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178 lines
7.4 KiB
SQL
178 lines
7.4 KiB
SQL
-- Tags: no-fasttest, no-ordinary-database
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-- Tests various simple approximate nearest neighborhood (ANN) queries that utilize vector search indexes.
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SET allow_experimental_vector_similarity_index = 1;
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SET enable_analyzer = 0;
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SELECT '10 rows, index_granularity = 8192, GRANULARITY = 1 million --> 1 granule, 1 indexed block';
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DROP TABLE IF EXISTS tab;
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CREATE TABLE tab(id Int32, vec Array(Float32), INDEX idx vec TYPE vector_similarity('hnsw', 'L2Distance')) ENGINE = MergeTree ORDER BY id SETTINGS index_granularity = 8192;
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INSERT INTO tab VALUES (0, [1.0, 0.0]), (1, [1.1, 0.0]), (2, [1.2, 0.0]), (3, [1.3, 0.0]), (4, [1.4, 0.0]), (5, [0.0, 2.0]), (6, [0.0, 2.1]), (7, [0.0, 2.2]), (8, [0.0, 2.3]), (9, [0.0, 2.4]);
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WITH [0.0, 2.0] AS reference_vec
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SELECT id, vec, L2Distance(vec, reference_vec)
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FROM tab
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ORDER BY L2Distance(vec, reference_vec)
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LIMIT 3;
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EXPLAIN indexes = 1
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WITH [0.0, 2.0] AS reference_vec
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SELECT id, vec, L2Distance(vec, reference_vec)
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FROM tab
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ORDER BY L2Distance(vec, reference_vec)
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LIMIT 3;
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DROP TABLE tab;
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SELECT '12 rows, index_granularity = 3, GRANULARITY = 2 --> 4 granules, 2 indexed block';
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CREATE TABLE tab(id Int32, vec Array(Float32), INDEX idx vec TYPE vector_similarity('hnsw', 'L2Distance') GRANULARITY 2) ENGINE = MergeTree ORDER BY id SETTINGS index_granularity = 3;
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INSERT INTO tab VALUES (0, [1.0, 0.0]), (1, [1.1, 0.0]), (2, [1.2, 0.0]), (3, [1.3, 0.0]), (4, [1.4, 0.0]), (5, [1.5, 0.0]), (6, [0.0, 2.0]), (7, [0.0, 2.1]), (8, [0.0, 2.2]), (9, [0.0, 2.3]), (10, [0.0, 2.4]), (11, [0.0, 2.5]);
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WITH [0.0, 2.0] AS reference_vec
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SELECT id, vec, L2Distance(vec, reference_vec)
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FROM tab
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ORDER BY L2Distance(vec, reference_vec)
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LIMIT 3;
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EXPLAIN indexes = 1
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WITH [0.0, 2.0] AS reference_vec
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SELECT id, vec, L2Distance(vec, reference_vec)
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FROM tab
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ORDER BY L2Distance(vec, reference_vec)
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LIMIT 3;
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DROP TABLE tab;
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SELECT 'Special cases'; -- Not a systematic test, just to check that no bad things happen.
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SELECT '-- Non-default metric, M, ef_construction, ef_search';
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CREATE TABLE tab(id Int32, vec Array(Float32), INDEX idx vec TYPE vector_similarity('hnsw', 'cosineDistance', 'f32', 42, 99, 66) GRANULARITY 2) ENGINE = MergeTree ORDER BY id SETTINGS index_granularity = 3;
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INSERT INTO tab VALUES (0, [4.6, 2.3]), (1, [2.0, 3.2]), (2, [4.2, 3.4]), (3, [5.3, 2.9]), (4, [2.4, 5.2]), (5, [5.3, 2.3]), (6, [1.0, 9.3]), (7, [5.5, 4.7]), (8, [6.4, 3.5]), (9, [5.3, 2.5]), (10, [6.4, 3.4]), (11, [6.4, 3.2]);
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WITH [0.0, 2.0] AS reference_vec
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SELECT id, vec, cosineDistance(vec, reference_vec)
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FROM tab
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ORDER BY cosineDistance(vec, reference_vec)
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LIMIT 3;
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EXPLAIN indexes = 1
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WITH [0.0, 2.0] AS reference_vec
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SELECT id, vec, cosineDistance(vec, reference_vec)
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FROM tab
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ORDER BY cosineDistance(vec, reference_vec)
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LIMIT 3;
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SELECT '-- Setting "max_limit_for_ann_queries"';
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EXPLAIN indexes=1
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WITH [0.0, 2.0] as reference_vec
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SELECT id, vec, cosineDistance(vec, reference_vec)
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FROM tab
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ORDER BY cosineDistance(vec, reference_vec)
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LIMIT 3
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SETTINGS max_limit_for_ann_queries = 2; -- LIMIT 3 > 2 --> don't use the ann index
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DROP TABLE tab;
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SELECT '-- Non-default quantization';
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CREATE TABLE tab_f64(id Int32, vec Array(Float32), INDEX idx vec TYPE vector_similarity('hnsw', 'L2Distance', 'f64', 0, 0, 0) GRANULARITY 2) ENGINE = MergeTree ORDER BY id SETTINGS index_granularity = 3;
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CREATE TABLE tab_f32(id Int32, vec Array(Float32), INDEX idx vec TYPE vector_similarity('hnsw', 'L2Distance', 'f32', 0, 0, 0) GRANULARITY 2) ENGINE = MergeTree ORDER BY id SETTINGS index_granularity = 3;
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CREATE TABLE tab_f16(id Int32, vec Array(Float32), INDEX idx vec TYPE vector_similarity('hnsw', 'L2Distance', 'f16', 0, 0, 0) GRANULARITY 2) ENGINE = MergeTree ORDER BY id SETTINGS index_granularity = 3;
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CREATE TABLE tab_bf16(id Int32, vec Array(Float32), INDEX idx vec TYPE vector_similarity('hnsw', 'L2Distance', 'bf16', 0, 0, 0) GRANULARITY 2) ENGINE = MergeTree ORDER BY id SETTINGS index_granularity = 3;
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CREATE TABLE tab_i8(id Int32, vec Array(Float32), INDEX idx vec TYPE vector_similarity('hnsw', 'L2Distance', 'i8', 0, 0, 0) GRANULARITY 2) ENGINE = MergeTree ORDER BY id SETTINGS index_granularity = 3;
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INSERT INTO tab_f64 VALUES (0, [4.6, 2.3]), (1, [2.0, 3.2]), (2, [4.2, 3.4]), (3, [5.3, 2.9]), (4, [2.4, 5.2]), (5, [5.3, 2.3]), (6, [1.0, 9.3]), (7, [5.5, 4.7]), (8, [6.4, 3.5]), (9, [5.3, 2.5]), (10, [6.4, 3.4]), (11, [6.4, 3.2]);
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INSERT INTO tab_f32 VALUES (0, [4.6, 2.3]), (1, [2.0, 3.2]), (2, [4.2, 3.4]), (3, [5.3, 2.9]), (4, [2.4, 5.2]), (5, [5.3, 2.3]), (6, [1.0, 9.3]), (7, [5.5, 4.7]), (8, [6.4, 3.5]), (9, [5.3, 2.5]), (10, [6.4, 3.4]), (11, [6.4, 3.2]);
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INSERT INTO tab_f16 VALUES (0, [4.6, 2.3]), (1, [2.0, 3.2]), (2, [4.2, 3.4]), (3, [5.3, 2.9]), (4, [2.4, 5.2]), (5, [5.3, 2.3]), (6, [1.0, 9.3]), (7, [5.5, 4.7]), (8, [6.4, 3.5]), (9, [5.3, 2.5]), (10, [6.4, 3.4]), (11, [6.4, 3.2]);
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INSERT INTO tab_bf16 VALUES (0, [4.6, 2.3]), (1, [2.0, 3.2]), (2, [4.2, 3.4]), (3, [5.3, 2.9]), (4, [2.4, 5.2]), (5, [5.3, 2.3]), (6, [1.0, 9.3]), (7, [5.5, 4.7]), (8, [6.4, 3.5]), (9, [5.3, 2.5]), (10, [6.4, 3.4]), (11, [6.4, 3.2]);
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INSERT INTO tab_i8 VALUES (0, [4.6, 2.3]), (1, [2.0, 3.2]), (2, [4.2, 3.4]), (3, [5.3, 2.9]), (4, [2.4, 5.2]), (5, [5.3, 2.3]), (6, [1.0, 9.3]), (7, [5.5, 4.7]), (8, [6.4, 3.5]), (9, [5.3, 2.5]), (10, [6.4, 3.4]), (11, [6.4, 3.2]);
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WITH [0.0, 2.0] AS reference_vec
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SELECT id, vec, L2Distance(vec, reference_vec)
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FROM tab_f64
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ORDER BY L2Distance(vec, reference_vec)
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LIMIT 3;
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EXPLAIN indexes = 1
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WITH [0.0, 2.0] AS reference_vec
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SELECT id, vec, L2Distance(vec, reference_vec)
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FROM tab_f64
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ORDER BY L2Distance(vec, reference_vec)
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LIMIT 3;
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WITH [0.0, 2.0] AS reference_vec
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SELECT id, vec, L2Distance(vec, reference_vec)
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FROM tab_f32
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ORDER BY L2Distance(vec, reference_vec)
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LIMIT 3;
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EXPLAIN indexes = 1
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WITH [0.0, 2.0] AS reference_vec
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SELECT id, vec, L2Distance(vec, reference_vec)
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FROM tab_f32
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ORDER BY L2Distance(vec, reference_vec)
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LIMIT 3;
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WITH [0.0, 2.0] AS reference_vec
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SELECT id, vec, L2Distance(vec, reference_vec)
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FROM tab_f16
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ORDER BY L2Distance(vec, reference_vec)
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LIMIT 3;
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EXPLAIN indexes = 1
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WITH [0.0, 2.0] AS reference_vec
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SELECT id, vec, L2Distance(vec, reference_vec)
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FROM tab_f16
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ORDER BY L2Distance(vec, reference_vec)
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LIMIT 3;
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WITH [0.0, 2.0] AS reference_vec
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SELECT id, vec, L2Distance(vec, reference_vec)
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FROM tab_bf16
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ORDER BY L2Distance(vec, reference_vec)
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LIMIT 3;
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EXPLAIN indexes = 1
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WITH [0.0, 2.0] AS reference_vec
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SELECT id, vec, L2Distance(vec, reference_vec)
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FROM tab_bf16
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ORDER BY L2Distance(vec, reference_vec)
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LIMIT 3;
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WITH [0.0, 2.0] AS reference_vec
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SELECT id, vec, L2Distance(vec, reference_vec)
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FROM tab_i8
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ORDER BY L2Distance(vec, reference_vec)
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LIMIT 3;
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EXPLAIN indexes = 1
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WITH [0.0, 2.0] AS reference_vec
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SELECT id, vec, L2Distance(vec, reference_vec)
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FROM tab_i8
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ORDER BY L2Distance(vec, reference_vec)
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LIMIT 3;
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DROP TABLE tab_f64;
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DROP TABLE tab_f32;
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DROP TABLE tab_f16;
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DROP TABLE tab_bf16;
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DROP TABLE tab_i8;
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SELECT '-- Index on Array(Float64) column';
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CREATE TABLE tab(id Int32, vec Array(Float64), INDEX idx vec TYPE vector_similarity('hnsw', 'L2Distance') GRANULARITY 2) ENGINE = MergeTree ORDER BY id SETTINGS index_granularity = 3;
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INSERT INTO tab VALUES (0, [1.0, 0.0]), (1, [1.1, 0.0]), (2, [1.2, 0.0]), (3, [1.3, 0.0]), (4, [1.4, 0.0]), (5, [1.5, 0.0]), (6, [0.0, 2.0]), (7, [0.0, 2.1]), (8, [0.0, 2.2]), (9, [0.0, 2.3]), (10, [0.0, 2.4]), (11, [0.0, 2.5]);
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WITH [0.0, 2.0] AS reference_vec
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SELECT id, vec, L2Distance(vec, reference_vec)
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FROM tab
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ORDER BY L2Distance(vec, reference_vec)
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LIMIT 3;
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DROP TABLE tab;
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