214 lines
5.5 KiB
Go
214 lines
5.5 KiB
Go
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//go:build darwin && arm64 && cgo
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package m1cpu
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// #cgo LDFLAGS: -framework CoreFoundation -framework IOKit
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// #include <AvailabilityMacros.h>
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// #include <CoreFoundation/CoreFoundation.h>
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// #include <IOKit/IOKitLib.h>
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// #include <sys/sysctl.h>
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//
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// #if !defined(MAC_OS_VERSION_12_0) || MAC_OS_X_VERSION_MIN_REQUIRED < MAC_OS_VERSION_12_0
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// #define kIOMainPortDefault kIOMasterPortDefault
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// #endif
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//
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// #define HzToGHz(hz) ((hz) / 1000000000.0)
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//
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// UInt64 global_pCoreHz;
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// UInt64 global_eCoreHz;
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// int global_pCoreCount;
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// int global_eCoreCount;
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// int global_pCoreL1InstCacheSize;
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// int global_eCoreL1InstCacheSize;
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// int global_pCoreL1DataCacheSize;
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// int global_eCoreL1DataCacheSize;
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// int global_pCoreL2CacheSize;
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// int global_eCoreL2CacheSize;
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// char global_brand[32];
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//
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// UInt64 getFrequency(CFTypeRef typeRef) {
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// CFDataRef cfData = typeRef;
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//
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// CFIndex size = CFDataGetLength(cfData);
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// UInt8 buf[size];
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// CFDataGetBytes(cfData, CFRangeMake(0, size), buf);
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//
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// UInt8 b1 = buf[size-5];
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// UInt8 b2 = buf[size-6];
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// UInt8 b3 = buf[size-7];
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// UInt8 b4 = buf[size-8];
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//
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// UInt64 pCoreHz = 0x00000000FFFFFFFF & ((b1<<24) | (b2 << 16) | (b3 << 8) | (b4));
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// return pCoreHz;
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// }
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//
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// int sysctl_int(const char * name) {
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// int value = -1;
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// size_t size = 8;
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// sysctlbyname(name, &value, &size, NULL, 0);
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// return value;
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// }
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//
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// void sysctl_string(const char * name, char * dest) {
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// size_t size = 32;
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// sysctlbyname(name, dest, &size, NULL, 0);
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// }
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//
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// void initialize() {
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// global_pCoreCount = sysctl_int("hw.perflevel0.physicalcpu");
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// global_eCoreCount = sysctl_int("hw.perflevel1.physicalcpu");
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// global_pCoreL1InstCacheSize = sysctl_int("hw.perflevel0.l1icachesize");
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// global_eCoreL1InstCacheSize = sysctl_int("hw.perflevel1.l1icachesize");
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// global_pCoreL1DataCacheSize = sysctl_int("hw.perflevel0.l1dcachesize");
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// global_eCoreL1DataCacheSize = sysctl_int("hw.perflevel1.l1dcachesize");
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// global_pCoreL2CacheSize = sysctl_int("hw.perflevel0.l2cachesize");
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// global_eCoreL2CacheSize = sysctl_int("hw.perflevel1.l2cachesize");
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// sysctl_string("machdep.cpu.brand_string", global_brand);
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//
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// CFMutableDictionaryRef matching = IOServiceMatching("AppleARMIODevice");
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// io_iterator_t iter;
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// IOServiceGetMatchingServices(kIOMainPortDefault, matching, &iter);
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//
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// const size_t bufsize = 512;
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// io_object_t obj;
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// while ((obj = IOIteratorNext(iter))) {
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// char class[bufsize];
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// IOObjectGetClass(obj, class);
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// char name[bufsize];
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// IORegistryEntryGetName(obj, name);
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//
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// if (strncmp(name, "pmgr", bufsize) == 0) {
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// CFTypeRef pCoreRef = IORegistryEntryCreateCFProperty(obj, CFSTR("voltage-states5-sram"), kCFAllocatorDefault, 0);
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// CFTypeRef eCoreRef = IORegistryEntryCreateCFProperty(obj, CFSTR("voltage-states1-sram"), kCFAllocatorDefault, 0);
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//
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// long long pCoreHz = getFrequency(pCoreRef);
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// long long eCoreHz = getFrequency(eCoreRef);
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//
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// global_pCoreHz = pCoreHz;
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// global_eCoreHz = eCoreHz;
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// return;
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// }
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// }
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// }
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//
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// UInt64 eCoreHz() {
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// return global_eCoreHz;
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// }
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//
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// UInt64 pCoreHz() {
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// return global_pCoreHz;
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// }
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//
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// Float64 eCoreGHz() {
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// return HzToGHz(global_eCoreHz);
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// }
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//
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// Float64 pCoreGHz() {
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// return HzToGHz(global_pCoreHz);
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// }
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//
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// int pCoreCount() {
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// return global_pCoreCount;
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// }
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//
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// int eCoreCount() {
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// return global_eCoreCount;
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// }
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//
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// int pCoreL1InstCacheSize() {
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// return global_pCoreL1InstCacheSize;
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// }
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//
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// int pCoreL1DataCacheSize() {
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// return global_pCoreL1DataCacheSize;
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// }
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//
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// int pCoreL2CacheSize() {
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// return global_pCoreL2CacheSize;
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// }
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//
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// int eCoreL1InstCacheSize() {
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// return global_eCoreL1InstCacheSize;
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// }
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//
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// int eCoreL1DataCacheSize() {
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// return global_eCoreL1DataCacheSize;
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// }
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//
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// int eCoreL2CacheSize() {
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// return global_eCoreL2CacheSize;
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// }
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//
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// char * modelName() {
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// return global_brand;
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// }
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import "C"
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func init() {
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C.initialize()
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}
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// IsAppleSilicon returns true on this platform.
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func IsAppleSilicon() bool {
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return true
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}
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// PCoreHZ returns the max frequency in Hertz of the P-Core of an Apple Silicon CPU.
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func PCoreHz() uint64 {
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return uint64(C.pCoreHz())
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}
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// ECoreHZ returns the max frequency in Hertz of the E-Core of an Apple Silicon CPU.
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func ECoreHz() uint64 {
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return uint64(C.eCoreHz())
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}
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// PCoreGHz returns the max frequency in Gigahertz of the P-Core of an Apple Silicon CPU.
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func PCoreGHz() float64 {
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return float64(C.pCoreGHz())
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}
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// ECoreGHz returns the max frequency in Gigahertz of the E-Core of an Apple Silicon CPU.
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func ECoreGHz() float64 {
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return float64(C.eCoreGHz())
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}
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// PCoreCount returns the number of physical P (performance) cores.
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func PCoreCount() int {
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return int(C.pCoreCount())
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}
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// ECoreCount returns the number of physical E (efficiency) cores.
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func ECoreCount() int {
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return int(C.eCoreCount())
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}
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// PCoreCacheSize returns the sizes of the P (performance) core cache sizes
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// in the order of
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//
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// - L1 instruction cache
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// - L1 data cache
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// - L2 cache
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func PCoreCache() (int, int, int) {
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return int(C.pCoreL1InstCacheSize()),
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int(C.pCoreL1DataCacheSize()),
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int(C.pCoreL2CacheSize())
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}
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// ECoreCacheSize returns the sizes of the E (efficiency) core cache sizes
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// in the order of
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//
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// - L1 instruction cache
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// - L1 data cache
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// - L2 cache
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func ECoreCache() (int, int, int) {
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return int(C.eCoreL1InstCacheSize()),
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int(C.eCoreL1DataCacheSize()),
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int(C.eCoreL2CacheSize())
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}
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// ModelName returns the model name of the CPU.
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func ModelName() string {
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return C.GoString(C.modelName())
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}
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