Merge remote-tracking branch 'origin/main' into mintlify/af82bda4
This commit is contained in:
@@ -7,6 +7,18 @@ mode: "wide"
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<Tabs>
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<Tab title="Python">
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<Update label="2026-09-25" description="v2.2.1">
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**Bug Fixes:**
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- **Core:** `add()` (`Memory` and `AsyncMemory`) no longer reports records the vector store rejected as successful `ADD` events. Only records that were actually inserted are written to history, entity-linked, and returned. If none of the extracted memories could be inserted, `add()` now raises `VectorStoreError` instead of returning memories that were never stored ([#7066](https://github.com/mem0ai/mem0/pull/7066))
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- **Core:** Restore the context-manager protocol on `Memory` (`with Memory() as m:`) and `AsyncMemory` (`async with AsyncMemory() as m:`), which closes the instance on exit ([#7354](https://github.com/mem0ai/mem0/pull/7354))
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- **LLMs:** The AWS Bedrock Anthropic path now returns the first Converse content block that carries text instead of always reading `content[0]`. Claude reasoning models can emit a `reasoningContent` block before the text block, which previously made the call fail with a `KeyError` ([#6369](https://github.com/mem0ai/mem0/pull/6369))
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- **Vector Stores:** Turbopuffer filters now apply every operator (`eq`, `ne`, `gt`, `gte`, `lt`, `lte`, `in`, `nin`). Only `gte` and `lte` were read before, so any other operator was silently dropped and the query returned unfiltered results. An unsupported operator now raises `ValueError` ([#6564](https://github.com/mem0ai/mem0/pull/6564))
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- **Vector Stores:** Turbopuffer `search()` scores now respect `distance_metric`. With `euclidean_squared`, the unbounded squared distance maps to `1 / (1 + distance)` instead of `1 - distance`, which went negative and inverted ranking for any distance above 1 ([#6559](https://github.com/mem0ai/mem0/pull/6559))
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- **Vector Stores:** S3 Vectors `search()` scores are now metric-aware. With `euclidean`, the distance maps to `1 / (1 + distance)` instead of `max(0, 1 - distance)`, which collapsed most scores to 0 ([#6547](https://github.com/mem0ai/mem0/pull/6547))
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</Update>
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<Update label="2026-09-23" description="v2.2.0">
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**New Features:**
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@@ -1245,6 +1257,16 @@ See the [OSS v2 to v3 migration guide](https://docs.mem0.ai/migration/oss-v2-to-
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<Tab title="TypeScript">
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<Update label="2026-09-25" description="v3.3.1">
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**Bug Fixes:**
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- **Config (OSS):** `ConfigManager` no longer injects OpenAI's default `baseURL` and `model` into non-OpenAI LLM providers. The defaults now apply only to `openai` and `openai_structured`, so a DeepSeek, xAI, or other provider config without an explicit `baseURL` or `model` falls back to that provider's own defaults and env vars (`DEEPSEEK_API_BASE`, `XAI_API_BASE`, ...) instead of pointing at OpenAI with an OpenAI model name ([#7350](https://github.com/mem0ai/mem0/pull/7350))
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- **Vector Stores:** Turbopuffer filters now apply every operator (`eq`, `ne`, `gt`, `gte`, `lt`, `lte`, `in`, `nin`). Only the range operators were read before, so `eq`, `ne`, `in`, and `nin` were silently dropped. A `"*"` value now matches anything instead of nothing, an array value is treated as `in`, and an unsupported operator throws ([#6578](https://github.com/mem0ai/mem0/pull/6578))
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- **Vector Stores:** Turbopuffer `search()` with `euclidean_squared` now maps the unbounded squared distance to `1 / (1 + distance)` instead of `1 - distance`, which went negative and inverted ranking for any distance above 1 ([#6580](https://github.com/mem0ai/mem0/pull/6580))
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- **Packaging:** `pg`, `@types/pg`, and `natural` are now optional peer dependencies, and `pg` / `@types/pg` accept caret ranges instead of the exact `8.11.3` / `8.11.0` pins, so installing `mem0ai` no longer pulls in `pg` or conflicts with an app's own `pg` version. The PGVector store now imports `pg` only when it is used, so install it alongside `mem0ai` (`npm install pg`) if you use that store. `@types/jest` moved from peer dependencies to dev dependencies ([#7450](https://github.com/mem0ai/mem0/pull/7450))
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</Update>
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<Update label="2026-09-23" description="v3.3.0">
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**New Features:**
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@@ -1,6 +1,6 @@
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{
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"name": "mem0ai",
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"version": "3.3.0",
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"version": "3.3.1",
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"description": "The Memory Layer For Your AI Apps",
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"main": "./dist/index.js",
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"module": "./dist/index.mjs",
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@@ -2,24 +2,20 @@
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/**
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* Turbopuffer vector store — score conversion unit tests.
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*
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* Drives parseRows() through the public search() API with a virtually-mocked
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* Drives parseRows() through the public search() API with a mocked
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* @turbopuffer/turbopuffer peer, asserting the score returned per metric.
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*/
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const mockQuery = jest.fn();
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jest.mock(
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"@turbopuffer/turbopuffer",
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() => ({
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__esModule: true,
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default: class {
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namespace() {
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return { query: mockQuery };
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}
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},
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}),
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{ virtual: true },
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);
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jest.mock("@turbopuffer/turbopuffer", () => ({
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__esModule: true,
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default: class {
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namespace() {
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return { query: mockQuery };
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}
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},
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}));
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import { TurbopufferDB } from "../src/vector_stores/turbopuffer";
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@@ -3,27 +3,22 @@
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* Turbopuffer vector store — filter translation unit tests.
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*
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* Drives the private convertFilters() through the public search() API with a
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* virtually-mocked @turbopuffer/turbopuffer peer, and asserts the filter tuple
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* handed to ns.query().
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* mocked @turbopuffer/turbopuffer peer, and asserts the filter tuple handed to
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* ns.query().
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*/
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const mockQuery = jest.fn().mockResolvedValue({ rows: [] });
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// The peer is an optional dependency and may not be installed; mock it
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// virtually. createClient() does `new sdk.default({...})`, whose namespace()
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// returns the object search() calls query() on.
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jest.mock(
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"@turbopuffer/turbopuffer",
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() => ({
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__esModule: true,
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default: class {
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namespace() {
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return { query: mockQuery };
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}
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},
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}),
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{ virtual: true },
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);
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// createClient() does `new sdk.default({...})`, whose namespace() returns the
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// object search() calls query() on.
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jest.mock("@turbopuffer/turbopuffer", () => ({
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__esModule: true,
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default: class {
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namespace() {
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return { query: mockQuery };
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}
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},
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}));
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import { TurbopufferDB } from "../src/vector_stores/turbopuffer";
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+1
-1
@@ -4,7 +4,7 @@ build-backend = "hatchling.build"
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[project]
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name = "mem0ai"
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version = "2.2.0"
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version = "2.2.1"
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description = "Long-term memory for AI Agents"
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authors = [
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{ name = "Mem0", email = "support@mem0.ai" }
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