#pragma once
#include <libsolutil/Common.h>
#include <libsolutil/CommonData.h>
#include <boost/version.hpp>
#if (BOOST_VERSION < 106500)
#error "Unsupported Boost version. At least 1.65 required."
#endif
#include <boost/multiprecision/cpp_int.hpp>
#include <limits>
namespace solidity
{
using bigint = boost::multiprecision::number<boost::multiprecision::cpp_int_backend<>>;
using u256 = boost::multiprecision::number<boost::multiprecision::cpp_int_backend<256, 256, boost::multiprecision::unsigned_magnitude, boost::multiprecision::unchecked, void>>;
using s256 = boost::multiprecision::number<boost::multiprecision::cpp_int_backend<256, 256, boost::multiprecision::signed_magnitude, boost::multiprecision::unchecked, void>>;
inline s256 u2s(u256 _u)
{
static bigint const c_end = bigint(1) << 256;
if (boost::multiprecision::bit_test(_u, 255))
return s256(-(c_end - _u));
else
return s256(_u);
}
inline u256 s2u(s256 _u)
{
static bigint const c_end = bigint(1) << 256;
if (_u >= 0)
return u256(_u);
else
return u256(c_end + _u);
}
inline u256 exp256(u256 _base, u256 _exponent)
{
using boost::multiprecision::limb_type;
u256 result = 1;
while (_exponent)
{
if (boost::multiprecision::bit_test(_exponent, 0))
result *= _base;
_base *= _base;
_exponent >>= 1;
}
return result;
}
bool fitsPrecisionBaseX(bigint const& _mantissa, double _log2OfBase, uint32_t _exp);
template <class T, class Out>
inline void toBigEndian(T _val, Out& o_out)
{
static_assert(std::is_same<bigint, T>::value || !std::numeric_limits<T>::is_signed, "only unsigned types or bigint supported"); for (auto i = o_out.size(); i != 0; _val >>= 8, i--)
{
T v = _val & (T)0xff;
o_out[i - 1] = (typename Out::value_type)(uint8_t)v;
}
}
template <class T, class In>
inline T fromBigEndian(In const& _bytes)
{
T ret = (T)0;
for (auto i: _bytes)
ret = (T)((ret << 8) | (uint8_t)(typename std::make_unsigned<typename In::value_type>::type)i);
return ret;
}
inline bytes toBigEndian(u256 _val) { bytes ret(32); toBigEndian(_val, ret); return ret; }
template <class T>
inline bytes toCompactBigEndian(T _val, unsigned _min = 0)
{
static_assert(std::is_same<bigint, T>::value || !std::numeric_limits<T>::is_signed, "only unsigned types or bigint supported"); unsigned i = 0;
for (T v = _val; v; ++i, v >>= 8) {}
bytes ret(std::max<unsigned>(_min, i), 0);
toBigEndian(_val, ret);
return ret;
}
inline std::string toHex(u256 val)
{
return util::toHex(toBigEndian(val));
}
template <class T>
inline std::string toCompactHexWithPrefix(T _value)
{
return "0x" + util::toHex(toCompactBigEndian(_value, 1));
}
inline std::string formatNumber(bigint const& _value)
{
if (_value < 0)
return "-" + formatNumber(-_value);
if (_value > 0x1000000)
return "0x" + util::toHex(toCompactBigEndian(_value, 1));
else
return _value.str();
}
inline std::string formatNumber(u256 const& _value)
{
if (_value > 0x1000000)
return toCompactHexWithPrefix(_value);
else
return _value.str();
}
template <class T>
inline unsigned numberEncodingSize(T _i)
{
static_assert(std::is_same<bigint, T>::value || !std::numeric_limits<T>::is_signed, "only unsigned types or bigint supported"); unsigned i = 0;
for (; _i != 0; ++i, _i >>= 8) {}
return i;
}
}