PSI VS ann-benchmarks

Compare PSI vs ann-benchmarks and see what are their differences.

PSI

Private Set Intersection Cardinality protocol based on ECDH and Bloom Filters (by OpenMined)

ann-benchmarks

Benchmarks of approximate nearest neighbor libraries in Python (by erikbern)
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PSI ann-benchmarks
3 51
125 4,604
0.0% -
5.2 7.7
26 days ago 9 days ago
C++ Python
Apache License 2.0 MIT License
The number of mentions indicates the total number of mentions that we've tracked plus the number of user suggested alternatives.
Stars - the number of stars that a project has on GitHub. Growth - month over month growth in stars.
Activity is a relative number indicating how actively a project is being developed. Recent commits have higher weight than older ones.
For example, an activity of 9.0 indicates that a project is amongst the top 10% of the most actively developed projects that we are tracking.

PSI

Posts with mentions or reviews of PSI. We have used some of these posts to build our list of alternatives and similar projects. The last one was on 2022-07-21.
  • Can a new form of cryptography solve the internet’s privacy problem?
    1 project | news.ycombinator.com | 30 Oct 2022
    There are other techniques that aren't generally included in the "Zero Knowledge Proofs" set of techniques that are perhaps more practical for general development.

    For example, I fine private set intersection[1] as implemented by OpenMined a really useful primative a bunch of privacy enhancing applications can be built on top of.

    My colleagues and I recently published a pre-print[2] showing how to use this for sharing locations you and another person have had in common, without being able to see other locations. The paper talks about a social network built around this but I also think there are useful applications in things like real-world games (scavenger hunts etc)

    [1] https://github.com/OpenMined/PSI/blob/master/private_set_int...

    [2] https://arxiv.org/abs/2210.01927

  • Ask HN: What are some 'cool' but obscure data structures you know about?
    54 projects | news.ycombinator.com | 21 Jul 2022
    I came here to say Golomb compressed sets except now I see it's part of the question!

    They are used by default in the OpenMined implementation of Private Set Intersection[1] - a multi-party computation technique.

    [1] https://github.com/OpenMined/PSI/blob/master/private_set_int...

  • Is there a Private Set Intersection protocol where the server learns the length of the intersection?
    1 project | /r/crypto | 3 Sep 2021
    I was using OpenMinded/PSI exploring some PSI implementations, but I would like a way for the server to know the intersection size. Say Signal wants to calculate the average number of users from one person's address book (or whatever).

ann-benchmarks

Posts with mentions or reviews of ann-benchmarks. We have used some of these posts to build our list of alternatives and similar projects. The last one was on 2023-10-30.
  • Using Your Vector Database as a JSON (Or Relational) Datastore
    1 project | news.ycombinator.com | 23 Apr 2024
    On top of my head, pgvector only supports 2 indexes, those are running in memory only. They don't support GPU indexing, nor Disk based indexing, they also don't have separation of query and insertions.

    Also with different people I've talked to, they struggle with scale past 100K-1M vector.

    You can also have a look yourself from a performance perspective: https://ann-benchmarks.com/

  • ANN Benchmarks
    1 project | news.ycombinator.com | 25 Jan 2024
  • Approximate Nearest Neighbors Oh Yeah
    5 projects | news.ycombinator.com | 30 Oct 2023
    https://ann-benchmarks.com/ is a good resource covering those libraries and much more.
  • pgvector vs Pinecone: cost and performance
    1 project | dev.to | 23 Oct 2023
    We utilized the ANN Benchmarks methodology, a standard for benchmarking vector databases. Our tests used the dbpedia dataset of 1,000,000 OpenAI embeddings (1536 dimensions) and inner product distance metric for both Pinecone and pgvector.
  • Vector database is not a separate database category
    3 projects | news.ycombinator.com | 2 Oct 2023
    Data warehouses are columnar stores. They are very different from row-oriented databases - like Postgres, MySQL. Operations on columns - e.g., aggregations (mean of a column) are very efficient.

    Most vector databases use one of a few different vector indexing libraries - FAISS, hnswlib, and scann (google only) are popular. The newer vector dbs, like weaviate, have introduced their own indexes, but i haven't seen any performance difference -

    Reference: https://ann-benchmarks.com/

  • How We Made PostgreSQL a Better Vector Database
    2 projects | news.ycombinator.com | 25 Sep 2023
    (Blog author here). Thanks for the question. In this case the index for both DiskANN and pgvector HNSW is small enough to fit in memory on the machine (8GB RAM), so there's no need to touch the SSD. We plan to test on a config where the index size is larger than memory (we couldn't this time due to limitations in ANN benchmarks [0], the tool we use).

    To your question about RAM usage, we provide a graph of index size. When enabling PQ, our new index is 10x smaller than pgvector HNSW. We don't have numbers for HNSWPQ in FAISS yet.

    [0]: https://github.com/erikbern/ann-benchmarks/

  • Do we think about vector dbs wrong?
    7 projects | news.ycombinator.com | 5 Sep 2023
  • Vector Search with OpenAI Embeddings: Lucene Is All You Need
    2 projects | news.ycombinator.com | 3 Sep 2023
    In terms of "All You Need" for Vector Search, ANN Benchmarks (https://ann-benchmarks.com/) is a good site to review when deciding what you need. As with anything complex, there often isn't a universal solution.

    txtai (https://github.com/neuml/txtai) can build indexes with Faiss, Hnswlib and Annoy. All 3 libraries have been around at least 4 years and are mature. txtai also supports storing metadata in SQLite, DuckDB and the next release will support any JSON-capable database supported by SQLAlchemy (Postgres, MariaDB/MySQL, etc).

  • Vector databases: analyzing the trade-offs
    5 projects | news.ycombinator.com | 20 Aug 2023
    pg_vector doesn't perform well compared to other methods, at least according to ANN-Benchmarks (https://ann-benchmarks.com/).

    txtai is more than just a vector database. It also has a built-in graph component for topic modeling that utilizes the vector index to autogenerate relationships. It can store metadata in SQLite/DuckDB with support for other databases coming. It has support for running LLM prompts right with the data, similar to a stored procedure, through workflows. And it has built-in support for vectorizing data into vectors.

    For vector databases that simply store vectors, I agree that it's nothing more than just a different index type.

  • Vector Dataset benchmark with 1536/768 dim data
    3 projects | news.ycombinator.com | 14 Aug 2023
    The reason https://ann-benchmarks.com is so good, is that we can see a plot of recall vs latency. I can see you have some latency numbers in the leaderboard at the bottom, but it's very difficult to make a decision.

    As a practitioner that works with vector databases every day, just latency is meaningless to me, because I need to know if it's fast AND accurate, and what the tradeoff is! You can't have it both ways. So it would be helpful if you showed plots showing this tradeoff, similar to ann-benchmarks.

What are some alternatives?

When comparing PSI and ann-benchmarks you can also consider the following projects:

ctrie-java - Java implementation of a concurrent trie

pgvector - Open-source vector similarity search for Postgres

AspNetCoreDiagnosticScenarios - This repository has examples of broken patterns in ASP.NET Core applications

faiss - A library for efficient similarity search and clustering of dense vectors.

t-digest - A new data structure for accurate on-line accumulation of rank-based statistics such as quantiles and trimmed means

Milvus - A cloud-native vector database, storage for next generation AI applications

cheerp-meta - Cheerp - a C/C++ compiler for Web applications - compiles to WebAssembly and JavaScript

tlsh

swift - the multiparty transport protocol (aka "TCP with swarming" or "BitTorrent at the transport layer")

vald - Vald. A Highly Scalable Distributed Vector Search Engine

pvfmm - A parallel kernel-independent FMM library for particle and volume potentials

pgANN - Fast Approximate Nearest Neighbor (ANN) searches with a PostgreSQL database.