mirror of
https://github.com/ruvnet/RuVector.git
synced 2026-06-01 23:00:37 +00:00
Root-level `cargo fmt --all` doesn't recurse into nested workspaces
(crates/rvf/, examples/onnx-embeddings/, examples/data/, …), but
CI's `cargo fmt --all -- --check` was failing on files inside them
(e.g. crates/rvf/rvf-wire/src/hash.rs).
Ran `cargo fmt --all` inside each nested workspace. Mechanical-only
whitespace, no semantic change.
Touched nested workspaces:
crates/rvf/*
examples/onnx-embeddings/*
examples/data/*
examples/mincut/*
examples/exo-ai-2025/*
examples/prime-radiant/*
examples/rvf/*
examples/ultra-low-latency-sim/*
examples/edge/*
examples/vibecast-7sense/*
examples/onnx-embeddings-wasm/*
Combined with previous commit (96d8fdc17), the full workspace tree
should now pass `cargo fmt --all -- --check` in CI.
Co-Authored-By: claude-flow <ruv@ruv.net>
339 lines
9.3 KiB
Rust
339 lines
9.3 KiB
Rust
//! Data ingestion pipeline for streaming data into RuVector
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use std::collections::HashMap;
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use std::sync::Arc;
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use async_trait::async_trait;
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use serde::{Deserialize, Serialize};
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use tokio::sync::mpsc;
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use crate::{DataRecord, DataSource, FrameworkError, Result};
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/// Configuration for data ingestion
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#[derive(Debug, Clone, Serialize, Deserialize)]
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pub struct IngestionConfig {
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/// Batch size for fetching
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pub batch_size: usize,
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/// Maximum concurrent fetches
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pub max_concurrent: usize,
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/// Retry count on failure
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pub retry_count: u32,
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/// Delay between retries (ms)
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pub retry_delay_ms: u64,
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/// Enable deduplication
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pub deduplicate: bool,
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/// Rate limit (requests per second, 0 = unlimited)
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pub rate_limit: u32,
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}
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impl Default for IngestionConfig {
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fn default() -> Self {
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Self {
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batch_size: 1000,
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max_concurrent: 4,
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retry_count: 3,
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retry_delay_ms: 1000,
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deduplicate: true,
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rate_limit: 10,
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}
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}
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}
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/// Configuration for a specific data source
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#[derive(Debug, Clone, Serialize, Deserialize)]
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pub struct SourceConfig {
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/// Source identifier
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pub source_id: String,
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/// API base URL
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pub base_url: String,
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/// API key (if required)
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pub api_key: Option<String>,
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/// Additional headers
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pub headers: HashMap<String, String>,
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/// Custom parameters
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pub params: HashMap<String, String>,
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}
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/// Statistics for ingestion process
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#[derive(Debug, Clone, Default, Serialize, Deserialize)]
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pub struct IngestionStats {
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/// Total records fetched
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pub records_fetched: u64,
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/// Batches processed
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pub batches_processed: u64,
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/// Retries performed
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pub retries: u64,
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/// Errors encountered
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pub errors: u64,
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/// Duplicates skipped
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pub duplicates_skipped: u64,
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/// Bytes downloaded
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pub bytes_downloaded: u64,
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/// Average batch fetch time (ms)
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pub avg_batch_time_ms: f64,
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}
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/// Data ingestion pipeline
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pub struct DataIngester {
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config: IngestionConfig,
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stats: Arc<std::sync::RwLock<IngestionStats>>,
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seen_ids: Arc<std::sync::RwLock<std::collections::HashSet<String>>>,
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}
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impl DataIngester {
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/// Create a new data ingester
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pub fn new(config: IngestionConfig) -> Self {
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Self {
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config,
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stats: Arc::new(std::sync::RwLock::new(IngestionStats::default())),
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seen_ids: Arc::new(std::sync::RwLock::new(std::collections::HashSet::new())),
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}
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}
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/// Ingest all data from a source
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pub async fn ingest_all<S: DataSource>(&self, source: &S) -> Result<Vec<DataRecord>> {
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let mut all_records = Vec::new();
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let mut cursor: Option<String> = None;
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loop {
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let (batch, next_cursor) = self
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.fetch_with_retry(source, cursor.clone(), self.config.batch_size)
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.await?;
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if batch.is_empty() {
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break;
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}
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// Deduplicate if enabled
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let records = if self.config.deduplicate {
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self.deduplicate_batch(batch)
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} else {
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batch
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};
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all_records.extend(records);
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{
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let mut stats = self.stats.write().unwrap();
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stats.batches_processed += 1;
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}
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cursor = next_cursor;
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if cursor.is_none() {
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break;
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}
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// Rate limiting
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if self.config.rate_limit > 0 {
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let delay = 1000 / self.config.rate_limit as u64;
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tokio::time::sleep(tokio::time::Duration::from_millis(delay)).await;
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}
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}
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Ok(all_records)
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}
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/// Stream records with backpressure
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pub async fn stream_records<S: DataSource + 'static>(
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&self,
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source: Arc<S>,
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buffer_size: usize,
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) -> Result<mpsc::Receiver<DataRecord>> {
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let (tx, rx) = mpsc::channel(buffer_size);
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let config = self.config.clone();
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let stats = self.stats.clone();
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let seen_ids = self.seen_ids.clone();
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tokio::spawn(async move {
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let mut cursor: Option<String> = None;
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loop {
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match source.fetch_batch(cursor.clone(), config.batch_size).await {
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Ok((batch, next_cursor)) => {
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if batch.is_empty() {
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break;
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}
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for record in batch {
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// Deduplicate
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if config.deduplicate {
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let mut ids = seen_ids.write().unwrap();
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if ids.contains(&record.id) {
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continue;
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}
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ids.insert(record.id.clone());
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}
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if tx.send(record).await.is_err() {
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return; // Receiver dropped
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}
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let mut s = stats.write().unwrap();
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s.records_fetched += 1;
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}
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cursor = next_cursor;
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if cursor.is_none() {
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break;
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}
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}
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Err(_) => {
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let mut s = stats.write().unwrap();
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s.errors += 1;
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break;
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}
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}
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}
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});
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Ok(rx)
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}
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/// Fetch a batch with retry logic
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async fn fetch_with_retry<S: DataSource>(
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&self,
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source: &S,
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cursor: Option<String>,
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batch_size: usize,
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) -> Result<(Vec<DataRecord>, Option<String>)> {
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let mut last_error = None;
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for attempt in 0..=self.config.retry_count {
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if attempt > 0 {
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let delay = self.config.retry_delay_ms * (1 << (attempt - 1));
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tokio::time::sleep(tokio::time::Duration::from_millis(delay)).await;
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let mut stats = self.stats.write().unwrap();
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stats.retries += 1;
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}
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match source.fetch_batch(cursor.clone(), batch_size).await {
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Ok(result) => return Ok(result),
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Err(e) => {
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last_error = Some(e);
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}
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}
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}
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let mut stats = self.stats.write().unwrap();
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stats.errors += 1;
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Err(last_error.unwrap_or_else(|| FrameworkError::Ingestion("Unknown error".to_string())))
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}
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/// Deduplicate a batch of records
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fn deduplicate_batch(&self, batch: Vec<DataRecord>) -> Vec<DataRecord> {
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let mut unique = Vec::with_capacity(batch.len());
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let mut seen = self.seen_ids.write().unwrap();
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for record in batch {
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if !seen.contains(&record.id) {
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seen.insert(record.id.clone());
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unique.push(record);
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} else {
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let mut stats = self.stats.write().unwrap();
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stats.duplicates_skipped += 1;
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}
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}
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unique
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}
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/// Get current ingestion statistics
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pub fn stats(&self) -> IngestionStats {
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self.stats.read().unwrap().clone()
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}
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/// Reset statistics
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pub fn reset_stats(&self) {
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*self.stats.write().unwrap() = IngestionStats::default();
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}
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}
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/// Trait for transforming records during ingestion
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#[async_trait]
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pub trait RecordTransformer: Send + Sync {
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/// Transform a record
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async fn transform(&self, record: DataRecord) -> Result<DataRecord>;
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/// Filter records (return false to skip)
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fn filter(&self, record: &DataRecord) -> bool {
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true
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}
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}
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/// Identity transformer (no-op)
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pub struct IdentityTransformer;
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#[async_trait]
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impl RecordTransformer for IdentityTransformer {
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async fn transform(&self, record: DataRecord) -> Result<DataRecord> {
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Ok(record)
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}
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}
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/// Batched ingestion with transformations
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pub struct BatchIngester<T: RecordTransformer> {
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ingester: DataIngester,
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transformer: T,
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}
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impl<T: RecordTransformer> BatchIngester<T> {
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/// Create a new batch ingester with transformer
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pub fn new(config: IngestionConfig, transformer: T) -> Self {
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Self {
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ingester: DataIngester::new(config),
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transformer,
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}
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}
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/// Ingest and transform all records
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pub async fn ingest_all<S: DataSource>(&self, source: &S) -> Result<Vec<DataRecord>> {
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let raw_records = self.ingester.ingest_all(source).await?;
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let mut transformed = Vec::with_capacity(raw_records.len());
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for record in raw_records {
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if self.transformer.filter(&record) {
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let t = self.transformer.transform(record).await?;
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transformed.push(t);
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}
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}
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Ok(transformed)
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}
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}
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#[cfg(test)]
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mod tests {
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use super::*;
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#[test]
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fn test_default_config() {
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let config = IngestionConfig::default();
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assert_eq!(config.batch_size, 1000);
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assert!(config.deduplicate);
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}
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#[test]
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fn test_ingester_creation() {
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let config = IngestionConfig::default();
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let ingester = DataIngester::new(config);
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let stats = ingester.stats();
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assert_eq!(stats.records_fetched, 0);
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}
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}
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