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hub / github.com/MeiGen-AI/MultiTalk / __init__

Method __init__

wan/modules/t5.py:274–306  ·  view source on GitHub ↗
(self,
                 vocab,
                 dim,
                 dim_attn,
                 dim_ffn,
                 num_heads,
                 num_layers,
                 num_buckets,
                 shared_pos=True,
                 dropout=0.1)

Source from the content-addressed store, hash-verified

272class T5Encoder(nn.Module):
273
274 def __init__(self,
275 vocab,
276 dim,
277 dim_attn,
278 dim_ffn,
279 num_heads,
280 num_layers,
281 num_buckets,
282 shared_pos=True,
283 dropout=0.1):
284 super(T5Encoder, self).__init__()
285 self.dim = dim
286 self.dim_attn = dim_attn
287 self.dim_ffn = dim_ffn
288 self.num_heads = num_heads
289 self.num_layers = num_layers
290 self.num_buckets = num_buckets
291 self.shared_pos = shared_pos
292
293 # layers
294 self.token_embedding = vocab if isinstance(vocab, nn.Embedding) \
295 else nn.Embedding(vocab, dim)
296 self.pos_embedding = T5RelativeEmbedding(
297 num_buckets, num_heads, bidirectional=True) if shared_pos else None
298 self.dropout = nn.Dropout(dropout)
299 self.blocks = nn.ModuleList([
300 T5SelfAttention(dim, dim_attn, dim_ffn, num_heads, num_buckets,
301 shared_pos, dropout) for _ in range(num_layers)
302 ])
303 self.norm = T5LayerNorm(dim)
304
305 # initialize weights
306 self.apply(init_weights)
307
308 def forward(self, ids, mask=None):
309 x = self.token_embedding(ids)

Callers

nothing calls this directly

Calls 4

T5RelativeEmbeddingClass · 0.85
T5SelfAttentionClass · 0.85
T5LayerNormClass · 0.85
__init__Method · 0.45

Tested by

no test coverage detected