043558a54d
Two-integer ladder (formatVersion/minReaderVersion), bare-name-only entries validated on encode and decode, prefix decode that proves exact file size without ever reading a payload.
345 lines
14 KiB
C++
345 lines
14 KiB
C++
// Standalone tests for reasampler::package::bank_package — no REAPER, no test
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// framework. Byte-level suites hand-roll RSBK images with wire::putLE rather
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// than calling encodePackage, so a layout regression in encode cannot hide from
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// decode (the two sides are pinned against each other AND against raw bytes).
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#include "../src/core/package/bank_package.h"
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#include <cstdio>
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#include <cstdint>
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#include <string>
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#include <vector>
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#include "../src/core/version/app_version.h"
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#include "../src/core/wire/bytes.h"
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using namespace reasampler::package;
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using namespace reasampler::model;
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namespace wire = reasampler::wire;
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namespace version = reasampler::version;
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static int g_fail = 0;
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#define CHECK(cond) do { if(!(cond)) { \
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std::printf("FAIL line %d: %s\n", __LINE__, #cond); ++g_fail; } } while(0)
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// --- fixtures ----------------------------------------------------------------
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// Every Sample field populated, every optional PRESENT.
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static Sample fullSample() {
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Sample s;
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s.id = "smp-full";
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s.displayName = "Kick (wet)";
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s.relativePath = "reasampler_bank/kick.wav";
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s.sourceMode = SourceMode::RazorArea;
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s.sourceRange = {1.25, 3.5, 480.0, 1920.0};
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s.trackGuids = {"{AAA}", "{BBB}"};
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s.wetDry = 0.75;
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s.channelCount = 2;
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s.sampleRate = 48000;
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s.lengthSeconds = 2.25;
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s.lengthBeats = 4.5;
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s.captureTempo = 120.5;
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s.captureTimeSigNum = 7;
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s.captureTimeSigDenom = 8;
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s.key = "F#m";
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s.rootNote = 60;
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s.loop = LoopPoints{100, 4800};
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s.levels = {-0.3, -12.7, -14.0};
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s.clipped = true;
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s.tier = Tier::Archive;
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s.contentHash = "W0123456789abcdef";
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s.provenance = Provenance{"smp-parent", "fx-snapshot"};
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s.createdTimestamp = 1754000000;
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return s;
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}
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// Every Sample optional ABSENT (key, rootNote, loop, provenance).
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static Sample bareSample() {
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Sample s;
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s.id = "smp-bare";
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s.displayName = "Snare";
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s.relativePath = "reasampler_bank/snare.wav";
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s.sourceMode = SourceMode::Realtime;
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s.contentHash = "Wfedcba9876543210";
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s.createdTimestamp = 1754000001;
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return s;
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}
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static PackageManifest fixture(std::uint64_t len0, std::uint64_t len1) {
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PackageManifest m;
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m.bankDisplayName = "Drums \"live\"";
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m.exportTimestamp = 1754100000;
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m.entries.push_back({"kick.wav", len0, "1111222233334444", fullSample()});
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m.entries.push_back({"snare.wav", len1, "5555666677778888", bareSample()});
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m.slots.append("smp-full");
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m.slots.append("smp-bare");
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return m;
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}
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// A hand-rolled RSBK image: frozen region + a raw tail (manifest framing or
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// deliberate garbage), independent of encodePackage.
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static std::vector<std::uint8_t> rawHeader(std::uint32_t fv, std::uint32_t mv,
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const std::string& semver) {
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std::vector<std::uint8_t> out;
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out.insert(out.end(), kPackageMagic, kPackageMagic + 4);
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wire::putLE(out, fv);
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wire::putLE(out, mv);
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wire::putLE(out, static_cast<std::uint32_t>(semver.size()));
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out.insert(out.end(), semver.begin(), semver.end());
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return out;
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}
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static void appendManifest(std::vector<std::uint8_t>& out, const std::string& json) {
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wire::putLE(out, static_cast<std::uint32_t>(json.size()));
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out.insert(out.end(), json.begin(), json.end());
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}
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// One-entry manifest JSON with `extra` spliced in as additional root content
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// ("" for none) — for images a current writer would never emit.
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static std::string handManifest(const std::string& name, int length,
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const std::string& extra) {
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return std::string("{") + extra +
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"\"entries\":[{\"name\":\"" + name +
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"\",\"length\":" + std::to_string(length) + ",\"hash\":\"h\","
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"\"index\":{\"version\":1,\"samples\":[{\"id\":\"s1\","
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"\"relativePath\":\"bank/a.wav\"}]}}]}";
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}
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// --- encode / decode round trip ----------------------------------------------
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static void testEncodeDecodeRoundTrip() {
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const PackageManifest m = fixture(96000, 0); // a zero-length payload is legal
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auto enc = encodePackage(m);
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CHECK(enc.has_value());
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// Layout arithmetic: payloads start at the prefix end, in manifest order.
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CHECK(enc->layout.size() == 2);
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CHECK(enc->layout[0].name == "kick.wav");
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CHECK(enc->layout[0].offset == enc->prefix.size());
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CHECK(enc->layout[0].length == 96000);
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CHECK(enc->layout[1].offset == enc->prefix.size() + 96000);
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CHECK(enc->layout[1].length == 0);
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CHECK(enc->totalSize == enc->prefix.size() + 96000);
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// decodePackage(encodePackage(x)) == x — payloads are never read by the
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// codec, so the prefix plus the true total size is the whole input.
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const DecodedPackage dec = decodePackage(enc->prefix, enc->totalSize);
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CHECK(dec.status == PackageReadability::Readable);
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CHECK(dec.manifest == m);
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CHECK(dec.layout == enc->layout);
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CHECK(dec.prefixSize == enc->prefix.size());
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// The header stamps this build's ladder pair and its informational semver.
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CHECK(dec.header.formatVersion == kPackageFormatVersion);
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CHECK(dec.header.minReaderVersion == kPackageMinReaderVersion);
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CHECK(dec.header.writerVersion == version::stampVersion());
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}
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static void testEncodeRefusesWhatManifestRefuses() {
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PackageManifest m = fixture(1, 1);
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m.entries[0].fileName = "../evil.wav";
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CHECK(!encodePackage(m).has_value());
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}
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// --- truncation: every byte offset -------------------------------------------
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static void testTruncationAtEveryByteOffsetIsMalformed() {
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const PackageManifest m = fixture(3, 5);
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auto enc = encodePackage(m);
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CHECK(enc.has_value());
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// The complete on-disk image: prefix + both payloads.
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std::vector<std::uint8_t> file = enc->prefix;
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for (std::uint8_t b : {1, 2, 3, 10, 20, 30, 40, 50}) file.push_back(b);
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CHECK(file.size() == enc->totalSize);
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CHECK(decodePackage(file, file.size()).status == PackageReadability::Readable);
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for (std::size_t cut = 0; cut < file.size(); ++cut) {
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const std::vector<std::uint8_t> truncated(file.begin(), file.begin() + cut);
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const DecodedPackage dec = decodePackage(truncated, truncated.size());
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if (dec.status != PackageReadability::Malformed) {
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std::printf("FAIL: truncation at %zu not Malformed\n", cut);
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++g_fail;
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break;
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}
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// A refused decode must not half-succeed at any cut either.
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CHECK(dec.manifest.entries.empty());
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CHECK(dec.layout.empty());
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}
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// One byte extra (trailing garbage) is as Malformed as one byte missing.
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std::vector<std::uint8_t> extended = file;
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extended.push_back(0);
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CHECK(decodePackage(extended, extended.size()).status == PackageReadability::Malformed);
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// And a file size that disagrees with the same bytes.
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CHECK(decodePackage(file, file.size() + 1).status == PackageReadability::Malformed);
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CHECK(decodePackage(file, file.size() - 1).status == PackageReadability::Malformed);
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}
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// --- version ladder: TooNew refuses whole ------------------------------------
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static void testTooNewProducesNoManifest() {
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// A future structural format: only the frozen region is trustworthy, so the
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// tail is deliberate garbage that would crash a parser that kept reading.
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std::vector<std::uint8_t> bytes = rawHeader(9, 9, "9.9.9");
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for (int i = 0; i < 32; ++i) bytes.push_back(0xFF);
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const DecodedPackage dec = decodePackage(bytes, bytes.size());
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CHECK(dec.status == PackageReadability::TooNew);
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// The refusal message's three facts survive...
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CHECK(dec.header.formatVersion == 9);
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CHECK(dec.header.minReaderVersion == 9);
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CHECK(dec.header.writerVersion == "9.9.9");
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// ...and nothing else is produced: no manifest, no layout, no half-success.
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CHECK(dec.manifest.entries.empty());
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CHECK(dec.manifest == PackageManifest{});
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CHECK(dec.layout.empty());
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CHECK(dec.prefixSize == 0);
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// Boundary: minReader exactly one past this build.
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auto boundary = rawHeader(kPackageFormatVersion + 1, kPackageFormatVersion + 1, "2.0.0");
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CHECK(decodePackage(boundary, boundary.size()).status == PackageReadability::TooNew);
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// A TooNew header truncated inside the frozen region cannot name the
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// writer, so it is Malformed, not an unactionable refusal.
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std::vector<std::uint8_t> cut = rawHeader(9, 9, "9.9.9");
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cut.resize(18); // mid-semver
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CHECK(decodePackage(cut, cut.size()).status == PackageReadability::Malformed);
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}
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// --- version ladder: additive forward compatibility --------------------------
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// The reason two integers exist: a NEWER formatVersion whose minReaderVersion
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// still reaches back to this build must read, with its unknown keys skipped.
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static void testNewerAdditiveFormatReads() {
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const std::string manifest = handManifest(
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"a.wav", 4,
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"\"instrumentState\":{\"future\":[1,2,3]},\"anotherNewKey\":\"x\",");
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std::vector<std::uint8_t> bytes =
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rawHeader(kPackageFormatVersion + 1, kPackageMinReaderVersion, "1.9.0");
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appendManifest(bytes, manifest);
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const std::uint64_t total = bytes.size() + 4; // the one entry's payload
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const DecodedPackage dec = decodePackage(bytes, total);
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CHECK(dec.status == PackageReadability::Readable);
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CHECK(dec.header.formatVersion == kPackageFormatVersion + 1);
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CHECK(dec.header.writerVersion == "1.9.0");
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CHECK(dec.manifest.entries.size() == 1);
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CHECK(dec.manifest.entries[0].fileName == "a.wav");
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CHECK(dec.manifest.entries[0].sample.id == "s1");
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CHECK(dec.layout.size() == 1);
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CHECK(dec.layout[0].offset == bytes.size());
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CHECK(dec.layout[0].length == 4);
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}
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// --- hostile headers ---------------------------------------------------------
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static void testHostileHeadersAreMalformed() {
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// Wrong magic.
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std::vector<std::uint8_t> bad = rawHeader(1, 1, "1.0.0");
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appendManifest(bad, "{}");
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bad[0] = 'Z';
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CHECK(decodePackage(bad, bad.size()).status == PackageReadability::Malformed);
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// Incoherent version pairs (the classify rules, proven through the framing).
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for (auto [fv, mv] : {std::pair<std::uint32_t, std::uint32_t>{0, 0}, {0, 1},
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{1, 0}, {1, 2}}) {
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std::vector<std::uint8_t> b = rawHeader(fv, mv, "1.0.0");
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appendManifest(b, "{}");
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CHECK(decodePackage(b, b.size()).status == PackageReadability::Malformed);
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}
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// A forged semver length over the cap must not read past the buffer.
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std::vector<std::uint8_t> overSemver;
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overSemver.insert(overSemver.end(), kPackageMagic, kPackageMagic + 4);
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wire::putLE(overSemver, std::uint32_t{1});
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wire::putLE(overSemver, std::uint32_t{1});
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wire::putLE(overSemver, kMaxWriterVersionBytes + 1);
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CHECK(decodePackage(overSemver, overSemver.size()).status ==
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PackageReadability::Malformed);
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// A forged manifest length over the cap: refused before any allocation.
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std::vector<std::uint8_t> overManifest = rawHeader(1, 1, "1.0.0");
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wire::putLE(overManifest, kMaxManifestBytes + 1);
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CHECK(decodePackage(overManifest, overManifest.size()).status ==
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PackageReadability::Malformed);
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// A manifest whose entry name expresses a path: rejected on decode even
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// though no current encoder would write it.
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std::vector<std::uint8_t> traversal = rawHeader(1, 1, "1.0.0");
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appendManifest(traversal, handManifest("../evil.wav", 4, ""));
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CHECK(decodePackage(traversal, traversal.size() + 4).status ==
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PackageReadability::Malformed);
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}
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// --- requiredPrefixSize ------------------------------------------------------
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static void testRequiredPrefixSizeGrowsToTheFullPrefix() {
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auto enc = encodePackage(fixture(3, 5));
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CHECK(enc.has_value());
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const auto& prefix = enc->prefix;
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// Empty: the fixed region first.
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CHECK(requiredPrefixSize({}) == std::uint64_t{16});
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// With the fixed region: asks through the semver + manifest-length field.
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const std::string& semver = version::stampVersion();
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std::vector<std::uint8_t> first16(prefix.begin(), prefix.begin() + 16);
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CHECK(requiredPrefixSize(first16) == std::uint64_t{16 + semver.size() + 4});
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// With that much: the full prefix size. And the answer is a fixpoint.
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std::vector<std::uint8_t> upToManifestLen(
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prefix.begin(), prefix.begin() + 20 + static_cast<long>(semver.size()));
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CHECK(requiredPrefixSize(upToManifestLen) == std::uint64_t{prefix.size()});
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CHECK(requiredPrefixSize(prefix) == std::uint64_t{prefix.size()});
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// The returned count is exactly enough for decodePackage.
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CHECK(decodePackage(prefix, enc->totalSize).status == PackageReadability::Readable);
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}
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static void testRequiredPrefixSizeRefusals() {
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// Bad magic: stop reading.
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std::vector<std::uint8_t> bad(16, 0);
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CHECK(!requiredPrefixSize(bad).has_value());
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// Incoherent versions: stop reading.
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std::vector<std::uint8_t> zeroed = rawHeader(0, 0, "1.0.0");
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CHECK(!requiredPrefixSize(zeroed).has_value());
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// TooNew: asks only through the frozen region — the manifest-length field
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// belongs to the newer format and is never trusted.
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std::vector<std::uint8_t> tooNew = rawHeader(9, 9, "9.9.9");
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for (int i = 0; i < 8; ++i) tooNew.push_back(0xFF); // garbage where M would be
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CHECK(requiredPrefixSize(tooNew) == std::uint64_t{16 + 5});
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// Oversize length fields: stop reading.
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std::vector<std::uint8_t> overSemver;
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overSemver.insert(overSemver.end(), kPackageMagic, kPackageMagic + 4);
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wire::putLE(overSemver, std::uint32_t{1});
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wire::putLE(overSemver, std::uint32_t{1});
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wire::putLE(overSemver, kMaxWriterVersionBytes + 1);
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CHECK(!requiredPrefixSize(overSemver).has_value());
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std::vector<std::uint8_t> overManifest = rawHeader(1, 1, "1.0.0");
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wire::putLE(overManifest, kMaxManifestBytes + 1);
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CHECK(!requiredPrefixSize(overManifest).has_value());
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}
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int main() {
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testEncodeDecodeRoundTrip();
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testEncodeRefusesWhatManifestRefuses();
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testTruncationAtEveryByteOffsetIsMalformed();
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testTooNewProducesNoManifest();
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testNewerAdditiveFormatReads();
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testHostileHeadersAreMalformed();
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testRequiredPrefixSizeRefusals();
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testRequiredPrefixSizeGrowsToTheFullPrefix();
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if (g_fail == 0) {
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std::printf("bank_package_tests: all passed\n");
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return 0;
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}
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std::printf("bank_package_tests: %d failure(s)\n", g_fail);
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return 1;
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}
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