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7f1329d3b0
* fix(memory): atomic single-statement upsert for memory save/update save_structured_memory used "try INSERT -> catch IntegrityError -> SELECT + UPDATE". On PostgreSQL a model saving the same key twice in a turn logged a uq_smem_name_scope violation on the failing INSERT, and the pattern threw + caught an exception on every update. Replace it with one statement: a new StorageBackend.upsert_structured_memory on both backends emitting INSERT ... ON CONFLICT (name, scope, scope_id) DO UPDATE ... RETURNING. It returns (row, was_update) -- the full saved row and whether an existing row was updated -- like Django's update_or_create; was_update is the supplied (fresh) memory_id differing from the returned id. save_structured_memory is a thin wrapper over it. description / mem_type of None mean "leave unset": the column default applies on insert and the stored value is kept on conflict; an explicit value (including "" / "general") overwrites -- so clearing a description or setting type back to "general" now persists, where the prior "if mem_type != 'general'" / "if description" semantics silently dropped it. The memory tool and the memories HTTP endpoint pass None for omitted fields and read effective type/scope from the returned row; the HTTP endpoint returns that row directly (one query, no follow-up SELECT). Removes the now-unused update_structured_memory primitive and its dead STRUCTURED_MEMORY_MUTABLE constant. Adds cross-backend storage tests and a session tool-path test (preserve-on-omit / overwrite-on-explicit), run on PostgreSQL via --storage-backend -- the save-over-existing path was previously SQLite-only. * docs(memory): clarify upsert was_update precondition Lead the upsert_structured_memory docstring with the behavioral contract (callers MUST supply a fresh unique memory_id) rather than the internal id-comparison mechanism, so a future caller can't reuse an existing id and silently get was_update=False on a real update.
325 lines
16 KiB
Python
325 lines
16 KiB
Python
"""Tests for structured memory storage backend operations."""
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class TestCreateAndGet:
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def test_create_and_get_by_id(self, backend):
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backend.create_structured_memory("m1", "test_key", "desc", "general", "global", "", "data")
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mem = backend.get_structured_memory("m1")
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assert mem is not None
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assert mem["name"] == "test_key"
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assert mem["content"] == "data"
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assert mem["type"] == "general"
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def test_get_nonexistent(self, backend):
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assert backend.get_structured_memory("nope") is None
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def test_get_by_name(self, backend):
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backend.create_structured_memory("m1", "mykey", "d", "general", "global", "", "val")
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mem = backend.get_structured_memory_by_name("mykey", "global", "")
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assert mem is not None
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assert mem["memory_id"] == "m1"
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def test_get_by_name_scoped(self, backend):
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backend.create_structured_memory("m1", "key", "d", "general", "global", "", "g")
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backend.create_structured_memory("m2", "key", "d", "general", "workstream", "ws1", "w")
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g = backend.get_structured_memory_by_name("key", "global", "")
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w = backend.get_structured_memory_by_name("key", "workstream", "ws1")
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assert g["content"] == "g"
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assert w["content"] == "w"
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class TestSaveUpsert:
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"""``save_structured_memory`` upserts by (name, scope, scope_id).
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A second save of the same key must UPDATE in place, not surface the
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``uq_smem_name_scope`` unique-constraint violation. These run on whichever
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backend ``--storage-backend`` selects, so the PostgreSQL path is covered in
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CI -- the session-level memory tests only exercise SQLite (via ``tmp_db``),
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which is where this path previously had no cross-backend coverage.
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"""
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def test_duplicate_create_raises_integrity_error(self, backend):
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"""The unique constraint the upsert's ON CONFLICT targets actually fires."""
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import pytest
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import sqlalchemy as sa
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backend.create_structured_memory("m1", "dup", "", "general", "global", "", "a")
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with pytest.raises(sa.exc.IntegrityError):
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backend.create_structured_memory("m2", "dup", "", "general", "global", "", "b")
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def test_save_same_key_updates_in_place(self, backend):
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from turnstone.core.memory import save_structured_memory
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row1, was_update1 = save_structured_memory("upsert_key", "v1", scope="global")
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assert row1 and was_update1 is False # inserted
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row2, was_update2 = save_structured_memory("upsert_key", "v2", scope="global")
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assert row2 and was_update2 is True # updated in place
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assert row2["memory_id"] == row1["memory_id"] # same row, not a duplicate
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assert row2["content"] == "v2"
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names = [r["name"] for r in backend.list_structured_memories(scope="global")]
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assert names.count("upsert_key") == 1
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def test_save_same_key_preserves_description_and_type_on_default_resave(self, backend):
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from turnstone.core.memory import save_structured_memory
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save_structured_memory(
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"meta_key", "c1", description="orig desc", mem_type="fact", scope="global"
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)
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# A re-save that omits description/type (defaults) must not clobber them.
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save_structured_memory("meta_key", "c2", scope="global")
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row = backend.get_structured_memory_by_name("meta_key", "global", "")
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assert row["content"] == "c2"
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assert row["description"] == "orig desc"
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assert row["type"] == "fact"
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def test_upsert_method_updates_in_place_no_raise(self, backend):
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"""The atomic storage primitive updates in place on a key conflict and
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returns (row, was_update) carrying the existing row's id -- no
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IntegrityError (which a second create_structured_memory would raise)."""
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backend.create_structured_memory("m1", "k", "desc", "fact", "global", "", "v1")
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row, was_update = backend.upsert_structured_memory(
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"m2", "k", "newdesc", "note", "global", "", "v2"
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)
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assert was_update is True
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assert row["memory_id"] == "m1" # existing row id, not the supplied "m2"
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assert row["content"] == "v2"
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assert row["description"] == "newdesc"
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assert row["type"] == "note"
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names = [r["name"] for r in backend.list_structured_memories(scope="global")]
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assert names.count("k") == 1
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def test_upsert_none_preserves_explicit_overwrites(self, backend):
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"""None description/type keep the stored value on conflict; an explicit
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value (including "" / "general") overwrites it."""
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backend.create_structured_memory("m1", "k", "keepdesc", "fact", "global", "", "v1")
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# None -> preserve stored description/type (a content-only save).
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row, _ = backend.upsert_structured_memory("m2", "k", None, None, "global", "", "v2")
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assert row["content"] == "v2"
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assert row["description"] == "keepdesc"
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assert row["type"] == "fact"
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# Explicit "" / "general" -> overwrite.
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row2, _ = backend.upsert_structured_memory("m3", "k", "", "general", "global", "", "v3")
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assert row2["description"] == ""
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assert row2["type"] == "general"
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class TestDelete:
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def test_delete_existing(self, backend):
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backend.create_structured_memory("m1", "k", "d", "general", "global", "", "data")
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assert backend.delete_structured_memory("k", "global", "")
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assert backend.get_structured_memory("m1") is None
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def test_delete_nonexistent(self, backend):
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assert not backend.delete_structured_memory("nope", "global", "")
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def test_delete_scoped(self, backend):
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backend.create_structured_memory("m1", "k", "d", "general", "workstream", "ws1", "data")
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assert not backend.delete_structured_memory("k", "global", "")
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assert backend.delete_structured_memory("k", "workstream", "ws1")
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class TestList:
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def test_list_all(self, backend):
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backend.create_structured_memory("m1", "a", "", "general", "global", "", "1")
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backend.create_structured_memory("m2", "b", "", "user", "global", "", "2")
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mems = backend.list_structured_memories()
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assert len(mems) == 2
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def test_list_by_type(self, backend):
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backend.create_structured_memory("m1", "a", "", "general", "global", "", "1")
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backend.create_structured_memory("m2", "b", "", "user", "global", "", "2")
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mems = backend.list_structured_memories(mem_type="user")
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assert len(mems) == 1
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assert mems[0]["name"] == "b"
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def test_list_by_scope(self, backend):
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backend.create_structured_memory("m1", "a", "", "general", "global", "", "1")
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backend.create_structured_memory("m2", "b", "", "general", "workstream", "ws1", "2")
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mems = backend.list_structured_memories(scope="workstream")
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assert len(mems) == 1
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def test_list_respects_limit(self, backend):
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for i in range(10):
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backend.create_structured_memory(f"m{i}", f"k{i}", "", "general", "global", "", f"{i}")
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mems = backend.list_structured_memories(limit=3)
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assert len(mems) == 3
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class TestSearch:
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def test_search_by_name(self, backend):
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backend.create_structured_memory("m1", "database_config", "", "general", "global", "", "pg")
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backend.create_structured_memory("m2", "api_key", "", "general", "global", "", "secret")
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results = backend.search_structured_memories("database")
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assert len(results) == 1
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assert results[0]["name"] == "database_config"
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def test_search_by_content(self, backend):
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backend.create_structured_memory("m1", "a", "", "general", "global", "", "postgresql host")
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results = backend.search_structured_memories("postgresql")
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assert len(results) == 1
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def test_search_empty_lists_all(self, backend):
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backend.create_structured_memory("m1", "a", "", "general", "global", "", "1")
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backend.create_structured_memory("m2", "b", "", "general", "global", "", "2")
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results = backend.search_structured_memories("")
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assert len(results) == 2
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class TestCount:
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def test_count_all(self, backend):
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backend.create_structured_memory("m1", "a", "", "general", "global", "", "1")
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backend.create_structured_memory("m2", "b", "", "general", "global", "", "2")
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assert backend.count_structured_memories() == 2
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def test_count_by_scope(self, backend):
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backend.create_structured_memory("m1", "a", "", "general", "global", "", "1")
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backend.create_structured_memory("m2", "b", "", "general", "workstream", "ws1", "2")
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assert backend.count_structured_memories(scope="global") == 1
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assert backend.count_structured_memories(scope="workstream") == 1
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class TestSearchOrOfTerms:
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"""Verify that multi-word search uses OR-of-terms (any term matches → row included)."""
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def test_single_matching_term_in_multi_word_query(self, backend):
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"""Memory with content 'apple' found when query is 'apple banana cherry'."""
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backend.create_structured_memory("m1", "apple_mem", "", "general", "global", "", "apple")
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backend.create_structured_memory("m2", "other_mem", "", "general", "global", "", "grape")
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results = backend.search_structured_memories("apple banana cherry")
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names = {r["name"] for r in results}
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assert "apple_mem" in names # matches "apple" — OR-of-terms keeps it
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assert "other_mem" not in names # "grape" matches nothing in the query
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def test_partial_overlap_across_memories(self, backend):
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"""Each memory matches one of three terms; all three are returned."""
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backend.create_structured_memory("m1", "alpha_doc", "", "general", "global", "", "alpha")
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backend.create_structured_memory("m2", "beta_doc", "", "general", "global", "", "beta")
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backend.create_structured_memory("m3", "gamma_doc", "", "general", "global", "", "gamma")
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backend.create_structured_memory("m4", "unrelated", "", "general", "global", "", "delta")
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results = backend.search_structured_memories("alpha beta gamma")
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names = {r["name"] for r in results}
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assert "alpha_doc" in names
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assert "beta_doc" in names
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assert "gamma_doc" in names
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assert "unrelated" not in names # "delta" doesn't appear in the query
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def test_scope_filter_preserved(self, backend):
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"""OR-of-terms search still respects scope / scope_id filters."""
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backend.create_structured_memory(
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"m1", "ws1_note", "", "general", "workstream", "ws1", "info"
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)
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backend.create_structured_memory(
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"m2", "ws2_note", "", "general", "workstream", "ws2", "info"
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)
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backend.create_structured_memory("m3", "global_note", "", "general", "global", "", "info")
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results = backend.search_structured_memories("info", scope="workstream", scope_id="ws1")
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names = {r["name"] for r in results}
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assert "ws1_note" in names
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assert "ws2_note" not in names
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assert "global_note" not in names
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def test_term_cap_normalizes_unbounded_query(self, backend):
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"""A multi-KB query collapses to <= MAX terms (de-dupe + length filter)."""
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backend.create_structured_memory("m1", "alpha_doc", "", "general", "global", "", "alpha")
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backend.create_structured_memory(
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"m2", "other_doc", "", "general", "global", "", "irrelevant"
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)
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# Build a noisy query: same word repeated, plus 1-char tokens that
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# the normalizer drops, plus the actual signal "alpha".
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noisy = " ".join(["x"] * 100 + ["alpha"] * 50)
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results = backend.search_structured_memories(noisy)
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names = {r["name"] for r in results}
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assert "alpha_doc" in names
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class TestVisibleStructuredMemories:
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"""Single-query union helpers used by the composition path."""
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def test_list_visible_unions_global_workstream_user(self, backend):
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backend.create_structured_memory("m1", "g_note", "", "general", "global", "", "g")
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backend.create_structured_memory("m2", "ws_note", "", "general", "workstream", "ws1", "w")
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backend.create_structured_memory("m3", "u_note", "", "general", "user", "u1", "u")
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backend.create_structured_memory("m4", "other_ws", "", "general", "workstream", "ws2", "x")
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scopes = [("global", ""), ("workstream", "ws1"), ("user", "u1")]
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rows = backend.list_visible_structured_memories(scopes)
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names = {r["name"] for r in rows}
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assert names == {"g_note", "ws_note", "u_note"} # ws2 excluded
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def test_search_visible_unions_scopes_and_terms(self, backend):
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backend.create_structured_memory("m1", "g_alpha", "", "general", "global", "", "alpha")
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backend.create_structured_memory(
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"m2", "ws_beta", "", "general", "workstream", "ws1", "beta"
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)
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backend.create_structured_memory(
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"m3", "ws_other", "", "general", "workstream", "ws2", "alpha"
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)
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scopes = [("global", ""), ("workstream", "ws1")]
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rows = backend.search_visible_structured_memories("alpha beta", scopes)
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names = {r["name"] for r in rows}
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assert "g_alpha" in names # global, matches "alpha"
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assert "ws_beta" in names # ws1, matches "beta"
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assert "ws_other" not in names # ws2 -> outside visibility
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def test_visible_helpers_handle_empty_scopes(self, backend):
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backend.create_structured_memory("m1", "anything", "", "general", "global", "", "x")
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assert backend.list_visible_structured_memories([]) == []
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assert backend.search_visible_structured_memories("x", []) == []
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class TestStableOrderingOnTimestampTies:
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"""When two memories share an `updated` timestamp, secondary sort on
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memory_id keeps the order deterministic across calls.
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`updated` is second-precision, and touch_structured_memories() can bump
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a batch to identical timestamps — without a tie-breaker BM25 input
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order shuffles run-to-run, busting the LLM-side prompt cache.
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"""
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def _seed_with_shared_timestamp(self, backend):
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# Create three memories then force their `updated` columns equal —
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# mirrors the real-world case where a touch_structured_memories
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# batch lands them in the same second.
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for mid in ("zebra_id", "apple_id", "mango_id"):
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backend.create_structured_memory(
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mid, f"name_{mid}", "", "general", "global", "", "shared content"
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)
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import sqlalchemy as sa
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with backend._conn() as conn:
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conn.execute(sa.text("UPDATE structured_memories SET updated = '2024-01-01T00:00:00'"))
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conn.commit()
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def test_list_stable_order_under_tied_updated(self, backend):
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self._seed_with_shared_timestamp(backend)
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first = [r["memory_id"] for r in backend.list_structured_memories()]
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second = [r["memory_id"] for r in backend.list_structured_memories()]
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# Deterministic across calls AND sorted by memory_id ASC for ties
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assert first == second
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assert first == ["apple_id", "mango_id", "zebra_id"]
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def test_search_stable_order_under_tied_updated(self, backend):
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self._seed_with_shared_timestamp(backend)
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first = [r["memory_id"] for r in backend.search_structured_memories("shared")]
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second = [r["memory_id"] for r in backend.search_structured_memories("shared")]
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assert first == second
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assert first == ["apple_id", "mango_id", "zebra_id"]
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def test_visible_search_stable_order_under_tied_updated(self, backend):
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self._seed_with_shared_timestamp(backend)
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scopes = [("global", "")]
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first = [
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r["memory_id"] for r in backend.search_visible_structured_memories("shared", scopes)
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]
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second = [
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r["memory_id"] for r in backend.search_visible_structured_memories("shared", scopes)
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]
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assert first == second
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assert first == ["apple_id", "mango_id", "zebra_id"]
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