath(t, dirs, "/d/t3/sub")
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if sub1.digest == sub3.digest {
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t.Error("subdirs with differently-named files share a digest")
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}
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}
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func TestTreeDigestContentSensitivity(t *testing.T) {
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t.Parallel()
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const sharedTail = "same"
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recs := []scanRec{
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{size: 10, head: sharedTail, tail: sharedTail, content: "c", path: "/r/a/f"},
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{size: 10, head: "DIFF", tail: sharedTail, content: "c", path: "/r/b/f"},
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}
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super, dirs := buildHierarchy(recs)
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super.compute()
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a := nodeByPath(t, dirs, "/r/a")
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b := nodeByPath(t, dirs, "/r/b")
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if a.digest == b.digest {
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t.Error("trees with different file content share a digest")
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}
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}
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func TestCollectTreeGroupsMaximal(t *testing.T) {
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t.Parallel()
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super, dirs := buildHierarchy(smokeTreeRecs())
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super.compute()
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groups := collectTreeGroups(dirs, super)
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want := [][]string{{"/d/t1", "/d/t2"}}
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if got := groupPaths(groups); !slices.EqualFunc(got, want,
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slices.Equal) {
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t.Fatalf("groups = %v, want %v", got, want)
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}
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// The /d/t1/sub vs /d/t2/sub group must be suppressed as implied
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// by its parents' group; the winning group reports one copy's
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// recursive totals.
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if groups[0][0].fileCount != 2 || groups[0][0].totalSize != 3100 {
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t.Errorf("group totals: %d files %d bytes, want 2 3100",
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groups[0][0].fileCount, groups[0][0].totalSize)
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}
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}
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func TestCollectTreeGroupsDeterministic(t *testing.T) {
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t.Parallel()
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recs := smokeTreeRecs()
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super, dirs := buildHierarchy(recs)
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super.compute()
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forward := groupPaths(collectTreeGroups(dirs, super))
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reversed := slices.Clone(recs)
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slices.Reverse(reversed)
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superR, dirsR := buildHierarchy(reversed)
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superR.compute()
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backward := groupPaths(collectTreeGroups(dirsR, superR))
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if !slices.EqualFunc(forward, backward, slices.Equal) {
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t.Fatalf("output depends on record order: %v vs %v",
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forward, backward)
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}
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}
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func TestCollectTreeGroupsSiblings(t *testing.T) {
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t.Parallel()
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// Identical sibling dirs share a parent, so their group cannot be
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// implied by a parent group and must be reported.
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recs := []scanRec{
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{size: 10, head: "h", tail: "t", content: "c", path: "/p/x1/f"},
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{size: 10, head: "h", tail: "t", content: "c", path: "/p/x2/f"},
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}
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super, dirs := buildHierarchy(recs)
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super.compute()
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got := groupPaths(collectTreeGroups(dirs, super))
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want := [][]string{{"/p/x1", "/p/x2"}}
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if !slices.EqualFunc(got, want, slices.Equal) {
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t.Fatalf("groups = %v, want %v", got, want)
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}
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}
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func TestCollectTreeGroupsDifferingParents(t *testing.T) {
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t.Parallel()
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// /p/a and /q/b contain identical x subtrees, but /p/a has an
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// extra file, so the parents' digests differ and the x group must
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// be reported.
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recs := []scanRec{
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{size: 10, head: "h", tail: "t", content: "c", path: "/p/a/x/f"},
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{size: 99, head: "e", tail: "e", content: "e", path: "/p/a/extra"},
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{size: 10, head: "h", tail: "t", content: "c", path: "/q/b/x/f"},
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}
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super, dirs := buildHierarchy(recs)
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super.compute()
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got := groupPaths(collectTreeGroups(dirs, super))
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want := [][]string{{"/p/a/x", "/q/b/x"}}
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if !slices.EqualFunc(got, want, slices.Equal) {
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t.Fatalf("groups = %v, want %v", got, want)
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}
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}
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