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22f60a6Merge pull request #24561c1b1eMerge pull request #190d227579Add scalar blinding and a secp256k1_context_randomize() call.c146b4aAdd bench_internal to gitignore.9c4fb23Add a secp256k1_fe_cmov unit test.426fa52Merge pull request #243d505a89Merge pull request #2442d2707atravis: test i686 builds with gmpcf7f702travis: update to new build infrastructurebb0ea50Replace set/add with cmov in secp256k1_gej_add_ge.f3d3519Merge pull request #2415c2a4faFix memory leak in context unit test14aacdcMerge pull request #23993226a5secp256k1.c: Add missing DEBUG_CHECKs for sufficiently capable contexts6099220Merge pull request #2376066bb6Fix typo: avg -> max9688030Merge pull request #236d899b5bExpose ability to deep-copy a context3608c7fMerge pull request #208a9b6595[API BREAK] Introduce explicit contextsa0d3b89Merge pull request #2339e8d89bMerge pull request #23465e70e7Merge pull request #2355098f62Improve documentation formatting consistency4450e24Add a comment about the avoidance of secret data in array indexes.6534ee1initialize variabled5b53aaMerge pull request #232c01df1aAvoid some implicit type conversions to make C++ compilers happy.bfe96baMerge pull request #23133270bfAdd a couple comments pointing to particular sections of RFC6979.41603aaMerge pull request #2302632019Brace all the if/for/while. git-subtree-dir: src/secp256k1 git-subtree-split:22f60a6280
libsecp256k1
Optimized C library for EC operations on curve secp256k1.
This library is a work in progress and is being used to research best practices. Use at your own risk.
Features:
- secp256k1 ECDSA signing/verification and key generation.
- Adding/multiplying private/public keys.
- Serialization/parsing of private keys, public keys, signatures.
- Constant time, constant memory access signing and pubkey generation.
- Derandomized DSA (via RFC6979 or with a caller provided function.)
- Very efficient implementation.
Implementation details
- General
- No runtime heap allocation.
- Extensive testing infrastructure.
- Structured to facilitate review and analysis.
- Intended to be portable to any system with a C89 compiler and uint64_t support.
- Expose only higher level interfaces to minimize the API surface and improve application security. ("Be difficult to use insecurely.")
- Field operations
- Optimized implementation of arithmetic modulo the curve's field size (2^256 - 0x1000003D1).
- Using 5 52-bit limbs (including hand-optimized assembly for x86_64, by Diederik Huys).
- Using 10 26-bit limbs.
- Field inverses and square roots using a sliding window over blocks of 1s (by Peter Dettman).
- Optimized implementation of arithmetic modulo the curve's field size (2^256 - 0x1000003D1).
- Scalar operations
- Optimized implementation without data-dependent branches of arithmetic modulo the curve's order.
- Using 4 64-bit limbs (relying on __int128 support in the compiler).
- Using 8 32-bit limbs.
- Optimized implementation without data-dependent branches of arithmetic modulo the curve's order.
- Group operations
- Point addition formula specifically simplified for the curve equation (y^2 = x^3 + 7).
- Use addition between points in Jacobian and affine coordinates where possible.
- Use a unified addition/doubling formula where necessary to avoid data-dependent branches.
- Point/x comparison without a field inversion by comparison in the Jacobian coordinate space.
- Point multiplication for verification (aP + bG).
- Use wNAF notation for point multiplicands.
- Use a much larger window for multiples of G, using precomputed multiples.
- Use Shamir's trick to do the multiplication with the public key and the generator simultaneously.
- Optionally (off by default) use secp256k1's efficiently-computable endomorphism to split the P multiplicand into 2 half-sized ones.
- Point multiplication for signing
- Use a precomputed table of multiples of powers of 16 multiplied with the generator, so general multiplication becomes a series of additions.
- Access the table with branch-free conditional moves so memory access is uniform.
- No data-dependent branches
- The precomputed tables add and eventually subtract points for which no known scalar (private key) is known, preventing even an attacker with control over the private key used to control the data internally.
Build steps
libsecp256k1 is built using autotools:
$ ./autogen.sh
$ ./configure
$ make
$ ./tests
$ sudo make install # optional
Description
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