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Alyka

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Qdrant v0.11: fully scalable vector search engine

github.com
4 points·by Alyka·4 jaar geleden·1 comments

Integration of Qdrant ANN vector database back end with txtai

github.com
2 points·by Alyka·4 jaar geleden·1 comments

Building a Semantic Search System

lukawskikacper.medium.com
4 points·by Alyka·4 jaar geleden·1 comments

Storing Multiple Vectors per Object

blog.qdrant.tech
2 points·by Alyka·4 jaar geleden·1 comments

Batch vector search – multiple vectors

blog.qdrant.tech
6 points·by Alyka·4 jaar geleden·1 comments

ARM architecture for vector search engine

blog.qdrant.tech
3 points·by Alyka·4 jaar geleden·1 comments

Show HN: Number of layers for efficient fine-tuning. Experiments

qdrant.tech
2 points·by Alyka·4 jaar geleden·0 comments

Vector search engine with dynamic cluster scaling capabilities

github.com
2 points·by Alyka·4 jaar geleden·1 comments

Qdrant vector search engine v0.9.0 update went live

github.com
2 points·by Alyka·4 jaar geleden·1 comments

[untitled]

1 points·by Alyka·4 jaar geleden·0 comments

Qdrant: Open-Source Vector Similarity Search Engine

qdrant.tech
2 points·by Alyka·4 jaar geleden·0 comments

Show HN: Finding errors in datasets with Similarity Search

qdrant.tech
3 points·by Alyka·4 jaar geleden·0 comments

Distributed approximate nearest neighbours with Qdrant

youtube.com
1 points·by Alyka·4 jaar geleden·1 comments

How to detect anomalies in coffee been industry by similarity learning

qdrant.tech
1 points·by Alyka·4 jaar geleden·2 comments

Open-Source Spotlight about Qdrant vector search engine

youtube.com
1 points·by Alyka·4 jaar geleden·4 comments

Show HN: Search Engine with On-Disk Payload Storage Reduces RAM Usage

github.com
3 points·by Alyka·4 jaar geleden·0 comments

New Vector Podcast Episode: Search Embeddings and Mighty

youtube.com
1 points·by Alyka·4 jaar geleden·0 comments

V0.8.0 Qdrant vector search engine went live

github.com
2 points·by Alyka·4 jaar geleden·1 comments

How to implement a visual search in no time

lukawskikacper.medium.com
2 points·by Alyka·4 jaar geleden·1 comments

Metric Learning for Anomaly Detection

qdrant.tech
2 points·by Alyka·4 jaar geleden·1 comments

comments

Alyka
·4 jaar geleden·discuss
A new release of Qdrant vector search engine went live! Version 0.11 brings the replication, making Qdrant fully scalable! There is a new administration API and exact search support, but also some more improvements. 0.11 is backwards compatible with 0.10.5 storage in single-node deployment!
Alyka
·4 jaar geleden·discuss
ahh... lucky Australia))
Alyka
·4 jaar geleden·discuss
Finally! I wish other domains do the same
Alyka
·4 jaar geleden·discuss
Qdrant has implemented https://github.com/qdrant/qdrant-txtai, a library making it easy to combine both tools together
Alyka
·4 jaar geleden·discuss
There are still other options available :) For example, Qdrant vector search engine. It's written in Rust, and it's not about crypto. And currently they are hiring Rust developer. Check job openings in LinkedIn
Alyka
·4 jaar geleden·discuss
A case study on how to simply create a search system with txtai, Qdrant and pretrained language models. The cool thing about the semantic search is that none of the words used in a query has to be used in any document in our dataset, as the model is already capable of capturing synonyms. This is a huge advantage over conventional search algorithms like BM25.
Alyka
·4 jaar geleden·discuss
Scary tendency. Was interesting to read
Alyka
·4 jaar geleden·discuss
Qdrant 0.10 is the first version supporting storing multiple vectors per object. Kacper Łukawski shared how to set it up.
Alyka
·4 jaar geleden·discuss
Because, solo traveling is a pretty good experience when you don't need to wait for smb if you want to travel (totally agree with it btw). And disaster is not about solo traveling.
Alyka
·4 jaar geleden·discuss
The topic is interesting. But there way too many books and articles about it
Alyka
·4 jaar geleden·discuss
I'd say that title is completely opposite to the article. But it was interesting to read)
Alyka
·4 jaar geleden·discuss
The latest release of Qdrant 0.10.0 has introduced a lot of functionalities that simplify some common tasks. Those new possibilities come with some slightly modified interfaces of the client library. One of the recently introduced features is the possibility to query the collection with multiple vectors at once — a batch search mechanism.
Alyka
·4 jaar geleden·discuss
Qdrant 0.10 supports ARM architecture out of the box! If you use Apple M1 or were wondering about using ARM processors in the cloud, you no longer need to emulate an x86 Docker image.
Alyka
·4 jaar geleden·discuss
Qdrant has released the new version vector similarity search engine - v.0.9.0. It features the dynamic cluster scaling capabilities. Now Qdrant is more flexible with cluster deployment, allowing to move shards between nodes and remove nodes from the cluster.
Alyka
·4 jaar geleden·discuss
Qdrant has released the new version vector similarity search engine - v.0.9.0. It features the dynamic cluster scaling capabilities. Now Qdrant is more flexible with cluster deployment, allowing to move shards between nodes and remove nodes from the cluster.
Alyka
·4 jaar geleden·discuss
Andrey Vasnetsov, CTO at #Qdrant will speak about #VectorSearch and applications at #LearnNLP academy. 5.08.2022, at 15.00 CEST
Alyka
·4 jaar geleden·discuss
Qdrant 0.8.x has introduced an experiment distributed mode. This tutorial covers the basics of running the Qdrant cluster with docker-compose.
Alyka
·4 jaar geleden·discuss
But what is the point using another tag manager? All this advantages are true, but you can have them with google tag manager
Alyka
·4 jaar geleden·discuss
Qdrant has an integration with them. Qdrant vector search engine powers Jina's DocArray library storage https://qdrant.tech/blog/qdrant_and_jina_integration/
Alyka
·4 jaar geleden·discuss
A case study about applying similarity learning approach for anomaly detection for Agrivero.ai - is a company making AI-enabled solution for quality control & traceability of green coffee for producers, traders, and roasters. The result was reached by using only 0.66% of the labeled data with metric learning compared to supervised classification method.