wasm_interface.cpp 61.5 KB
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#include <eosio/chain/wasm_interface.hpp>
#include <eosio/chain/apply_context.hpp>
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#include <eosio/chain/chain_controller.hpp>
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#include <eosio/chain/producer_schedule.hpp>
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#include <eosio/chain/asset.hpp>
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#include <eosio/chain/exceptions.hpp>
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#include <boost/core/ignore_unused.hpp>
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#include <boost/multiprecision/cpp_bin_float.hpp>
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#include <eosio/chain/wasm_interface_private.hpp>
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#include <eosio/chain/wasm_eosio_constraints.hpp>
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#include <fc/exception/exception.hpp>
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#include <fc/crypto/sha256.hpp>
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#include <fc/crypto/sha1.hpp>
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#include <fc/io/raw.hpp>
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#include <fc/utf8.hpp>
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#include <Runtime/Runtime.h>
#include "IR/Module.h"
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#include "Platform/Platform.h"
#include "WAST/WAST.h"
#include "IR/Operators.h"
#include "IR/Validate.h"
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#include "IR/Types.h"
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#include "Runtime/Runtime.h"
#include "Runtime/Linker.h"
#include "Runtime/Intrinsics.h"
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#include <boost/asio.hpp>
#include <boost/bind.hpp>

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#include <mutex>
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#include <thread>
#include <condition_variable>
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using namespace IR;
using namespace Runtime;
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using boost::asio::io_service;
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#if 0
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   // account.h/hpp expected account API balance interchange format
   // must match account.hpp account_balance definition
   PACKED_STRUCT(
   struct account_balance
   {
      /**
      * Name of the account who's balance this is
      */
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      eosio::chain::account_name account;
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      /**
      * Balance for this account
      */
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      eosio::chain::asset eos_balance;
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      /**
      * Staked balance for this account
      */
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      eosio::chain::asset staked_balance;
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      /**
      * Unstaking balance for this account
      */
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      eosio::chain::asset unstaking_balance;
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      /**
      * Time at which last unstaking occurred for this account
      */
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      eosio::chain::time last_unstaking_time;
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   })
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#endif
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namespace eosio { namespace chain {
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   using namespace contracts;
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   /**
    * Integration with the WASM Linker to resolve our intrinsics
    */
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   struct root_resolver : Runtime::Resolver
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   {
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      bool resolve(const string& mod_name,
                   const string& export_name,
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                   ObjectType type,
                   ObjectInstance*& out) override
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      { try {
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         // Try to resolve an intrinsic first.
         if(IntrinsicResolver::singleton.resolve(mod_name,export_name,type, out)) {
            return true;
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         }
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         FC_ASSERT( !"unresolvable", "${module}.${export}", ("module",mod_name)("export",export_name) );
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         return false;
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      } FC_CAPTURE_AND_RETHROW( (mod_name)(export_name) ) }
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   };
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   /**
    *  Implementation class for the wasm cache
    *  it is responsible for compiling and storing instances of wasm code for use
    *
    */
   struct wasm_cache_impl {
      wasm_cache_impl()
      {
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         Runtime::init();
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      }
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      /**
       * this must wait for all work to be done otherwise it may destroy memory
       * referenced by other threads
       *
       * Expectations on wasm_cache dictate that all available code has been
       * returned before this can be destroyed
       */
      ~wasm_cache_impl() {
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         freeUnreferencedObjects({});
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      }
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      /**
       * internal tracking structure which deduplicates memory images
       * and tracks available vs in-use entries.
       *
       * The instances array has two sections, "available" instances
       * are in the front of the vector and anything at an index of
       * available_instances or greater is considered "in use"
       *
       * instances are stored as pointers so that their positions
       * in the array can be moved without invaliding references to
       * the instance handed out to other threads
       */
      struct code_info {
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         code_info( size_t mem_end, vector<char>&& mem_image )
         :mem_end(mem_end),mem_image(std::forward<vector<char>>(mem_image))
         {}

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         // a clean image of the memory used to sanitize things on checkin
         size_t mem_start           = 0;
         size_t mem_end             = 1<<16;
         vector<char> mem_image;

         // all existing instances of this code
         vector<unique_ptr<wasm_cache::entry>> instances;
         size_t available_instances = 0;
      };

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      using optional_info_ref = optional<std::reference_wrapper<code_info>>;
      using optional_entry_ref = optional<std::reference_wrapper<wasm_cache::entry>>;

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      /**
       * Convenience method for running code with the _cache_lock and releaseint that lock
       * when the code completes
       *
       * @param f - lambda to execute
       * @return - varies depending on the signature of the lambda
       */
      template<typename F>
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      auto with_lock(std::mutex &l, F f) {
         std::lock_guard<std::mutex> lock(l);
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         return f();
      };

      /**
       * Fetch the tracking struct given a code_id if it exists
       *
       * @param code_id
       * @return
       */
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      optional_info_ref fetch_info(const digest_type& code_id) {
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         return with_lock(_cache_lock, [&,this](){
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            auto iter = _cache.find(code_id);
            if (iter != _cache.end()) {
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               return optional_info_ref(iter->second);
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            }

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            return optional_info_ref();
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         });
      }
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      /**
       * Opportunistically fetch an available instance of the code;
       * @param code_id - the id of the code to fetch
       * @return - reference to the entry when one is available
       */
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      optional_entry_ref try_fetch_entry(const digest_type& code_id) {
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         return with_lock(_cache_lock, [&,this](){
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            auto iter = _cache.find(code_id);
            if (iter != _cache.end() && iter->second.available_instances > 0) {
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               auto &ptr = iter->second.instances.at(--(iter->second.available_instances));
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               return optional_entry_ref(*ptr);
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            }

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            return optional_entry_ref();
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         });
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      }
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      /**
       * Fetch a copy of the code, this is guaranteed to return an entry IF the code is compilable.
       * In order to do that in safe way this code may cause the calling thread to sleep while a new
       * version of the code is compiled and inserted into the cache
       *
       * @param code_id - the id of the code to fetch
       * @param wasm_binary - the binary for the wasm
       * @param wasm_binary_size - the size of the binary
       * @return reference to a usable cache entry
       */
      wasm_cache::entry& fetch_entry(const digest_type& code_id, const char* wasm_binary, size_t wasm_binary_size) {
         std::condition_variable condition;
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         optional_entry_ref result;
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         std::exception_ptr error;

         // compilation is not thread safe, so we dispatch it to a io_service running on a single thread to
         // queue up and synchronize compilations
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         with_lock(_compile_lock, [&,this](){
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            // check to see if someone returned what we need before making a new one
            auto pending_result = try_fetch_entry(code_id);
            std::exception_ptr pending_error;

            if (!pending_result) {
               // time to compile a brand new (maybe first) copy of this code
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               Module* module = new Module();
               ModuleInstance* instance = nullptr;
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               size_t mem_end = 0;
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               vector<char> mem_image;

               try {
                  Serialization::MemoryInputStream stream((const U8 *) wasm_binary, wasm_binary_size);
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                  WASM::serializeWithInjection(stream, *module);
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                  validate_eosio_wasm_constraints(*module);
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                  root_resolver resolver;
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                  LinkResult link_result = linkModule(*module, resolver);
                  instance = instantiateModule(*module, std::move(link_result.resolvedImports));
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                  FC_ASSERT(instance != nullptr);

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                  MemoryInstance* current_memory = Runtime::getDefaultMemory(instance);
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                  if(current_memory) {
                     char *mem_ptr = &memoryRef<char>(current_memory, 0);
                     const auto allocated_memory = Runtime::getDefaultMemorySize(instance);
                     for (uint64_t i = 0; i < allocated_memory; ++i) {
                        if (mem_ptr[i])
                           mem_end = i + 1;
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                     }
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                     mem_image.resize(mem_end);
                     memcpy(mem_image.data(), mem_ptr, mem_end);
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                  }
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               } catch (...) {
                  pending_error = std::current_exception();
               }

               if (pending_error == nullptr) {
                  // grab the lock and put this in the cache as unavailble
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                  with_lock(_cache_lock, [&,this]() {
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                     // find or create a new entry
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                     auto iter = _cache.emplace(code_id, code_info(mem_end, std::move(mem_image))).first;
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                     iter->second.instances.emplace_back(std::make_unique<wasm_cache::entry>(instance, module));
                     pending_result = optional_entry_ref(*iter->second.instances.back().get());
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                  });
               }
            }

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           if (pending_error != nullptr) {
              error = pending_error;
           } else {
              result = pending_result;
           }
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         });

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         try {
            if (error != nullptr) {
               std::rethrow_exception(error);
            } else {
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               return (*result).get();
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            }
         } FC_RETHROW_EXCEPTIONS(error, "error compiling WASM for code with hash: ${code_id}", ("code_id", code_id));
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      }
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      /**
       * return an entry to the cache.  The entry is presumed to come back in a "dirty" state and must be
       * sanitized before returning to the "available" state.  This sanitization is done asynchronously so
       * as not to delay the current executing thread.
       *
       * @param code_id - the code Id associated with the instance
       * @param entry - the entry to return
       */
      void return_entry(const digest_type& code_id, wasm_cache::entry& entry) {
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        // sanitize by reseting the memory that may now be dirty
        auto& info = (*fetch_info(code_id)).get();
        if(getDefaultMemory(entry.instance)) {
           char* memstart = &memoryRef<char>( getDefaultMemory(entry.instance), 0 );
           memset( memstart + info.mem_end, 0, ((1<<16) - info.mem_end) );
           memcpy( memstart, info.mem_image.data(), info.mem_end);
        }
        resetGlobalInstances(entry.instance);

        // under a lock, put this entry back in the available instances side of the instances vector
        with_lock(_cache_lock, [&,this](){
           // walk the vector and find this entry
           auto iter = info.instances.begin();
           while (iter->get() != &entry) {
              ++iter;
           }

           FC_ASSERT(iter != info.instances.end(), "Checking in a WASM enty that was not created properly!");

           auto first_unavailable = (info.instances.begin() + info.available_instances);
           if (iter != first_unavailable) {
              std::swap(iter, first_unavailable);
           }
           info.available_instances++;
        });
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      }
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      // mapping of digest to an entry for the code
      map<digest_type, code_info> _cache;
      std::mutex _cache_lock;
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      // compilation lock
      std::mutex _compile_lock;
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   };
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   wasm_cache::wasm_cache()
      :_my( new wasm_cache_impl() ) {
   }
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   wasm_cache::~wasm_cache() = default;

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   wasm_cache::entry &wasm_cache::checkout( const digest_type& code_id, const char* wasm_binary, size_t wasm_binary_size ) {
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      // see if there is an available entry in the cache
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      auto result = _my->try_fetch_entry(code_id);
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      if (result) {
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         return (*result).get();
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      }
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      return _my->fetch_entry(code_id, wasm_binary, wasm_binary_size);
   }


   void wasm_cache::checkin(const digest_type& code_id, entry& code ) {
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      MemoryInstance* default_mem = Runtime::getDefaultMemory(code.instance);
      if(default_mem)
         Runtime::shrinkMemory(default_mem, Runtime::getMemoryNumPages(default_mem) - 1);
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      _my->return_entry(code_id, code);
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   }
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   /**
    * RAII wrapper to make sure that the context is cleaned up on exception
    */
   struct scoped_context {
      template<typename ...Args>
      scoped_context(optional<wasm_context> &context, Args&... args)
      :context(context)
      {
         context = wasm_context{ args... };
      }

      ~scoped_context() {
         context.reset();
      }

      optional<wasm_context>& context;
   };

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   void wasm_interface_impl::call(const string& entry_point, const vector<Value>& args, wasm_cache::entry& code, apply_context& context)
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   try {
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      FunctionInstance* call = asFunctionNullable(getInstanceExport(code.instance,entry_point) );
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      if( !call ) {
         return;
      }

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      FC_ASSERT( getFunctionType(call)->parameters.size() == args.size() );
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      auto context_guard = scoped_context(current_context, code, context);
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      runInstanceStartFunc(code.instance);
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      Runtime::invokeFunction(call,args);
   } catch( const Runtime::Exception& e ) {
      FC_THROW_EXCEPTION(wasm_execution_error,
                         "cause: ${cause}\n${callstack}",
                         ("cause", string(describeExceptionCause(e.cause)))
                         ("callstack", e.callStack));
   } FC_CAPTURE_AND_RETHROW()

   wasm_interface::wasm_interface()
      :my( new wasm_interface_impl() ) {
   }

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   wasm_interface& wasm_interface::get() {
      thread_local wasm_interface* single = nullptr;
      if( !single ) {
         single = new wasm_interface();
      }
      return *single;
   }

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   void wasm_interface::apply( wasm_cache::entry& code, apply_context& context ) {
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      vector<Value> args = {Value(uint64_t(context.act.account)),
                            Value(uint64_t(context.act.name))};
      my->call("apply", args, code, context);
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   }

   void wasm_interface::error( wasm_cache::entry& code, apply_context& context ) {
      vector<Value> args = { /* */ };
      my->call("error", args, code, context);
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   }

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#if defined(assert)
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   #undef assert
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#endif

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class context_aware_api {
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   public:
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      context_aware_api(wasm_interface& wasm)
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      :context(intrinsics_accessor::get_context(wasm).context), code(intrinsics_accessor::get_context(wasm).code),
       sbrk_bytes(intrinsics_accessor::get_context(wasm).sbrk_bytes)
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      {}

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   protected:
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      apply_context&     context;
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      wasm_cache::entry& code;
      uint32_t&          sbrk_bytes;
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};

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/*
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class chain_api : public context_aware_api {
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   public:
      using context_aware_api::context_aware_api;
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      int32_t get_active_producers(array_ptr<chain::account_name> producers, size_t datalen) {
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         auto active_prods = context.get_active_producers();
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         size_t len = std::min(datalen, active_prods.size() * sizeof(chain::account_name));
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         memcpy(producers, active_prods.data(), len);
         return active_prods.size() * sizeof(chain::account_name);
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      }
};
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*/

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class privileged_api : public context_aware_api {
   public:
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      privileged_api( wasm_interface& wasm )
      :context_aware_api(wasm)
      {
         FC_ASSERT( context.privileged, "${code} does not have permission to call this API", ("code",context.receiver) );
      }
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      /**
       *  This should schedule the feature to be activated once the
       *  block that includes this call is irreversible. It should
       *  fail if the feature is already pending.
       *
       *  Feature name should be base32 encoded name. 
       */
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      void activate_feature( int64_t feature_name ) {
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         FC_ASSERT( !"Unsupported Hardfork Detected" );
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      }

      /**
       * This should return true if a feature is active and irreversible, false if not.
       *
       * Irreversiblity by fork-database is not consensus safe, therefore, this defines
       * irreversiblity only by block headers not by BFT short-cut.
       */
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      int is_feature_active( int64_t feature_name ) {
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         return false;
      }

      void set_resource_limits( account_name account, 
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                                int64_t ram_bytes, int64_t net_weight, int64_t cpu_weight,
                                int64_t cpu_usec_per_period ) {
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         auto& buo = context.db.get<bandwidth_usage_object,by_owner>( account );
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         FC_ASSERT( buo.db_usage <= ram_bytes, "attempt to free too much space" );
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         auto& gdp = context.controller.get_dynamic_global_properties();
         context.mutable_db.modify( gdp, [&]( auto& p ) {
           p.total_net_weight -= buo.net_weight;
           p.total_net_weight += net_weight;
           p.total_cpu_weight -= buo.cpu_weight;
           p.total_cpu_weight += cpu_weight;
           p.total_db_reserved -= buo.db_reserved_capacity;
           p.total_db_reserved += ram_bytes;
         });

         context.mutable_db.modify( buo, [&]( auto& o ){
            o.net_weight = net_weight;
            o.cpu_weight = cpu_weight;
            o.db_reserved_capacity = ram_bytes;
         });
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      }

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      void get_resource_limits( account_name account, 
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                                uint64_t& ram_bytes, uint64_t& net_weight, uint64_t cpu_weight ) {
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      }
                                               
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      void set_active_producers( array_ptr<char> packed_producer_schedule, size_t datalen) {
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         datastream<const char*> ds( packed_producer_schedule, datalen );
         producer_schedule_type psch;
         fc::raw::unpack(ds, psch);

         context.mutable_db.modify( context.controller.get_global_properties(), 
            [&]( auto& gprops ) {
                 gprops.new_active_producers = psch;
         });
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      }

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      bool is_privileged( account_name n )const {
         return context.db.get<account_object, by_name>( n ).privileged;
      }
      bool is_frozen( account_name n )const {
         return context.db.get<account_object, by_name>( n ).frozen;
      }
      void set_privileged( account_name n, bool is_priv ) {
         const auto& a = context.db.get<account_object, by_name>( n );
         context.mutable_db.modify( a, [&]( auto& ma ){
            ma.privileged = is_priv;
         });
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      }

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      void freeze_account( account_name n , bool should_freeze ) {
         const auto& a = context.db.get<account_object, by_name>( n );
         context.mutable_db.modify( a, [&]( auto& ma ){
            ma.frozen = should_freeze;
         });
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      }

      /// TODO: add inline/deferred with support for arbitrary permissions rather than code/current auth
};

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class checktime_api : public context_aware_api {
public:
   using context_aware_api::context_aware_api;

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   void checktime(uint32_t instruction_count) {
      context.checktime(instruction_count);
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   }
};

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class producer_api : public context_aware_api {
   public:
      using context_aware_api::context_aware_api;

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      int get_active_producers(array_ptr<chain::account_name> producers, size_t datalen) {
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         auto active_producers = context.get_active_producers();
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         size_t len = active_producers.size() * sizeof(chain::account_name);
         size_t cpy_len = std::min(datalen, len);
         memcpy(producers, active_producers.data(), cpy_len);
         return len;
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      }
};

class crypto_api : public context_aware_api {
   public:
      using context_aware_api::context_aware_api;

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      /**
       * This method can be optimized out during replay as it has
       * no possible side effects other than "passing". 
       */
      void assert_recover_key( fc::sha256& digest, 
                        array_ptr<char> sig, size_t siglen,
                        array_ptr<char> pub, size_t publen ) {
         fc::crypto::signature s;
         fc::crypto::public_key p;
         datastream<const char*> ds( sig, siglen );
         datastream<const char*> pubds( pub, publen );

         fc::raw::unpack(ds, s);
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         fc::raw::unpack(pubds, p);
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         auto check = fc::crypto::public_key( s, digest, false );
         FC_ASSERT( check == p, "Error expected key different than recovered key" );
      }

      int recover_key( fc::sha256& digest, 
                        array_ptr<char> sig, size_t siglen,
                        array_ptr<char> pub, size_t publen ) {
         fc::crypto::signature s;
         datastream<const char*> ds( sig, siglen );
         datastream<char*> pubds( pub, publen );

         fc::raw::unpack(ds, s);
         fc::raw::pack( pubds, fc::crypto::public_key( s, digest, false ) );
         return pubds.tellp();
      }

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      void assert_sha256(array_ptr<char> data, size_t datalen, const fc::sha256& hash_val) {
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         auto result = fc::sha256::hash( data, datalen );
         FC_ASSERT( result == hash_val, "hash miss match" );
      }

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      void assert_sha1(array_ptr<char> data, size_t datalen, const fc::sha1& hash_val) {
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         auto result = fc::sha1::hash( data, datalen );
         FC_ASSERT( result == hash_val, "hash miss match" );
      }

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      void assert_sha512(array_ptr<char> data, size_t datalen, const fc::sha512& hash_val) {
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         auto result = fc::sha512::hash( data, datalen );
         FC_ASSERT( result == hash_val, "hash miss match" );
      }

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      void assert_ripemd160(array_ptr<char> data, size_t datalen, const fc::ripemd160& hash_val) {
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         auto result = fc::ripemd160::hash( data, datalen );
         FC_ASSERT( result == hash_val, "hash miss match" );
      }


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      void sha1(array_ptr<char> data, size_t datalen, fc::sha1& hash_val) {
         hash_val = fc::sha1::hash( data, datalen );
      }

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      void sha256(array_ptr<char> data, size_t datalen, fc::sha256& hash_val) {
         hash_val = fc::sha256::hash( data, datalen );
      }
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      void sha512(array_ptr<char> data, size_t datalen, fc::sha512& hash_val) {
         hash_val = fc::sha512::hash( data, datalen );
      }

      void ripemd160(array_ptr<char> data, size_t datalen, fc::ripemd160& hash_val) {
         hash_val = fc::ripemd160::hash( data, datalen );
      }
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};

class string_api : public context_aware_api {
   public:
      using context_aware_api::context_aware_api;

      void assert_is_utf8(array_ptr<const char> str, size_t datalen, null_terminated_ptr msg) {
         const bool test = fc::is_utf8(std::string( str, datalen ));

         FC_ASSERT( test, "assertion failed: ${s}", ("s",msg.value) );
      }
};
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class system_api : public context_aware_api {
   public:
      using context_aware_api::context_aware_api;

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      void abort() {
         edump(("abort() called"));
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         FC_ASSERT( false, "abort() called");
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      }

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      void eosio_assert(bool condition, null_terminated_ptr str) {
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         std::string message( str );
         if( !condition ) edump((message));
         FC_ASSERT( condition, "assertion failed: ${s}", ("s",message));
      }
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      fc::time_point_sec now() {
         return context.controller.head_block_time();
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      } 
};

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class action_api : public context_aware_api {
   public:
      using context_aware_api::context_aware_api;

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      int read_action(array_ptr<char> memory, size_t size) {
         FC_ASSERT(size > 0);
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         int minlen = std::min<size_t>(context.act.data.size(), size);
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         memcpy((void *)memory, context.act.data.data(), minlen);
         return minlen;
      }

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      int action_size() {
         return context.act.data.size();
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      }

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      const name& current_receiver() {
         return context.receiver;
      }
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      fc::time_point_sec publication_time() {
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         return context.trx_meta.published;
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      }

      name current_sender() {
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         if (context.trx_meta.sender) {
            return *context.trx_meta.sender;
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         } else {
            return name();
         }
      }
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};
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class console_api : public context_aware_api {
   public:
      using context_aware_api::context_aware_api;

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      void prints(null_terminated_ptr str) {
         context.console_append<const char*>(str);
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      }

      void prints_l(array_ptr<const char> str, size_t str_len ) {
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         context.console_append(string(str, str_len));
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      }

      void printi(uint64_t val) {
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         context.console_append(val);
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      }

      void printi128(const unsigned __int128& val) {
         fc::uint128_t v(val>>64, uint64_t(val) );
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         context.console_append(fc::variant(v).get_string());
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      }

      void printd( wasm_double val ) {
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         context.console_append(val.str());
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      }

      void printn(const name& value) {
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         context.console_append(value.to_string());
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      }

      void printhex(array_ptr<const char> data, size_t data_len ) {
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         context.console_append(fc::to_hex(data, data_len));
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      }
};

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class database_api : public context_aware_api {
   public:
      using context_aware_api::context_aware_api;

      int db_store_i64( uint64_t scope, uint64_t table, uint64_t payer, uint64_t id, array_ptr<const char> buffer, size_t buffer_size ) {
         return context.db_store_i64( scope, table, payer, id, buffer, buffer_size );
      }
      void db_update_i64( int itr, uint64_t payer, array_ptr<const char> buffer, size_t buffer_size ) {
         context.db_update_i64( itr, payer, buffer, buffer_size );
      }
      void db_remove_i64( int itr ) {
         context.db_remove_i64( itr );
      }
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      int db_get_i64( int itr, array_ptr<char> buffer, size_t buffer_size ) {
         return context.db_get_i64( itr, buffer, buffer_size );
      }
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      int db_next_i64( int itr, uint64_t& primary ) {
         return context.db_next_i64(itr, primary);
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      }
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      int db_previous_i64( int itr, uint64_t& primary ) {
         return context.db_previous_i64(itr, primary);
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      }
      int db_find_i64( uint64_t code, uint64_t scope, uint64_t table, uint64_t id ) { 
         return context.db_find_i64( code, scope, table, id ); 
      }
      int db_lowerbound_i64( uint64_t code, uint64_t scope, uint64_t table, uint64_t id ) { 
         return context.db_lowerbound_i64( code, scope, table, id ); 
      }
      int db_upperbound_i64( uint64_t code, uint64_t scope, uint64_t table, uint64_t id ) { 
         return context.db_lowerbound_i64( code, scope, table, id ); 
      }
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      int db_idx64_store( uint64_t scope, uint64_t table, uint64_t payer, uint64_t id, const uint64_t& secondary ) {
         return context.idx64.store( scope, table, payer, id, secondary );
      }
      void db_idx64_update( int iterator, uint64_t payer, const uint64_t& secondary ) {
         return context.idx64.update( iterator, payer, secondary );
      }
      void db_idx64_remove( int iterator ) {
         return context.idx64.remove( iterator );
      }
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      int db_idx64_find_secondary( uint64_t code, uint64_t scope, uint64_t table, uint64_t& secondary, uint64_t& primary ) {
         return context.idx64.find_secondary(code, scope, table, secondary, primary);
      }
      int db_idx64_find_primary( uint64_t code, uint64_t scope, uint64_t table, uint64_t& secondary, uint64_t primary ) {
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         return context.idx64.find_secondary(code, scope, table, secondary, primary);
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      }
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      int db_idx64_lowerbound( uint64_t code, uint64_t scope, uint64_t table,  uint64_t& secondary, uint64_t& primary ) {
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         return context.idx64.lowerbound_secondary(code, scope, table, secondary, primary);
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      }
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      int db_idx64_upperbound( uint64_t code, uint64_t scope, uint64_t table,  uint64_t& secondary, uint64_t& primary ) {
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         return context.idx64.upperbound_secondary(code, scope, table, secondary, primary);
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      }
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      int db_idx64_next( int iterator, uint64_t& primary  ) {
         return context.idx64.next_secondary(iterator, primary);
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      }
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      int db_idx64_previous( int iterator, uint64_t& primary ) {
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         return context.idx64.previous_secondary(iterator, primary);
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      }
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      /*
      int db_idx64_next( int iterator, uint64_t& primary ) {
      }
      int db_idx64_prev( int iterator, uint64_t& primary ) {
      }
      int db_idx64_find_primary( uint64_t code, uint64_t scope, uint64_t table, uint64_t& secondary, uint64_t primary ) {
      }
      int db_idx64_find_secondary( uint64_t code, uint64_t scope, uint64_t table, uint64_t& secondary, uint64_t& primary ) {
      }
      int db_idx64_lowerbound( uint64_t code, uint64_t scope, uint64_t table, uint64_t& secondary, uint64_t& primary ) {
      }
      int db_idx64_upperbound( uint64_t code, uint64_t scope, uint64_t table, uint64_t& secondary, uint64_t& primary ) {
      }
      */
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      int db_idx128_store( uint64_t scope, uint64_t table, uint64_t payer, uint64_t id, const uint128_t& secondary ) {
         return context.idx128.store( scope, table, payer, id, secondary );
      }
      void db_idx128_update( int iterator, uint64_t payer, const uint128_t& secondary ) {
         return context.idx128.update( iterator, payer, secondary );
      }
      void db_idx128_remove( int iterator ) {
         return context.idx128.remove( iterator );
      }
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      int db_idx128_find_primary( uint64_t code, uint64_t scope, uint64_t table, uint128_t& secondary, uint64_t primary ) {
         return context.idx128.find_primary( code, scope, table, secondary, primary );
      }
      int db_idx128_find_secondary( uint64_t code, uint64_t scope, uint64_t table, uint128_t& secondary, uint64_t& primary ) {
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         return context.idx128.find_secondary(code, scope, table, secondary, primary);
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      }
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      int db_idx128_lowerbound( uint64_t code, uint64_t scope, uint64_t table, uint128_t& secondary, uint64_t& primary ) {
         return context.idx128.lowerbound_secondary(code, scope, table, secondary, primary);
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      }
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      int db_idx128_upperbound( uint64_t code, uint64_t scope, uint64_t table, uint128_t& secondary, uint64_t& primary ) {
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         return context.idx128.upperbound_secondary(code, scope, table, secondary, primary);
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      }
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      int db_idx128_next( int iterator, uint64_t& primary ) {
         return context.idx128.next_secondary(iterator, primary);
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      }
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      int db_idx128_previous( int iterator, uint64_t& primary ) {
         return context.idx128.previous_secondary(iterator, primary);
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      }
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   /*
      int db_idx128_next( int iterator, uint64_t& primary ) {
      }
      int db_idx128_prev( int iterator, uint64_t& primary ) {
      }
      int db_idx128_find_secondary( uint64_t code, uint64_t scope, uint64_t table, uint128_t& secondary, uint64_t& primary ) {
      }
      int db_idx128_lowerbound( uint64_t code, uint64_t scope, uint64_t table, uint128_t& secondary, uint64_t& primary ) {
      }
      int db_idx128_upperbound( uint64_t code, uint64_t scope, uint64_t table, uint128_t& secondary, uint64_t& primary ) {
      }
      */
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};



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template<typename ObjectType>
class db_api : public context_aware_api {
   using KeyType = typename ObjectType::key_type;
   static constexpr int KeyCount = ObjectType::number_of_keys;
   using KeyArrayType = KeyType[KeyCount];
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   using ContextMethodType = int(apply_context::*)(const table_id_object&, const account_name&, const KeyType*, const char*, size_t);
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   private:
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      int call(ContextMethodType method, const scope_name& scope, const name& table, account_name bta, array_ptr<const char> data, size_t data_len) {
         const auto& t_id = context.find_or_create_table(context.receiver, scope, table);
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         FC_ASSERT(data_len >= KeyCount * sizeof(KeyType), "Data is not long enough to contain keys");
         const KeyType* keys = reinterpret_cast<const KeyType *>((const char *)data);

         const char* record_data =  ((const char*)data) + sizeof(KeyArrayType);
         size_t record_len = data_len - sizeof(KeyArrayType);
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         return (context.*(method))(t_id, bta, keys, record_data, record_len) + sizeof(KeyArrayType);
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      }

   public:
      using context_aware_api::context_aware_api;

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      int store(const scope_name& scope, const name& table, const account_name& bta, array_ptr<const char> data, size_t data_len) {
         auto res = call(&apply_context::store_record<ObjectType>, scope, table, bta, data, data_len);
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         //ilog("STORE [${scope},${code},${table}] => ${res} :: ${HEX}", ("scope",scope)("code",context.receiver)("table",table)("res",res)("HEX", fc::to_hex(data, data_len)));
         return res;
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      }

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      int update(const scope_name& scope, const name& table, const account_name& bta, array_ptr<const char> data, size_t data_len) {
         return call(&apply_context::update_record<ObjectType>, scope, table, bta, data, data_len);
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      }
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      int remove(const scope_name& scope, const name& table, const KeyArrayType &keys) {
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         const auto& t_id = context.find_or_create_table(context.receiver, scope, table);
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         return context.remove_record<ObjectType>(t_id, keys);
      }
};
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/*
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template<>
class db_api<keystr_value_object> : public context_aware_api {
   using KeyType = std::string;
   static constexpr int KeyCount = 1;
   using KeyArrayType = KeyType[KeyCount];
   using ContextMethodType = int(apply_context::*)(const table_id_object&, const KeyType*, const char*, size_t);

   private:
      int call(ContextMethodType method, const scope_name& scope, const name& table, 
            array_ptr<const char> key, size_t key_len, array_ptr<const char> data, size_t data_len) {
         const auto& t_id = context.find_or_create_table(scope, context.receiver, table);
         //FC_ASSERT(data_len >= KeyCount * sizeof(KeyType), "Data is not long enough to contain keys");
         const KeyType keys((const char*)key, key_len); // = std::string(reinterpret_cast<const KeyType *>((const char *)data);

         const char* record_data =  ((const char*)data); // + sizeof(KeyArrayType);
         size_t record_len = data_len; // - sizeof(KeyArrayType);
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         return (context.*(method))(t_id, &keys, record_data, record_len);
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      }

   public:
      using context_aware_api::context_aware_api;

      int store_str(const scope_name& scope, const name& table, 
            array_ptr<const char> &key, uint32_t key_len, array_ptr<const char> data, size_t data_len) {
         auto res = call(&apply_context::store_record<keystr_value_object>, scope, table, key, key_len, data, data_len);
         return res;

      }

      int update_str(const scope_name& scope, const name& table, 
            array_ptr<const char> &key, uint32_t key_len, array_ptr<const char> data, size_t data_len) {
         return call(&apply_context::update_record<keystr_value_object>, scope, table, key, key_len, data, data_len);
      }
      
      int remove_str(const scope_name& scope, const name& table, array_ptr<const char> &key, uint32_t key_len) {
         const auto& t_id = context.find_or_create_table(scope, context.receiver, table);
         const KeyArrayType k = {std::string(key, key_len)};
         return context.remove_record<keystr_value_object>(t_id, k);
      }
};
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*/
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template<typename IndexType, typename Scope>
class db_index_api : public context_aware_api {
   using KeyType = typename IndexType::value_type::key_type;
   static constexpr int KeyCount = IndexType::value_type::number_of_keys;
   using KeyArrayType = KeyType[KeyCount];
   using ContextMethodType = int(apply_context::*)(const table_id_object&, KeyType*, char*, size_t);


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   int call(ContextMethodType method, const account_name& code, const scope_name& scope, const name& table, array_ptr<char> data, size_t data_len) {
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      auto maybe_t_id = context.find_table(code, scope, table);
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      if (maybe_t_id == nullptr) {
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         return 0;
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      }

      const auto& t_id = *maybe_t_id;
      FC_ASSERT(data_len >= KeyCount * sizeof(KeyType), "Data is not long enough to contain keys");
      KeyType* keys = reinterpret_cast<KeyType *>((char *)data);

      char* record_data =  ((char*)data) + sizeof(KeyArrayType);
      size_t record_len = data_len - sizeof(KeyArrayType);

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      auto res = (context.*(method))(t_id, keys, record_data, record_len);
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      if (res != 0) {
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         res += sizeof(KeyArrayType);
      }
      return res;
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   }

   public:
      using context_aware_api::context_aware_api;

      int load(const scope_name& scope, const account_name& code, const name& table, array_ptr<char> data, size_t data_len) {
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         auto res = call(&apply_context::load_record<IndexType, Scope>, scope, code, table, data, data_len);
         return res;
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      }

      int front(const scope_name& scope, const account_name& code, const name& table, array_ptr<char> data, size_t data_len) {
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         auto res = call(&apply_context::front_record<IndexType, Scope>, scope, code, table, data, data_len);
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         return res;
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      }

      int back(const scope_name& scope, const account_name& code, const name& table, array_ptr<char> data, size_t data_len) {
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         auto res = call(&apply_context::back_record<IndexType, Scope>, scope, code, table, data, data_len);
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         return res;
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      }

      int next(const scope_name& scope, const account_name& code, const name& table, array_ptr<char> data, size_t data_len) {
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         auto res = call(&apply_context::next_record<IndexType, Scope>, scope, code, table, data, data_len);
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         return res;
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      }

      int previous(const scope_name& scope, const account_name& code, const name& table, array_ptr<char> data, size_t data_len) {
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         auto res = call(&apply_context::previous_record<IndexType, Scope>, scope, code, table, data, data_len);
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         return res;
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      }

      int lower_bound(const scope_name& scope, const account_name& code, const name& table, array_ptr<char> data, size_t data_len) {
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         auto res = call(&apply_context::lower_bound_record<IndexType, Scope>, scope, code, table, data, data_len);
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         return res;
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      }

      int upper_bound(const scope_name& scope, const account_name& code, const name& table, array_ptr<char> data, size_t data_len) {
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         auto res = call(&apply_context::upper_bound_record<IndexType, Scope>, scope, code, table, data, data_len);
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         return res;
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      }

};

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template<>
class db_index_api<keystr_value_index, by_scope_primary> : public context_aware_api {
   using KeyType = std::string;
   static constexpr int KeyCount = 1;
   using KeyArrayType = KeyType[KeyCount];
   using ContextMethodType = int(apply_context::*)(const table_id_object&, KeyType*, char*, size_t);


   int call(ContextMethodType method, const scope_name& scope, const account_name& code, const name& table, 
         array_ptr<char> &key, uint32_t key_len, array_ptr<char> data, size_t data_len) {
      auto maybe_t_id = context.find_table(scope, context.receiver, table);
      if (maybe_t_id == nullptr) {
         return 0;
      }

      const auto& t_id = *maybe_t_id;
      //FC_ASSERT(data_len >= KeyCount * sizeof(KeyType), "Data is not long enough to contain keys");
      KeyType keys((const char*)key, key_len); // = reinterpret_cast<KeyType *>((char *)data);

      char* record_data =  ((char*)data); // + sizeof(KeyArrayType);
      size_t record_len = data_len; // - sizeof(KeyArrayType);

      return (context.*(method))(t_id, &keys, record_data, record_len); // + sizeof(KeyArrayType);
   }

   public:
      using context_aware_api::context_aware_api;

      int load_str(const scope_name& scope, const account_name& code, const name& table, array_ptr<char> key, size_t key_len, array_ptr<char> data, size_t data_len) {
         auto res = call(&apply_context::load_record<keystr_value_index, by_scope_primary>, scope, code, table, key, key_len, data, data_len);
         return res;
      }

      int front_str(const scope_name& scope, const account_name& code, const name& table, array_ptr<char> key, size_t key_len, array_ptr<char> data, size_t data_len) {
         return call(&apply_context::front_record<keystr_value_index, by_scope_primary>, scope, code, table, key, key_len, data, data_len);
      }

      int back_str(const scope_name& scope, const account_name& code, const name& table, array_ptr<char> key, size_t key_len, array_ptr<char> data, size_t data_len) {
         return call(&apply_context::back_record<keystr_value_index, by_scope_primary>, scope, code, table, key, key_len, data, data_len);
      }

      int next_str(const scope_name& scope, const account_name& code, const name& table, array_ptr<char> key, size_t key_len, array_ptr<char> data, size_t data_len) {
         return call(&apply_context::next_record<keystr_value_index, by_scope_primary>, scope, code, table, key, key_len, data, data_len);
      }

      int previous_str(const scope_name& scope, const account_name& code, const name& table, array_ptr<char> key, size_t key_len, array_ptr<char> data, size_t data_len) {
         return call(&apply_context::previous_record<keystr_value_index, by_scope_primary>, scope, code, table, key, key_len, data, data_len);
      }

      int lower_bound_str(const scope_name& scope, const account_name& code, const name& table, array_ptr<char> key, size_t key_len, array_ptr<char> data, size_t data_len) {
         return call(&apply_context::lower_bound_record<keystr_value_index, by_scope_primary>, scope, code, table, key, key_len, data, data_len);
      }

      int upper_bound_str(const scope_name& scope, const account_name& code, const name& table, array_ptr<char> key, size_t key_len, array_ptr<char> data, size_t data_len) {
         return call(&apply_context::upper_bound_record<keystr_value_index, by_scope_primary>, scope, code, table, key, key_len, data, data_len);
      }
};

1046
class memory_api : public context_aware_api {
1047
   public:
B
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      using context_aware_api::context_aware_api;
1049
     
1050 1051 1052 1053
      char* memcpy( array_ptr<char> dest, array_ptr<const char> src, size_t length) {
         return (char *)::memcpy(dest, src, length);
      }

1054 1055 1056 1057
      char* memmove( array_ptr<char> dest, array_ptr<const char> src, size_t length) {
         return (char *)::memmove(dest, src, length);
      }

1058 1059 1060 1061
      int memcmp( array_ptr<const char> dest, array_ptr<const char> src, size_t length) {
         return ::memcmp(dest, src, length);
      }

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      char* memset( array_ptr<char> dest, int value, size_t length ) {
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         return (char *)::memset( dest, value, length );
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      }

      uint32_t sbrk(int num_bytes) {
1067 1068 1069
         // sbrk should only allow for memory to grow
         if (num_bytes < 0)
            throw eosio::chain::page_memory_error();
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         // TODO: omitted checktime function from previous version of sbrk, may need to be put back in at some point
1071 1072 1073
         constexpr uint32_t NBPPL2  = IR::numBytesPerPageLog2;
         constexpr uint32_t MAX_MEM = 1024 * 1024;

1074 1075 1076 1077 1078 1079 1080
         MemoryInstance*  default_mem    = Runtime::getDefaultMemory(code.instance);
         if(!default_mem)
            throw eosio::chain::page_memory_error();

         const uint32_t         num_pages      = Runtime::getMemoryNumPages(default_mem);
         const uint32_t         min_bytes      = (num_pages << NBPPL2) > UINT32_MAX ? UINT32_MAX : num_pages << NBPPL2;
         const uint32_t         prev_num_bytes = sbrk_bytes; //_num_bytes;
1081
         
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         // round the absolute value of num_bytes to an alignment boundary
         num_bytes = (num_bytes + 7) & ~7;

1085
         if ((num_bytes > 0) && (prev_num_bytes > (MAX_MEM - num_bytes)))  // test if allocating too much memory (overflowed)
B
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            throw eosio::chain::page_memory_error();
         else if ((num_bytes < 0) && (prev_num_bytes < (min_bytes - num_bytes))) // test for underflow
            throw eosio::chain::page_memory_error(); 

         // update the number of bytes allocated, and compute the number of pages needed
1091 1092
         sbrk_bytes += num_bytes;
         const uint32_t num_desired_pages = (sbrk_bytes + IR::numBytesPerPage - 1) >> NBPPL2;
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         // grow or shrink the memory to the desired number of pages
         if (num_desired_pages > num_pages)
            Runtime::growMemory(default_mem, num_desired_pages - num_pages);
         else if (num_desired_pages < num_pages)
            Runtime::shrinkMemory(default_mem, num_pages - num_desired_pages);

         return prev_num_bytes;
1101
      }
1102 1103
};

1104 1105 1106 1107
class transaction_api : public context_aware_api {
   public:
      using context_aware_api::context_aware_api;

1108 1109 1110 1111 1112 1113 1114 1115 1116 1117
      int read_transaction( array_ptr<char> data, size_t data_len ) {
         bytes trx = context.get_packed_transaction();
         if (data_len >= trx.size()) {
            memcpy(data, trx.data(), trx.size());
         }
         return trx.size();
      }

      int transaction_size() {
         return context.get_packed_transaction().size();
1118 1119 1120
      }

      int expiration() {
1121
        return context.trx_meta.trx().expiration.sec_since_epoch();
1122 1123 1124
      }

      int tapos_block_num() {
1125
        return context.trx_meta.trx().ref_block_num;
1126
      }
1127
      int tapos_block_prefix() {
1128
        return context.trx_meta.trx().ref_block_prefix;
1129 1130
      }

1131 1132 1133 1134 1135 1136 1137 1138 1139 1140 1141
      void send_inline( array_ptr<char> data, size_t data_len ) {
         // TODO: use global properties object for dynamic configuration of this default_max_gen_trx_size
         FC_ASSERT( data_len < config::default_max_inline_action_size, "inline action too big" );

         action act;
         fc::raw::unpack<action>(data, data_len, act);
         context.execute_inline(std::move(act));
      }


      void send_deferred( uint32_t sender_id, const fc::time_point_sec& execute_after, array_ptr<char> data, size_t data_len ) {
1142 1143 1144
         try {
            // TODO: use global properties object for dynamic configuration of this default_max_gen_trx_size
            FC_ASSERT(data_len < config::default_max_gen_trx_size, "generated transaction too big");
1145

1146 1147 1148 1149 1150 1151 1152
            deferred_transaction dtrx;
            fc::raw::unpack<transaction>(data, data_len, dtrx);
            dtrx.sender = context.receiver;
            dtrx.sender_id = sender_id;
            dtrx.execute_after = execute_after;
            context.execute_deferred(std::move(dtrx));
         } FC_CAPTURE_AND_RETHROW((fc::to_hex(data, data_len)));
1153 1154 1155 1156
      }

};

1157 1158 1159
class compiler_builtins : public context_aware_api {
   public:
      using context_aware_api::context_aware_api;
1160 1161 1162
      void __break_point() {
         __asm("int3\n");
      }
1163
      void __ashlti3(__int128& ret, uint64_t low, uint64_t high, uint32_t shift) {
1164 1165 1166 1167 1168
         fc::uint128_t i(high, low);
         i <<= shift;
         ret = (unsigned __int128)i;
      }

1169
      void __ashrti3(__int128& ret, uint64_t low, uint64_t high, uint32_t shift) {
B
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         // retain the signedness
         ret = high;
         ret <<= 64;
         ret |= low;
         ret >>= shift;
1175 1176 1177 1178 1179 1180 1181 1182 1183 1184 1185 1186 1187 1188 1189
      }

      void __lshlti3(__int128& ret, uint64_t low, uint64_t high, uint32_t shift) {
         fc::uint128_t i(high, low);
         i <<= shift;
         ret = (unsigned __int128)i;
      }

      void __lshrti3(__int128& ret, uint64_t low, uint64_t high, uint32_t shift) {
         fc::uint128_t i(high, low);
         i >>= shift;
         ret = (unsigned __int128)i;
      }
      
      void __divti3(__int128& ret, uint64_t la, uint64_t ha, uint64_t lb, uint64_t hb) {
B
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         __int128 lhs = ha;
         __int128 rhs = hb;
1192
         
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         lhs <<= 64;
         lhs |=  la;
1195

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         rhs <<= 64;
         rhs |=  lb;
1198

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         FC_ASSERT(rhs != 0, "divide by zero");    
1200

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         lhs /= rhs; 
1202

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         ret = lhs;
1204 1205
      } 

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      void __udivti3(unsigned __int128& ret, uint64_t la, uint64_t ha, uint64_t lb, uint64_t hb) {
         unsigned __int128 lhs = ha;
         unsigned __int128 rhs = hb;
         
         lhs <<= 64;
         lhs |=  la;

         rhs <<= 64;
         rhs |=  lb;
1215

B
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         FC_ASSERT(rhs != 0, "divide by zero");    
1217

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         lhs /= rhs; 
         ret = lhs;
      }

      void __multi3(__int128& ret, uint64_t la, uint64_t ha, uint64_t lb, uint64_t hb) {
         __int128 lhs = ha;
         __int128 rhs = hb;
1225

B
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1226 1227
         lhs <<= 64;
         lhs |=  la;
1228

B
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1229 1230
         rhs <<= 64;
         rhs |=  lb;
1231

B
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         lhs *= rhs; 
         ret = lhs;
1234
      } 
1235 1236

      void __modti3(__int128& ret, uint64_t la, uint64_t ha, uint64_t lb, uint64_t hb) {
B
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1237 1238 1239 1240 1241 1242 1243 1244 1245 1246 1247 1248 1249 1250 1251 1252 1253 1254 1255 1256 1257 1258 1259 1260 1261 1262
         __int128 lhs = ha;
         __int128 rhs = hb;

         lhs <<= 64;
         lhs |=  la;
   
         rhs <<= 64;
         rhs |=  lb;
         
         FC_ASSERT(rhs != 0, "divide by zero");

         lhs %= rhs;
         ret = lhs;
      }

      void __umodti3(unsigned __int128& ret, uint64_t la, uint64_t ha, uint64_t lb, uint64_t hb) {
         unsigned __int128 lhs = ha;
         unsigned __int128 rhs = hb;

         lhs <<= 64;
         lhs |=  la;
   
         rhs <<= 64;
         rhs |=  lb;
         
         FC_ASSERT(rhs != 0, "divide by zero");
1263

B
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         lhs %= rhs;
         ret = lhs;
1266 1267
      }

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      static constexpr uint32_t SHIFT_WIDTH = (sizeof(uint64_t)*8)-1;
1269 1270 1271 1272 1273 1274 1275 1276 1277 1278 1279 1280 1281 1282
};

/*
class account_api : public context_aware_api {
   public:
      using context_aware_api::context_aware_api;
      bool account_balance_get(array_ptr<const char> balance, uint32_t len) {
         const uint32_t account_balance_size = sizeof(account_balance);
         auto mem = Runtime::getDefaultMemory(code.instance);
         FC_ASSERT(len == account_balance_size, "passed in len ${len} is not equal to the size of an account_balance struct == ${real_len}", ("len",len)("real_len",account_balance_size));
         account_balance& total_balance = memoryRef<account_balance>(mem, balance);
      }
};
*/
1283

1284 1285 1286 1287 1288 1289 1290 1291 1292 1293 1294 1295 1296 1297 1298 1299 1300 1301 1302 1303 1304 1305 1306 1307 1308 1309 1310 1311 1312 1313 1314 1315 1316 1317 1318 1319 1320 1321 1322 1323 1324 1325 1326 1327 1328 1329 1330 1331 1332 1333 1334 1335 1336 1337 1338 1339 1340 1341 1342 1343 1344 1345 1346
class math_api : public context_aware_api {
   public:
      using context_aware_api::context_aware_api;
      

      void diveq_i128(unsigned __int128* self, const unsigned __int128* other) {
         fc::uint128_t s(*self);
         const fc::uint128_t o(*other);
         FC_ASSERT( o != 0, "divide by zero" );
         
         s = s/o;
         *self = (unsigned __int128)s;
      }

      void multeq_i128(unsigned __int128* self, const unsigned __int128* other) {
         fc::uint128_t s(*self);
         const fc::uint128_t o(*other);
         s *= o;
         *self = (unsigned __int128)s;
      }

      uint64_t double_add(uint64_t a, uint64_t b) {
         using DOUBLE = boost::multiprecision::cpp_bin_float_50;
         DOUBLE c = DOUBLE(*reinterpret_cast<double *>(&a))
                  + DOUBLE(*reinterpret_cast<double *>(&b));
         double res = c.convert_to<double>();
         return *reinterpret_cast<uint64_t *>(&res);
      }

      uint64_t double_mult(uint64_t a, uint64_t b) {
         using DOUBLE = boost::multiprecision::cpp_bin_float_50;
         DOUBLE c = DOUBLE(*reinterpret_cast<double *>(&a))
                  * DOUBLE(*reinterpret_cast<double *>(&b));
         double res = c.convert_to<double>();
         return *reinterpret_cast<uint64_t *>(&res);
      }

      uint64_t double_div(uint64_t a, uint64_t b) {
         using DOUBLE = boost::multiprecision::cpp_bin_float_50;
         DOUBLE divisor = DOUBLE(*reinterpret_cast<double *>(&b));
         FC_ASSERT(divisor != 0, "divide by zero");
         DOUBLE c = DOUBLE(*reinterpret_cast<double *>(&a)) / divisor;
         double res = c.convert_to<double>();
         return *reinterpret_cast<uint64_t *>(&res);
      }

      uint32_t double_eq(uint64_t a, uint64_t b) {
         using DOUBLE = boost::multiprecision::cpp_bin_float_50;
         return DOUBLE(*reinterpret_cast<double *>(&a)) == DOUBLE(*reinterpret_cast<double *>(&b));
      }

      uint32_t double_lt(uint64_t a, uint64_t b) {
         using DOUBLE = boost::multiprecision::cpp_bin_float_50;
         return DOUBLE(*reinterpret_cast<double *>(&a)) < DOUBLE(*reinterpret_cast<double *>(&b));
      }

      uint32_t double_gt(uint64_t a, uint64_t b) {
         using DOUBLE = boost::multiprecision::cpp_bin_float_50;
         return DOUBLE(*reinterpret_cast<double *>(&a)) > DOUBLE(*reinterpret_cast<double *>(&b));
      }

      uint64_t double_to_i64(uint64_t n) {
         using DOUBLE = boost::multiprecision::cpp_bin_float_50;
B
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         return DOUBLE(*reinterpret_cast<double *>(&n)).convert_to<int64_t>();
1348 1349
      }

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      uint64_t i64_to_double(int64_t n) {
1351 1352 1353 1354 1355 1356 1357 1358 1359 1360 1361 1362 1363 1364 1365 1366 1367 1368
         using DOUBLE = boost::multiprecision::cpp_bin_float_50;
         double res = DOUBLE(n).convert_to<double>();
         return *reinterpret_cast<uint64_t *>(&res);
      }
};

REGISTER_INTRINSICS(math_api,
   (diveq_i128,    void(int, int)            )
   (multeq_i128,   void(int, int)            )
   (double_add,    int64_t(int64_t, int64_t) )
   (double_mult,   int64_t(int64_t, int64_t) )
   (double_div,    int64_t(int64_t, int64_t) )
   (double_eq,     int32_t(int64_t, int64_t) )
   (double_lt,     int32_t(int64_t, int64_t) )
   (double_gt,     int32_t(int64_t, int64_t) )
   (double_to_i64, int64_t(int64_t)          )
   (i64_to_double, int64_t(int64_t)          )
);
B
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1370
REGISTER_INTRINSICS(compiler_builtins,
B
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1371 1372 1373 1374 1375 1376 1377 1378 1379 1380
   (__break_point, void()                                         )
   (__ashlti3,     void(int, int64_t, int64_t, int)               )
   (__ashrti3,     void(int, int64_t, int64_t, int)               )
   (__lshlti3,     void(int, int64_t, int64_t, int)               )
   (__lshrti3,     void(int, int64_t, int64_t, int)               )
   (__divti3,      void(int, int64_t, int64_t, int64_t, int64_t)  )
   (__udivti3,     void(int, int64_t, int64_t, int64_t, int64_t)  )
   (__modti3,      void(int, int64_t, int64_t, int64_t, int64_t)  )
   (__umodti3,     void(int, int64_t, int64_t, int64_t, int64_t)  )
   (__multi3,      void(int, int64_t, int64_t, int64_t, int64_t)  )
B
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1381
);
1382 1383

REGISTER_INTRINSICS(privileged_api,
B
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   (activate_feature,          void(int64_t)                                 )
   (is_feature_active,         int(int64_t)                                  )
   (set_resource_limits,       void(int64_t,int64_t,int64_t,int64_t,int64_t) )
   (set_active_producers,      void(int,int)                                 )
   (is_privileged,             int(int64_t)                                  )
   (set_privileged,            void(int64_t, int)                            )
   (freeze_account,            void(int64_t, int)                            )
   (is_frozen,                 int(int64_t)                                  )
1392
);
1393 1394

REGISTER_INTRINSICS(checktime_api,
1395
   (checktime,      void(int))
1396 1397
);

1398
REGISTER_INTRINSICS(producer_api,
B
Bucky Kittinger 已提交
1399
   (get_active_producers,      int(int, int) )
1400 1401
);

D
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1402 1403 1404 1405
REGISTER_INTRINSICS( database_api,
   (db_store_i64,        int(int64_t,int64_t,int64_t,int64_t,int,int))
   (db_update_i64,       void(int,int64_t,int,int))
   (db_remove_i64,       void(int))
1406
   (db_get_i64,          int(int, int, int))
1407 1408
   (db_next_i64,         int(int, int))
   (db_previous_i64,     int(int, int))
D
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1409 1410
   (db_find_i64,         int(int64_t,int64_t,int64_t,int64_t))
   (db_lowerbound_i64,   int(int64_t,int64_t,int64_t,int64_t))
1411
   (db_upperbound_i64,   int(int64_t,int64_t,int64_t,int64_t))
1412 1413 1414 1415 1416 1417 1418 1419 1420 1421 1422 1423 1424 1425 1426 1427 1428 1429 1430 1431 1432
                             
   (db_idx64_store,          int(int64_t,int64_t,int64_t,int64_t,int))
   (db_idx64_remove,         void(int))
   (db_idx64_update,         void(int,int64_t,int))
   (db_idx64_find_primary,   int(int64_t,int64_t,int64_t,int,int64_t))
   (db_idx64_find_secondary, int(int64_t,int64_t,int64_t,int,int))
   (db_idx64_lowerbound,     int(int64_t,int64_t,int64_t,int,int))
   (db_idx64_upperbound,     int(int64_t,int64_t,int64_t,int,int))
   (db_idx64_next,           int(int, int))
   (db_idx64_previous,       int(int, int))

   (db_idx128_store,          int(int64_t,int64_t,int64_t,int64_t,int))
   (db_idx128_remove,         void(int))
   (db_idx128_update,         void(int,int64_t,int))
   (db_idx128_find_primary,   int(int64_t,int64_t,int64_t,int,int64_t))
   (db_idx128_find_secondary, int(int64_t,int64_t,int64_t,int,int))
   (db_idx128_lowerbound,     int(int64_t,int64_t,int64_t,int,int))
   (db_idx128_upperbound,     int(int64_t,int64_t,int64_t,int,int))
   (db_idx128_next,           int(int, int))
   (db_idx128_previous,       int(int, int))
);
D
Daniel Larimer 已提交
1433

1434
REGISTER_INTRINSICS(crypto_api,
B
Bucky Kittinger 已提交
1435 1436
   (assert_recover_key,     void(int, int, int, int, int) )
   (recover_key,            int(int, int, int, int, int)  )
B
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1437 1438 1439 1440
   (assert_sha256,      void(int, int, int)           )
   (assert_sha1,        void(int, int, int)           )
   (assert_sha512,      void(int, int, int)           )
   (assert_ripemd160,   void(int, int, int)           )
B
Bucky Kittinger 已提交
1441 1442 1443 1444
   (sha1,                   void(int, int, int)           )
   (sha256,                 void(int, int, int)           )
   (sha512,                 void(int, int, int)           )
   (ripemd160,              void(int, int, int)           )
1445 1446 1447
);

REGISTER_INTRINSICS(string_api,
B
Bucky Kittinger 已提交
1448
   (assert_is_utf8,  void(int, int, int) )
1449 1450
);

B
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1451
REGISTER_INTRINSICS(system_api,
1452 1453
   (abort,        void())
   (eosio_assert, void(int, int))
1454
   (now,          int())
B
Bart Wyatt 已提交
1455 1456
);

1457 1458 1459 1460 1461 1462
/*
REGISTER_INTRINSICS(account_api,
   (account_balance_get,   int(int, int32_t)   )
);
*/

B
Bart Wyatt 已提交
1463 1464 1465 1466
REGISTER_INTRINSICS(action_api,
   (read_action,            int(int, int)  )
   (action_size,            int()          )
   (current_receiver,   int64_t()          )
1467 1468
   (publication_time,   int32_t()          )
   (current_sender,     int64_t()          )
B
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1469 1470 1471
);

REGISTER_INTRINSICS(apply_context,
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   (require_write_lock,    void(int64_t)          )
   (require_read_lock,     void(int64_t, int64_t) )
   (require_recipient,     void(int64_t)          )
1475
   (require_authorization, void(int64_t), "require_auth", void(apply_context::*)(const account_name&)const)
B
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   (is_account,            int(int64_t)           )
B
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);

REGISTER_INTRINSICS(console_api,
   (prints,                void(int)       )
   (prints_l,              void(int, int)  )
   (printi,                void(int64_t)   )
   (printi128,             void(int)       )
   (printd,                void(int64_t)   )
   (printn,                void(int64_t)   )
   (printhex,              void(int, int)  )
);

1489
REGISTER_INTRINSICS(transaction_api,
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   (read_transaction,       int(int, int)            )
   (transaction_size,       int()                    )
   (expiration,             int()                    )
   (tapos_block_prefix,     int()                    )
   (tapos_block_num,        int()                    )
   (send_inline,           void(int, int)            )
1496 1497 1498
   (send_deferred,         void(int, int, int, int)  )
);

1499
REGISTER_INTRINSICS(memory_api,
B
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   (memcpy,                 int(int, int, int)  )
   (memmove,                int(int, int, int)  )
   (memcmp,                 int(int, int, int)  )
   (memset,                 int(int, int, int)  )
   (sbrk,                   int(int)            )
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);

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#define DB_METHOD_SEQ(SUFFIX) \
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   (store,        int32_t(int64_t, int64_t, int64_t, int, int),   "store_"#SUFFIX ) \
   (update,       int32_t(int64_t, int64_t, int64_t, int, int),   "update_"#SUFFIX ) \
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   (remove,       int32_t(int64_t, int64_t, int),                 "remove_"#SUFFIX )

#define DB_INDEX_METHOD_SEQ(SUFFIX)\
   (load,         int32_t(int64_t, int64_t, int64_t, int, int),   "load_"#SUFFIX )\
   (front,        int32_t(int64_t, int64_t, int64_t, int, int),   "front_"#SUFFIX )\
   (back,         int32_t(int64_t, int64_t, int64_t, int, int),   "back_"#SUFFIX )\
   (previous,     int32_t(int64_t, int64_t, int64_t, int, int),   "previous_"#SUFFIX )\
   (lower_bound,  int32_t(int64_t, int64_t, int64_t, int, int),   "lower_bound_"#SUFFIX )\
   (upper_bound,  int32_t(int64_t, int64_t, int64_t, int, int),   "upper_bound_"#SUFFIX )\

using db_api_key_value_object                                 = db_api<key_value_object>;
using db_api_keystr_value_object                              = db_api<keystr_value_object>;
using db_api_key128x128_value_object                          = db_api<key128x128_value_object>;
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using db_api_key64x64_value_object                            = db_api<key64x64_value_object>;
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using db_api_key64x64x64_value_object                         = db_api<key64x64x64_value_object>;
using db_index_api_key_value_index_by_scope_primary           = db_index_api<key_value_index,by_scope_primary>;
using db_index_api_keystr_value_index_by_scope_primary        = db_index_api<keystr_value_index,by_scope_primary>;
using db_index_api_key128x128_value_index_by_scope_primary    = db_index_api<key128x128_value_index,by_scope_primary>;
using db_index_api_key128x128_value_index_by_scope_secondary  = db_index_api<key128x128_value_index,by_scope_secondary>;
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using db_index_api_key64x64_value_index_by_scope_primary      = db_index_api<key64x64_value_index,by_scope_primary>;
using db_index_api_key64x64_value_index_by_scope_secondary    = db_index_api<key64x64_value_index,by_scope_secondary>;
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using db_index_api_key64x64x64_value_index_by_scope_primary   = db_index_api<key64x64x64_value_index,by_scope_primary>;
using db_index_api_key64x64x64_value_index_by_scope_secondary = db_index_api<key64x64x64_value_index,by_scope_secondary>;
using db_index_api_key64x64x64_value_index_by_scope_tertiary  = db_index_api<key64x64x64_value_index,by_scope_tertiary>;

REGISTER_INTRINSICS(db_api_key_value_object,         DB_METHOD_SEQ(i64));
REGISTER_INTRINSICS(db_api_key128x128_value_object,  DB_METHOD_SEQ(i128i128));
1539
REGISTER_INTRINSICS(db_api_key64x64_value_object,    DB_METHOD_SEQ(i64i64));
1540
REGISTER_INTRINSICS(db_api_key64x64x64_value_object, DB_METHOD_SEQ(i64i64i64));
B
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/*
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REGISTER_INTRINSICS(db_api_keystr_value_object,
   (store_str,                int32_t(int64_t, int64_t, int, int, int, int)  )
   (update_str,               int32_t(int64_t, int64_t, int, int, int, int)  )
   (remove_str,               int32_t(int64_t, int64_t, int, int)  ));
B
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*/
1547
REGISTER_INTRINSICS(db_index_api_key_value_index_by_scope_primary,           DB_INDEX_METHOD_SEQ(i64));
B
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/*
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REGISTER_INTRINSICS(db_index_api_keystr_value_index_by_scope_primary,
   (load_str,            int32_t(int64_t, int64_t, int64_t, int, int, int, int)  )
   (front_str,           int32_t(int64_t, int64_t, int64_t, int, int, int, int)  )
   (back_str,            int32_t(int64_t, int64_t, int64_t, int, int, int, int)  )
   (next_str,            int32_t(int64_t, int64_t, int64_t, int, int, int, int)  )
   (previous_str,        int32_t(int64_t, int64_t, int64_t, int, int, int, int)  )
   (lower_bound_str,     int32_t(int64_t, int64_t, int64_t, int, int, int, int)  )
   (upper_bound_str,     int32_t(int64_t, int64_t, int64_t, int, int, int, int)  ));
B
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*/
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REGISTER_INTRINSICS(db_index_api_key128x128_value_index_by_scope_primary,    DB_INDEX_METHOD_SEQ(primary_i128i128));
REGISTER_INTRINSICS(db_index_api_key128x128_value_index_by_scope_secondary,  DB_INDEX_METHOD_SEQ(secondary_i128i128));
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REGISTER_INTRINSICS(db_index_api_key64x64_value_index_by_scope_primary,      DB_INDEX_METHOD_SEQ(primary_i64i64));
REGISTER_INTRINSICS(db_index_api_key64x64_value_index_by_scope_secondary,    DB_INDEX_METHOD_SEQ(secondary_i64i64));
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REGISTER_INTRINSICS(db_index_api_key64x64x64_value_index_by_scope_primary,   DB_INDEX_METHOD_SEQ(primary_i64i64i64));
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REGISTER_INTRINSICS(db_index_api_key64x64x64_value_index_by_scope_secondary, DB_INDEX_METHOD_SEQ(secondary_i64i64i64));
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REGISTER_INTRINSICS(db_index_api_key64x64x64_value_index_by_scope_tertiary,  DB_INDEX_METHOD_SEQ(tertiary_i64i64i64));

B
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D
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} } /// eosio::chain