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#if defined(_MSC_VER)
#define _SILENCE_CXX17_CODECVT_HEADER_DEPRECATION_WARNING
#endif
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#include "ggml.h"
#include "gguf.h"
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#include "common.h"
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#include "log.h"
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// Change JSON_ASSERT from assert() to GGML_ASSERT:
#define JSON_ASSERT GGML_ASSERT
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#include "json.hpp"
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#include "llama.h"
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#include <algorithm>
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#include <cinttypes>
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#include <climits>
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#include <cmath>
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#include <codecvt>
#include <cstdarg>
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#include <cstring>
#include <ctime>
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#include <filesystem>
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#include <fstream>
#include <iostream>
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#include <iterator>
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#include <regex>
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#include <sstream>
#include <string>
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#include <thread>
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#include <unordered_map>
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#include <unordered_set>
#include <vector>
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#if defined(__APPLE__) && defined(__MACH__)
#include <sys/types.h>
#include <sys/sysctl.h>
#endif
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#if defined(_WIN32)
#define WIN32_LEAN_AND_MEAN
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#ifndef NOMINMAX
# define NOMINMAX
#endif
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#include <locale>
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#include <windows.h>
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#include <fcntl.h>
#include <io.h>
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#else
#include <sys/ioctl.h>
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#include <sys/stat.h>
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#include <unistd.h>
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#endif
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#if defined(LLAMA_USE_CURL)
#include <curl/curl.h>
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#include <curl/easy.h>
#include <future>
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#endif
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#if defined(_MSC_VER)
#pragma warning(disable: 4244 4267) // possible loss of data
#endif
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#if defined(LLAMA_USE_CURL)
#ifdef __linux__
#include <linux/limits.h>
#elif defined(_WIN32)
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# if !defined(PATH_MAX)
# define PATH_MAX MAX_PATH
# endif
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#else
#include <sys/syslimits.h>
#endif
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#define LLAMA_CURL_MAX_URL_LENGTH 2084 // Maximum URL Length in Chrome: 2083
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//
// CURL utils
//
using curl_ptr = std :: unique_ptr < CURL , decltype ( & curl_easy_cleanup ) > ;
// cannot use unique_ptr for curl_slist, because we cannot update without destroying the old one
struct curl_slist_ptr {
struct curl_slist * ptr = nullptr ;
~ curl_slist_ptr () {
if ( ptr ) {
curl_slist_free_all ( ptr );
}
}
};
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#endif // LLAMA_USE_CURL
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using json = nlohmann :: ordered_json ;
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//
// CPU utils
//
int32_t cpu_get_num_physical_cores () {
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#ifdef __linux__
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// enumerate the set of thread siblings, num entries is num cores
std :: unordered_set < std :: string > siblings ;
for ( uint32_t cpu = 0 ; cpu < UINT32_MAX ; ++ cpu ) {
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std :: ifstream thread_siblings ( "/sys/devices/system/cpu/cpu"
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+ std :: to_string ( cpu ) + "/topology/thread_siblings" );
if ( ! thread_siblings . is_open ()) {
break ; // no more cpus
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}
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std :: string line ;
if ( std :: getline ( thread_siblings , line )) {
siblings . insert ( line );
}
}
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if ( ! siblings . empty ()) {
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return static_cast < int32_t > ( siblings . size ());
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}
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#elif defined(__APPLE__) && defined(__MACH__)
int32_t num_physical_cores ;
size_t len = sizeof ( num_physical_cores );
int result = sysctlbyname ( "hw.perflevel0.physicalcpu" , & num_physical_cores , & len , NULL , 0 );
if ( result == 0 ) {
return num_physical_cores ;
}
result = sysctlbyname ( "hw.physicalcpu" , & num_physical_cores , & len , NULL , 0 );
if ( result == 0 ) {
return num_physical_cores ;
}
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#elif defined(_WIN32) && (_WIN32_WINNT >= 0x0601) && !defined(__MINGW64__) // windows 7 and later
// TODO: windows + arm64 + mingw64
unsigned int n_threads_win = std :: thread :: hardware_concurrency ();
unsigned int default_threads = n_threads_win > 0 ? ( n_threads_win <= 4 ? n_threads_win : n_threads_win / 2 ) : 4 ;
DWORD buffer_size = 0 ;
if ( ! GetLogicalProcessorInformationEx ( RelationProcessorCore , nullptr , & buffer_size )) {
if ( GetLastError () != ERROR_INSUFFICIENT_BUFFER ) {
return default_threads ;
}
}
std :: vector < char > buffer ( buffer_size );
if ( ! GetLogicalProcessorInformationEx ( RelationProcessorCore , reinterpret_cast < PSYSTEM_LOGICAL_PROCESSOR_INFORMATION_EX > ( buffer . data ()), & buffer_size )) {
return default_threads ;
}
int32_t num_physical_cores = 0 ;
PSYSTEM_LOGICAL_PROCESSOR_INFORMATION_EX info = reinterpret_cast < PSYSTEM_LOGICAL_PROCESSOR_INFORMATION_EX > ( buffer . data ());
while ( buffer_size > 0 ) {
if ( info -> Relationship == RelationProcessorCore ) {
num_physical_cores += info -> Processor . GroupCount ;
}
buffer_size -= info -> Size ;
info = reinterpret_cast < PSYSTEM_LOGICAL_PROCESSOR_INFORMATION_EX > ( reinterpret_cast < char *> ( info ) + info -> Size );
}
return num_physical_cores > 0 ? num_physical_cores : default_threads ;
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#endif
unsigned int n_threads = std :: thread :: hardware_concurrency ();
return n_threads > 0 ? ( n_threads <= 4 ? n_threads : n_threads / 2 ) : 4 ;
}
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#if defined(__x86_64__) && defined(__linux__) && !defined(__ANDROID__)
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#include <pthread.h>
static void cpuid ( unsigned leaf , unsigned subleaf ,
unsigned * eax , unsigned * ebx , unsigned * ecx , unsigned * edx ) {
__asm__ ( "movq \t %%rbx,%%rsi \n\t "
"cpuid \n\t "
"xchgq \t %%rbx,%%rsi"
: "=a" ( * eax ), "=S" ( * ebx ), "=c" ( * ecx ), "=d" ( * edx )
: "0" ( leaf ), "2" ( subleaf ));
}
static int pin_cpu ( int cpu ) {
cpu_set_t mask ;
CPU_ZERO ( & mask );
CPU_SET ( cpu , & mask );
return pthread_setaffinity_np ( pthread_self (), sizeof ( mask ), & mask );
}
static bool is_hybrid_cpu ( void ) {
unsigned eax , ebx , ecx , edx ;
cpuid ( 7 , 0 , & eax , & ebx , & ecx , & edx );
return !! ( edx & ( 1u << 15 ));
}
static bool is_running_on_efficiency_core ( void ) {
unsigned eax , ebx , ecx , edx ;
cpuid ( 0x1a , 0 , & eax , & ebx , & ecx , & edx );
int intel_atom = 0x20 ;
int core_type = ( eax & 0xff000000u ) >> 24 ;
return core_type == intel_atom ;
}
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static int cpu_count_math_cpus ( int n_cpu ) {
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int result = 0 ;
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for ( int cpu = 0 ; cpu < n_cpu ; ++ cpu ) {
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if ( pin_cpu ( cpu )) {
return - 1 ;
}
if ( is_running_on_efficiency_core ()) {
continue ; // efficiency cores harm lockstep threading
}
++ cpu ; // hyperthreading isn't useful for linear algebra
++ result ;
}
return result ;
}
#endif // __x86_64__ && __linux__
/**
* Returns number of CPUs on system that are useful for math.
*/
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int32_t cpu_get_num_math () {
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#if defined(__x86_64__) && defined(__linux__) && !defined(__ANDROID__)
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int n_cpu = sysconf ( _SC_NPROCESSORS_ONLN );
if ( n_cpu < 1 ) {
return cpu_get_num_physical_cores ();
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}
if ( is_hybrid_cpu ()) {
cpu_set_t affinity ;
if ( ! pthread_getaffinity_np ( pthread_self (), sizeof ( affinity ), & affinity )) {
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int result = cpu_count_math_cpus ( n_cpu );
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pthread_setaffinity_np ( pthread_self (), sizeof ( affinity ), & affinity );
if ( result > 0 ) {
return result ;
}
}
}
#endif
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return cpu_get_num_physical_cores ();
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}
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// Helper for setting process priority
#if defined(_WIN32)
bool set_process_priority ( enum ggml_sched_priority prio ) {
if ( prio == GGML_SCHED_PRIO_NORMAL ) {
return true ;
}
DWORD p = NORMAL_PRIORITY_CLASS ;
switch ( prio ) {
case GGML_SCHED_PRIO_NORMAL : p = NORMAL_PRIORITY_CLASS ; break ;
case GGML_SCHED_PRIO_MEDIUM : p = ABOVE_NORMAL_PRIORITY_CLASS ; break ;
case GGML_SCHED_PRIO_HIGH : p = HIGH_PRIORITY_CLASS ; break ;
case GGML_SCHED_PRIO_REALTIME : p = REALTIME_PRIORITY_CLASS ; break ;
}
if ( ! SetPriorityClass ( GetCurrentProcess (), p )) {
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LOG_WRN ( "failed to set process priority class %d : (%d) \n " , prio , ( int ) GetLastError ());
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return false ;
}
return true ;
}
#else // MacOS and POSIX
#include <sys/types.h>
#include <sys/resource.h>
bool set_process_priority ( enum ggml_sched_priority prio ) {
if ( prio == GGML_SCHED_PRIO_NORMAL ) {
return true ;
}
int p = 0 ;
switch ( prio ) {
case GGML_SCHED_PRIO_NORMAL : p = 0 ; break ;
case GGML_SCHED_PRIO_MEDIUM : p = - 5 ; break ;
case GGML_SCHED_PRIO_HIGH : p = - 10 ; break ;
case GGML_SCHED_PRIO_REALTIME : p = - 20 ; break ;
}
if ( ! setpriority ( PRIO_PROCESS , 0 , p )) {
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LOG_WRN ( "failed to set process priority %d : %s (%d) \n " , prio , strerror ( errno ), errno );
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return false ;
}
return true ;
}
#endif
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//
// CLI argument parsing
//
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void postprocess_cpu_params ( cpu_params & cpuparams , const cpu_params * role_model ) {
int32_t n_set = 0 ;
if ( cpuparams . n_threads < 0 ) {
// Assuming everything about cpuparams is invalid
if ( role_model != nullptr ) {
cpuparams = * role_model ;
} else {
cpuparams . n_threads = cpu_get_num_math ();
}
}
for ( int32_t i = 0 ; i < GGML_MAX_N_THREADS ; i ++ ) {
if ( cpuparams . cpumask [ i ]) {
n_set ++ ;
}
}
if ( n_set && n_set < cpuparams . n_threads ) {
// Not enough set bits, may experience performance issues.
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LOG_WRN ( "Not enough set bits in CPU mask (%d) to satisfy requested thread count: %d \n " , n_set , cpuparams . n_threads );
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}
}
bool parse_cpu_range ( const std :: string & range , bool ( & boolmask )[ GGML_MAX_N_THREADS ]) {
size_t dash_loc = range . find ( '-' );
if ( dash_loc == std :: string :: npos ) {
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LOG_ERR ( "Format of CPU range is invalid! Expected [<start>]-[<end>]. \n " );
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return false ;
}
size_t start_i ;
size_t end_i ;
if ( dash_loc == 0 ) {
start_i = 0 ;
} else {
start_i = std :: stoull ( range . substr ( 0 , dash_loc ));
if ( start_i >= GGML_MAX_N_THREADS ) {
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LOG_ERR ( "Start index out of bounds! \n " );
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return false ;
}
}
if ( dash_loc == range . length () - 1 ) {
end_i = GGML_MAX_N_THREADS - 1 ;
} else {
end_i = std :: stoull ( range . substr ( dash_loc + 1 ));
if ( end_i >= GGML_MAX_N_THREADS ) {
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LOG_ERR ( "End index out of bounds! \n " );
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return false ;
}
}
for ( size_t i = start_i ; i <= end_i ; i ++ ) {
boolmask [ i ] = true ;
}
return true ;
}
bool parse_cpu_mask ( const std :: string & mask , bool ( & boolmask )[ GGML_MAX_N_THREADS ]) {
// Discard potential 0x prefix
size_t start_i = 0 ;
if ( mask . length () >= 2 && mask . substr ( 0 , 2 ) == "0x" ) {
start_i = 2 ;
}
size_t num_digits = mask . length () - start_i ;
if ( num_digits > 128 ) num_digits = 128 ;
size_t end_i = num_digits + start_i ;
for ( size_t i = start_i , n = ( num_digits * 4 - 1 ); i < end_i ; i ++ , n -= 4 ) {
char c = mask . at ( i );
int8_t id = c ;
if (( c >= '0' && c <= '9' )) {
id -= '0' ;
} else if ( c >= 'a' && c <= 'f' ) {
id -= 'a' - 10 ;
} else if ( c >= 'A' && c <= 'F' ) {
id -= 'A' - 10 ;
} else {
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LOG_ERR ( "Invalid hex character '%c' at position %d \n " , c , int32_t ( i ));
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return false ;
}
boolmask [ n ] = boolmask [ n ] || (( id & 8 ) != 0 );
boolmask [ n - 1 ] = boolmask [ n - 1 ] || (( id & 4 ) != 0 );
boolmask [ n - 2 ] = boolmask [ n - 2 ] || (( id & 2 ) != 0 );
boolmask [ n - 3 ] = boolmask [ n - 3 ] || (( id & 1 ) != 0 );
}
return true ;
}
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void common_init () {
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llama_log_set ([]( ggml_log_level level , const char * text , void * /*user_data*/ ) {
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if ( LOG_DEFAULT_LLAMA <= common_log_verbosity_thold ) {
common_log_add ( common_log_main (), level , "%s" , text );
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}
}, NULL );
#ifdef NDEBUG
const char * build_type = "" ;
#else
const char * build_type = " (debug)" ;
#endif
LOG_INF ( "build: %d (%s) with %s for %s%s \n " , LLAMA_BUILD_NUMBER , LLAMA_COMMIT , LLAMA_COMPILER , LLAMA_BUILD_TARGET , build_type );
}
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std :: string common_params_get_system_info ( const common_params & params ) {
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std :: ostringstream os ;
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os << "system_info: n_threads = " << params . cpuparams . n_threads ;
if ( params . cpuparams_batch . n_threads != - 1 ) {
os << " (n_threads_batch = " << params . cpuparams_batch . n_threads << ")" ;
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}
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#if defined(_WIN32) && (_WIN32_WINNT >= 0x0601) && !defined(__MINGW64__) // windows 7 and later
// TODO: windows + arm64 + mingw64
DWORD logicalProcessorCount = GetActiveProcessorCount ( ALL_PROCESSOR_GROUPS );
os << " / " << logicalProcessorCount << " | " << llama_print_system_info ();
#else
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os << " / " << std :: thread :: hardware_concurrency () << " | " << llama_print_system_info ();
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#endif
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return os . str ();
}
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//
// String utils
//
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std :: string string_format ( const char * fmt , ...) {
va_list ap ;
va_list ap2 ;
va_start ( ap , fmt );
va_copy ( ap2 , ap );
int size = vsnprintf ( NULL , 0 , fmt , ap );
GGML_ASSERT ( size >= 0 && size < INT_MAX ); // NOLINT
std :: vector < char > buf ( size + 1 );
int size2 = vsnprintf ( buf . data (), size + 1 , fmt , ap2 );
GGML_ASSERT ( size2 == size );
va_end ( ap2 );
va_end ( ap );
return std :: string ( buf . data (), size );
}
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std :: string string_strip ( const std :: string & str ) {
size_t start = 0 ;
size_t end = str . size ();
while ( start < end && std :: isspace ( str [ start ])) {
start ++ ;
}
while ( end > start && std :: isspace ( str [ end - 1 ])) {
end -- ;
}
return str . substr ( start , end - start );
}
std :: string string_get_sortable_timestamp () {
using clock = std :: chrono :: system_clock ;
const clock :: time_point current_time = clock :: now ();
const time_t as_time_t = clock :: to_time_t ( current_time );
char timestamp_no_ns [ 100 ];
std :: strftime ( timestamp_no_ns , 100 , "%Y_%m_%d-%H_%M_%S" , std :: localtime ( & as_time_t ));
const int64_t ns = std :: chrono :: duration_cast < std :: chrono :: nanoseconds > (
current_time . time_since_epoch () % 1000000000 ). count ();
char timestamp_ns [ 11 ];
snprintf ( timestamp_ns , 11 , "%09" PRId64 , ns );
return std :: string ( timestamp_no_ns ) + "." + std :: string ( timestamp_ns );
}
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void string_replace_all ( std :: string & s , const std :: string & search , const std :: string & replace ) {
if ( search . empty ()) {
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return ;
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}
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std :: string builder ;
builder . reserve ( s . length ());
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size_t pos = 0 ;
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size_t last_pos = 0 ;
while (( pos = s . find ( search , last_pos )) != std :: string :: npos ) {
builder . append ( s , last_pos , pos - last_pos );
builder . append ( replace );
last_pos = pos + search . length ();
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}
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builder . append ( s , last_pos , std :: string :: npos );
s = std :: move ( builder );
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}
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std :: string regex_escape ( const std :: string & s ) {
static const std :: regex special_chars ( "[.^$|()*+? \\ [ \\ ]{} \\\\ ]" );
return std :: regex_replace ( s , special_chars , " \\ $0" );
}
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std :: string string_join ( const std :: vector < std :: string > & values , const std :: string & separator ) {
std :: ostringstream result ;
for ( size_t i = 0 ; i < values . size (); ++ i ) {
if ( i > 0 ) {
result << separator ;
}
result << values [ i ];
}
return result . str ();
}
std :: vector < std :: string > string_split ( const std :: string & str , const std :: string & delimiter ) {
std :: vector < std :: string > parts ;
size_t start = 0 ;
size_t end = str . find ( delimiter );
while ( end != std :: string :: npos ) {
parts . push_back ( str . substr ( start , end - start ));
start = end + delimiter . length ();
end = str . find ( delimiter , start );
}
parts . push_back ( str . substr ( start ));
return parts ;
}
std :: string string_repeat ( const std :: string & str , size_t n ) {
if ( n == 0 ) {
return "" ;
}
std :: string result ;
result . reserve ( str . length () * n );
for ( size_t i = 0 ; i < n ; ++ i ) {
result += str ;
}
return result ;
}
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std :: string string_from ( bool value ) {
return value ? "true" : "false" ;
}
std :: string string_from ( const std :: vector < int > & values ) {
std :: stringstream buf ;
buf << "[ " ;
bool first = true ;
for ( auto e : values ) {
if ( first ) {
first = false ;
} else {
buf << ", " ;
}
buf << std :: to_string ( e );
}
buf << " ]" ;
return buf . str ();
}
std :: string string_from ( const struct llama_context * ctx , const std :: vector < llama_token > & tokens ) {
std :: stringstream buf ;
buf << "[ " ;
bool first = true ;
for ( const auto & token : tokens ) {
if ( ! first ) {
buf << ", " ;
} else {
first = false ;
}
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auto detokenized = common_token_to_piece ( ctx , token );
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detokenized . erase (
std :: remove_if (
detokenized . begin (),
detokenized . end (),
[]( const unsigned char c ) { return ! std :: isprint ( c ); }),
detokenized . end ());
buf << "'" << detokenized << "'"
<< ":" << std :: to_string ( token );
}
buf << " ]" ;
return buf . str ();
}
std :: string string_from ( const struct llama_context * ctx , const struct llama_batch & batch ) {
std :: stringstream buf ;
buf << "[ " ;
bool first = true ;
for ( int i = 0 ; i < batch . n_tokens ; ++ i ) {
if ( ! first ) {
buf << ", " ;
} else {
first = false ;
}
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auto detokenized = common_token_to_piece ( ctx , batch . token [ i ]);
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detokenized . erase (
std :: remove_if (
detokenized . begin (),
detokenized . end (),
[]( const unsigned char c ) { return ! std :: isprint ( c ); }),
detokenized . end ());
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buf << " \n " << std :: to_string ( i )
<< ", token '" << detokenized << "'"
<< ", pos " << std :: to_string ( batch . pos [ i ])
<< ", n_seq_id " << std :: to_string ( batch . n_seq_id [ i ])
<< ", seq_id " << std :: to_string ( batch . seq_id [ i ][ 0 ])
<< ", logits " << std :: to_string ( batch . logits [ i ]);
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}
buf << " ]" ;
return buf . str ();
}
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void string_process_escapes ( std :: string & input ) {
std :: size_t input_len = input . length ();
std :: size_t output_idx = 0 ;
for ( std :: size_t input_idx = 0 ; input_idx < input_len ; ++ input_idx ) {
if ( input [ input_idx ] == '\\' && input_idx + 1 < input_len ) {
switch ( input [ ++ input_idx ]) {
case 'n' : input [ output_idx ++ ] = '\n' ; break ;
case 'r' : input [ output_idx ++ ] = '\r' ; break ;
case 't' : input [ output_idx ++ ] = '\t' ; break ;
case '\'' : input [ output_idx ++ ] = '\'' ; break ;
case '\"' : input [ output_idx ++ ] = '\"' ; break ;
case '\\' : input [ output_idx ++ ] = '\\' ; break ;
case 'x' :
// Handle \x12, etc
if ( input_idx + 2 < input_len ) {
const char x [ 3 ] = { input [ input_idx + 1 ], input [ input_idx + 2 ], 0 };
char * err_p = nullptr ;
const long val = std :: strtol ( x , & err_p , 16 );
if ( err_p == x + 2 ) {
input_idx += 2 ;
input [ output_idx ++ ] = char ( val );
break ;
}
}
// fall through
default : input [ output_idx ++ ] = '\\' ;
input [ output_idx ++ ] = input [ input_idx ]; break ;
}
} else {
input [ output_idx ++ ] = input [ input_idx ];
}
}
input . resize ( output_idx );
}
bool string_parse_kv_override ( const char * data , std :: vector < llama_model_kv_override > & overrides ) {
const char * sep = strchr ( data , '=' );
if ( sep == nullptr || sep - data >= 128 ) {
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LOG_ERR ( "%s: malformed KV override '%s' \n " , __func__ , data );
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return false ;
}
llama_model_kv_override kvo ;
std :: strncpy ( kvo . key , data , sep - data );
kvo . key [ sep - data ] = 0 ;
sep ++ ;
if ( strncmp ( sep , "int:" , 4 ) == 0 ) {
sep += 4 ;
kvo . tag = LLAMA_KV_OVERRIDE_TYPE_INT ;
kvo . val_i64 = std :: atol ( sep );
} else if ( strncmp ( sep , "float:" , 6 ) == 0 ) {
sep += 6 ;
kvo . tag = LLAMA_KV_OVERRIDE_TYPE_FLOAT ;
kvo . val_f64 = std :: atof ( sep );
} else if ( strncmp ( sep , "bool:" , 5 ) == 0 ) {
sep += 5 ;
kvo . tag = LLAMA_KV_OVERRIDE_TYPE_BOOL ;
if ( std :: strcmp ( sep , "true" ) == 0 ) {
kvo . val_bool = true ;
} else if ( std :: strcmp ( sep , "false" ) == 0 ) {
kvo . val_bool = false ;
} else {
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LOG_ERR ( "%s: invalid boolean value for KV override '%s' \n " , __func__ , data );
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return false ;
}
} else if ( strncmp ( sep , "str:" , 4 ) == 0 ) {
sep += 4 ;
kvo . tag = LLAMA_KV_OVERRIDE_TYPE_STR ;
if ( strlen ( sep ) > 127 ) {
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LOG_ERR ( "%s: malformed KV override '%s', value cannot exceed 127 chars \n " , __func__ , data );
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return false ;
}
strncpy ( kvo . val_str , sep , 127 );
kvo . val_str [ 127 ] = '\0' ;
} else {
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LOG_ERR ( "%s: invalid type for KV override '%s' \n " , __func__ , data );
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return false ;
}
overrides . emplace_back ( std :: move ( kvo ));
return true ;
}
//
// Filesystem utils
//
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// Validate if a filename is safe to use
// To validate a full path, split the path by the OS-specific path separator, and validate each part with this function
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bool fs_validate_filename ( const std :: string & filename ) {
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if ( ! filename . length ()) {
// Empty filename invalid
return false ;
}
if ( filename . length () > 255 ) {
// Limit at common largest possible filename on Linux filesystems
// to avoid unnecessary further validation
// (On systems with smaller limits it will be caught by the OS)
return false ;
}
std :: u32string filename_utf32 ;
try {
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#if defined(__clang__)
// disable C++17 deprecation warning for std::codecvt_utf8
# pragma clang diagnostic push
# pragma clang diagnostic ignored "-Wdeprecated-declarations"
#endif
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std :: wstring_convert < std :: codecvt_utf8 < char32_t > , char32_t > converter ;
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#if defined(__clang__)
# pragma clang diagnostic pop
#endif
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filename_utf32 = converter . from_bytes ( filename );
// If the reverse conversion mismatches, it means overlong UTF-8 sequences were used,
// or invalid encodings were encountered. Reject such attempts
std :: string filename_reencoded = converter . to_bytes ( filename_utf32 );
if ( filename_reencoded != filename ) {
return false ;
}
} catch ( const std :: exception & ) {
return false ;
}
// Check for forbidden codepoints:
// - Control characters
// - Unicode equivalents of illegal characters
// - UTF-16 surrogate pairs
// - UTF-8 replacement character
// - Byte order mark (BOM)
// - Illegal characters: / \ : * ? " < > |
for ( char32_t c : filename_utf32 ) {
if ( c <= 0x1F // Control characters (C0)
|| c == 0x7F // Control characters (DEL)
|| ( c >= 0x80 && c <= 0x9F ) // Control characters (C1)
|| c == 0xFF0E // Fullwidth Full Stop (period equivalent)
|| c == 0x2215 // Division Slash (forward slash equivalent)
|| c == 0x2216 // Set Minus (backslash equivalent)
|| ( c >= 0xD800 && c <= 0xDFFF ) // UTF-16 surrogate pairs
|| c == 0xFFFD // Replacement Character (UTF-8)
|| c == 0xFEFF // Byte Order Mark (BOM)
|| c == '/' || c == '\\' || c == ':' || c == '*' // Illegal characters
|| c == '?' || c == '"' || c == '<' || c == '>' || c == '|' ) {
return false ;
}
}
// Reject any leading or trailing ' ', or any trailing '.', these are stripped on Windows and will cause a different filename
// Unicode and other whitespace is not affected, only 0x20 space
if ( filename . front () == ' ' || filename . back () == ' ' || filename . back () == '.' ) {
return false ;
}
// Reject any ".." (currently stricter than necessary, it should be fine to just check for == ".." instead)
if ( filename . find ( ".." ) != std :: string :: npos ) {
return false ;
}
// Reject "."
if ( filename == "." ) {
return false ;
}
return true ;
}
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// returns true if successful, false otherwise
bool fs_create_directory_with_parents ( const std :: string & path ) {
#ifdef _WIN32
std :: wstring_convert < std :: codecvt_utf8 < wchar_t >> converter ;
std :: wstring wpath = converter . from_bytes ( path );
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// if the path already exists, check whether it's a directory
const DWORD attributes = GetFileAttributesW ( wpath . c_str ());
if (( attributes != INVALID_FILE_ATTRIBUTES ) && ( attributes & FILE_ATTRIBUTE_DIRECTORY )) {
return true ;
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}
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size_t pos_slash = 0 ;
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// process path from front to back, procedurally creating directories
while (( pos_slash = path . find ( '\\' , pos_slash )) != std :: string :: npos ) {
const std :: wstring subpath = wpath . substr ( 0 , pos_slash );
const wchar_t * test = subpath . c_str ();
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const bool success = CreateDirectoryW ( test , NULL );
if ( ! success ) {
const DWORD error = GetLastError ();
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// if the path already exists, ensure that it's a directory
if ( error == ERROR_ALREADY_EXISTS ) {
const DWORD attributes = GetFileAttributesW ( subpath . c_str ());
if ( attributes == INVALID_FILE_ATTRIBUTES || ! ( attributes & FILE_ATTRIBUTE_DIRECTORY )) {
return false ;
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}
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} else {
return false ;
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}
}
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pos_slash += 1 ;
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}
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return true ;
#else
// if the path already exists, check whether it's a directory
struct stat info ;
if ( stat ( path . c_str (), & info ) == 0 ) {
return S_ISDIR ( info . st_mode );
}
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size_t pos_slash = 1 ; // skip leading slashes for directory creation
// process path from front to back, procedurally creating directories
while (( pos_slash = path . find ( '/' , pos_slash )) != std :: string :: npos ) {
const std :: string subpath = path . substr ( 0 , pos_slash );
struct stat info ;
// if the path already exists, ensure that it's a directory
if ( stat ( subpath . c_str (), & info ) == 0 ) {
if ( ! S_ISDIR ( info . st_mode )) {
return false ;
}
} else {
// create parent directories
const int ret = mkdir ( subpath . c_str (), 0755 );
if ( ret != 0 ) {
return false ;
}
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}
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pos_slash += 1 ;
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}
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return true ;
#endif // _WIN32
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}
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std :: string fs_get_cache_directory () {
std :: string cache_directory = "" ;
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auto ensure_trailing_slash = []( std :: string p ) {
// Make sure to add trailing slash
if ( p . back () != DIRECTORY_SEPARATOR ) {
p += DIRECTORY_SEPARATOR ;
}
return p ;
};
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if ( getenv ( "LLAMA_CACHE" )) {
cache_directory = std :: getenv ( "LLAMA_CACHE" );
} else {
#ifdef __linux__
if ( std :: getenv ( "XDG_CACHE_HOME" )) {
cache_directory = std :: getenv ( "XDG_CACHE_HOME" );
} else {
cache_directory = std :: getenv ( "HOME" ) + std :: string ( "/.cache/" );
}
#elif defined(__APPLE__)
cache_directory = std :: getenv ( "HOME" ) + std :: string ( "/Library/Caches/" );
#elif defined(_WIN32)
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cache_directory = std :: getenv ( "LOCALAPPDATA" );
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#endif // __linux__
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cache_directory = ensure_trailing_slash ( cache_directory );
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cache_directory += "llama.cpp" ;
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}
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return ensure_trailing_slash ( cache_directory );
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}
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std :: string fs_get_cache_file ( const std :: string & filename ) {
GGML_ASSERT ( filename . find ( DIRECTORY_SEPARATOR ) == std :: string :: npos );
std :: string cache_directory = fs_get_cache_directory ();
const bool success = fs_create_directory_with_parents ( cache_directory );
if ( ! success ) {
throw std :: runtime_error ( "failed to create cache directory: " + cache_directory );
}
return cache_directory + filename ;
}
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//
// Model utils
//
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struct common_init_result common_init_from_params ( common_params & params ) {
common_init_result iparams ;
auto mparams = common_model_params_to_llama ( params );
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llama_model * model = nullptr ;
if ( ! params . hf_repo . empty () && ! params . hf_file . empty ()) {
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model = common_load_model_from_hf ( params . hf_repo , params . hf_file , params . model , params . hf_token , mparams );
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} else if ( ! params . model_url . empty ()) {
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model = common_load_model_from_url ( params . model_url , params . model , params . hf_token , mparams );
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} else {
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model = llama_model_load_from_file ( params . model . c_str (), mparams );
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}
if ( model == NULL ) {
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LOG_ERR ( "%s: failed to load model '%s' \n " , __func__ , params . model . c_str ());
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return iparams ;
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}
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const llama_vocab * vocab = llama_model_get_vocab ( model );
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if ( params . reranking ) {
bool ok = true ;
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if ( llama_vocab_bos ( vocab ) == LLAMA_TOKEN_NULL ) {
LOG_WRN ( "%s: warning: vocab does not have a BOS token, reranking will not work \n " , __func__ );
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ok = false ;
}
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if ( llama_vocab_eos ( vocab ) == LLAMA_TOKEN_NULL ) {
LOG_WRN ( "%s: warning: vocab does not have an EOS token, reranking will not work \n " , __func__ );
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ok = false ;
}
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if ( llama_vocab_sep ( vocab ) == LLAMA_TOKEN_NULL ) {
LOG_WRN ( "%s: warning: vocab does not have a SEP token, reranking will not work \n " , __func__ );
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ok = false ;
}
if ( ! ok ) {
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llama_model_free ( model );
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return iparams ;
}
}
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auto cparams = common_context_params_to_llama ( params );
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llama_context * lctx = llama_init_from_model ( model , cparams );
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if ( lctx == NULL ) {
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LOG_ERR ( "%s: failed to create context with model '%s' \n " , __func__ , params . model . c_str ());
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llama_model_free ( model );
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return iparams ;
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}
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if ( params . ctx_shift && ! llama_kv_self_can_shift ( lctx )) {
LOG_WRN ( "%s: KV cache shifting is not supported for this context, disabling KV cache shifting \n " , __func__ );
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params . ctx_shift = false ;
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}
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if ( ! params . control_vectors . empty ()) {
if ( params . control_vector_layer_start <= 0 ) params . control_vector_layer_start = 1 ;
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if ( params . control_vector_layer_end <= 0 ) params . control_vector_layer_end = llama_model_n_layer ( model );
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const auto cvec = common_control_vector_load ( params . control_vectors );
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if ( cvec . n_embd == - 1 ) {
llama_free ( lctx );
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llama_model_free ( model );
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return iparams ;
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}
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int err = llama_apply_adapter_cvec (
lctx ,
cvec . data . data (),
cvec . data . size (),
cvec . n_embd ,
params . control_vector_layer_start ,
params . control_vector_layer_end );
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if ( err ) {
llama_free ( lctx );
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llama_model_free ( model );
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return iparams ;
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}
}
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// load and optionally apply lora adapters
for ( auto & la : params . lora_adapters ) {
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llama_adapter_lora_ptr lora ;
lora . reset ( llama_adapter_lora_init ( model , la . path . c_str ()));
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if ( lora == nullptr ) {
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LOG_ERR ( "%s: failed to apply lora adapter '%s' \n " , __func__ , la . path . c_str ());
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llama_free ( lctx );
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llama_model_free ( model );
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return iparams ;
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}
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la . ptr = lora . get ();
iparams . lora . emplace_back ( std :: move ( lora )); // copy to list of loaded adapters
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}
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if ( ! params . lora_init_without_apply ) {
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common_set_adapter_lora ( lctx , params . lora_adapters );
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}
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if ( params . sampling . ignore_eos && llama_vocab_eos ( vocab ) == LLAMA_TOKEN_NULL ) {
LOG_WRN ( "%s: warning: vocab does not have an EOS token, ignoring --ignore-eos \n " , __func__ );
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params . sampling . ignore_eos = false ;
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}
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if ( params . sampling . ignore_eos ) {
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for ( llama_token i = 0 ; i < llama_vocab_n_tokens ( vocab ); i ++ ) {
if ( llama_vocab_is_eog ( vocab , i )) {
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LOG_INF ( "%s: added %s logit bias = %f \n " , __func__ , common_token_to_piece ( lctx , i ). c_str (), - INFINITY );
params . sampling . logit_bias . push_back ({ i , - INFINITY });
}
}
}
if ( params . sampling . penalty_last_n == - 1 ) {
LOG_INF ( "%s: setting penalty_last_n to ctx_size = %d \n " , __func__ , llama_n_ctx ( lctx ));
params . sampling . penalty_last_n = llama_n_ctx ( lctx );
}
if ( params . sampling . dry_penalty_last_n == - 1 ) {
LOG_INF ( "%s: setting dry_penalty_last_n to ctx_size = %d \n " , __func__ , llama_n_ctx ( lctx ));
params . sampling . dry_penalty_last_n = llama_n_ctx ( lctx );
}
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if ( params . warmup ) {
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LOG_WRN ( "%s: warming up the model with an empty run - please wait ... (--no-warmup to disable) \n " , __func__ );
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llama_set_warmup ( lctx , true );
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std :: vector < llama_token > tmp ;
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llama_token bos = llama_vocab_bos ( vocab );
llama_token eos = llama_vocab_eos ( vocab );
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// some models (e.g. T5) don't have a BOS token
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if ( bos != LLAMA_TOKEN_NULL ) {
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tmp . push_back ( bos );
}
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if ( eos != LLAMA_TOKEN_NULL ) {
tmp . push_back ( eos );
}
if ( tmp . empty ()) {
tmp . push_back ( 0 );
}
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if ( llama_model_has_encoder ( model )) {
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llama_encode ( lctx , llama_batch_get_one ( tmp . data (), tmp . size ()));
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llama_token decoder_start_token_id = llama_model_decoder_start_token ( model );
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if ( decoder_start_token_id == LLAMA_TOKEN_NULL ) {
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decoder_start_token_id = bos ;
}
tmp . clear ();
tmp . push_back ( decoder_start_token_id );
}
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if ( llama_model_has_decoder ( model )) {
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llama_decode ( lctx , llama_batch_get_one ( tmp . data (), std :: min ( tmp . size (), ( size_t ) params . n_batch )));
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}
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llama_kv_self_clear ( lctx );
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llama_synchronize ( lctx );
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llama_perf_context_reset ( lctx );
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llama_set_warmup ( lctx , false );
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}
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iparams . model . reset ( model );
iparams . context . reset ( lctx );
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return iparams ;
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}
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void common_set_adapter_lora ( struct llama_context * ctx , std :: vector < common_adapter_lora_info > & lora ) {
llama_clear_adapter_lora ( ctx );
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for ( auto & la : lora ) {
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if ( la . scale != 0.0f ) {
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llama_set_adapter_lora ( ctx , la . ptr , la . scale );
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}
}
}
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struct llama_model_params common_model_params_to_llama ( common_params & params ) {
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auto mparams = llama_model_default_params ();
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if ( ! params . devices . empty ()) {
mparams . devices = params . devices . data ();
}
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if ( params . n_gpu_layers != - 1 ) {
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mparams . n_gpu_layers = params . n_gpu_layers ;
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}
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mparams . main_gpu = params . main_gpu ;
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mparams . split_mode = params . split_mode ;
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mparams . tensor_split = params . tensor_split ;
mparams . use_mmap = params . use_mmap ;
mparams . use_mlock = params . use_mlock ;
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mparams . check_tensors = params . check_tensors ;
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if ( params . kv_overrides . empty ()) {
mparams . kv_overrides = NULL ;
} else {
GGML_ASSERT ( params . kv_overrides . back (). key [ 0 ] == 0 && "KV overrides not terminated with empty key" );
mparams . kv_overrides = params . kv_overrides . data ();
}
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return mparams ;
}
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struct llama_context_params common_context_params_to_llama ( const common_params & params ) {
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auto cparams = llama_context_default_params ();
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cparams . n_ctx = params . n_ctx ;
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cparams . n_seq_max = params . n_parallel ;
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cparams . n_batch = params . n_batch ;
cparams . n_ubatch = params . n_ubatch ;
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cparams . n_threads = params . cpuparams . n_threads ;
cparams . n_threads_batch = params . cpuparams_batch . n_threads == - 1 ?
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params . cpuparams . n_threads : params . cpuparams_batch . n_threads ;
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cparams . logits_all = params . logits_all ;
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cparams . embeddings = params . embedding ;
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cparams . rope_scaling_type = params . rope_scaling_type ;
cparams . rope_freq_base = params . rope_freq_base ;
cparams . rope_freq_scale = params . rope_freq_scale ;
cparams . yarn_ext_factor = params . yarn_ext_factor ;
cparams . yarn_attn_factor = params . yarn_attn_factor ;
cparams . yarn_beta_fast = params . yarn_beta_fast ;
cparams . yarn_beta_slow = params . yarn_beta_slow ;
cparams . yarn_orig_ctx = params . yarn_orig_ctx ;
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cparams . pooling_type = params . pooling_type ;
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cparams . attention_type = params . attention_type ;
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cparams . defrag_thold = params . defrag_thold ;
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cparams . cb_eval = params . cb_eval ;
cparams . cb_eval_user_data = params . cb_eval_user_data ;
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cparams . offload_kqv = ! params . no_kv_offload ;
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cparams . flash_attn = params . flash_attn ;
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cparams . no_perf = params . no_perf ;
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if ( params . reranking ) {
cparams . embeddings = true ;
cparams . pooling_type = LLAMA_POOLING_TYPE_RANK ;
}
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cparams . type_k = params . cache_type_k ;
cparams . type_v = params . cache_type_v ;
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return cparams ;
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}
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struct ggml_threadpool_params ggml_threadpool_params_from_cpu_params ( const cpu_params & params ) {
struct ggml_threadpool_params tpp ;
ggml_threadpool_params_init ( & tpp , params . n_threads ); // setup the defaults
if ( params . mask_valid ) {
std :: memcpy ( & tpp . cpumask , & params . cpumask , GGML_MAX_N_THREADS );
}
tpp . prio = params . priority ;
tpp . poll = params . poll ;
tpp . strict_cpu = params . strict_cpu ;
return tpp ;
}
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#ifdef LLAMA_USE_CURL
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#define CURL_MAX_RETRY 3
#define CURL_RETRY_DELAY_SECONDS 2
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static bool curl_perform_with_retry ( const std :: string & url , CURL * curl , int max_attempts , int retry_delay_seconds ) {
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int remaining_attempts = max_attempts ;
while ( remaining_attempts > 0 ) {
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LOG_INF ( "%s: Trying to download from %s (attempt %d of %d)... \n " , __func__ , url . c_str (), max_attempts - remaining_attempts + 1 , max_attempts );
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CURLcode res = curl_easy_perform ( curl );
if ( res == CURLE_OK ) {
return true ;
}
int exponential_backoff_delay = std :: pow ( retry_delay_seconds , max_attempts - remaining_attempts ) * 1000 ;
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LOG_WRN ( "%s: curl_easy_perform() failed: %s, retrying after %d milliseconds... \n " , __func__ , curl_easy_strerror ( res ), exponential_backoff_delay );
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remaining_attempts -- ;
std :: this_thread :: sleep_for ( std :: chrono :: milliseconds ( exponential_backoff_delay ));
}
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LOG_ERR ( "%s: curl_easy_perform() failed after %d attempts \n " , __func__ , max_attempts );
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return false ;
}
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static bool common_download_file ( const std :: string & url , const std :: string & path , const std :: string & hf_token ) {
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// Initialize libcurl
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curl_ptr curl ( curl_easy_init (), & curl_easy_cleanup );
curl_slist_ptr http_headers ;
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if ( ! curl ) {
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LOG_ERR ( "%s: error initializing libcurl \n " , __func__ );
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return false ;
}
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bool force_download = false ;
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// Set the URL, allow to follow http redirection
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curl_easy_setopt ( curl . get (), CURLOPT_URL , url . c_str ());
curl_easy_setopt ( curl . get (), CURLOPT_FOLLOWLOCATION , 1L );
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// Check if hf-token or bearer-token was specified
if ( ! hf_token . empty ()) {
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std :: string auth_header = "Authorization: Bearer " + hf_token ;
http_headers . ptr = curl_slist_append ( http_headers . ptr , auth_header . c_str ());
curl_easy_setopt ( curl . get (), CURLOPT_HTTPHEADER , http_headers . ptr );
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}
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#if defined(_WIN32)
// CURLSSLOPT_NATIVE_CA tells libcurl to use standard certificate store of
// operating system. Currently implemented under MS-Windows.
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curl_easy_setopt ( curl . get (), CURLOPT_SSL_OPTIONS , CURLSSLOPT_NATIVE_CA );
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#endif
// Check if the file already exists locally
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auto file_exists = std :: filesystem :: exists ( path );
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// If the file exists, check its JSON metadata companion file.
std :: string metadata_path = path + ".json" ;
nlohmann :: json metadata ;
std :: string etag ;
std :: string last_modified ;
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if ( file_exists ) {
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// Try and read the JSON metadata file (note: stream autoclosed upon exiting this block).
std :: ifstream metadata_in ( metadata_path );
if ( metadata_in . good ()) {
try {
metadata_in >> metadata ;
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LOG_INF ( "%s: previous metadata file found %s: %s \n " , __func__ , metadata_path . c_str (), metadata . dump (). c_str ());
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if ( metadata . contains ( "url" ) && metadata . at ( "url" ). is_string ()) {
auto previous_url = metadata . at ( "url" ). get < std :: string > ();
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if ( previous_url != url ) {
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LOG_ERR ( "%s: Model URL mismatch: %s != %s \n " , __func__ , url . c_str (), previous_url . c_str ());
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return false ;
}
}
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if ( metadata . contains ( "etag" ) && metadata . at ( "etag" ). is_string ()) {
etag = metadata . at ( "etag" );
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}
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if ( metadata . contains ( "lastModified" ) && metadata . at ( "lastModified" ). is_string ()) {
last_modified = metadata . at ( "lastModified" );
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}
} catch ( const nlohmann :: json :: exception & e ) {
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LOG_ERR ( "%s: error reading metadata file %s: %s \n " , __func__ , metadata_path . c_str (), e . what ());
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return false ;
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}
}
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} else {
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LOG_INF ( "%s: no previous model file found %s \n " , __func__ , path . c_str ());
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}
// Send a HEAD request to retrieve the etag and last-modified headers
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struct common_load_model_from_url_headers {
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std :: string etag ;
std :: string last_modified ;
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};
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common_load_model_from_url_headers headers ;
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{
typedef size_t ( * CURLOPT_HEADERFUNCTION_PTR )( char * , size_t , size_t , void * );
auto header_callback = []( char * buffer , size_t /*size*/ , size_t n_items , void * userdata ) -> size_t {
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common_load_model_from_url_headers * headers = ( common_load_model_from_url_headers * ) userdata ;
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static std :: regex header_regex ( "([^:]+): (.*) \r\n " );
static std :: regex etag_regex ( "ETag" , std :: regex_constants :: icase );
static std :: regex last_modified_regex ( "Last-Modified" , std :: regex_constants :: icase );
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std :: string header ( buffer , n_items );
std :: smatch match ;
if ( std :: regex_match ( header , match , header_regex )) {
const std :: string & key = match [ 1 ];
const std :: string & value = match [ 2 ];
if ( std :: regex_match ( key , match , etag_regex )) {
headers -> etag = value ;
} else if ( std :: regex_match ( key , match , last_modified_regex )) {
headers -> last_modified = value ;
}
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}
return n_items ;
};
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curl_easy_setopt ( curl . get (), CURLOPT_NOBODY , 1L ); // will trigger the HEAD verb
curl_easy_setopt ( curl . get (), CURLOPT_NOPROGRESS , 1L ); // hide head request progress
curl_easy_setopt ( curl . get (), CURLOPT_HEADERFUNCTION , static_cast < CURLOPT_HEADERFUNCTION_PTR > ( header_callback ));
curl_easy_setopt ( curl . get (), CURLOPT_HEADERDATA , & headers );
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bool was_perform_successful = curl_perform_with_retry ( url , curl . get (), CURL_MAX_RETRY , CURL_RETRY_DELAY_SECONDS );
if ( ! was_perform_successful ) {
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return false ;
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}
long http_code = 0 ;
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curl_easy_getinfo ( curl . get (), CURLINFO_RESPONSE_CODE , & http_code );
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if ( http_code != 200 ) {
// HEAD not supported, we don't know if the file has changed
// force trigger downloading
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force_download = true ;
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LOG_ERR ( "%s: HEAD invalid http status code received: %ld \n " , __func__ , http_code );
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}
}
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bool should_download = ! file_exists || force_download ;
if ( ! should_download ) {
if ( ! etag . empty () && etag != headers . etag ) {
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LOG_WRN ( "%s: ETag header is different (%s != %s): triggering a new download \n " , __func__ , etag . c_str (), headers . etag . c_str ());
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should_download = true ;
} else if ( ! last_modified . empty () && last_modified != headers . last_modified ) {
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LOG_WRN ( "%s: Last-Modified header is different (%s != %s): triggering a new download \n " , __func__ , last_modified . c_str (), headers . last_modified . c_str ());
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should_download = true ;
}
}
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if ( should_download ) {
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std :: string path_temporary = path + ".downloadInProgress" ;
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if ( file_exists ) {
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LOG_WRN ( "%s: deleting previous downloaded file: %s \n " , __func__ , path . c_str ());
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if ( remove ( path . c_str ()) != 0 ) {
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LOG_ERR ( "%s: unable to delete file: %s \n " , __func__ , path . c_str ());
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return false ;
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}
}
// Set the output file
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struct FILE_deleter {
void operator ()( FILE * f ) const {
fclose ( f );
}
};
std :: unique_ptr < FILE , FILE_deleter > outfile ( fopen ( path_temporary . c_str (), "wb" ));
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if ( ! outfile ) {
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LOG_ERR ( "%s: error opening local file for writing: %s \n " , __func__ , path . c_str ());
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return false ;
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}
typedef size_t ( * CURLOPT_WRITEFUNCTION_PTR )( void * data , size_t size , size_t nmemb , void * fd );
auto write_callback = []( void * data , size_t size , size_t nmemb , void * fd ) -> size_t {
return fwrite ( data , size , nmemb , ( FILE * ) fd );
};
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curl_easy_setopt ( curl . get (), CURLOPT_NOBODY , 0L );
curl_easy_setopt ( curl . get (), CURLOPT_WRITEFUNCTION , static_cast < CURLOPT_WRITEFUNCTION_PTR > ( write_callback ));
curl_easy_setopt ( curl . get (), CURLOPT_WRITEDATA , outfile . get ());
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// display download progress
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curl_easy_setopt ( curl . get (), CURLOPT_NOPROGRESS , 0L );
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// helper function to hide password in URL
auto llama_download_hide_password_in_url = []( const std :: string & url ) -> std :: string {
std :: size_t protocol_pos = url . find ( "://" );
if ( protocol_pos == std :: string :: npos ) {
return url ; // Malformed URL
}
std :: size_t at_pos = url . find ( '@' , protocol_pos + 3 );
if ( at_pos == std :: string :: npos ) {
return url ; // No password in URL
}
return url . substr ( 0 , protocol_pos + 3 ) + "********" + url . substr ( at_pos );
};
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// start the download
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LOG_INF ( "%s: trying to download model from %s to %s (server_etag:%s, server_last_modified:%s)... \n " , __func__ ,
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llama_download_hide_password_in_url ( url ). c_str (), path . c_str (), headers . etag . c_str (), headers . last_modified . c_str ());
bool was_perform_successful = curl_perform_with_retry ( url , curl . get (), CURL_MAX_RETRY , CURL_RETRY_DELAY_SECONDS );
if ( ! was_perform_successful ) {
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return false ;
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}
long http_code = 0 ;
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curl_easy_getinfo ( curl . get (), CURLINFO_RESPONSE_CODE , & http_code );
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if ( http_code < 200 || http_code >= 400 ) {
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LOG_ERR ( "%s: invalid http status code received: %ld \n " , __func__ , http_code );
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return false ;
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}
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// Causes file to be closed explicitly here before we rename it.
outfile . reset ();
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// Write the updated JSON metadata file.
metadata . update ({
{ "url" , url },
{ "etag" , headers . etag },
{ "lastModified" , headers . last_modified }
});
std :: ofstream ( metadata_path ) << metadata . dump ( 4 );
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LOG_INF ( "%s: file metadata saved: %s \n " , __func__ , metadata_path . c_str ());
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if ( rename ( path_temporary . c_str (), path . c_str ()) != 0 ) {
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LOG_ERR ( "%s: unable to rename file: %s to %s \n " , __func__ , path_temporary . c_str (), path . c_str ());
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return false ;
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}
}
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return true ;
}
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struct llama_model * common_load_model_from_url (
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const std :: string & model_url ,
const std :: string & local_path ,
const std :: string & hf_token ,
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const struct llama_model_params & params ) {
// Basic validation of the model_url
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if ( model_url . empty ()) {
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LOG_ERR ( "%s: invalid model_url \n " , __func__ );
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return NULL ;
}
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if ( ! common_download_file ( model_url , local_path , hf_token )) {
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return NULL ;
}
// check for additional GGUFs split to download
int n_split = 0 ;
{
struct gguf_init_params gguf_params = {
/*.no_alloc = */ true ,
/*.ctx = */ NULL ,
};
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auto * ctx_gguf = gguf_init_from_file ( local_path . c_str (), gguf_params );
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if ( ! ctx_gguf ) {
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LOG_ERR ( " \n %s: failed to load input GGUF from %s \n " , __func__ , local_path . c_str ());
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return NULL ;
}
auto key_n_split = gguf_find_key ( ctx_gguf , LLM_KV_SPLIT_COUNT );
if ( key_n_split >= 0 ) {
n_split = gguf_get_val_u16 ( ctx_gguf , key_n_split );
}
gguf_free ( ctx_gguf );
}
if ( n_split > 1 ) {
char split_prefix [ PATH_MAX ] = { 0 };
char split_url_prefix [ LLAMA_CURL_MAX_URL_LENGTH ] = { 0 };
// Verify the first split file format
// and extract split URL and PATH prefixes
{
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if ( ! llama_split_prefix ( split_prefix , sizeof ( split_prefix ), local_path . c_str (), 0 , n_split )) {
LOG_ERR ( " \n %s: unexpected model file name: %s n_split=%d \n " , __func__ , local_path . c_str (), n_split );
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return NULL ;
}
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if ( ! llama_split_prefix ( split_url_prefix , sizeof ( split_url_prefix ), model_url . c_str (), 0 , n_split )) {
LOG_ERR ( " \n %s: unexpected model url: %s n_split=%d \n " , __func__ , model_url . c_str (), n_split );
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return NULL ;
}
}
// Prepare download in parallel
std :: vector < std :: future < bool >> futures_download ;
for ( int idx = 1 ; idx < n_split ; idx ++ ) {
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futures_download . push_back ( std :: async ( std :: launch :: async , [ & split_prefix , & split_url_prefix , & n_split , hf_token ]( int download_idx ) -> bool {
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char split_path [ PATH_MAX ] = { 0 };
llama_split_path ( split_path , sizeof ( split_path ), split_prefix , download_idx , n_split );
char split_url [ LLAMA_CURL_MAX_URL_LENGTH ] = { 0 };
llama_split_path ( split_url , sizeof ( split_url ), split_url_prefix , download_idx , n_split );
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return common_download_file ( split_url , split_path , hf_token );
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}, idx ));
}
// Wait for all downloads to complete
for ( auto & f : futures_download ) {
if ( ! f . get ()) {
return NULL ;
}
}
}
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return llama_model_load_from_file ( local_path . c_str (), params );
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}
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struct llama_model * common_load_model_from_hf (
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const std :: string & repo ,
const std :: string & remote_path ,
const std :: string & local_path ,
const std :: string & hf_token ,
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const struct llama_model_params & params ) {
// construct hugging face model url:
//
// --repo ggml-org/models --file tinyllama-1.1b/ggml-model-f16.gguf
// https://huggingface.co/ggml-org/models/resolve/main/tinyllama-1.1b/ggml-model-f16.gguf
//
// --repo TheBloke/Mixtral-8x7B-v0.1-GGUF --file mixtral-8x7b-v0.1.Q4_K_M.gguf
// https://huggingface.co/TheBloke/Mixtral-8x7B-v0.1-GGUF/resolve/main/mixtral-8x7b-v0.1.Q4_K_M.gguf
//
std :: string model_url = "https://huggingface.co/" ;
model_url += repo ;
model_url += "/resolve/main/" ;
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model_url += remote_path ;
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return common_load_model_from_url ( model_url , local_path , hf_token , params );
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}
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/**
* Allow getting the HF file from the HF repo with tag (like ollama), for example:
* - bartowski/Llama-3.2-3B-Instruct-GGUF:q4
* - bartowski/Llama-3.2-3B-Instruct-GGUF:Q4_K_M
* - bartowski/Llama-3.2-3B-Instruct-GGUF:q5_k_s
* Tag is optional, default to "latest" (meaning it checks for Q4_K_M first, then Q4, then if not found, return the first GGUF file in repo)
*
* Return pair of <repo, file> (with "repo" already having tag removed)
*
* Note: we use the Ollama-compatible HF API, but not using the blobId. Instead, we use the special "ggufFile" field which returns the value for "hf_file". This is done to be backward-compatible with existing cache files.
*/
std :: pair < std :: string , std :: string > common_get_hf_file ( const std :: string & hf_repo_with_tag , const std :: string & hf_token ) {
auto parts = string_split < std :: string > ( hf_repo_with_tag , ':' );
std :: string tag = parts . size () > 1 ? parts . back () : "latest" ;
std :: string hf_repo = parts [ 0 ];
if ( string_split < std :: string > ( hf_repo , '/' ). size () != 2 ) {
throw std :: invalid_argument ( "error: invalid HF repo format, expected <user>/<model>[:quant] \n " );
}
// fetch model info from Hugging Face Hub API
json model_info ;
curl_ptr curl ( curl_easy_init (), & curl_easy_cleanup );
curl_slist_ptr http_headers ;
std :: string res_str ;
std :: string url = "https://huggingface.co/v2/" + hf_repo + "/manifests/" + tag ;
curl_easy_setopt ( curl . get (), CURLOPT_URL , url . c_str ());
curl_easy_setopt ( curl . get (), CURLOPT_NOPROGRESS , 1L );
typedef size_t ( * CURLOPT_WRITEFUNCTION_PTR )( void * ptr , size_t size , size_t nmemb , void * data );
auto write_callback = []( void * ptr , size_t size , size_t nmemb , void * data ) -> size_t {
static_cast < std :: string *> ( data ) -> append (( char * ) ptr , size * nmemb );
return size * nmemb ;
};
curl_easy_setopt ( curl . get (), CURLOPT_WRITEFUNCTION , static_cast < CURLOPT_WRITEFUNCTION_PTR > ( write_callback ));
curl_easy_setopt ( curl . get (), CURLOPT_WRITEDATA , & res_str );
#if defined(_WIN32)
curl_easy_setopt ( curl . get (), CURLOPT_SSL_OPTIONS , CURLSSLOPT_NATIVE_CA );
#endif
if ( ! hf_token . empty ()) {
std :: string auth_header = "Authorization: Bearer " + hf_token ;
http_headers . ptr = curl_slist_append ( http_headers . ptr , auth_header . c_str ());
}
// Important: the User-Agent must be "llama-cpp" to get the "ggufFile" field in the response
http_headers . ptr = curl_slist_append ( http_headers . ptr , "User-Agent: llama-cpp" );
http_headers . ptr = curl_slist_append ( http_headers . ptr , "Accept: application/json" );
curl_easy_setopt ( curl . get (), CURLOPT_HTTPHEADER , http_headers . ptr );
CURLcode res = curl_easy_perform ( curl . get ());
if ( res != CURLE_OK ) {
throw std :: runtime_error ( "error: cannot make GET request to HF API" );
}
long res_code ;
curl_easy_getinfo ( curl . get (), CURLINFO_RESPONSE_CODE , & res_code );
if ( res_code == 200 ) {
model_info = json :: parse ( res_str );
} else if ( res_code == 401 ) {
throw std :: runtime_error ( "error: model is private or does not exist; if you are accessing a gated model, please provide a valid HF token" );
} else {
throw std :: runtime_error ( string_format ( "error from HF API, response code: %ld, data: %s" , res_code , res_str . c_str ()));
}
// check response
if ( ! model_info . contains ( "ggufFile" )) {
throw std :: runtime_error ( "error: model does not have ggufFile" );
}
json & gguf_file = model_info . at ( "ggufFile" );
if ( ! gguf_file . contains ( "rfilename" )) {
throw std :: runtime_error ( "error: ggufFile does not have rfilename" );
}
return std :: make_pair ( hf_repo , gguf_file . at ( "rfilename" ));
}
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#else
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struct llama_model * common_load_model_from_url (
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const std :: string & /*model_url*/ ,
const std :: string & /*local_path*/ ,
const std :: string & /*hf_token*/ ,
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const struct llama_model_params & /*params*/ ) {
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LOG_WRN ( "%s: llama.cpp built without libcurl, downloading from an url not supported. \n " , __func__ );
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return nullptr ;
}
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struct llama_model * common_load_model_from_hf (
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const std :: string & /*repo*/ ,
const std :: string & /*remote_path*/ ,
const std :: string & /*local_path*/ ,
const std :: string & /*hf_token*/ ,
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const struct llama_model_params & /*params*/ ) {
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LOG_WRN ( "%s: llama.cpp built without libcurl, downloading from Hugging Face not supported. \n " , __func__ );
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return nullptr ;
}
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std :: pair < std :: string , std :: string > common_get_hf_file ( const std :: string & , const std :: string & ) {
LOG_WRN ( "%s: llama.cpp built without libcurl, downloading from Hugging Face not supported. \n " , __func__ );
return std :: make_pair ( "" , "" );
}
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#endif // LLAMA_USE_CURL
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//
// Batch utils
//
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void common_batch_clear ( struct llama_batch & batch ) {
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batch . n_tokens = 0 ;
}
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void common_batch_add (
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struct llama_batch & batch ,
llama_token id ,
llama_pos pos ,
const std :: vector < llama_seq_id > & seq_ids ,
bool logits ) {
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GGML_ASSERT ( batch . seq_id [ batch . n_tokens ] && "llama_batch size exceeded" );
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batch . token [ batch . n_tokens ] = id ;
batch . pos [ batch . n_tokens ] = pos ;
batch . n_seq_id [ batch . n_tokens ] = seq_ids . size ();
for ( size_t i = 0 ; i < seq_ids . size (); ++ i ) {
batch . seq_id [ batch . n_tokens ][ i ] = seq_ids [ i ];
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}
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batch . logits [ batch . n_tokens ] = logits ;
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batch . n_tokens ++ ;
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}
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//
// Token utils
//
size_t common_lcp ( const llama_tokens & a , const llama_tokens & b ) {
size_t i ;
for ( i = 0 ; i < a . size () && i < b . size () && a [ i ] == b [ i ]; i ++ ) {}
return i ;
}
size_t common_lcs ( const llama_tokens & a , const llama_tokens & b ) {
// check for empty sequences
if ( a . empty () || b . empty ()) {
return 0 ;
}
// get the lengths of the input sequences
size_t a_len = a . size ();
size_t b_len = b . size ();
// initialize the maximum length of the longest common subsequence (LCS)
size_t max_length = 0 ;
// use two rows instead of a 2D matrix to optimize space
std :: vector < size_t > prev_row ( b_len + 1 , 0 );
std :: vector < size_t > curr_row ( b_len + 1 , 0 );
// iterate through the elements of a
for ( size_t i = 1 ; i <= a_len ; i ++ ) {
// iterate through the elements of b
for ( size_t j = 1 ; j <= b_len ; j ++ ) {
// if elements at the current positions match
if ( a [ i - 1 ] == b [ j - 1 ]) {
// if it's the first element of either sequences, set LCS length to 1
if ( i == 1 || j == 1 ) {
curr_row [ j ] = 1 ;
} else {
// increment LCS length by 1 compared to the previous element
curr_row [ j ] = prev_row [ j - 1 ] + 1 ;
}
// update max_length if necessary
if ( curr_row [ j ] > max_length ) {
max_length = curr_row [ j ];
}
} else {
// reset LCS length if elements don't match
curr_row [ j ] = 0 ;
}
}
// update the previous row for the next iteration
prev_row = curr_row ;
}
// return the maximum length of the LCS
return max_length ;
}
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//
// Vocab utils
//
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std :: vector < llama_token > common_tokenize (
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const struct llama_context * ctx ,
const std :: string & text ,
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bool add_special ,
bool parse_special ) {
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const llama_model * model = llama_get_model ( ctx );
const llama_vocab * vocab = llama_model_get_vocab ( model );
return common_tokenize ( vocab , text , add_special , parse_special );
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}
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std :: vector < llama_token > common_tokenize (
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const struct llama_vocab * vocab ,
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const std :: string & text ,
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bool add_special ,
bool parse_special ) {
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// upper limit for the number of tokens
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int n_tokens = text . length () + 2 * add_special ;
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std :: vector < llama_token > result ( n_tokens );
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n_tokens = llama_tokenize ( vocab , text . data (), text . length (), result . data (), result . size (), add_special , parse_special );
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if ( n_tokens < 0 ) {
result . resize ( - n_tokens );
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int check = llama_tokenize ( vocab , text . data (), text . length (), result . data (), result . size (), add_special , parse_special );
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GGML_ASSERT ( check == - n_tokens );
} else {
result . resize ( n_tokens );
}
return result ;
}
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std :: string common_token_to_piece ( const struct llama_context * ctx , llama_token token , bool special ) {
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const llama_model * model = llama_get_model ( ctx );
const llama_vocab * vocab = llama_model_get_vocab ( model );
return common_token_to_piece ( vocab , token , special );
}
std :: string common_token_to_piece ( const struct llama_vocab * vocab , llama_token token , bool special ) {
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std :: string piece ;
piece . resize ( piece . capacity ()); // using string internal cache, 15 bytes + '\n'
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const int n_chars = llama_token_to_piece ( vocab , token , & piece [ 0 ], piece . size (), 0 , special );
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if ( n_chars < 0 ) {
piece . resize ( - n_chars );
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int check = llama_token_to_piece ( vocab , token , & piece [ 0 ], piece . size (), 0 , special );
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GGML_ASSERT ( check == - n_chars );
}
else {
piece . resize ( n_chars );
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}
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return piece ;
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}
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std :: string common_detokenize ( const struct llama_context * ctx , const std :: vector < llama_token > & tokens , bool special ) {
const llama_model * model = llama_get_model ( ctx );
const llama_vocab * vocab = llama_model_get_vocab ( model );
return common_detokenize ( vocab , tokens , special );
}
std :: string common_detokenize ( const struct llama_vocab * vocab , const std :: vector < llama_token > & tokens , bool special ) {
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std :: string text ;
text . resize ( std :: max ( text . capacity (), tokens . size ()));
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int32_t n_chars = llama_detokenize ( vocab , tokens . data (), ( int32_t ) tokens . size (), & text [ 0 ], ( int32_t ) text . size (), false , special );
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if ( n_chars < 0 ) {
text . resize ( - n_chars );
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n_chars = llama_detokenize ( vocab , tokens . data (), ( int32_t ) tokens . size (), & text [ 0 ], ( int32_t ) text . size (), false , special );
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GGML_ASSERT ( n_chars <= ( int32_t ) text . size ()); // whitespace trimming is performed after per-token detokenization
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}
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text . resize ( n_chars );
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// NOTE: the original tokenizer decodes bytes after collecting the pieces.
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return text ;
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}
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//
// KV cache utils
//
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void common_kv_cache_dump_view ( const llama_kv_cache_view & view , int row_size ) {
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static const char slot_chars [] = ".123456789ABCDEFGHIJKLMNOPQRSTUVWXYZabcdefghijklmnopqrstuvwxyz+" ;
printf ( "=== Dumping KV cache. total cells %d, max sequences per cell %d, populated cells %d, total tokens in cache %d, largest empty slot=%d @ %d" ,
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view . n_cells , view . n_seq_max , view . used_cells , view . token_count , view . max_contiguous , view . max_contiguous_idx );
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llama_kv_cache_view_cell * c_curr = view . cells ;
llama_seq_id * cs_curr = view . cells_sequences ;
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for ( int i = 0 ; i < view . n_cells ; i ++ , c_curr ++ , cs_curr += view . n_seq_max ) {
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if ( i % row_size == 0 ) {
printf ( " \n %5d: " , i );
}
int seq_count = 0 ;
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for ( int j = 0 ; j < view . n_seq_max ; j ++ ) {
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if ( cs_curr [ j ] >= 0 ) { seq_count ++ ; }
}
putchar ( slot_chars [ std :: min ( sizeof ( slot_chars ) - 2 , size_t ( seq_count ))]);
}
printf ( " \n === Done dumping \n " );
}
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void common_kv_cache_dump_view_seqs ( const llama_kv_cache_view & view , int row_size ) {
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static const char slot_chars [] = "0123456789ABCDEFGHIJKLMNOPQRSTUVWXYZabcdefghijklmnopqrstuvwxyz" ;
printf ( "=== Dumping KV cache. total cells %d, max sequences per cell %d, populated cells %d, total tokens in cache %d, largest empty slot=%d @ %d \n " ,
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view . n_cells , view . n_seq_max , view . used_cells , view . token_count , view . max_contiguous , view . max_contiguous_idx );
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std :: unordered_map < llama_seq_id , size_t > seqs ;
llama_kv_cache_view_cell * c_curr = view . cells ;
llama_seq_id * cs_curr = view . cells_sequences ;
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for ( int i = 0 ; i < view . n_cells ; i ++ , c_curr ++ , cs_curr += view . n_seq_max ) {
for ( int j = 0 ; j < view . n_seq_max ; j ++ ) {
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if ( cs_curr [ j ] < 0 ) { continue ; }
if ( seqs . find ( cs_curr [ j ]) == seqs . end ()) {
if ( seqs . size () + 1 >= sizeof ( slot_chars )) { break ; }
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const size_t sz = seqs . size ();
seqs [ cs_curr [ j ]] = sz ;
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}
}
if ( seqs . size () + 1 >= sizeof ( slot_chars )) { break ; }
}
printf ( "=== Sequence legend: " );
for ( const auto & it : seqs ) {
printf ( "%zu=%d, " , it . second , it . first );
}
printf ( "'+'=other sequence ids" );
c_curr = view . cells ;
cs_curr = view . cells_sequences ;
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for ( int i = 0 ; i < view . n_cells ; i ++ , c_curr ++ , cs_curr += view . n_seq_max ) {
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if ( i % row_size == 0 ) {
printf ( " \n %5d: " , i );
}
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for ( int j = 0 ; j < view . n_seq_max ; j ++ ) {
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if ( cs_curr [ j ] >= 0 ) {
const auto & it = seqs . find ( cs_curr [ j ]);
putchar ( it != seqs . end () ? int ( slot_chars [ it -> second ]) : '+' );
} else {
putchar ( '.' );
}
}
putchar ( ' ' );
}
printf ( " \n === Done dumping \n " );
}
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//
// Embedding utils
//
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void common_embd_normalize ( const float * inp , float * out , int n , int embd_norm ) {
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double sum = 0.0 ;
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switch ( embd_norm ) {
case - 1 : // no normalisation
sum = 1.0 ;
break ;
case 0 : // max absolute
for ( int i = 0 ; i < n ; i ++ ) {
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if ( sum < std :: abs ( inp [ i ])) {
sum = std :: abs ( inp [ i ]);
}
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}
sum /= 32760.0 ; // make an int16 range
break ;
case 2 : // euclidean
for ( int i = 0 ; i < n ; i ++ ) {
sum += inp [ i ] * inp [ i ];
}
sum = std :: sqrt ( sum );
break ;
default : // p-norm (euclidean is p-norm p=2)
for ( int i = 0 ; i < n ; i ++ ) {
sum += std :: pow ( std :: abs ( inp [ i ]), embd_norm );
}
sum = std :: pow ( sum , 1.0 / embd_norm );
break ;
}
const float norm = sum > 0.0 ? 1.0 / sum : 0.0f ;
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for ( int i = 0 ; i < n ; i ++ ) {
out [ i ] = inp [ i ] * norm ;
}
}
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float common_embd_similarity_cos ( const float * embd1 , const float * embd2 , int n ){
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double sum = 0.0 ;
double sum1 = 0.0 ;
double sum2 = 0.0 ;
for ( int i = 0 ; i < n ; i ++ ) {
sum += embd1 [ i ] * embd2 [ i ];
sum1 += embd1 [ i ] * embd1 [ i ];
sum2 += embd2 [ i ] * embd2 [ i ];
}
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// Handle the case where one or both vectors are zero vectors
if ( sum1 == 0.0 || sum2 == 0.0 ) {
if ( sum1 == 0.0 && sum2 == 0.0 ) {
return 1.0f ; // two zero vectors are similar
}
return 0.0f ;
}
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return sum / ( sqrt ( sum1 ) * sqrt ( sum2 ));
}
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//
// Control vector utils
//
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static common_control_vector_data common_control_vector_load_one ( const common_control_vector_load_info & load_info ) {
common_control_vector_data result = { - 1 , {} };
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ggml_context * ctx = nullptr ;
struct gguf_init_params meta_gguf_params = {
/* .no_alloc = */ false ,
/* .ctx = */ & ctx ,
};
struct gguf_context * ctx_gguf = gguf_init_from_file ( load_info . fname . c_str (), meta_gguf_params );
if ( ! ctx_gguf ) {
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LOG_ERR ( "%s: failed to load control vector file from %s \n " , __func__ , load_info . fname . c_str ());
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return result ;
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}
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int32_t n_tensors = gguf_get_n_tensors ( ctx_gguf );
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if ( n_tensors == 0 ) {
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LOG_WRN ( "%s: no direction tensors found in %s \n " , __func__ , load_info . fname . c_str ());
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}
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for ( int i = 0 ; i < n_tensors ; i ++ ) {
std :: string name = gguf_get_tensor_name ( ctx_gguf , i );
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int layer_idx = - 1 ;
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// split on '.'
size_t dotpos = name . find ( '.' );
if ( dotpos != std :: string :: npos && name . substr ( 0 , dotpos ) == "direction" ) {
try {
layer_idx = std :: stoi ( name . substr ( dotpos + 1 ));
} catch (...) {
layer_idx = - 1 ;
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}
}
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if ( layer_idx < 0 ) {
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LOG_ERR ( "%s: invalid/unparsable direction tensor layer index in %s \n " , __func__ , load_info . fname . c_str ());
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result . n_embd = - 1 ;
break ;
} else if ( layer_idx == 0 ) {
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LOG_ERR ( "%s: invalid (zero) direction tensor layer index in %s \n " , __func__ , load_info . fname . c_str ());
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result . n_embd = - 1 ;
break ;
}
struct ggml_tensor * tensor = ggml_get_tensor ( ctx , name . c_str ());
if ( tensor -> type != GGML_TYPE_F32 ) {
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LOG_ERR ( "%s: invalid (non-F32) direction tensor type in %s \n " , __func__ , load_info . fname . c_str ());
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result . n_embd = - 1 ;
break ;
}
if ( ggml_n_dims ( tensor ) != 1 ) {
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LOG_ERR ( "%s: invalid (non-1D) direction tensor shape in %s \n " , __func__ , load_info . fname . c_str ());
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result . n_embd = - 1 ;
break ;
}
if ( result . n_embd == - 1 ) {
result . n_embd = ggml_nelements ( tensor );
} else if ( ggml_nelements ( tensor ) != result . n_embd ) {
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LOG_ERR ( "%s: direction tensor in %s does not match previous dimensions \n " , __func__ , load_info . fname . c_str ());
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result . n_embd = - 1 ;
break ;
}
// extend if necessary - do not store data for layer 0 (it's not used)
result . data . resize ( std :: max ( result . data . size (), static_cast < size_t > ( result . n_embd * layer_idx )), 0.0f );
const float * src = ( const float * ) tensor -> data ;
float * dst = result . data . data () + result . n_embd * ( layer_idx - 1 ); // layer 1 at [0]
for ( int j = 0 ; j < result . n_embd ; j ++ ) {
dst [ j ] += src [ j ] * load_info . strength ; // allows multiple directions for same layer in same file
}
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}
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if ( result . n_embd == - 1 ) {
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LOG_WRN ( "%s: skipping %s due to invalid direction tensors \n " , __func__ , load_info . fname . c_str ());
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result . data . clear ();
}
gguf_free ( ctx_gguf );
ggml_free ( ctx );
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return result ;
}
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common_control_vector_data common_control_vector_load ( const std :: vector < common_control_vector_load_info > & load_infos ) {
common_control_vector_data result = { - 1 , {} };
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for ( const auto & info : load_infos ) {
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auto cur = common_control_vector_load_one ( info );
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if ( cur . n_embd == - 1 ) {
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result . n_embd = - 1 ;
break ;
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}
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if ( result . n_embd != - 1 && result . n_embd != cur . n_embd ) {
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LOG_ERR ( "%s: control vectors in %s does not match previous dimensions \n " , __func__ , info . fname . c_str ());
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result . n_embd = - 1 ;
break ;
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}
if ( result . n_embd == - 1 ) {
result = std :: move ( cur );
} else {
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result . data . resize ( std :: max ( result . data . size (), cur . data . size ()), 0.0f ); // extend if necessary
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for ( size_t i = 0 ; i < cur . data . size (); i ++ ) {
result . data [ i ] += cur . data [ i ];
}
}
}
if ( result . n_embd == - 1 ) {
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LOG_ERR ( "%s: no valid control vector files passed \n " , __func__ );
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result . data . clear ();
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}
return result ;
}
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template <>
json common_grammar_trigger :: to_json () const {
json out {
{ "type" , ( int ) type },
{ "value" , value },
};
if ( type == COMMON_GRAMMAR_TRIGGER_TYPE_TOKEN ) {
out [ "token" ] = ( int ) token ;
}
return out ;
}
template <>
common_grammar_trigger common_grammar_trigger :: from_json ( const json & in ) {
common_grammar_trigger out ;
out . type = ( common_grammar_trigger_type ) in . at ( "type" ). get < int > ();
out . value = in . at ( "value" ). get < std :: string > ();
if ( out . type == COMMON_GRAMMAR_TRIGGER_TYPE_TOKEN ) {
out . token = ( llama_token ) in . at ( "token" ). get < int > ();
}
return out ;
}