use criterion::{Criterion, Throughput, criterion_group, criterion_main, measurement::Measurement}; use rand::Rng; #[cfg(not(any(target_arch = "x86", target_arch = "x86_64")))] use criterion::measurement::WallTime as Meas; #[cfg(any(target_arch = "x86", target_arch = "x86_64"))] use criterion_cycles_per_byte::CyclesPerByte as Meas; #[cfg(feature = "counter-galois-onion")] use aes::{Aes128Dec, Aes128Enc, Aes256Dec, Aes256Enc}; use tor_bytes::SecretBuf; use tor_llcrypto::{ cipher::aes::{Aes128Ctr, Aes256Ctr}, d::{Sha1, Sha3_256}, }; #[cfg(feature = "counter-galois-onion")] use tor_proto::bench_utils::cgo; use tor_proto::bench_utils::{ BENCH_CHAN_CMD, CryptInit, InboundClientCrypt, KGen, RelayCellBody, circuit_encrypt_inbound, tor1, }; // Helper macro to set up a client decryption benchmark. macro_rules! client_decrypt_setup { ($client_state_construct: path, $relay_state_construct: path) => {{ let seed1: SecretBuf = b"hidden we are free".to_vec().into(); let seed2: SecretBuf = b"free to speak, to free ourselves".to_vec().into(); let seed3: SecretBuf = b"free to hide no more".to_vec().into(); let circuit_states = vec![ $relay_state_construct(KGen::new(seed1.clone())).unwrap(), $relay_state_construct(KGen::new(seed2.clone())).unwrap(), $relay_state_construct(KGen::new(seed3.clone())).unwrap(), ]; let mut cc_in = InboundClientCrypt::new(); let state1 = $client_state_construct(KGen::new(seed1)).unwrap(); cc_in.add_layer_from_pair(state1); let state2 = $client_state_construct(KGen::new(seed2)).unwrap(); cc_in.add_layer_from_pair(state2); let state3 = $client_state_construct(KGen::new(seed3)).unwrap(); cc_in.add_layer_from_pair(state3); let mut rng = rand::rng(); let mut cell = [0u8; 509]; rng.fill(&mut cell[..]); let mut cell: RelayCellBody = Box::new(cell).into(); circuit_encrypt_inbound(BENCH_CHAN_CMD, &mut cell, circuit_states); (cell, cc_in) }}; } /// Benchmark a client decrypting a relay cell coming from a circuit. pub fn client_decrypt_benchmark(c: &mut Criterion) { // Group for the Tor1 relay crypto with 498 bytes of data per relay cell. let mut group = c.benchmark_group("client_decrypt"); group.throughput(Throughput::Bytes(tor1::TOR1_THROUGHPUT)); group.bench_function("Tor1RelayCrypto", |b| { b.iter_batched_ref( || { client_decrypt_setup!( tor1::CryptStatePair::::construct, tor1::CryptStatePair::::construct ) }, |(cell, cc_in)| { cc_in.decrypt(BENCH_CHAN_CMD, cell).unwrap(); }, criterion::BatchSize::SmallInput, ); }); group.bench_function("Tor1Hsv3RelayCrypto", |b| { b.iter_batched_ref( || { client_decrypt_setup!( tor1::CryptStatePair::::construct, tor1::CryptStatePair::::construct ) }, |(cell, cc_in)| { cc_in.decrypt(BENCH_CHAN_CMD, cell).unwrap(); }, criterion::BatchSize::SmallInput, ); }); group.finish(); #[cfg(feature = "counter-galois-onion")] { // Group for the Counter-Galois-Onion relay crypto with ~488 bytes of data per relay cell. let mut group = c.benchmark_group("client_decrypt"); group.throughput(Throughput::Bytes(cgo::CGO_THROUGHPUT)); group.bench_function("CGO_Aes128", |b| { b.iter_batched_ref( || { client_decrypt_setup!( cgo::CryptStatePair::::construct, cgo::CryptStatePair::::construct ) }, |(cell, cc_in)| { cc_in.decrypt(BENCH_CHAN_CMD, cell).unwrap(); }, criterion::BatchSize::SmallInput, ); }); group.bench_function("CGO_Aes256", |b| { b.iter_batched_ref( || { client_decrypt_setup!( cgo::CryptStatePair::::construct, cgo::CryptStatePair::::construct ) }, |(cell, cc_in)| { cc_in.decrypt(BENCH_CHAN_CMD, cell).unwrap(); }, criterion::BatchSize::SmallInput, ); }); group.finish(); } } criterion_group!( name = client_decrypt; config = Criterion::default() .with_measurement(Meas) .sample_size(5000); targets = client_decrypt_benchmark); criterion_main!(client_decrypt);