Gabriel39 commented on code in PR #65851:
URL: https://github.com/apache/doris/pull/65851#discussion_r3697533489
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fe/fe-core/src/main/java/org/apache/doris/nereids/trees/plans/commands/insert/InsertUtils.java:
##########
@@ -427,7 +427,7 @@ private static Plan normalizePlanWithoutLock(LogicalPlan
plan, TableIf table,
}
for (int i = 0; i < values.size(); i++) {
Column sameNameColumn = null;
- for (Column column : table.getBaseSchema(true)) {
+ for (Column column : connectorWriteSchema(table,
true)) {
Review Comment:
[P1] Preserve connector write defaults for explicit DEFAULT in VALUES
This loop now selects the request-scoped connector column, whose persisted
`defaultValue` is intentionally null while `getDefaultValueSql()` carries the
Iceberg write default. The downstream `generateDefaultExpression()` still
branches only on `getDefaultValue() == null`, so it emits a NULL literal for a
nullable field instead of parsing the connector default. The current External
Regression confirms this: `INSERT ... (default_int) VALUES (DEFAULT)` writes
NULL in both Parquet and ORC, while omitting the same column writes 35.
Please make explicit DEFAULT consume `getDefaultValueSql()` (or route it
through the connector default helper) and retain the Parquet/ORC regression as
a gate.
##########
fe/fe-connector/fe-connector-iceberg/src/main/java/org/apache/doris/connector/iceberg/IcebergScanPlanProvider.java:
##########
@@ -1728,57 +1754,399 @@ private static List<String>
requestedLowerNames(List<ConnectorColumnHandle> colu
return names;
}
+ private static boolean mayHaveEqualityDeletes(Snapshot snapshot) {
+ if (snapshot == null) {
+ return false;
+ }
+ String equalityDeletes =
snapshot.summary().get(TOTAL_EQUALITY_DELETES);
+ // A missing counter is unknown (replace/cherry-pick snapshots can
omit it), so retain the bounded
+ // schema-history carrier. The exact task/delete binding is still
decided by Iceberg during split planning.
+ return equalityDeletes == null || !equalityDeletes.equals("0");
+ }
+
/**
- * Ensure the schema-evolution dict carries the table's equality-delete
KEY columns even when the query
- * does not project them (#65502). Equality-delete keys are hidden scan
dependencies: BE resolves a key
- * that is missing from an OLD data file by looking its field id up in
this dict to get the column type +
- * iceberg initial default; without the entry BE materializes the key as
NULL and mis-applies the delete.
- * The keys are the table's declared identifier fields (what
equality-delete writers key on) -> a few
- * columns, DCHECK-safe superset (BE looks up only its own scan slots; the
pin/top-N branches already ship
- * the full schema). If the table declares NO identifier yet the scan
carries equality deletes (whose
- * equality_ids we cannot cheaply enumerate here), fall back to the full
schema. Non-identifier /
- * append-only / position-delete-only tables are unaffected (the pruned
dict is returned verbatim).
+ * Build a schema carrier that can resolve any equality key reachable
before the selected schema without
+ * enumerating data files, manifests, or byte-split tasks. Its retained
state is bounded by table schema
+ * history rather than scan cardinality. At execution time BE looks fields
up by the exact IDs on each
+ * {@link FileScanTask#deletes()}; unrelated carrier fields never
participate in delete matching.
+ *
+ * <p>The selected snapshot lineage wins when a field was renamed. The
metadata schema list, in its actual
+ * chronology up to the selected schema (schema IDs are identifiers, not a
sequence), fills schema-only
+ * changes and expired ancestors. Current fields remain first, so a
dropped/re-added name still resolves the
+ * projected current field by name while a historical equality key
resolves by its stable field ID.</p>
*/
- private List<String> withEqualityDeleteKeyColumns(Table table,
List<String> requested) {
- if (requested.isEmpty()) {
- // An empty requested list already makes buildCurrentSchema fall
back to the FULL schema (every
- // top-level column) — a superset that covers every
equality-delete key — so there is nothing to
- // force-include. Returning early also preserves that all-columns
fallback (a non-empty identifier
- // set would otherwise prune it to identifier-only) and skips the
table.schema()/currentSnapshot()
- // probe when it cannot change the result.
- return requested;
- }
- Schema schema = table.schema();
- Set<Integer> identifierFieldIds = schema.identifierFieldIds();
- if (identifierFieldIds.isEmpty()) {
- return hasEqualityDeletes(table) ? Collections.emptyList() :
requested;
- }
- Set<String> present = new HashSet<>();
- for (String name : requested) {
- present.add(name.toLowerCase(Locale.ROOT));
- }
- List<String> result = new ArrayList<>(requested);
- for (int fieldId : identifierFieldIds) {
- Types.NestedField field = schema.findField(fieldId);
+ private static Schema schemaForPotentialEqualityDeletes(
+ Table table, TableScan scan, Schema scanSchema) {
+ List<Schema> history = potentialEqualityDeleteSchemaHistory(table,
scan, scanSchema);
+ Set<Integer> missing = new HashSet<>();
+ for (Schema schema : history) {
+ for (NestedField field :
TypeUtil.indexById(schema.asStruct()).values()) {
+ if (field.type().isPrimitiveType()) {
+ missing.add(field.fieldId());
+ }
+ }
+ }
+ missing.removeAll(TypeUtil.indexById(scanSchema.asStruct()).keySet());
+ if (missing.isEmpty()) {
+ return scanSchema;
+ }
+
+ List<NestedField> fields = new ArrayList<>(scanSchema.columns());
+ for (Schema historicalSchema : history) {
+ addHistoricalEqualityFields(fields, missing, historicalSchema);
+ }
+ if (!missing.isEmpty()) {
+ throw new IllegalStateException(
+ "Iceberg historical primitive fields are absent from
schema history: " + missing);
+ }
+ return new Schema(scanSchema.schemaId(), fields);
Review Comment:
[P1] Avoid constructing an invalid carrier after drop and same-name re-add
This gathers every historical primitive field ID, not only IDs used by
applicable equality deletes. If `x` with field ID 1 is dropped and a new `x`
with field ID 2 is added, `fields` starts with current `x` (ID 2), then
`mergeHistoricalEqualityFields()` appends historical `x` (ID 1). The `new
Schema(...)` call rejects that valid evolution with `Invalid schema: multiple
fields for name x`. Any scan for which `mayHaveEqualityDeletes` is true can
therefore fail even when `x` was never an equality key.
Please encode historical identities without constructing a duplicate-name
Iceberg Schema, or narrow the carrier to the exact applicable equality IDs
through a bounded/lazy mechanism. Add top-level and nested
drop/re-add-same-name coverage with an unrelated retained equality delete and
with a missing snapshot summary.
##########
fe/fe-core/src/main/java/org/apache/doris/nereids/trees/plans/commands/ExternalRowLevelMergePlanBuilder.java:
##########
@@ -275,18 +279,12 @@ private List<Expression>
buildInsertProjection(MergeNotMatchedClause clause,
}
}
if (value == null) {
- if (column.getDefaultValueSql() != null) {
- Expression unboundDefaultValue = new NereidsParser()
- .parseExpression(column.getDefaultValueSql());
- if (unboundDefaultValue instanceof UnboundAlias) {
- unboundDefaultValue = unboundDefaultValue.child(0);
- }
- value = unboundDefaultValue;
- } else if (column.isAllowNull()) {
- value = new
NullLiteral(DataType.fromCatalogType(column.getType()));
- } else {
- throw new AnalysisException("Column has no default value,
column=" + column.getName());
- }
+ value = ConnectorWriteSchemaUtils.resolveDefault(column);
Review Comment:
[P1] Preserve NULL semantics for an omitted nullable MERGE column
When a `WHEN NOT MATCHED THEN INSERT` clause has an explicit target-column
list and omits a nullable column with no write default, `value` is null here.
`resolveDefault()` rejects every column whose `getDefaultValueSql()` is null,
so a valid omission now fails with `Column has no default value`. The previous
code produced a typed `NullLiteral` for exactly this case.
Please distinguish omission from an explicit DEFAULT: use the write default
when present, synthesize typed NULL when the omitted column is nullable, and
reject only a required column without a default. Add a MERGE regression that
omits one nullable no-default field.
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