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from functools import reduce |
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from inspect import isfunction |
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from math import ceil, floor, log2, pi |
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from typing import Callable, Dict, List, Optional, Sequence, Tuple, TypeVar, Union |
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import torch |
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import torch.nn.functional as F |
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from einops import rearrange |
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from torch import Generator, Tensor |
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from typing_extensions import TypeGuard |
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T = TypeVar("T") |
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def exists(val: Optional[T]) -> TypeGuard[T]: |
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return val is not None |
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def iff(condition: bool, value: T) -> Optional[T]: |
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return value if condition else None |
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def is_sequence(obj: T) -> TypeGuard[Union[list, tuple]]: |
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return isinstance(obj, list) or isinstance(obj, tuple) |
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def default(val: Optional[T], d: Union[Callable[..., T], T]) -> T: |
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if exists(val): |
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return val |
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return d() if isfunction(d) else d |
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def to_list(val: Union[T, Sequence[T]]) -> List[T]: |
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if isinstance(val, tuple): |
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return list(val) |
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if isinstance(val, list): |
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return val |
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return [val] |
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def prod(vals: Sequence[int]) -> int: |
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return reduce(lambda x, y: x * y, vals) |
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def closest_power_2(x: float) -> int: |
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exponent = log2(x) |
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distance_fn = lambda z: abs(x - 2**z) |
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exponent_closest = min((floor(exponent), ceil(exponent)), key=distance_fn) |
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return 2 ** int(exponent_closest) |
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def rand_bool(shape, proba, device=None): |
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if proba == 1: |
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return torch.ones(shape, device=device, dtype=torch.bool) |
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elif proba == 0: |
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return torch.zeros(shape, device=device, dtype=torch.bool) |
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else: |
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return torch.bernoulli(torch.full(shape, proba, device=device)).to(torch.bool) |
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""" |
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Kwargs Utils |
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""" |
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def group_dict_by_prefix(prefix: str, d: Dict) -> Tuple[Dict, Dict]: |
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return_dicts: Tuple[Dict, Dict] = ({}, {}) |
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for key in d.keys(): |
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no_prefix = int(not key.startswith(prefix)) |
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return_dicts[no_prefix][key] = d[key] |
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return return_dicts |
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def groupby(prefix: str, d: Dict, keep_prefix: bool = False) -> Tuple[Dict, Dict]: |
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kwargs_with_prefix, kwargs = group_dict_by_prefix(prefix, d) |
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if keep_prefix: |
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return kwargs_with_prefix, kwargs |
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kwargs_no_prefix = {k[len(prefix) :]: v for k, v in kwargs_with_prefix.items()} |
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return kwargs_no_prefix, kwargs |
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def prefix_dict(prefix: str, d: Dict) -> Dict: |
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return {prefix + str(k): v for k, v in d.items()} |
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