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golang
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1.22.0
/
src
/
runtime
/
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..
📄
HACKING.md
(13.85 KB)
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Makefile
(178 B)
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abi_test.go
(2.83 KB)
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alg.go
(10.99 KB)
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align_runtime_test.go
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align_test.go
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arena.go
(31.66 KB)
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arena_test.go
(13.39 KB)
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asan
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asan.go
(1.55 KB)
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asan0.go
(760 B)
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asan_amd64.s
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asan_arm64.s
(2.14 KB)
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asan_loong64.s
(2.12 KB)
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asan_ppc64le.s
(2.75 KB)
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asan_riscv64.s
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asm.s
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asm_386.s
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asm_amd64.h
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asm_amd64.s
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asm_arm.s
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asm_arm64.s
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asm_loong64.s
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asm_mips64x.s
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asm_mipsx.s
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asm_ppc64x.h
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asm_ppc64x.s
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asm_riscv64.s
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asm_s390x.s
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asm_wasm.s
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atomic_arm64.s
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atomic_loong64.s
(245 B)
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atomic_mips64x.s
(300 B)
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atomic_mipsx.s
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atomic_pointer.go
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atomic_ppc64x.s
(437 B)
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atomic_riscv64.s
(275 B)
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auxv_none.go
(298 B)
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callers_test.go
(12.13 KB)
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cgo
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cgo.go
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cgo_mmap.go
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cgo_ppc64x.go
(418 B)
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cgo_sigaction.go
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cgocall.go
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cgocallback.go
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cgocheck.go
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chan.go
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chan_test.go
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chanbarrier_test.go
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checkptr.go
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checkptr_test.go
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closure_test.go
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compiler.go
(410 B)
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complex.go
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complex_test.go
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conv_wasm_test.go
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coro.go
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coverage
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covercounter.go
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covermeta.go
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cpuflags.go
(810 B)
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cpuflags_amd64.go
(533 B)
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cpuflags_arm64.go
(312 B)
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cpuprof.go
(7.94 KB)
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cputicks.go
(437 B)
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crash_cgo_test.go
(23.35 KB)
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crash_test.go
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crash_unix_test.go
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create_file_nounix.go
(305 B)
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create_file_unix.go
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debug
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debug.go
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debug_test.go
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debugcall.go
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debuglog.go
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debuglog_off.go
(357 B)
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debuglog_on.go
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debuglog_test.go
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defer_test.go
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defs1_linux.go
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defs1_netbsd_386.go
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defs1_netbsd_amd64.go
(3.14 KB)
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defs1_netbsd_arm.go
(3.03 KB)
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defs1_netbsd_arm64.go
(3.25 KB)
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defs1_solaris_amd64.go
(4.01 KB)
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defs2_linux.go
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defs3_linux.go
(1.09 KB)
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defs_aix.go
(4.17 KB)
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defs_aix_ppc64.go
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defs_arm_linux.go
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defs_darwin.go
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defs_darwin_amd64.go
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defs_darwin_arm64.go
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defs_dragonfly.go
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defs_dragonfly_amd64.go
(3.41 KB)
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defs_freebsd.go
(3.96 KB)
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defs_freebsd_386.go
(4.52 KB)
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defs_freebsd_amd64.go
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defs_freebsd_arm.go
(3.92 KB)
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defs_freebsd_arm64.go
(4.18 KB)
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defs_freebsd_riscv64.go
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defs_illumos_amd64.go
(285 B)
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defs_linux.go
(2.92 KB)
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defs_linux_386.go
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defs_linux_amd64.go
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defs_linux_arm.go
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defs_linux_arm64.go
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defs_linux_loong64.go
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defs_linux_mips64x.go
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defs_linux_mipsx.go
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defs_linux_ppc64.go
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defs_linux_ppc64le.go
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defs_linux_riscv64.go
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defs_linux_s390x.go
(3.16 KB)
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defs_netbsd.go
(2.83 KB)
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defs_netbsd_386.go
(855 B)
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defs_netbsd_amd64.go
(1.01 KB)
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defs_netbsd_arm.go
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defs_openbsd.go
(3.06 KB)
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defs_openbsd_386.go
(2.91 KB)
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defs_openbsd_amd64.go
(3.11 KB)
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defs_openbsd_arm.go
(3.03 KB)
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defs_openbsd_arm64.go
(2.78 KB)
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defs_openbsd_mips64.go
(2.75 KB)
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defs_openbsd_ppc64.go
(3 KB)
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defs_openbsd_riscv64.go
(2.89 KB)
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defs_plan9_386.go
(1.63 KB)
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defs_plan9_amd64.go
(1.82 KB)
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defs_plan9_arm.go
(1.73 KB)
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defs_solaris.go
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defs_solaris_amd64.go
(1004 B)
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defs_windows.go
(2.25 KB)
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defs_windows_386.go
(2.28 KB)
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defs_windows_amd64.go
(3.19 KB)
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defs_windows_arm.go
(2.57 KB)
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defs_windows_arm64.go
(3.07 KB)
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duff_386.s
(8.24 KB)
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duff_amd64.s
(5.64 KB)
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duff_arm.s
(7.11 KB)
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duff_arm64.s
(5.27 KB)
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duff_loong64.s
(11.9 KB)
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duff_mips64x.s
(11.28 KB)
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duff_ppc64x.s
(7.06 KB)
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duff_riscv64.s
(11.4 KB)
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duff_s390x.s
(507 B)
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ehooks_test.go
(2.04 KB)
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env_plan9.go
(3 KB)
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env_posix.go
(1.56 KB)
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env_test.go
(1.16 KB)
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error.go
(9.29 KB)
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example_test.go
(1.55 KB)
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exithook.go
(2.32 KB)
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export_aix_test.go
(207 B)
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export_arm_test.go
(226 B)
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export_darwin_test.go
(207 B)
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export_debug_amd64_test.go
(3.6 KB)
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export_debug_arm64_test.go
(3.49 KB)
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export_debug_ppc64le_test.go
(3.5 KB)
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export_debug_test.go
(5.07 KB)
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export_debuglog_test.go
(1.27 KB)
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export_linux_test.go
(378 B)
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export_mmap_test.go
(429 B)
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export_pipe2_test.go
(310 B)
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export_pipe_test.go
(219 B)
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export_test.go
(50.52 KB)
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export_unix_test.go
(2.27 KB)
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export_windows_test.go
(903 B)
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extern.go
(18.58 KB)
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fastlog2.go
(1.22 KB)
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fastlog2_test.go
(784 B)
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fastlog2table.go
(904 B)
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fds_nonunix.go
(256 B)
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fds_test.go
(1.43 KB)
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fds_unix.go
(1.27 KB)
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float.go
(1.35 KB)
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float_test.go
(699 B)
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funcdata.h
(2.53 KB)
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gc_test.go
(20.32 KB)
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gcinfo_test.go
(5.95 KB)
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go_tls.h
(366 B)
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hash32.go
(1.58 KB)
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hash64.go
(1.95 KB)
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hash_test.go
(17.24 KB)
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heap_test.go
(529 B)
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heapdump.go
(17.88 KB)
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histogram.go
(7.3 KB)
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histogram_test.go
(3.51 KB)
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iface.go
(20.92 KB)
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iface_test.go
(7.45 KB)
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import_test.go
(1.42 KB)
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importx_test.go
(763 B)
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internal
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lfstack.go
(2.03 KB)
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lfstack_test.go
(2.74 KB)
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libfuzzer.go
(6.34 KB)
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libfuzzer_amd64.s
(5.03 KB)
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libfuzzer_arm64.s
(3.15 KB)
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lock_futex.go
(5.4 KB)
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lock_js.go
(7.28 KB)
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lock_sema.go
(6.75 KB)
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lock_wasip1.go
(2.01 KB)
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lockrank.go
(18.19 KB)
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lockrank_off.go
(1.17 KB)
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lockrank_on.go
(10.27 KB)
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lockrank_test.go
(856 B)
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malloc.go
(58.5 KB)
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malloc_test.go
(10.64 KB)
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map.go
(52.17 KB)
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map_benchmark_test.go
(10.59 KB)
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map_fast32.go
(12.74 KB)
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map_fast64.go
(12.92 KB)
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map_faststr.go
(14.32 KB)
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map_test.go
(31.75 KB)
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mbarrier.go
(13.78 KB)
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mbitmap.go
(22.54 KB)
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mbitmap_allocheaders.go
(44.67 KB)
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mbitmap_noallocheaders.go
(28.95 KB)
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mcache.go
(10 KB)
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mcentral.go
(8.05 KB)
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mcheckmark.go
(2.85 KB)
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mem.go
(6.72 KB)
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mem_aix.go
(2.01 KB)
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mem_bsd.go
(2.21 KB)
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mem_darwin.go
(1.96 KB)
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mem_js.go
(457 B)
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mem_linux.go
(4.98 KB)
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mem_plan9.go
(447 B)
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mem_sbrk.go
(4.19 KB)
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mem_wasip1.go
(392 B)
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mem_wasm.go
(488 B)
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mem_windows.go
(3.88 KB)
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memclr_386.s
(2.38 KB)
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memclr_amd64.s
(4.91 KB)
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memclr_arm.s
(2.6 KB)
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memclr_arm64.s
(3.62 KB)
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memclr_loong64.s
(843 B)
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memclr_mips64x.s
(1.72 KB)
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memclr_mipsx.s
(1.32 KB)
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memclr_plan9_386.s
(983 B)
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memclr_plan9_amd64.s
(511 B)
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memclr_ppc64x.s
(4.44 KB)
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memclr_riscv64.s
(1.71 KB)
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memclr_s390x.s
(1.96 KB)
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memclr_wasm.s
(485 B)
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memmove_386.s
(4.42 KB)
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memmove_amd64.s
(12.48 KB)
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memmove_arm.s
(5.9 KB)
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memmove_arm64.s
(5.96 KB)
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memmove_linux_amd64_test.go
(1.53 KB)
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memmove_loong64.s
(1.87 KB)
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memmove_mips64x.s
(1.83 KB)
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memmove_mipsx.s
(4.4 KB)
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memmove_plan9_386.s
(3.06 KB)
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memmove_plan9_amd64.s
(3.04 KB)
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memmove_ppc64x.s
(4.91 KB)
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memmove_riscv64.s
(5.46 KB)
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memmove_s390x.s
(2.92 KB)
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memmove_test.go
(21.23 KB)
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memmove_wasm.s
(479 B)
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metrics
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metrics.go
(26.01 KB)
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metrics_test.go
(42.46 KB)
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mfinal.go
(18.91 KB)
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mfinal_test.go
(5.57 KB)
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mfixalloc.go
(3.13 KB)
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mgc.go
(59.29 KB)
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mgclimit.go
(17.28 KB)
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mgclimit_test.go
(9.02 KB)
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mgcmark.go
(53.07 KB)
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mgcpacer.go
(55.36 KB)
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mgcpacer_test.go
(39.26 KB)
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mgcscavenge.go
(52.32 KB)
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mgcscavenge_test.go
(25.2 KB)
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mgcstack.go
(10.58 KB)
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mgcsweep.go
(32.26 KB)
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mgcwork.go
(12.89 KB)
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mheap.go
(72.64 KB)
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minmax.go
(1.46 KB)
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minmax_test.go
(3.31 KB)
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mkduff.go
(8.04 KB)
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mkfastlog2table.go
(3.08 KB)
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mklockrank.go
(9 KB)
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mkpreempt.go
(15.33 KB)
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mksizeclasses.go
(9.52 KB)
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mmap.go
(844 B)
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mpagealloc.go
(39.23 KB)
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mpagealloc_32bit.go
(4.56 KB)
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mpagealloc_64bit.go
(9.34 KB)
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mpagealloc_test.go
(32.59 KB)
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mpagecache.go
(5.59 KB)
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mpagecache_test.go
(10.79 KB)
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mpallocbits.go
(12.58 KB)
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mpallocbits_test.go
(13.69 KB)
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mprof.go
(47.4 KB)
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mranges.go
(14.46 KB)
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mranges_test.go
(5.68 KB)
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msan
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msan.go
(1.5 KB)
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msan0.go
(725 B)
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msan_amd64.s
(2.3 KB)
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msan_arm64.s
(1.98 KB)
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msan_loong64.s
(1.96 KB)
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msize_allocheaders.go
(1.32 KB)
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msize_noallocheaders.go
(915 B)
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mspanset.go
(13.12 KB)
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mstats.go
(33.81 KB)
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mwbbuf.go
(8.13 KB)
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nbpipe_pipe.go
(405 B)
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nbpipe_pipe2.go
(344 B)
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nbpipe_pipe_test.go
(706 B)
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nbpipe_test.go
(1.99 KB)
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net_plan9.go
(645 B)
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netpoll.go
(20.55 KB)
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netpoll_aix.go
(5.06 KB)
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netpoll_epoll.go
(4.4 KB)
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netpoll_fake.go
(664 B)
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netpoll_kqueue.go
(5.62 KB)
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netpoll_os_test.go
(520 B)
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netpoll_solaris.go
(11.2 KB)
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netpoll_stub.go
(1.48 KB)
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netpoll_wasip1.go
(6.08 KB)
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netpoll_windows.go
(4.01 KB)
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nonwindows_stub.go
(729 B)
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norace_linux_test.go
(915 B)
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norace_test.go
(983 B)
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numcpu_freebsd_test.go
(381 B)
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os2_aix.go
(20.88 KB)
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os2_freebsd.go
(302 B)
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os2_openbsd.go
(296 B)
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os2_plan9.go
(1.48 KB)
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os2_solaris.go
(320 B)
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os3_plan9.go
(3.94 KB)
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os3_solaris.go
(17.59 KB)
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os_aix.go
(8.89 KB)
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os_android.go
(463 B)
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os_darwin.go
(11.92 KB)
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os_darwin_arm64.go
(329 B)
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os_dragonfly.go
(7.14 KB)
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os_freebsd.go
(11.64 KB)
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os_freebsd2.go
(603 B)
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os_freebsd_amd64.go
(658 B)
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os_freebsd_arm.go
(1.45 KB)
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os_freebsd_arm64.go
(320 B)
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os_freebsd_noauxv.go
(241 B)
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os_freebsd_riscv64.go
(198 B)
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os_illumos.go
(3.93 KB)
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os_js.go
(767 B)
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os_linux.go
(25.71 KB)
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os_linux_arm.go
(1.51 KB)
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os_linux_arm64.go
(478 B)
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os_linux_be64.go
(806 B)
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os_linux_generic.go
(870 B)
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os_linux_loong64.go
(263 B)
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os_linux_mips64x.go
(996 B)
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os_linux_mipsx.go
(987 B)
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os_linux_noauxv.go
(337 B)
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os_linux_novdso.go
(347 B)
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os_linux_ppc64x.go
(526 B)
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os_linux_riscv64.go
(198 B)
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os_linux_s390x.go
(825 B)
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os_linux_x86.go
(234 B)
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os_netbsd.go
(10.12 KB)
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os_netbsd_386.go
(617 B)
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os_netbsd_amd64.go
(614 B)
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os_netbsd_arm.go
(1.07 KB)
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os_netbsd_arm64.go
(769 B)
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os_nonopenbsd.go
(437 B)
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os_only_solaris.go
(357 B)
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os_openbsd.go
(6.23 KB)
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os_openbsd_arm.go
(662 B)
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os_openbsd_arm64.go
(329 B)
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os_openbsd_libc.go
(1.49 KB)
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os_openbsd_mips64.go
(329 B)
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os_openbsd_syscall.go
(1.36 KB)
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os_openbsd_syscall1.go
(441 B)
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os_openbsd_syscall2.go
(2.51 KB)
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os_plan9.go
(10.18 KB)
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os_plan9_arm.go
(375 B)
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os_solaris.go
(6.62 KB)
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os_unix.go
(436 B)
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os_unix_nonlinux.go
(374 B)
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os_wasip1.go
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Editing: hash_test.go
// Copyright 2013 The Go Authors. All rights reserved. // Use of this source code is governed by a BSD-style // license that can be found in the LICENSE file. package runtime_test import ( "fmt" "internal/race" "math" "math/rand" . "runtime" "strings" "testing" "unsafe" ) func TestMemHash32Equality(t *testing.T) { if *UseAeshash { t.Skip("skipping since AES hash implementation is used") } var b [4]byte r := rand.New(rand.NewSource(1234)) seed := uintptr(r.Uint64()) for i := 0; i < 100; i++ { randBytes(r, b[:]) got := MemHash32(unsafe.Pointer(&b), seed) want := MemHash(unsafe.Pointer(&b), seed, 4) if got != want { t.Errorf("MemHash32(%x, %v) = %v; want %v", b, seed, got, want) } } } func TestMemHash64Equality(t *testing.T) { if *UseAeshash { t.Skip("skipping since AES hash implementation is used") } var b [8]byte r := rand.New(rand.NewSource(1234)) seed := uintptr(r.Uint64()) for i := 0; i < 100; i++ { randBytes(r, b[:]) got := MemHash64(unsafe.Pointer(&b), seed) want := MemHash(unsafe.Pointer(&b), seed, 8) if got != want { t.Errorf("MemHash64(%x, %v) = %v; want %v", b, seed, got, want) } } } // Smhasher is a torture test for hash functions. // https://code.google.com/p/smhasher/ // This code is a port of some of the Smhasher tests to Go. // // The current AES hash function passes Smhasher. Our fallback // hash functions don't, so we only enable the difficult tests when // we know the AES implementation is available. // Sanity checks. // hash should not depend on values outside key. // hash should not depend on alignment. func TestSmhasherSanity(t *testing.T) { r := rand.New(rand.NewSource(1234)) const REP = 10 const KEYMAX = 128 const PAD = 16 const OFFMAX = 16 for k := 0; k < REP; k++ { for n := 0; n < KEYMAX; n++ { for i := 0; i < OFFMAX; i++ { var b [KEYMAX + OFFMAX + 2*PAD]byte var c [KEYMAX + OFFMAX + 2*PAD]byte randBytes(r, b[:]) randBytes(r, c[:]) copy(c[PAD+i:PAD+i+n], b[PAD:PAD+n]) if BytesHash(b[PAD:PAD+n], 0) != BytesHash(c[PAD+i:PAD+i+n], 0) { t.Errorf("hash depends on bytes outside key") } } } } } type HashSet struct { m map[uintptr]struct{} // set of hashes added n int // number of hashes added } func newHashSet() *HashSet { return &HashSet{make(map[uintptr]struct{}), 0} } func (s *HashSet) add(h uintptr) { s.m[h] = struct{}{} s.n++ } func (s *HashSet) addS(x string) { s.add(StringHash(x, 0)) } func (s *HashSet) addB(x []byte) { s.add(BytesHash(x, 0)) } func (s *HashSet) addS_seed(x string, seed uintptr) { s.add(StringHash(x, seed)) } func (s *HashSet) check(t *testing.T) { const SLOP = 50.0 collisions := s.n - len(s.m) pairs := int64(s.n) * int64(s.n-1) / 2 expected := float64(pairs) / math.Pow(2.0, float64(hashSize)) stddev := math.Sqrt(expected) if float64(collisions) > expected+SLOP*(3*stddev+1) { t.Errorf("unexpected number of collisions: got=%d mean=%f stddev=%f threshold=%f", collisions, expected, stddev, expected+SLOP*(3*stddev+1)) } } // a string plus adding zeros must make distinct hashes func TestSmhasherAppendedZeros(t *testing.T) { s := "hello" + strings.Repeat("\x00", 256) h := newHashSet() for i := 0; i <= len(s); i++ { h.addS(s[:i]) } h.check(t) } // All 0-3 byte strings have distinct hashes. func TestSmhasherSmallKeys(t *testing.T) { if race.Enabled { t.Skip("Too long for race mode") } h := newHashSet() var b [3]byte for i := 0; i < 256; i++ { b[0] = byte(i) h.addB(b[:1]) for j := 0; j < 256; j++ { b[1] = byte(j) h.addB(b[:2]) if !testing.Short() { for k := 0; k < 256; k++ { b[2] = byte(k) h.addB(b[:3]) } } } } h.check(t) } // Different length strings of all zeros have distinct hashes. func TestSmhasherZeros(t *testing.T) { N := 256 * 1024 if testing.Short() { N = 1024 } h := newHashSet() b := make([]byte, N) for i := 0; i <= N; i++ { h.addB(b[:i]) } h.check(t) } // Strings with up to two nonzero bytes all have distinct hashes. func TestSmhasherTwoNonzero(t *testing.T) { if GOARCH == "wasm" { t.Skip("Too slow on wasm") } if testing.Short() { t.Skip("Skipping in short mode") } if race.Enabled { t.Skip("Too long for race mode") } h := newHashSet() for n := 2; n <= 16; n++ { twoNonZero(h, n) } h.check(t) } func twoNonZero(h *HashSet, n int) { b := make([]byte, n) // all zero h.addB(b) // one non-zero byte for i := 0; i < n; i++ { for x := 1; x < 256; x++ { b[i] = byte(x) h.addB(b) b[i] = 0 } } // two non-zero bytes for i := 0; i < n; i++ { for x := 1; x < 256; x++ { b[i] = byte(x) for j := i + 1; j < n; j++ { for y := 1; y < 256; y++ { b[j] = byte(y) h.addB(b) b[j] = 0 } } b[i] = 0 } } } // Test strings with repeats, like "abcdabcdabcdabcd..." func TestSmhasherCyclic(t *testing.T) { if testing.Short() { t.Skip("Skipping in short mode") } if race.Enabled { t.Skip("Too long for race mode") } r := rand.New(rand.NewSource(1234)) const REPEAT = 8 const N = 1000000 for n := 4; n <= 12; n++ { h := newHashSet() b := make([]byte, REPEAT*n) for i := 0; i < N; i++ { b[0] = byte(i * 79 % 97) b[1] = byte(i * 43 % 137) b[2] = byte(i * 151 % 197) b[3] = byte(i * 199 % 251) randBytes(r, b[4:n]) for j := n; j < n*REPEAT; j++ { b[j] = b[j-n] } h.addB(b) } h.check(t) } } // Test strings with only a few bits set func TestSmhasherSparse(t *testing.T) { if GOARCH == "wasm" { t.Skip("Too slow on wasm") } if testing.Short() { t.Skip("Skipping in short mode") } sparse(t, 32, 6) sparse(t, 40, 6) sparse(t, 48, 5) sparse(t, 56, 5) sparse(t, 64, 5) sparse(t, 96, 4) sparse(t, 256, 3) sparse(t, 2048, 2) } func sparse(t *testing.T, n int, k int) { b := make([]byte, n/8) h := newHashSet() setbits(h, b, 0, k) h.check(t) } // set up to k bits at index i and greater func setbits(h *HashSet, b []byte, i int, k int) { h.addB(b) if k == 0 { return } for j := i; j < len(b)*8; j++ { b[j/8] |= byte(1 << uint(j&7)) setbits(h, b, j+1, k-1) b[j/8] &= byte(^(1 << uint(j&7))) } } // Test all possible combinations of n blocks from the set s. // "permutation" is a bad name here, but it is what Smhasher uses. func TestSmhasherPermutation(t *testing.T) { if GOARCH == "wasm" { t.Skip("Too slow on wasm") } if testing.Short() { t.Skip("Skipping in short mode") } if race.Enabled { t.Skip("Too long for race mode") } permutation(t, []uint32{0, 1, 2, 3, 4, 5, 6, 7}, 8) permutation(t, []uint32{0, 1 << 29, 2 << 29, 3 << 29, 4 << 29, 5 << 29, 6 << 29, 7 << 29}, 8) permutation(t, []uint32{0, 1}, 20) permutation(t, []uint32{0, 1 << 31}, 20) permutation(t, []uint32{0, 1, 2, 3, 4, 5, 6, 7, 1 << 29, 2 << 29, 3 << 29, 4 << 29, 5 << 29, 6 << 29, 7 << 29}, 6) } func permutation(t *testing.T, s []uint32, n int) { b := make([]byte, n*4) h := newHashSet() genPerm(h, b, s, 0) h.check(t) } func genPerm(h *HashSet, b []byte, s []uint32, n int) { h.addB(b[:n]) if n == len(b) { return } for _, v := range s { b[n] = byte(v) b[n+1] = byte(v >> 8) b[n+2] = byte(v >> 16) b[n+3] = byte(v >> 24) genPerm(h, b, s, n+4) } } type Key interface { clear() // set bits all to 0 random(r *rand.Rand) // set key to something random bits() int // how many bits key has flipBit(i int) // flip bit i of the key hash() uintptr // hash the key name() string // for error reporting } type BytesKey struct { b []byte } func (k *BytesKey) clear() { for i := range k.b { k.b[i] = 0 } } func (k *BytesKey) random(r *rand.Rand) { randBytes(r, k.b) } func (k *BytesKey) bits() int { return len(k.b) * 8 } func (k *BytesKey) flipBit(i int) { k.b[i>>3] ^= byte(1 << uint(i&7)) } func (k *BytesKey) hash() uintptr { return BytesHash(k.b, 0) } func (k *BytesKey) name() string { return fmt.Sprintf("bytes%d", len(k.b)) } type Int32Key struct { i uint32 } func (k *Int32Key) clear() { k.i = 0 } func (k *Int32Key) random(r *rand.Rand) { k.i = r.Uint32() } func (k *Int32Key) bits() int { return 32 } func (k *Int32Key) flipBit(i int) { k.i ^= 1 << uint(i) } func (k *Int32Key) hash() uintptr { return Int32Hash(k.i, 0) } func (k *Int32Key) name() string { return "int32" } type Int64Key struct { i uint64 } func (k *Int64Key) clear() { k.i = 0 } func (k *Int64Key) random(r *rand.Rand) { k.i = uint64(r.Uint32()) + uint64(r.Uint32())<<32 } func (k *Int64Key) bits() int { return 64 } func (k *Int64Key) flipBit(i int) { k.i ^= 1 << uint(i) } func (k *Int64Key) hash() uintptr { return Int64Hash(k.i, 0) } func (k *Int64Key) name() string { return "int64" } type EfaceKey struct { i any } func (k *EfaceKey) clear() { k.i = nil } func (k *EfaceKey) random(r *rand.Rand) { k.i = uint64(r.Int63()) } func (k *EfaceKey) bits() int { // use 64 bits. This tests inlined interfaces // on 64-bit targets and indirect interfaces on // 32-bit targets. return 64 } func (k *EfaceKey) flipBit(i int) { k.i = k.i.(uint64) ^ uint64(1)<<uint(i) } func (k *EfaceKey) hash() uintptr { return EfaceHash(k.i, 0) } func (k *EfaceKey) name() string { return "Eface" } type IfaceKey struct { i interface { F() } } type fInter uint64 func (x fInter) F() { } func (k *IfaceKey) clear() { k.i = nil } func (k *IfaceKey) random(r *rand.Rand) { k.i = fInter(r.Int63()) } func (k *IfaceKey) bits() int { // use 64 bits. This tests inlined interfaces // on 64-bit targets and indirect interfaces on // 32-bit targets. return 64 } func (k *IfaceKey) flipBit(i int) { k.i = k.i.(fInter) ^ fInter(1)<<uint(i) } func (k *IfaceKey) hash() uintptr { return IfaceHash(k.i, 0) } func (k *IfaceKey) name() string { return "Iface" } // Flipping a single bit of a key should flip each output bit with 50% probability. func TestSmhasherAvalanche(t *testing.T) { if GOARCH == "wasm" { t.Skip("Too slow on wasm") } if testing.Short() { t.Skip("Skipping in short mode") } if race.Enabled { t.Skip("Too long for race mode") } avalancheTest1(t, &BytesKey{make([]byte, 2)}) avalancheTest1(t, &BytesKey{make([]byte, 4)}) avalancheTest1(t, &BytesKey{make([]byte, 8)}) avalancheTest1(t, &BytesKey{make([]byte, 16)}) avalancheTest1(t, &BytesKey{make([]byte, 32)}) avalancheTest1(t, &BytesKey{make([]byte, 200)}) avalancheTest1(t, &Int32Key{}) avalancheTest1(t, &Int64Key{}) avalancheTest1(t, &EfaceKey{}) avalancheTest1(t, &IfaceKey{}) } func avalancheTest1(t *testing.T, k Key) { const REP = 100000 r := rand.New(rand.NewSource(1234)) n := k.bits() // grid[i][j] is a count of whether flipping // input bit i affects output bit j. grid := make([][hashSize]int, n) for z := 0; z < REP; z++ { // pick a random key, hash it k.random(r) h := k.hash() // flip each bit, hash & compare the results for i := 0; i < n; i++ { k.flipBit(i) d := h ^ k.hash() k.flipBit(i) // record the effects of that bit flip g := &grid[i] for j := 0; j < hashSize; j++ { g[j] += int(d & 1) d >>= 1 } } } // Each entry in the grid should be about REP/2. // More precisely, we did N = k.bits() * hashSize experiments where // each is the sum of REP coin flips. We want to find bounds on the // sum of coin flips such that a truly random experiment would have // all sums inside those bounds with 99% probability. N := n * hashSize var c float64 // find c such that Prob(mean-c*stddev < x < mean+c*stddev)^N > .9999 for c = 0.0; math.Pow(math.Erf(c/math.Sqrt(2)), float64(N)) < .9999; c += .1 { } c *= 11.0 // allowed slack: 40% to 60% - we don't need to be perfectly random mean := .5 * REP stddev := .5 * math.Sqrt(REP) low := int(mean - c*stddev) high := int(mean + c*stddev) for i := 0; i < n; i++ { for j := 0; j < hashSize; j++ { x := grid[i][j] if x < low || x > high { t.Errorf("bad bias for %s bit %d -> bit %d: %d/%d\n", k.name(), i, j, x, REP) } } } } // All bit rotations of a set of distinct keys func TestSmhasherWindowed(t *testing.T) { if race.Enabled { t.Skip("Too long for race mode") } t.Logf("32 bit keys") windowed(t, &Int32Key{}) t.Logf("64 bit keys") windowed(t, &Int64Key{}) t.Logf("string keys") windowed(t, &BytesKey{make([]byte, 128)}) } func windowed(t *testing.T, k Key) { if GOARCH == "wasm" { t.Skip("Too slow on wasm") } if PtrSize == 4 { // This test tends to be flaky on 32-bit systems. // There's not enough bits in the hash output, so we // expect a nontrivial number of collisions, and it is // often quite a bit higher than expected. See issue 43130. t.Skip("Flaky on 32-bit systems") } if testing.Short() { t.Skip("Skipping in short mode") } const BITS = 16 for r := 0; r < k.bits(); r++ { h := newHashSet() for i := 0; i < 1<<BITS; i++ { k.clear() for j := 0; j < BITS; j++ { if i>>uint(j)&1 != 0 { k.flipBit((j + r) % k.bits()) } } h.add(k.hash()) } h.check(t) } } // All keys of the form prefix + [A-Za-z0-9]*N + suffix. func TestSmhasherText(t *testing.T) { if testing.Short() { t.Skip("Skipping in short mode") } text(t, "Foo", "Bar") text(t, "FooBar", "") text(t, "", "FooBar") } func text(t *testing.T, prefix, suffix string) { const N = 4 const S = "ABCDEFGHIJKLMNOPQRSTabcdefghijklmnopqrst0123456789" const L = len(S) b := make([]byte, len(prefix)+N+len(suffix)) copy(b, prefix) copy(b[len(prefix)+N:], suffix) h := newHashSet() c := b[len(prefix):] for i := 0; i < L; i++ { c[0] = S[i] for j := 0; j < L; j++ { c[1] = S[j] for k := 0; k < L; k++ { c[2] = S[k] for x := 0; x < L; x++ { c[3] = S[x] h.addB(b) } } } } h.check(t) } // Make sure different seed values generate different hashes. func TestSmhasherSeed(t *testing.T) { h := newHashSet() const N = 100000 s := "hello" for i := 0; i < N; i++ { h.addS_seed(s, uintptr(i)) } h.check(t) } // size of the hash output (32 or 64 bits) const hashSize = 32 + int(^uintptr(0)>>63<<5) func randBytes(r *rand.Rand, b []byte) { for i := range b { b[i] = byte(r.Uint32()) } } func benchmarkHash(b *testing.B, n int) { s := strings.Repeat("A", n) for i := 0; i < b.N; i++ { StringHash(s, 0) } b.SetBytes(int64(n)) } func BenchmarkHash5(b *testing.B) { benchmarkHash(b, 5) } func BenchmarkHash16(b *testing.B) { benchmarkHash(b, 16) } func BenchmarkHash64(b *testing.B) { benchmarkHash(b, 64) } func BenchmarkHash1024(b *testing.B) { benchmarkHash(b, 1024) } func BenchmarkHash65536(b *testing.B) { benchmarkHash(b, 65536) } func TestArrayHash(t *testing.T) { // Make sure that "" in arrays hash correctly. The hash // should at least scramble the input seed so that, e.g., // {"","foo"} and {"foo",""} have different hashes. // If the hash is bad, then all (8 choose 4) = 70 keys // have the same hash. If so, we allocate 70/8 = 8 // overflow buckets. If the hash is good we don't // normally allocate any overflow buckets, and the // probability of even one or two overflows goes down rapidly. // (There is always 1 allocation of the bucket array. The map // header is allocated on the stack.) f := func() { // Make the key type at most 128 bytes. Otherwise, // we get an allocation per key. type key [8]string m := make(map[key]bool, 70) // fill m with keys that have 4 "foo"s and 4 ""s. for i := 0; i < 256; i++ { var k key cnt := 0 for j := uint(0); j < 8; j++ { if i>>j&1 != 0 { k[j] = "foo" cnt++ } } if cnt == 4 { m[k] = true } } if len(m) != 70 { t.Errorf("bad test: (8 choose 4) should be 70, not %d", len(m)) } } if n := testing.AllocsPerRun(10, f); n > 6 { t.Errorf("too many allocs %f - hash not balanced", n) } } func TestStructHash(t *testing.T) { // See the comment in TestArrayHash. f := func() { type key struct { a, b, c, d, e, f, g, h string } m := make(map[key]bool, 70) // fill m with keys that have 4 "foo"s and 4 ""s. for i := 0; i < 256; i++ { var k key cnt := 0 if i&1 != 0 { k.a = "foo" cnt++ } if i&2 != 0 { k.b = "foo" cnt++ } if i&4 != 0 { k.c = "foo" cnt++ } if i&8 != 0 { k.d = "foo" cnt++ } if i&16 != 0 { k.e = "foo" cnt++ } if i&32 != 0 { k.f = "foo" cnt++ } if i&64 != 0 { k.g = "foo" cnt++ } if i&128 != 0 { k.h = "foo" cnt++ } if cnt == 4 { m[k] = true } } if len(m) != 70 { t.Errorf("bad test: (8 choose 4) should be 70, not %d", len(m)) } } if n := testing.AllocsPerRun(10, f); n > 6 { t.Errorf("too many allocs %f - hash not balanced", n) } } var sink uint64 func BenchmarkAlignedLoad(b *testing.B) { var buf [16]byte p := unsafe.Pointer(&buf[0]) var s uint64 for i := 0; i < b.N; i++ { s += ReadUnaligned64(p) } sink = s } func BenchmarkUnalignedLoad(b *testing.B) { var buf [16]byte p := unsafe.Pointer(&buf[1]) var s uint64 for i := 0; i < b.N; i++ { s += ReadUnaligned64(p) } sink = s } func TestCollisions(t *testing.T) { if testing.Short() { t.Skip("Skipping in short mode") } for i := 0; i < 16; i++ { for j := 0; j < 16; j++ { if j == i { continue } var a [16]byte m := make(map[uint16]struct{}, 1<<16) for n := 0; n < 1<<16; n++ { a[i] = byte(n) a[j] = byte(n >> 8) m[uint16(BytesHash(a[:], 0))] = struct{}{} } // N balls in N bins, for N=65536 avg := 41427 stdDev := 123 if len(m) < avg-40*stdDev || len(m) > avg+40*stdDev { t.Errorf("bad number of collisions i=%d j=%d outputs=%d out of 65536\n", i, j, len(m)) } } } }
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