VectorSearchTableValuedFunction.java
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package org.apache.doris.tablefunction;
import org.apache.doris.catalog.Column;
import org.apache.doris.common.AnalysisException;
import org.apache.doris.datasource.lance.LanceTableMetadata;
import org.apache.doris.datasource.lance.LanceVectorQuery;
import org.apache.doris.thrift.TExternalSearchQuery;
import org.apache.doris.thrift.TExternalSearchRequest;
import org.apache.doris.thrift.TSearchVector;
import org.apache.doris.thrift.TVectorMetric;
import org.apache.doris.thrift.TVectorSearchOptions;
import org.apache.doris.thrift.TVectorSearchParams;
import com.google.common.annotations.VisibleForTesting;
import com.google.common.collect.ImmutableSet;
import org.apache.arrow.vector.types.pojo.Field;
import java.util.List;
import java.util.Locale;
import java.util.Map;
import java.util.Set;
/** Relation TVF for a fixed-snapshot Lance vector search. */
public class VectorSearchTableValuedFunction extends LanceExternalSearchTableValuedFunction {
public static final String NAME = "vector_search";
public static final String DISTANCE_COLUMN = "_distance";
private static final String QUERY_VECTOR = "query_vector";
private static final String METRIC = "metric";
private static final String NPROBES = "nprobes";
private static final String REFINE_FACTOR = "refine_factor";
private static final String EF = "ef";
private static final String USE_INDEX = "use_index";
private static final Set<String> PROPERTIES = ImmutableSet.of(
TABLE, COLUMN, QUERY_VECTOR, TOP_K, OFFSET, METRIC, FILTER,
NPROBES, REFINE_FACTOR, EF, USE_INDEX);
public VectorSearchTableValuedFunction(Map<String, String> properties)
throws AnalysisException {
super(prepare(properties));
}
private static PreparedSearch prepare(Map<String, String> properties)
throws AnalysisException {
Map<String, String> params = normalizeProperties(properties, PROPERTIES, NAME);
boolean useIndex = !params.containsKey(USE_INDEX)
|| parseBoolean(params.get(USE_INDEX), USE_INDEX);
CommonSearch common = prepareCommon(params, NAME,
"VectorSearchTableValuedFunction", "vector search", useIndex);
Field vectorField = LanceVectorQuery.findVectorColumnField(
common.metadata().getSchema(), required(params, COLUMN, NAME));
int vectorFieldId = useIndex
? requireLanceFieldId(common.metadata(), vectorField) : -1;
TSearchVector queryVector = LanceVectorQuery.parseAndEncodeQueryVector(
vectorField, required(params, QUERY_VECTOR, NAME));
TVectorSearchParams vectorParams = new TVectorSearchParams()
.setColumn(vectorField.getName())
.setQueryVector(queryVector)
.setTopK(common.topK())
.setOffset(common.offset());
if (params.containsKey(METRIC)) {
vectorParams.setMetric(parseMetric(params.get(METRIC)));
}
TExternalSearchRequest searchRequest = new TExternalSearchRequest()
.setSchemaVersion(1)
.setSearchQuery(TExternalSearchQuery.vector_search(vectorParams));
TVectorSearchOptions vectorSearchOptions = buildVectorSearchOptions(params, useIndex);
if (vectorSearchOptions != null) {
searchRequest.setVectorSearchOptions(vectorSearchOptions);
}
return prepareSearch(
common, vectorFieldId, searchRequest, DISTANCE_COLUMN, "vector search");
}
private static TVectorSearchOptions buildVectorSearchOptions(
Map<String, String> params, boolean useIndex) throws AnalysisException {
TVectorSearchOptions options = new TVectorSearchOptions();
boolean configured = false;
if (params.containsKey(NPROBES)) {
options.setNprobes(parsePositiveInt(params.get(NPROBES), NPROBES));
configured = true;
}
if (params.containsKey(REFINE_FACTOR)) {
options.setRefineFactor(
parsePositiveInt(params.get(REFINE_FACTOR), REFINE_FACTOR));
configured = true;
}
if (params.containsKey(EF)) {
options.setEf(parsePositiveInt(params.get(EF), EF));
configured = true;
}
if (params.containsKey(USE_INDEX)) {
options.setUseIndex(useIndex);
configured = true;
}
return configured ? options : null;
}
@VisibleForTesting
static List<Column> buildOutputColumns(LanceTableMetadata metadata)
throws AnalysisException {
return buildOutputColumns(metadata, DISTANCE_COLUMN, "vector search");
}
@VisibleForTesting
static int requireLanceFieldId(LanceTableMetadata metadata, Field field)
throws AnalysisException {
return requireLanceFieldId(metadata, field, "vector");
}
private static int parsePositiveInt(String value, String property)
throws AnalysisException {
long parsed = parseLong(value, property, 1, Integer.MAX_VALUE);
return (int) parsed;
}
private static boolean parseBoolean(String value, String property)
throws AnalysisException {
if ("true".equalsIgnoreCase(value)) {
return true;
}
if ("false".equalsIgnoreCase(value)) {
return false;
}
throw new AnalysisException("'" + property + "' must be 'true' or 'false'");
}
private static TVectorMetric parseMetric(String value) throws AnalysisException {
switch (value.trim().toLowerCase(Locale.ROOT)) {
case "l2":
return TVectorMetric.L2;
case "cosine":
return TVectorMetric.COSINE;
case "dot":
case "dot_product":
return TVectorMetric.DOT_PRODUCT;
case "hamming":
return TVectorMetric.HAMMING;
default:
throw new AnalysisException("Unsupported vector metric '" + value
+ "': expected l2, cosine, dot, or hamming");
}
}
}