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sequence_mask

Syntologyfunction-name censuscensus 2026-09-22battery b986f7e04d79all samples with this name

sequence_mask: 12 implementations from 15 papers ran on one shared input (census 2026-09-22, battery b986f7e04d79); they produced 5 distinct outputs across 2 buckets, one shared input per bucket.

Identical values to six decimals (the recorded digest) on the shared input are agreement on those inputs, not equivalence. Implementations are compared only within one bucket, the positional (rank, kind, dtype) of each array argument; the argument name is not part of the key because the harness draws the shared array from (rank, kind) and casts it to the dtype, whatever the name; each bucket's shared input is fixed by that key, so members of one bucket saw bitwise-identical inputs under their own scalar arguments. A cluster is the set of members whose recorded output digest is identical. Nothing here says which computation a paper's method intended, and nothing reproduces a paper's results.

Not compared, and not in the tables or the counts above:

Bucket 1 of 2: arg 1: rank 1, kind int, dtype int64

11 implementations from 14 papers share this bucket (rank, kind, dtype of each array argument, positional; each member's recorded signature, argument name included, is shown under it); 4 distinct outputs, largest cluster first. Values are the first 8 of the recorded output, flattened.

Cluster (same digest to six decimals)MembersShared output on this bucket's input
7 implementations
9 papers
1803f396afa7
recorded values identical
one code sha held from 3 papers' repositories
model/layers.py 88bf809d
recorded length:1/int/int64; max_length=None

SPFN/losses_implementation.py 07acd8ed
recorded lengths:1/int/int64; maxlen=None

AttentionRNN/Multilayers_Decoder.py 149c4508
recorded lengths:1/int/int64

recoversat.py 1c106a6e
recorded lengths:1/int/int64; max_len=None

model/lina.py 7286741c
recorded lengths:1/int/int64; max_len=None, device=device(type='cpu')

src/models/music_continuous_token.py cfe964d3
recorded length:1/int/int64; max_length=None

src/model.py f9379a80
recorded lens:1/int/int64; max_len=None
[1, 1, 0, 1, 0, 0, 1, 1, …]
shape [8, 3] · bool · Tensor
2 implementations
2 papers
3bddb7789f43
recorded values identical

Classifier/models/neural.py 94671955
recorded lengths:1/int/int64; max_len=4

src/model/ebcl_model.py edd8dd61
recorded lengths:1/int/int64; maxlen=4, dtype=torch.bool
[1, 1, 0, 0, 1, 0, 0, 0, …]
shape [8, 4] · bool · Tensor
1 implementation
2 papers
d8aa3c9eef69
one code sha held from 2 papers' repositories
pointer_network.py 0c43e729
recorded lengths:1/int/int64; max_len=7
[1, 1, 0, 0, 0, 0, 0, 1, …]
shape [8, 7] · bool · Tensor
1 implementation
1 paper
003f5cd20cfe

models/seq3_losses.py 588c48c1
recorded lengths:1/int/int64; max_len=6
[1, 1, 0, 0, 0, 0, 1, 0, …]
shape [8, 6] · bool · Tensor

Bucket 2 of 2: arg 1: rank 2, kind int, dtype int64

1 implementation from 1 paper share this bucket (rank, kind, dtype of each array argument, positional; each member's recorded signature, argument name included, is shown under it); 1 distinct output, largest cluster first. Values are the first 8 of the recorded output, flattened.

Cluster (same digest to six decimals)MembersShared output on this bucket's input
1 implementation
1 paper
8559b5ae2657

tree_transformer.py c85046b5
recorded seq:2/int/int64
[0, 1, 1, 1, 1, 1, 1, 1, …]
shape [4, 8, 8] · uint8 · Tensor

Identical values to six decimals (the recorded digest) on the shared input are agreement on those inputs, not equivalence; where a cluster's members carry recorded values, the largest difference among them is shown under the cluster. Paper titles are the archive's archive 2025-07-28 where the paper is in the archive and the graph's where it was added by Syntology; papers with no page here are shown by their recorded paper id only. A paper count above the implementation count means one implementation (one code sha) is held from several papers' repositories and counts once. Per-sample status, licence and fingerprint records for each paper are on its paper page. JSON twin: /census/sequence-mask.json.

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