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- import matplotlib.pyplot as plt
- from tqdm import tqdm
- import time
- from datetime import timedelta
- from core.darkie import *
- from pid.cascade import *
- from tqdm import tqdm
- class DarkfiTable:
- def __init__(self, airdrop, running_time, controller_type=CONTROLLER_TYPE_DISCRETE, kp=0, ki=0, kd=0, dt=1, kc=0, ti=0, td=0, ts=0, debug=False, r_kp=0, r_ki=0, r_kd=0):
- self.Sigma=airdrop
- self.darkies = []
- self.running_time=running_time
- self.start_time=None
- self.end_time=None
- self.secondary_pid = SecondaryDiscretePID(kp=kp, ki=ki, kd=kd) if controller_type==CONTROLLER_TYPE_DISCRETE else SecondaryTakahashiPID(kc=kc, ti=ti, td=td, ts=ts)
- print('secondary min/max : {}/{}'.format(self.secondary_pid.clip_min, self.secondary_pid.clip_max))
- self.primary_pid = PrimaryDiscretePID(kp=r_kp, ki=r_ki, kd=r_kd) if controller_type==CONTROLLER_TYPE_DISCRETE else PrimaryTakahashiPID(kc=kc, ti=ti, td=td, ts=ts)
- print('primary min/max : {}/{}'.format(self.primary_pid.clip_min, self.primary_pid.clip_max))
- self.debug=debug
- self.rewards = []
- self.winners = []
- def add_darkie(self, darkie):
- self.darkies+=[darkie]
- def background(self, rand_running_time=True, debug=False, hp=True):
- self.debug=debug
- self.start_time=time.time()
- feedback=0 # number leads in previous slot
- count = 0
- # random running time
- rand_running_time = random.randint(1,self.running_time) if rand_running_time else self.running_time
- self.running_time = rand_running_time
- #if rand_running_time and debug:
- #print("random running time: {}".format(self.running_time))
- #print('running time: {}'.format(self.running_time))
- rt_range = tqdm(np.arange(0,self.running_time, 1))
- for count in rt_range:
- #while count < self.running_time:
- winners=0
- f = self.secondary_pid.pid_clipped(float(feedback), debug)
- if count%EPOCH_LENGTH == 0:
- acc = self.secondary_pid.acc_percentage()
- #staked_ratio = self.avg_stake_ratio()
- reward = self.primary_pid.pid_clipped(acc, debug)
- self.rewards += [reward]
- rt_range.set_description('issuance {} DRK'.format(sum(self.rewards)))
- #note! thread overhead is 10X slower than sequential node execution!
- for i in range(len(self.darkies)):
- self.darkies[i].set_sigma_feedback(self.Sigma, feedback, f, count, hp)
- self.darkies[i].update_vesting()
- self.darkies[i].run(hp)
- #print('reward: {}'.format(rewards[-1]))
- for i in range(len(self.darkies)):
- winners += self.darkies[i].won_hist[-1]
- ###
- self.winners +=[winners]
- feedback = winners
- if self.winners[-1]==1:
- for i in range(len(self.darkies)):
- if self.darkies[i].won_hist[-1]:
- self.darkies[i].update_stake(self.rewards[-1])
- break
- # resolve finalization
- if count >= ERC20DRK:
- self.Sigma += 1
- # resync nodes
- merge_length = 0
- for i in reversed(self.winners[:-1]):
- if i !=1:
- merge_length+=1
- else:
- break
- for i in range(merge_length):
- resync_slot_id = count-(i+1)
- resync_reward_id = int((resync_slot_id)/EPOCH_LENGTH)
- resync_reward = self.rewards[resync_reward_id]
- # resyncing depends on the random branch chosen,
- # it's simulated by choosing first wining node
- darkie_winning_idx = 0
- random.shuffle(self.darkies)
- for darkie_idx in range(len(self.darkies)):
- if self.darkies[darkie_idx].won_hist[resync_slot_id]:
- darkie_winning_idx = darkie_idx
- break
- self.darkies[darkie_winning_idx].resync_stake(resync_reward)
- count+=1
- self.end_time=time.time()
- avg_reward = sum(self.rewards)/len(self.rewards)
- stake_ratio = self.avg_stake_ratio()
- avg_apy = self.avg_apy()
- avg_apr = self.avg_apr()
- #print('apy: {}, staked_ratio: {}'.format(avg_apy, stake_ratio))
- return self.secondary_pid.acc(), avg_apy, avg_reward, stake_ratio, avg_apr
- def avg_apy(self):
- return Num(sum([darkie.apy_scaled_to_runningtime(self.rewards) for darkie in self.darkies])/len(self.darkies))
- def avg_apr(self):
- return Num(sum([darkie.apr_scaled_to_runningtime() for darkie in self.darkies])/len(self.darkies))
- def avg_stake_ratio(self):
- return sum([darkie.staked_tokens_ratio() for darkie in self.darkies])/len(self.darkies)
- def write(self):
- elapsed=self.end_time-self.start_time
- for id, darkie in enumerate(self.darkies):
- darkie.write(id)
- if self.debug:
- print("total time: {}, slot time: {}".format(str(timedelta(seconds=elapsed)), str(timedelta(seconds=elapsed/self.running_time))))
- self.secondary_pid.write()
- with open('log/rewards.log', 'w+') as f:
- buff = ','.join([str(i) for i in self.rewards])
- f.write(buff)
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