Jonas Nick 64316eac11 Merge elementsproject/secp256k1-zkp#324: Upstream PRs 1662, 1669, 1492, 1670, 1668, 1673, 1675, 1680, 1679, 1690, 1683, 1678
145ae3e28d cmake: add a helper for linking into static libs (Cory Fields)
819210974b README: add link to musig example, generalize module enabling hint (Sebastian Falbesoner)
add146e101 ci: Bump GCC snapshot major version to 16 (Hennadii Stepanov)
6f67151ee2 cmake: Use `PUBLIC_HEADER` target property (Hennadii Stepanov)
c32715b2a0 cmake, move-only: Move module option processing to `src/CMakeLists.txt` (Hennadii Stepanov)
3f31ac43e0 doc: Promote "Building with CMake" to standard procedure (Hennadii Stepanov)
3af71987a8 cmake: Bump minimum required CMake version to 3.22 (Hennadii Stepanov)
3a4f448cb4 Assert field magnitude at control-flow join (Peter.Dettman)
05445377f4 bench_ecmult: add benchmark for ecmult_const_xonly (Sebastian Falbesoner)
d73ed99479 tests: update wycheproof files (RandomLattice)
e266ba11ae tests: Add Wycheproof ECDH vectors (RandomLattice)
c1bcb03276 gitignore: Add Python cache files (Tim Ruffing)
6b3fe51fb6 bench: add ellswift to bench help output (Jonas Nick)

Pull request description:

ACKs for top commit:
  jonasnick:
    ACK cc4a92b510

Tree-SHA512: ca0b28461c5e663a39ff11cb83bd09c1446e49e33c8806a96dd0912c0d14646be4b33ee6eaee88021d342986d17db254358d622a9567d4b6c91e2ab603224cb8
2026-02-24 10:12:03 +00:00
2025-03-11 21:59:35 +00:00
2013-05-09 15:24:32 +02:00

libsecp256k1-zkp

Dependencies: None

A fork of libsecp256k1 with support for advanced and experimental features

Added features:

  • Experimental module for ECDSA adaptor signatures.
  • Experimental module for ECDSA sign-to-contract.
  • Experimental module for Confidential Assets (Pedersen commitments, range proofs, and surjection proofs).
  • Experimental module for Bulletproofs++ range proofs.
  • Experimental module for address whitelisting.

Experimental features are made available for testing and review by the community. The APIs of these features should not be considered stable.

Build steps

Obtaining and verifying

The git tag for each release (e.g. v0.6.0) is GPG-signed by one of the maintainers. For a fully verified build of this project, it is recommended to obtain this repository via git, obtain the GPG keys of the signing maintainer(s), and then verify the release tag's signature using git.

This can be done with the following steps:

  1. Obtain the GPG keys listed in SECURITY.md.
  2. If possible, cross-reference these key IDs with another source controlled by its owner (e.g. social media, personal website). This is to mitigate the unlikely case that incorrect content is being presented by this repository.
  3. Clone the repository:
    git clone https://github.com/bitcoin-core/secp256k1
    
  4. Check out the latest release tag, e.g.
    git checkout v0.6.0
    
  5. Use git to verify the GPG signature:
    % git tag -v v0.6.0 | grep -C 3 'Good signature'
    
    gpg: Signature made Mon 04 Nov 2024 12:14:44 PM EST
    gpg:                using RSA key 4BBB845A6F5A65A69DFAEC234861DBF262123605
    gpg: Good signature from "Jonas Nick <jonas@n-ck.net>" [unknown]
    gpg:                 aka "Jonas Nick <jonasd.nick@gmail.com>" [unknown]
    gpg: WARNING: This key is not certified with a trusted signature!
    gpg:          There is no indication that the signature belongs to the owner.
    Primary key fingerprint: 36C7 1A37 C9D9 88BD E825  08D9 B1A7 0E4F 8DCD 0366
         Subkey fingerprint: 4BBB 845A 6F5A 65A6 9DFA  EC23 4861 DBF2 6212 3605
    

Building with Autotools

$ ./autogen.sh       # Generate a ./configure script
$ ./configure        # Generate a build system
$ make               # Run the actual build process
$ make check         # Run the test suite
$ sudo make install  # Install the library into the system (optional)

To compile optional modules (such as Schnorr signatures), you need to run ./configure with additional flags (such as --enable-module-schnorrsig). Run ./configure --help to see the full list of available flags. For experimental modules, you will also need --enable-experimental as well as a flag for each individual module, e.g. --enable-module-rangeproof.

Building with CMake

To maintain a pristine source tree, CMake encourages to perform an out-of-source build by using a separate dedicated build tree.

Building on POSIX systems

$ cmake -B build              # Generate a build system in subdirectory "build"
$ cmake --build build         # Run the actual build process
$ ctest --test-dir build      # Run the test suite
$ sudo cmake --install build  # Install the library into the system (optional)

To compile optional modules (such as Schnorr signatures), you need to run cmake with additional flags (such as -DSECP256K1_ENABLE_MODULE_SCHNORRSIG=ON). Run cmake -B build -LH or ccmake -B build to see the full list of available flags.

Cross compiling

To alleviate issues with cross compiling, preconfigured toolchain files are available in the cmake directory. For example, to cross compile for Windows:

$ cmake -B build -DCMAKE_TOOLCHAIN_FILE=cmake/x86_64-w64-mingw32.toolchain.cmake

To cross compile for Android with NDK (using NDK's toolchain file, and assuming the ANDROID_NDK_ROOT environment variable has been set):

$ cmake -B build -DCMAKE_TOOLCHAIN_FILE="${ANDROID_NDK_ROOT}/build/cmake/android.toolchain.cmake" -DANDROID_ABI=arm64-v8a -DANDROID_PLATFORM=28

Building on Windows

To build on Windows with Visual Studio, a proper generator must be specified for a new build tree.

The following example assumes using of Visual Studio 2022 and CMake v3.21+.

In "Developer Command Prompt for VS 2022":

>cmake -G "Visual Studio 17 2022" -A x64 -B build
>cmake --build build --config RelWithDebInfo

Usage examples

Usage examples can be found in the examples directory. To compile them you need to configure with --enable-examples.

To compile the examples, make sure the corresponding modules are enabled.

Benchmark

If configured with --enable-benchmark (which is the default), binaries for benchmarking the libsecp256k1-zkp functions will be present in the root directory after the build.

To print the benchmark result to the command line:

$ ./bench_name

To create a CSV file for the benchmark result :

$ ./bench_name | sed '2d;s/ \{1,\}//g' > bench_name.csv

Reporting a vulnerability

See SECURITY.md

Contributing to libsecp256k1

See CONTRIBUTING.md

Description
Experimental fork of libsecp256k1 with support for pedersen commitments and range proofs.
Readme 15 MiB
Languages
C 94.5%
Python 2%
CMake 0.9%
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M4 0.7%
Other 1%