Transaction Hash:
Block:
8049860 at Jun-29-2019 01:35:20 AM +UTC
Transaction Fee:
0.000074634 ETH
$0.15
Gas Used:
37,317 Gas / 2 Gwei
Emitted Events:
| 24 |
xCrypt.Transfer( from=[Sender] 0xbcbb9bf4fff673a4a7e1a9fc2c0e918f69fd3076, to=0x5d9faefDbE9Cb6f7C25840E739713AE422f44F9B, value=81296176900000000000000 )
|
Account State Difference:
| Address | Before | After | State Difference | ||
|---|---|---|---|---|---|
| 0xB9d6ce05...bDAaBe942 | |||||
| 0xBCBb9Bf4...f69Fd3076 |
0.010242736999999999 Eth
Nonce: 46
|
0.010168102999999999 Eth
Nonce: 47
| 0.000074634 | ||
|
0xEA674fdD...16B898ec8
Miner
| (Ethermine) | 814.62658218545091306 Eth | 814.62665681945091306 Eth | 0.000074634 |
Execution Trace
xCrypt.transfer( _to=0x5d9faefDbE9Cb6f7C25840E739713AE422f44F9B, _value=81296176900000000000000 ) => ( True )
transfer[ERC20Basic (ln:42)]
pragma solidity ^0.4.13;
/**
* @title SafeMath
* @dev Math operations with safety checks that throw on error
*/
library SafeMath {
function mul(uint256 a, uint256 b) internal pure returns (uint256) {
uint256 c = a * b;
assert(a == 0 || c / a == b);
return c;
}
function div(uint256 a, uint256 b) internal pure returns (uint256) {
// assert(b > 0); // Solidity automatically throws when dividing by 0
uint256 c = a / b;
// assert(a == b * c + a % b); // There is no case in which this doesn't hold
return c;
}
function sub(uint256 a, uint256 b) internal pure returns (uint256) {
assert(b <= a);
return a - b;
}
function add(uint256 a, uint256 b) internal pure returns (uint256) {
uint256 c = a + b;
assert(c >= a);
return c;
}
}
/**
* @title ERC20Basic
* @dev Simpler version of ERC20 interface
* @dev see https://github.com/ethereum/EIPs/issues/179
*/
contract ERC20Basic {
uint256 public totalSupply;
function balanceOf(address who) public constant returns (uint256);
function transfer(address to, uint256 value) public returns (bool);
event Transfer(address indexed from, address indexed to, uint256 value);
}
/**
* @title ERC20 interface
* @dev see https://github.com/ethereum/EIPs/issues/20
*/
contract ERC20 is ERC20Basic {
function allowance(address owner, address spender) public constant returns (uint256);
function transferFrom(address from, address to, uint256 value) public returns (bool);
function approve(address spender, uint256 value) public returns (bool);
event Approval(address indexed owner, address indexed spender, uint256 value);
}
/**
* @title Basic token
* @dev Basic version of StandardToken, with no allowances.
*/
contract BasicToken is ERC20Basic {
using SafeMath for uint256;
mapping(address => uint256) balances;
/**
* @dev transfer token for a specified address
* @param _to The address to transfer to.
* @param _value The amount to be transferred.
*/
function transfer(address _to, uint256 _value) public returns (bool) {
require(_to != address(0));
require(_value <= balances[msg.sender]);
// SafeMath.sub will throw if there is not enough balance.
balances[msg.sender] = balances[msg.sender].sub(_value);
balances[_to] = balances[_to].add(_value);
Transfer(msg.sender, _to, _value);
return true;
}
/**
* @dev Gets the balance of the specified address.
* @param _owner The address to query the the balance of.
* @return An uint256 representing the amount owned by the passed address.
*/
function balanceOf(address _owner) public constant returns (uint256 balance) {
return balances[_owner];
}
}
/**
* @title Standard ERC20 token
*
* @dev Implementation of the basic standard token.
* @dev https://github.com/ethereum/EIPs/issues/20
* @dev Based on code by FirstBlood: https://github.com/Firstbloodio/token/blob/master/smart_contract/FirstBloodToken.sol
*/
contract StandardToken is ERC20, BasicToken {
mapping (address => mapping (address => uint256)) internal allowed;
/**
* @dev Transfer tokens from one address to another
* @param _from address The address which you want to send tokens from
* @param _to address The address which you want to transfer to
* @param _value uint256 the amount of tokens to be transferred
*/
function transferFrom(address _from, address _to, uint256 _value) public returns (bool) {
require(_to != address(0));
require(_value <= balances[_from]);
require(_value <= allowed[_from][msg.sender]);
balances[_from] = balances[_from].sub(_value);
balances[_to] = balances[_to].add(_value);
allowed[_from][msg.sender] = allowed[_from][msg.sender].sub(_value);
Transfer(_from, _to, _value);
return true;
}
/**
* @dev Approve the passed address to spend the specified amount of tokens on behalf of msg.sender.
*
* Beware that changing an allowance with this method brings the risk that someone may use both the old
* and the new allowance by unfortunate transaction ordering. One possible solution to mitigate this
* race condition is to first reduce the spender's allowance to 0 and set the desired value afterwards:
* https://github.com/ethereum/EIPs/issues/20#issuecomment-263524729
* @param _spender The address which will spend the funds.
* @param _value The amount of tokens to be spent.
*/
function approve(address _spender, uint256 _value) public returns (bool) {
allowed[msg.sender][_spender] = _value;
Approval(msg.sender, _spender, _value);
return true;
}
/**
* @dev Function to check the amount of tokens that an owner allowed to a spender.
* @param _owner address The address which owns the funds.
* @param _spender address The address which will spend the funds.
* @return A uint256 specifying the amount of tokens still available for the spender.
*/
function allowance(address _owner, address _spender) public constant returns (uint256 remaining) {
return allowed[_owner][_spender];
}
/**
* approve should be called when allowed[_spender] == 0. To increment
* allowed value is better to use this function to avoid 2 calls (and wait until
* the first transaction is mined)
* From MonolithDAO Token.sol
*/
function increaseApproval (address _spender, uint _addedValue) public returns (bool success) {
allowed[msg.sender][_spender] = allowed[msg.sender][_spender].add(_addedValue);
Approval(msg.sender, _spender, allowed[msg.sender][_spender]);
return true;
}
function decreaseApproval (address _spender, uint _subtractedValue) public returns (bool success) {
uint oldValue = allowed[msg.sender][_spender];
if (_subtractedValue > oldValue) {
allowed[msg.sender][_spender] = 0;
} else {
allowed[msg.sender][_spender] = oldValue.sub(_subtractedValue);
}
Approval(msg.sender, _spender, allowed[msg.sender][_spender]);
return true;
}
}
/**
* @title Ownable
* @dev The Ownable contract has an owner address, and provides basic authorization control
* functions, this simplifies the implementation of "user permissions".
*/
contract Ownable {
address public owner;
event OwnershipTransferred(address indexed previousOwner, address indexed newOwner);
/**
* @dev The Ownable constructor sets the original `owner` of the contract to the sender
* account.
*/
function Ownable() public {
owner = msg.sender;
}
/**
* @dev Throws if called by any account other than the owner.
*/
modifier onlyOwner() {
require(msg.sender == owner);
_;
}
/**
* @dev Allows the current owner to transfer control of the contract to a newOwner.
* @param newOwner The address to transfer ownership to.
*/
function transferOwnership(address newOwner) public onlyOwner {
require(newOwner != address(0));
OwnershipTransferred(owner, newOwner);
owner = newOwner;
}
}
contract InvestorsFeature is Ownable, StandardToken {
using SafeMath for uint;
address[] public investors;
mapping(address => bool) isInvestor;
function deposit(address investor, uint) internal {
if(isInvestor[investor] == false) {
investors.push(investor);
isInvestor[investor] = true;
}
}
function sendp(address addr, uint amount) internal {
require(addr != address(0));
require(amount > 0);
deposit(addr, amount);
// SafeMath.sub will throw if there is not enough balance.
balances[this] = balances[this].sub(amount);
balances[addr] = balances[addr].add(amount);
Transfer(this, addr, amount);
}
}
contract xCrypt is Ownable, StandardToken, InvestorsFeature {
string public constant name = "xCrypt";
string public constant symbol = "XCT";
uint8 public constant decimals = 18;
uint256 public constant INITIAL_SUPPLY = (200 * (10**6)) * (10 ** uint256(decimals));
uint8 public constant ADVISORS_SHARE = 8;
uint8 public constant TEAM_SHARE = 15;
uint8 public constant RESERVES_SHARE = 9;
uint8 public constant BOUNTIES_SHARE = 3;
address public advisorsWallet;
address public teamWallet;
address public reservesWallet;
address public bountiesWallet;
function xCrypt(
address _advisorsWallet,
address _teamWallet,
address _reservesWallet,
address _bountiesWallet
) public {
totalSupply = INITIAL_SUPPLY;
balances[this] = INITIAL_SUPPLY;
Transfer(address(0), this, INITIAL_SUPPLY);
// Save addresses for future reference
advisorsWallet = _advisorsWallet;
teamWallet = _teamWallet;
reservesWallet = _reservesWallet;
bountiesWallet = _bountiesWallet;
// Send proportional tokens
sendTokens(_advisorsWallet, totalSupply * ADVISORS_SHARE / 100);
sendTokens(_teamWallet, totalSupply * TEAM_SHARE / 100);
sendTokens(_reservesWallet, totalSupply * RESERVES_SHARE / 100);
sendTokens(_bountiesWallet, totalSupply * BOUNTIES_SHARE / 100);
}
function sendTokens(address addr, uint amount) public onlyOwner {
sendp(addr, amount);
}
function moneyBack(address addr) public onlyOwner {
require(addr != 0x0);
addr.transfer(this.balance);
}
function burnRemainder(uint) public onlyOwner {
uint value = balances[this];
totalSupply = totalSupply.sub(value);
balances[this] = 0;
}
}