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* refactor: let SegmentBuilder::update take unlocked segments * style: split long lines * refactor: introduce TestSegments * test: add tests for mmap indices
388 lines
12 KiB
Rust
388 lines
12 KiB
Rust
use std::collections::HashMap;
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use std::str::FromStr;
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use std::sync::atomic::{AtomicBool, Ordering};
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use std::sync::Arc;
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use std::time::{Duration, Instant};
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use common::cpu::CpuPermit;
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use itertools::Itertools;
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use segment::common::operation_error::OperationError;
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use segment::data_types::named_vectors::NamedVectors;
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use segment::data_types::vectors::{only_default_vector, VectorRef, DEFAULT_VECTOR_NAME};
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use segment::entry::entry_point::SegmentEntry;
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use segment::index::hnsw_index::num_rayon_threads;
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use segment::json_path::JsonPath;
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use segment::segment::Segment;
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use segment::segment_constructor::segment_builder::SegmentBuilder;
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use segment::types::{
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Indexes, PayloadContainer, PayloadKeyType, SegmentConfig, VectorDataConfig, VectorStorageType,
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};
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use serde_json::Value;
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use sparse::common::sparse_vector::SparseVector;
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use tempfile::Builder;
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use crate::fixtures::segment::{
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build_segment_1, build_segment_2, build_segment_sparse_1, build_segment_sparse_2,
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empty_segment, PAYLOAD_KEY,
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};
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#[test]
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fn test_building_new_segment() {
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let dir = Builder::new().prefix("segment_dir").tempdir().unwrap();
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let temp_dir = Builder::new().prefix("segment_temp_dir").tempdir().unwrap();
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let stopped = AtomicBool::new(false);
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let segment1 = build_segment_1(dir.path());
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let mut segment2 = build_segment_2(dir.path());
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let mut builder =
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SegmentBuilder::new(dir.path(), temp_dir.path(), &segment1.segment_config).unwrap();
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// Include overlapping with segment1 to check the
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segment2
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.upsert_point(100, 3.into(), only_default_vector(&[0., 0., 0., 0.]))
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.unwrap();
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builder
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.update(&[&segment1, &segment2, &segment2], &stopped)
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.unwrap();
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// Check what happens if segment building fails here
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let segment_count = dir.path().read_dir().unwrap().count();
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assert_eq!(segment_count, 2);
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let temp_segment_count = temp_dir.path().read_dir().unwrap().count();
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assert_eq!(temp_segment_count, 1);
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// Now we finalize building
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let permit_cpu_count = num_rayon_threads(0);
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let permit = CpuPermit::dummy(permit_cpu_count as u32);
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let merged_segment: Segment = builder.build(permit, &stopped).unwrap();
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let new_segment_count = dir.path().read_dir().unwrap().count();
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assert_eq!(new_segment_count, 3);
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assert_eq!(
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merged_segment.iter_points().count(),
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merged_segment.available_point_count(),
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);
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assert_eq!(
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merged_segment.available_point_count(),
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segment1
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.iter_points()
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.chain(segment2.iter_points())
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.unique()
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.count(),
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);
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assert_eq!(merged_segment.point_version(3.into()), Some(100));
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}
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#[test]
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fn test_building_new_defragmented_segment() {
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let dir = Builder::new().prefix("segment_dir").tempdir().unwrap();
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let temp_dir = Builder::new().prefix("segment_temp_dir").tempdir().unwrap();
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let stopped = AtomicBool::new(false);
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let defragment_key = JsonPath::from_str(PAYLOAD_KEY).unwrap();
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let mut segment1 = build_segment_1(dir.path());
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segment1
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.create_field_index(7, &defragment_key, None)
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.unwrap();
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let mut segment2 = build_segment_2(dir.path());
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segment2
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.create_field_index(17, &defragment_key, None)
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.unwrap();
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let mut builder =
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SegmentBuilder::new(dir.path(), temp_dir.path(), &segment1.segment_config).unwrap();
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// Include overlapping with segment1 to check the
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segment2
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.upsert_point(100, 3.into(), only_default_vector(&[0., 0., 0., 0.]))
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.unwrap();
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builder.set_defragment_keys(vec![defragment_key.clone()]);
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builder.update(&[&segment1, &segment2], &stopped).unwrap();
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// Check what happens if segment building fails here
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let segment_count = dir.path().read_dir().unwrap().count();
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assert_eq!(segment_count, 2);
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let temp_segment_count = temp_dir.path().read_dir().unwrap().count();
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assert_eq!(temp_segment_count, 1);
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// Now we finalize building
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let permit_cpu_count = num_rayon_threads(0);
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let permit = CpuPermit::dummy(permit_cpu_count as u32);
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let merged_segment: Segment = builder.build(permit, &stopped).unwrap();
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let new_segment_count = dir.path().read_dir().unwrap().count();
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assert_eq!(new_segment_count, 3);
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assert_eq!(
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merged_segment.iter_points().count(),
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merged_segment.available_point_count(),
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);
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assert_eq!(
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merged_segment.available_point_count(),
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segment1
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.iter_points()
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.chain(segment2.iter_points())
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.unique()
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.count(),
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);
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assert_eq!(merged_segment.point_version(3.into()), Some(100));
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if let Err(err) = check_points_defragmented(&merged_segment, &defragment_key) {
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panic!("{err}");
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}
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}
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/// Iterates over the internal point ids of the merged segment and checks that the
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/// points are grouped by the payload value.
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fn check_points_defragmented(
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segment: &Segment,
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defragment_key: &PayloadKeyType,
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) -> Result<(), &'static str> {
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let id_tracker = segment.id_tracker.borrow();
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// Previously seen group/value.
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let mut previous_value: Option<Value> = None;
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// keeps track of groups/values that have already been seen while iterating
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let mut seen_values: Vec<Value> = vec![];
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for internal_id in id_tracker.iter_internal() {
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let external_id = id_tracker.external_id(internal_id).unwrap();
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let payload = segment.payload(external_id).unwrap();
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let values = payload.get_value(defragment_key);
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if values.is_empty() {
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if !seen_values.is_empty() {
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return Err(
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"In a defragmented segment, points without a payload value should come first!",
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);
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}
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continue;
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}
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let value = values[0].clone();
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let Some(prev) = previous_value.as_ref() else {
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previous_value = Some(value);
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continue;
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};
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if *prev == value {
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continue;
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}
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if seen_values.contains(&value) {
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return Err("Segment not defragmented");
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}
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seen_values.push(value.clone());
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previous_value = Some(value);
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}
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Ok(())
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}
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#[test]
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fn test_building_new_sparse_segment() {
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let dir = Builder::new().prefix("segment_dir").tempdir().unwrap();
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let temp_dir = Builder::new().prefix("segment_temp_dir").tempdir().unwrap();
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let stopped = AtomicBool::new(false);
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let segment1 = build_segment_sparse_1(dir.path());
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let mut segment2 = build_segment_sparse_2(dir.path());
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let mut builder =
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SegmentBuilder::new(dir.path(), temp_dir.path(), &segment1.segment_config).unwrap();
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// Include overlapping with segment1 to check the
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let vec = SparseVector::new(vec![0, 1, 2, 3], vec![0.0, 0.0, 0.0, 0.0]).unwrap();
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segment2
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.upsert_point(
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100,
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3.into(),
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NamedVectors::from_ref("sparse", VectorRef::Sparse(&vec)),
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)
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.unwrap();
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builder
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.update(&[&segment1, &segment2, &segment2], &stopped)
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.unwrap();
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// Check what happens if segment building fails here
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let segment_count = dir.path().read_dir().unwrap().count();
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assert_eq!(segment_count, 2);
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let temp_segment_count = temp_dir.path().read_dir().unwrap().count();
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assert_eq!(temp_segment_count, 1);
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// Now we finalize building
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let permit_cpu_count = num_rayon_threads(0);
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let permit = CpuPermit::dummy(permit_cpu_count as u32);
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let merged_segment: Segment = builder.build(permit, &stopped).unwrap();
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let new_segment_count = dir.path().read_dir().unwrap().count();
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assert_eq!(new_segment_count, 3);
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assert_eq!(
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merged_segment.iter_points().count(),
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merged_segment.available_point_count(),
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);
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assert_eq!(
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merged_segment.available_point_count(),
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segment1
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.iter_points()
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.chain(segment2.iter_points())
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.unique()
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.count(),
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);
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assert_eq!(merged_segment.point_version(3.into()), Some(100));
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}
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fn estimate_build_time(segment: &Segment, stop_delay_millis: Option<u64>) -> (u64, bool) {
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let stopped = Arc::new(AtomicBool::new(false));
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let dir = Builder::new().prefix("segment_dir1").tempdir().unwrap();
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let temp_dir = Builder::new().prefix("segment_temp_dir").tempdir().unwrap();
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let segment_config = SegmentConfig {
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vector_data: HashMap::from([(
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DEFAULT_VECTOR_NAME.to_owned(),
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VectorDataConfig {
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size: segment.segment_config.vector_data[DEFAULT_VECTOR_NAME].size,
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distance: segment.segment_config.vector_data[DEFAULT_VECTOR_NAME].distance,
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storage_type: VectorStorageType::Memory,
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index: Indexes::Hnsw(Default::default()),
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quantization_config: None,
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multivector_config: None,
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datatype: None,
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},
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)]),
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sparse_vector_data: Default::default(),
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payload_storage_type: Default::default(),
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};
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let mut builder = SegmentBuilder::new(dir.path(), temp_dir.path(), &segment_config).unwrap();
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builder.update(&[segment], &stopped).unwrap();
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let now = Instant::now();
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if let Some(stop_delay_millis) = stop_delay_millis {
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let stopped_t = stopped.clone();
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std::thread::Builder::new()
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.name("build_estimator_timeout".to_string())
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.spawn(move || {
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std::thread::sleep(Duration::from_millis(stop_delay_millis));
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stopped_t.store(true, Ordering::Release);
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})
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.unwrap();
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}
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let permit_cpu_count = num_rayon_threads(0);
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let permit = CpuPermit::dummy(permit_cpu_count as u32);
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let res = builder.build(permit, &stopped);
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let is_cancelled = match res {
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Ok(_) => false,
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Err(OperationError::Cancelled { .. }) => true,
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Err(err) => {
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eprintln!("Was expecting cancellation signal but got unexpected error: {err:?}");
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false
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}
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};
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(now.elapsed().as_millis() as u64, is_cancelled)
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}
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#[test]
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fn test_building_cancellation() {
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let baseline_dir = Builder::new()
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.prefix("segment_dir_baseline")
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.tempdir()
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.unwrap();
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let dir = Builder::new().prefix("segment_dir").tempdir().unwrap();
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let dir_2 = Builder::new().prefix("segment_dir_2").tempdir().unwrap();
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let mut baseline_segment = empty_segment(baseline_dir.path());
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let mut segment = empty_segment(dir.path());
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let mut segment_2 = empty_segment(dir_2.path());
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for idx in 0..2000 {
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baseline_segment
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.upsert_point(1, idx.into(), only_default_vector(&[0., 0., 0., 0.]))
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.unwrap();
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segment
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.upsert_point(1, idx.into(), only_default_vector(&[0., 0., 0., 0.]))
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.unwrap();
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segment_2
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.upsert_point(1, idx.into(), only_default_vector(&[0., 0., 0., 0.]))
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.unwrap();
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}
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// Get normal build time
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let (time_baseline, was_cancelled_baseline) = estimate_build_time(&baseline_segment, None);
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assert!(!was_cancelled_baseline);
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eprintln!("baseline time: {time_baseline}");
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// Checks that optimization with longer cancellation delay will also finish fast
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let early_stop_delay = time_baseline / 20;
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let (time_fast, was_cancelled_early) = estimate_build_time(&segment, Some(early_stop_delay));
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let late_stop_delay = time_baseline / 5;
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let (time_long, was_cancelled_later) = estimate_build_time(&segment_2, Some(late_stop_delay));
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let acceptable_stopping_delay = 600; // millis
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assert!(was_cancelled_early);
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assert!(
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time_fast < early_stop_delay + acceptable_stopping_delay,
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"time_early: {time_fast}, early_stop_delay: {early_stop_delay}"
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);
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assert!(was_cancelled_later);
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assert!(
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time_long < late_stop_delay + acceptable_stopping_delay,
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"time_later: {time_long}, late_stop_delay: {late_stop_delay}"
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);
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assert!(
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time_fast < time_long,
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"time_early: {time_fast}, time_later: {time_long}, was_cancelled_later: {was_cancelled_later}",
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);
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}
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