add MSVAG optimizer

This commit is contained in:
Connor Olding 2019-03-22 12:58:03 +01:00
parent b3b82ca4f0
commit 2e80f8b1a7
2 changed files with 59 additions and 0 deletions

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@ -587,6 +587,54 @@ class Padam(Adamlike):
debias=debias, runmax=True, yogi=False, eps=eps)
class MSVAG(Optimizer):
# paper: https://arxiv.org/abs/1705.07774
# this is the variance-reducing aspect isolated from the rest of Adam.
def __init__(self, lr=0.1, b=0.99):
self.b = _f(b)
super().__init__(lr=lr)
def reset(self):
self.mt = None
self.vt = None
self.bt = self.b
super().reset()
def compute(self, dW, W):
if self.mt is None:
self.mt = np.zeros_like(dW)
if self.vt is None:
self.vt = np.zeros_like(dW)
mt = filter_gradients(self.mt, dW, self.b)
vt = filter_gradients(self.vt, np.square(dW), self.b)
# debiasing:
if self.bt != 1:
mt = mt / (1 - self.bt)
vt = vt / (1 - self.bt)
num = (1 - self.b) * (1 + self.bt)
den = (1 + self.b) * (1 - self.bt)
rho = num / den
else:
# technically, this should be 1 / (t + 1),
# but we don't keep track of t directly.
rho = 1
if rho != 1:
mt2 = np.square(mt)
s = (vt - mt2) / (1 - rho)
gamma = div0(mt2, mt2 + rho * s)
else:
gamma = 1
self.bt *= self.b
return -self.lr * (gamma * mt)
AMSGrad = AMSgrad
AdaDelta = Adadelta
AdaGrad = Adagrad

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@ -29,6 +29,17 @@ def lower_priority():
os.nice(1)
def div0(a, b):
"""division, whereby division by zero equals zero"""
# http://stackoverflow.com/a/35696047
a = np.asanyarray(a)
b = np.asanyarray(b)
with np.errstate(divide='ignore', invalid='ignore'):
c = np.true_divide(a, b)
c[~np.isfinite(c)] = 0 # -inf inf NaN
return c
def onehot(y):
unique = np.unique(y)
Y = np.zeros((y.shape[0], len(unique)), dtype=np.int8)