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Method __init__

bitsandbytes/optim/lion.py:9–52  ·  view source on GitHub ↗

Base Lion optimizer. Arguments: params (`torch.tensor`): The input parameters to optimize. lr (`float`, defaults to 1e-4): The learning rate. betas (`tuple(float, float)`, defaults to (0.9, 0.999)):

(
        self,
        params,
        lr=1e-4,
        betas=(0.9, 0.99),
        weight_decay=0,
        optim_bits=32,
        args=None,
        min_8bit_size=4096,
        is_paged=False,
    )

Source from the content-addressed store, hash-verified

7
8class Lion(Optimizer1State):
9 def __init__(
10 self,
11 params,
12 lr=1e-4,
13 betas=(0.9, 0.99),
14 weight_decay=0,
15 optim_bits=32,
16 args=None,
17 min_8bit_size=4096,
18 is_paged=False,
19 ):
20 """
21 Base Lion optimizer.
22
23 Arguments:
24 params (`torch.tensor`):
25 The input parameters to optimize.
26 lr (`float`, defaults to 1e-4):
27 The learning rate.
28 betas (`tuple(float, float)`, defaults to (0.9, 0.999)):
29 The beta values are the decay rates of the first and second-order moment of the optimizer.
30 weight_decay (`float`, defaults to 0):
31 The weight decay value for the optimizer.
32 optim_bits (`int`, defaults to 32):
33 The number of bits of the optimizer state.
34 args (`object`, defaults to `None`):
35 An object with additional arguments.
36 min_8bit_size (`int`, defaults to 4096):
37 The minimum number of elements of the parameter tensors for 8-bit optimization.
38 is_paged (`bool`, defaults to `False`):
39 Whether the optimizer is a paged optimizer or not.
40 """
41 super().__init__(
42 "lion",
43 params,
44 lr,
45 betas,
46 0.0,
47 weight_decay,
48 optim_bits,
49 args,
50 min_8bit_size,
51 is_paged=is_paged,
52 )
53
54
55class Lion8bit(Optimizer1State):

Callers 5

__init__Method · 0.45
__init__Method · 0.45
__init__Method · 0.45
__init__Method · 0.45
__init__Method · 0.45

Calls

no outgoing calls

Tested by

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