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1 Parent(s): 56ef118

Ground truth to top-1000; card regenerated

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  1. .gitattributes +1 -0
  2. README.md +14 -9
  3. gt_top1000.tsv +3 -0
.gitattributes CHANGED
@@ -59,3 +59,4 @@ saved_model/**/* filter=lfs diff=lfs merge=lfs -text
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  *.mp4 filter=lfs diff=lfs merge=lfs -text
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  *.webm filter=lfs diff=lfs merge=lfs -text
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  gt_top100.tsv filter=lfs diff=lfs merge=lfs -text
 
 
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  *.mp4 filter=lfs diff=lfs merge=lfs -text
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  *.webm filter=lfs diff=lfs merge=lfs -text
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  gt_top100.tsv filter=lfs diff=lfs merge=lfs -text
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+ gt_top1000.tsv filter=lfs diff=lfs merge=lfs -text
README.md CHANGED
@@ -34,7 +34,8 @@ respectively), see [Encoding](#encoding).
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  | `query_lens.npy` | int32 | `[6,980]` | true vectors per query, before padding |
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  | `queries_ids.npy` | `<U7` | `[6,980]` | original query ids |
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  | `qrels.test.tsv` | text | 7,437 rows | TREC qrels, `qid \t 0 \t docid \t relevance`, no header |
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- | `gt_top100.tsv` | text | 698,000 rows | exact MaxSim top-100, see below |
 
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  All positional indices (the `gt_top*.tsv` files, and the row order of every `.npy` file) refer to the
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  order of `doc_ids.npy` and `queries_ids.npy`. Reordering either file invalidates the ground truth.
@@ -74,9 +75,9 @@ order of `doc_ids.npy` and `queries_ids.npy`. Reordering either file invalidates
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  | query padding | rows at or beyond `query_lens[i]` in `queries.npy[i]` are exactly zero |
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  | token_ids | tokenizer id of each kept document token (after the skiplist above), aligned 1:1 with `documents.npy` |
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- ## Ground truth: `gt_top100.tsv`
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- Exact brute-force MaxSim top-100 per query over the full corpus, from the vectors in this repo.
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  No header; tab-separated `qidx docidx rank score`:
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@@ -89,12 +90,12 @@ No header; tab-separated `qidx docidx rank score`:
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  ## Retrieval quality
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- Sanity check of the vectors, not a leaderboard number: `gt_top100.tsv` (exact MaxSim over the full
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  corpus) scored against `qrels.test.tsv` with ir_measures.
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- | nDCG@10 | MRR@10 | Success@5 | Recall@100 | Recall@1000 | MAP@100 |
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  |---|---|---|---|---|---|
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- | 0.4593 | 0.3922 | 0.5742 | 0.9228 | n/a (gt is top-100) | 0.3974 |
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  ## Loading
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@@ -142,8 +143,12 @@ Checks run by the exporter on the files exactly as written here:
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  - ✅ query vectors unit-norm — norm range [1.000000, 1.000000]
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  - ✅ all vectors finite
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  - ✅ gt_top100.tsv has k rows per query — 698000 rows, k=100
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- - ✅ gt rows grouped by qidx with ranks 1..k and descending scores
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- - ✅ gt indices in range
 
 
 
 
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  ## Provenance
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@@ -151,4 +156,4 @@ Checks run by the exporter on the files exactly as written here:
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  |---|---|
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  | exported | 2026-09-27 |
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  | hardware | Tesla V100S-PCIE-32GB |
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- | revised | 2026-09-29: card regenerated; every other file unchanged |
 
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  | `query_lens.npy` | int32 | `[6,980]` | true vectors per query, before padding |
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  | `queries_ids.npy` | `<U7` | `[6,980]` | original query ids |
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  | `qrels.test.tsv` | text | 7,437 rows | TREC qrels, `qid \t 0 \t docid \t relevance`, no header |
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+ | `gt_top1000.tsv` | text | 6,980,000 rows | exact MaxSim top-1000, see below |
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+ | `gt_top100.tsv` | text | 698,000 rows | first 100 ranks of `gt_top1000.tsv`, same format |
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  All positional indices (the `gt_top*.tsv` files, and the row order of every `.npy` file) refer to the
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  order of `doc_ids.npy` and `queries_ids.npy`. Reordering either file invalidates the ground truth.
 
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  | query padding | rows at or beyond `query_lens[i]` in `queries.npy[i]` are exactly zero |
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  | token_ids | tokenizer id of each kept document token (after the skiplist above), aligned 1:1 with `documents.npy` |
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+ ## Ground truth: `gt_top1000.tsv` and `gt_top100.tsv`
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+ Exact brute-force MaxSim top-1000 per query over the full corpus, from the vectors in this repo. `gt_top100.tsv` holds the first 100 ranks per query of the same lists (the original layout of these exports).
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  No header; tab-separated `qidx docidx rank score`:
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  ## Retrieval quality
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+ Sanity check of the vectors, not a leaderboard number: `gt_top1000.tsv` (exact MaxSim over the full
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  corpus) scored against `qrels.test.tsv` with ir_measures.
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+ | nDCG@10 | MRR@10 | Success@5 | Recall@100 | Recall@1000 | MAP@1000 |
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  |---|---|---|---|---|---|
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+ | 0.4593 | 0.3922 | 0.5742 | 0.9228 | 0.9899 | 0.3978 |
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  ## Loading
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  - ✅ query vectors unit-norm — norm range [1.000000, 1.000000]
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  - ✅ all vectors finite
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  - ✅ gt_top100.tsv has k rows per query — 698000 rows, k=100
146
+ - ✅ gt_top100.tsv rows grouped by qidx with ranks 1..k and descending scores
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+ - ✅ gt_top100.tsv indices in range
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+ - ✅ gt_top1000.tsv has k rows per query — 6980000 rows, k=1000
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+ - ✅ gt_top1000.tsv rows grouped by qidx with ranks 1..k and descending scores
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+ - ✅ gt_top1000.tsv indices in range
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+ - ✅ gt_top100.tsv is the first 100 ranks of gt_top1000.tsv
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  ## Provenance
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  |---|---|
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  | exported | 2026-09-27 |
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  | hardware | Tesla V100S-PCIE-32GB |
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+ | revised | 2026-09-30: ground truth extended to top-1000 (`gt_top1000.tsv`, exact MaxSim over this repo's vectors on Tesla V100S-PCIE-32GB); `gt_top100.tsv` unchanged |
gt_top1000.tsv ADDED
@@ -0,0 +1,3 @@
 
 
 
 
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+ oid sha256:1798b2aa2e2994e57e68e2bbd928c7112df3cae018be9b1177c59df444ebcde0
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+ size 180666813