3bfdcbd7eecoins: reuse cache hasher for txid set (Lőrinc)2beab94896coins: use SipHash-1-3-UJ for `CCoinsMap` (Lőrinc)7ff55cc650bench: add fixed-width SipHash benchmarks (Lőrinc)3aea85411ftest: add SipHash-1-3-UJ coverage (Pieter Wuille)a0ccd4ad17crypto: add fixed-width SipHash-1-3-UJ (Pieter Wuille)c2d7931b5ccrypto: add generic SipHash-1-3-UJ (Pieter Wuille)25bfca06d6refactor: simplify adding SipHash-1-3-UJ (Lőrinc)af50ba8500test: add shared SipHash vectors (Lőrinc) Pull request description: **Problem:** The in-memory UTXO cache hashes `COutPoint` keys containing a 32-byte txid and a 32-bit output index. SipHash-2-4 processes the txid as four independent 64-bit blocks, so its optimized 32-byte and 36-byte paths both take 14 SipRounds. This also matters for hash-prefix index work such as [#35531](https://github.com/bitcoin/bitcoin/pull/35531): once a persisted key format chooses a hash function, changing it later requires reindexing. **Fix:** Add `SipHasher13UJ`, a custom block-oriented variant combining Pieter Wuille's jumbo-block suggestion with SipHash-1-3, the reduced-round variant discussed in the [SipHash analysis](https://eprint.iacr.org/2012/351.pdf). It provides inline `Hash` overloads for the fixed-width inputs used here. Use a dedicated `SaltedCoinsCacheHasher` for `CCoinsMap` and `CoinsViewOverlay`'s temporary earlier-txid set, while other outpoint tables remain on SipHash-2-4. The salted hash values vary between restarts and are never persisted or sent over the network. **Design:** `SipHasher13UJ` accepts normal 64-bit blocks and 256-bit jumbo blocks. For hash-table use, cryptographic hash outputs must make up all but a small bounded number of retained jumbo blocks. The construction mixes all four limbs around one SipRound, omits byte-oriented padding, and uses an `"unpadded"` finalizer distinct from standard SipHash-1-3. The fixed-width paths take four rounds for one `uint256` jumbo block and five when followed by one normal block. For outpoints, the 32-bit output index is zero-extended into a normal 64-bit block. Retained `CCoinsMap` entries identify real transaction outputs, so their keys contain computed txids. Missing-input validation may probe arbitrary claimed prevouts, but `FetchCoin()` immediately erases their temporary entries when the backend lookup fails, so non-hash keys cannot accumulate. The assumeutxo loader assumes snapshot txids are valid while loading and verifies the complete snapshot's content hash before activation. Every entry in the temporary earlier-txid set is a computed transaction hash, and the set is bounded by the block's transaction count. This construction is limited to local hash tables and is not a general-purpose or protocol SipHash replacement. Pieter discussed the construction with [SipHash co-author Jean-Philippe Aumasson](https://github.com/bitcoin/bitcoin/pull/35215#issuecomment-4385336928), whose preliminary analysis did not find an easier collision construction and supported SipHash-1-3 for this hash-table use. <img width="2100" height="860" alt="siphash_compare_updated" src="https://github.com/user-attachments/assets/cefec6f8-5ec0-450a-a0a2-f946de9ef36d" /> **Structure:** Shared vectors first cover the existing generic and fixed SipHash-2-4 paths in C++, the generic path in Python, and their randomized equivalence in the fuzzer. A behavior-neutral refactor then moves the round, compression, and finalization logic into inline `SipHashState` methods; assembly inspection shows that the fixed-width paths retain their instruction counts, while the generic byte loop retains its prior code generation through a local state copy. Three Pieter-authored commits add the generic UJ specification, fixed-width implementation, and shared correctness coverage. Benchmarks follow that coverage, then separate commits change `CCoinsMap`'s hasher and reuse it for the temporary earlier-txid set. **Tests:** The shared JSON supplies the same byte sequences to the generic C++ and Python SipHash-2-4 implementations, with applicable fixed-width paths checked against the same expected output. The SipHash-2-4 rows include the 64 official vectors for inputs from 0 to 63 bytes and cases that vary input chunking. The UJ outputs were generated by an independent implementation and are checked using normal blocks, equivalent zero-extended jumbo blocks, and applicable fixed-width `Hash` overloads. The integer fuzzer extends these comparisons to arbitrary values and mixed normal/jumbo block encodings. [Counting the dbcache buckets](https://gist.github.com/l0rinc/d68f56c3ed89f76f56da6632ef6f2d92) indicates the new outpoint hasher retains the uniform bucket distribution expected by `CCoinsMap`: <img width="1200" height="750" alt="ccoinsmap-collisions" src="https://github.com/user-attachments/assets/eeedec81-acdc-4adf-a9c8-bfce089700da" /> **Benchmarks:** Fixed-width microbenchmarks compare SipHash-2-4 with SipHash-1-3-UJ for 32-byte hashes and inputs containing a 32-byte hash plus a 32-bit index. Reported aarch64 measurements and an [independent x86_64 run](https://github.com/bitcoin/bitcoin/pull/35215#issuecomment-4400609637) show the outpoint path is about 2x faster. <details><summary>Benchmark runner</summary> ```bash for COMPILER in gcc clang; do \ if [ "$COMPILER" = gcc ]; then CC=gcc; CXX=g++; else CC=clang; CXX=clang++; fi; \ cmake -B "build-bench-$COMPILER" -DCMAKE_BUILD_TYPE=Release -DBUILD_BENCH=ON -DBUILD_TESTS=OFF -DBUILD_GUI=OFF -DENABLE_WALLET=OFF -DCMAKE_C_COMPILER="$CC" -DCMAKE_CXX_COMPILER="$CXX" >/dev/null 2>&1 && \ cmake --build "build-bench-$COMPILER" --target bench_bitcoin -j"$(nproc)" >/dev/null 2>&1 && \ echo "" && echo "$(date -I) | SipHash fixed-width microbench | $("$CXX" --version | head -1) | $(hostname) | $(uname -m) | $(lscpu | awk -F: '/Model name/{print $2; exit}' | xargs) | $(nproc) cores | $(free -h | awk '/^Mem:/{print $2}') RAM" && \ "build-bench-$COMPILER/bin/bench_bitcoin" -filter='SipHash.*32b|SipHash.*36b' -min-time=10000; \ done ``` </details> A two-run GCC `-reindex-chainstate` comparison of the same `CCoinsMap` hot path through height 957,759 with `-dbcache=2000` on a Ryzen 7 3700X/SSD reduced mean wall time from 11,278 s to 10,759 s, a ~5% validation speedup. ACKs for top commit: achow101: light ACK3bfdcbd7eesipa: ACK3bfdcbd7ee(to the extent the code/ideas aren't my own) andrewtoth: ACK3bfdcbd7eeoptout21: ACK3bfdcbd7eeTree-SHA512: c3c66051cb1ebdb0cddbc8b8bed2297c524842f92960531de23d9586c5bb950b302c33d06fc15c2320cbbf97273b22ec3f17fd0e7ddcc7df4a8132a47a606277
This directory contains integration tests that test bitcoind and its utilities in their entirety. It does not contain unit tests, which can be found in /src/test, /src/wallet/test, etc.
This directory contains the following sets of tests:
- fuzz A runner to execute all fuzz targets from /src/test/fuzz.
- functional which test the functionality of bitcoind and bitcoin-qt by interacting with them through the RPC and P2P interfaces.
- lint which perform various static analysis checks.
The fuzz tests, functional tests and lint scripts can be run as explained in the sections below.
Running tests locally
Before tests can be run locally, Bitcoin Core must be built. See the building instructions for help.
The following examples assume that the build directory is named build.
Fuzz tests
See /doc/fuzzing.md
Functional tests
Dependencies and prerequisites
The ZMQ functional test requires a python ZMQ library. To install it:
- on Unix, run
sudo apt-get install python3-zmq - on mac OS, run
pip3 install pyzmq
The IPC functional test requires a python IPC library. pip3 install pycapnp may work, but if not, install it from source:
git clone -b v2.2.1 https://github.com/capnproto/pycapnp
pip3 install ./pycapnp
If that does not work, try adding -C force-bundled-libcapnp=True to the pip command.
Depending on the system, it may be necessary to install and run in a venv:
python -m venv venv
git clone -b v2.2.1 https://github.com/capnproto/pycapnp
venv/bin/pip3 install ./pycapnp -C force-bundled-libcapnp=True
venv/bin/python3 build/test/functional/interface_ipc.py
The functional tests assume Python UTF-8 Mode, which is the default on most
systems.
On Windows the PYTHONUTF8 environment variable must be set to 1:
set PYTHONUTF8=1
Running the tests
Individual tests can be run by directly calling the test script, e.g.:
build/test/functional/feature_rbf.py
or can be run through the test_runner harness, eg:
build/test/functional/test_runner.py feature_rbf.py
You can run any combination (incl. duplicates) of tests by calling:
build/test/functional/test_runner.py <testname1> <testname2> <testname3> ...
Wildcard test names can be passed, if the paths are coherent and the test runner
is called from a bash shell or similar that does the globbing. For example,
to run all the wallet tests:
build/test/functional/test_runner.py test/functional/wallet*
functional/test_runner.py functional/wallet* # (called from the build/test/ directory)
test_runner.py wallet* # (called from the build/test/functional/ directory)
but not
build/test/functional/test_runner.py wallet*
Combinations of wildcards can be passed:
build/test/functional/test_runner.py ./test/functional/tool* test/functional/mempool*
test_runner.py tool* mempool*
Run the regression test suite with:
build/test/functional/test_runner.py
Run all possible tests with
build/test/functional/test_runner.py --extended
In order to run backwards compatibility tests, first run:
test/get_previous_releases.py
to download the necessary previous release binaries.
By default, up to 4 tests will be run in parallel by test_runner. To specify
how many jobs to run, append --jobs=n
The individual tests and the test_runner harness have many command-line
options. Run build/test/functional/test_runner.py -h to see them all.
Speed up test runs with a RAM disk
If you have available RAM on your system you can create a RAM disk to use as the cache and tmp directories for the functional tests in order to speed them up.
Speed-up amount varies on each system (and according to your RAM speed and other variables), but a 2-3x speed-up is not uncommon.
Linux
To create a 4 GiB RAM disk at /mnt/tmp/:
sudo mkdir -p /mnt/tmp
sudo mount -t tmpfs -o size=4g tmpfs /mnt/tmp/
Configure the size of the RAM disk using the size= option.
The size of the RAM disk needed is relative to the number of concurrent jobs the test suite runs.
For example running the test suite with --jobs=100 might need a 4 GiB RAM disk, but running with --jobs=32 will only need a 2.5 GiB RAM disk.
To use, run the test suite specifying the RAM disk as the cachedir and tmpdir:
build/test/functional/test_runner.py --cachedir=/mnt/tmp/cache --tmpdir=/mnt/tmp
Once finished with the tests and the disk, and to free the RAM, simply unmount the disk:
sudo umount /mnt/tmp
macOS
To create a 4 GiB RAM disk named "ramdisk" at /Volumes/ramdisk/:
diskutil erasevolume HFS+ ramdisk $(hdiutil attach -nomount ram://8388608)
Configure the RAM disk size, expressed as the number of blocks, at the end of the command
(4096 MiB * 2048 blocks/MiB = 8388608 blocks for 4 GiB). To run the tests using the RAM disk:
build/test/functional/test_runner.py --cachedir=/Volumes/ramdisk/cache --tmpdir=/Volumes/ramdisk/tmp
To unmount:
umount /Volumes/ramdisk
Troubleshooting and debugging test failures
Resource contention
The P2P and RPC ports used by the bitcoind nodes-under-test are chosen to make conflicts with other processes unlikely. However, if there is another bitcoind process running on the system (perhaps from a previous test which hasn't successfully killed all its bitcoind nodes), then there may be a port conflict which will cause the test to fail. It is recommended that you run the tests on a system where no other bitcoind processes are running.
On linux, the test framework will warn if there is another bitcoind process running when the tests are started.
If there are zombie bitcoind processes after test failure, you can kill them by running the following commands. Note that these commands will kill all bitcoind processes running on the system, so should not be used if any non-test bitcoind processes are being run.
killall bitcoind
or
pkill -9 bitcoind
Data directory cache
A pre-mined blockchain with 200 blocks is generated the first time a functional test is run and is stored in build/test/cache. This speeds up test startup times since new blockchains don't need to be generated for each test. However, the cache may get into a bad state, in which case tests will fail. If this happens, remove the cache directory (and make sure bitcoind processes are stopped as above):
rm -rf build/test/cache
killall bitcoind
Test logging
The tests contain logging at five different levels (DEBUG, INFO, WARNING, ERROR
and CRITICAL). From within your functional tests you can log to these different
levels using the logger included in the test_framework, e.g.
self.log.debug(object). By default:
- when run through the test_runner harness, all logs are written to
test_framework.logand no logs are output to the console. - when run directly, all logs are written to
test_framework.logand INFO level and above are output to the console. - when run by our CI (Continuous Integration), no logs are output to the console. However, if a test
fails, the
test_framework.logand bitcoinddebug.logs will all be dumped to the console to help troubleshooting.
These log files can be located under the test data directory (which is always printed in the first line of test output):
<test data directory>/test_framework.log<test data directory>/node<node number>/regtest/debug.log.
The node number identifies the relevant test node, starting from node0, which
corresponds to its position in the nodes list of the specific test,
e.g. self.nodes[0].
To change the level of logs output to the console, use the -l command line
argument.
test_framework.log and bitcoind debug.logs can be combined into a single
aggregate log by running the combine_logs.py script. The output can be plain
text, colorized text or html. For example:
build/test/functional/combine_logs.py -c <test data directory> | less -r
will pipe the colorized logs from the test into less.
Use --tracerpc to trace out all the RPC calls and responses to the console. For
some tests (eg any that use submitblock to submit a full block over RPC),
this can result in a lot of screen output.
By default, the test data directory will be deleted after a successful run.
Use --nocleanup to leave the test data directory intact. The test data
directory is never deleted after a failed test.
Attaching a debugger
A python debugger can be attached to tests at any point. Just add the line:
import pdb; pdb.set_trace()
anywhere in the test. You will then be able to inspect variables, as well as call methods that interact with the bitcoind nodes-under-test.
If further introspection of the bitcoind instances themselves becomes
necessary, this can be accomplished by first setting a pdb breakpoint
at an appropriate location, running the test to that point, then using
gdb (or lldb on macOS) to attach to the process and debug.
For instance, to attach to self.node[1] during a run you can get
the pid of the node within pdb.
(pdb) self.node[1].process.pid
Alternatively, you can find the pid by inspecting the temp folder for the specific test you are running. The path to that folder is printed at the beginning of every test run:
2017-06-27 14:13:56.686000 TestFramework (INFO): Initializing test directory /tmp/user/1000/testo9vsdjo3
Use the path to find the pid file in the temp folder:
cat /tmp/user/1000/testo9vsdjo3/node1/regtest/bitcoind.pid
Then you can use the pid to start gdb:
gdb /home/example/bitcoind <pid>
Note: gdb attach step may require ptrace_scope to be modified, or sudo preceding the gdb.
See this link for considerations: https://www.kernel.org/doc/Documentation/security/Yama.txt
Often while debugging RPC calls in functional tests, the test might time out before the
process can return a response. Use --timeout-factor 0 to disable all RPC timeouts for that particular
functional test. Ex: build/test/functional/wallet_hd.py --timeout-factor 0.
Lint tests
See the README in test/lint.
Writing functional tests
You are encouraged to write functional tests for new or existing features. Further information about the functional test framework and individual tests is found in test/functional.