SQLAlchemy VS Pandas

Compare SQLAlchemy vs Pandas and see what are their differences.

Pandas

Flexible and powerful data analysis / manipulation library for Python, providing labeled data structures similar to R data.frame objects, statistical functions, and much more (by pandas-dev)
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SQLAlchemy Pandas
123 395
8,807 41,983
3.9% 1.6%
9.7 10.0
about 22 hours ago about 9 hours ago
Python Python
MIT License BSD 3-clause "New" or "Revised" 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.

SQLAlchemy

Posts with mentions or reviews of SQLAlchemy. We have used some of these posts to build our list of alternatives and similar projects. The last one was on 2023-12-18.
  • Xz/liblzma: Bash-stage Obfuscation Explained
    1 project | news.ycombinator.com | 31 Mar 2024
    OK -

    can we start considering binary files committed to a repo, even as data for tests, to be a huge red flag, and that the binary files themselves should instead be generated at testing time by source code that's stated as reviewable cleartext. This would make it much harder (though of course we can never really say "impossible") to embed a substantial payload in this way.

    when binary files are part of a test suite, they are typically trying to illustrate some element of the program being tested, in this case a file that was incorrectly xz-encoded. Binary files like these weren't typed by hand, they will always ultimately come from something plaintext source.

    Here's an example! My own SQLAlchemy repository has a few binary files in it! https://github.com/sqlalchemy/sqlalchemy/blob/main/test/bina... oh noes. Why are those files there? well in this case I just wanted to test that I can send large binary BLOBs into the database driver and I was lazy. This is actually pretty dumb, the two binary files here add 35K of useless crap to the source, and I could just as easily generate this binary data on the fly using a two liner that spits out random bytes. Anyone could see that two liner and know that it isn't embedding a malicious payload.

    If I wanted to generate a poorly formed .xz file, I'd illustrate source code that generates random data, runs it through .xz, then applies "corruption" to it, like zeroing out the high bit of every byte. The process by which this occurs would be all reviewable in source code.

  • Introducing Flama for Robust Machine Learning APIs
    11 projects | dev.to | 18 Dec 2023
    Besides, flama also provides support for SQL databases via SQLAlchemy, an SQL toolkit and Object Relational Mapper that gives application developers the full power and flexibility of SQL. Finally, flama also provides support for HTTP clients to perform requests via httpx, a next generation HTTP client for Python.
  • Alembic with Async SQLAlchemy
    1 project | dev.to | 12 Dec 2023
    Alembic is a lightweight database migration tool for usage with SQLAlchemy. The term migration can be a little misleading, because in this context it doesn't mean to migrate to a different database in the sense of using a different version or a different type of database. In this context, migration refers to changes to the database schema: add a new column to a table, modify the type of an existing column, create a new index, etc..
  • Imperative vs. Declarative mapping style in Domain Driven Design project
    1 project | news.ycombinator.com | 28 Oct 2023
  • Unlocking efficient authZ with Cerbos’ Query Plan
    5 projects | dev.to | 6 Sep 2023
    To simplify this process, Cerbos developers have come up with adapters for popular Object-Relational Mapping (ORM) frameworks. You can check out for more details on the query plan repo - which also contains adapters for Prisma and SQLAlchemy - as well as a fully functioning application using Mongoose as its ORM.
  • Python: Just Write SQL
    21 projects | news.ycombinator.com | 14 Aug 2023
    That above pattern is one I've seen people do even recently, using the "select().c" attribute which from very early versions of SQLAlchemy is defined as "the columns from a subquery of the SELECT" ; this usage began raising deprecation warnings in 1.4 and is fully removed in 2.0 as it was a remnant of a much earlier version of SQLAlchemy. it will do exactly as you say, "make a subquery for each filter condition".

    the moment you see SQLAlchemy doing something you see that seems "asinine", send an example to https://github.com/sqlalchemy/sqlalchemy/discussions and I will clarify what's going on, correct the usage so that the query you have is what you expect, and quite often we will add new warnings or documentation when we see people doing things we didn't anticipate.

  • A steering council note about making the global
    3 projects | news.ycombinator.com | 29 Jul 2023
    The creator and lead maintainer of SQLAlchemy, one of the most popular and most used Python library for accessing databases (who doesn't?) gave a rather interesting response to PEP703.

    If this doesn't ring any alarm bells I don't know what will.

    > Basically for the moment the GIL-less idea would likely be burdensome for us and the fact that it's only an "option" seems to strongly imply major compatibility issues that we would not prefer.

    https://github.com/sqlalchemy/sqlalchemy/discussions/10002#d...

  • More public SQL-queryable databases?
    3 projects | /r/datasets | 10 Jul 2023
    Recently I discovered BigQuery public datasets - just over 200 datasets available for directly querying via SQL. I think this is a great thing! I can connect these direct to an analytics platform (we use Apache Superset which uses Python SQLAlchemy under the hood) for example and just start dashboarding.
  • How useful is Python in accounting and auditing?
    1 project | /r/Accounting | 27 Jun 2023
    When using python with sql databases like postgres or mariadb or SQLite you would use SQLAlchemy or another ORM of if you're feeling brave, you code it by hand. With ORMs you provide the address of your database and it connects for you, letting you use abstractions instead of writing all the SQL yourself (kind of analogous to using vlookups or index match instead of manually entering data).
  • Day 46-47: Beginner FastAPI Series - Part 3
    2 projects | dev.to | 8 Jun 2023
    Our tool we're going to be using for interfacing with the SQLite database is SQLAlchemy, a SQL toolkit that provides a unified API for various relational databases. If you installed FastAPI with pip install "fastapi[all]", SQLAlchemy is already part of your setup. but if you opted for FastAPI alone, you would need to install SQLAlchemy separately with pip install sqlalchemy.

Pandas

Posts with mentions or reviews of Pandas. We have used some of these posts to build our list of alternatives and similar projects. The last one was on 2024-04-28.
  • AWS Serverless Diversity: Multi-Language Strategies for Optimal Solutions
    4 projects | dev.to | 28 Apr 2024
    Python is a natural fit for serverless development. It boasts a vast array of libraries, including Powertools for AWS and robust libraries for data engineers. Its versatility and excellent developer experience make it a top choice for serverless projects, offering a seamless and enjoyable development experience.
  • Pandas reset_index(): How To Reset Indexes in Pandas
    1 project | dev.to | 27 Apr 2024
    In data analysis, managing the structure and layout of data before analyzing them is crucial. Python offers versatile tools to manipulate data, including the often-used Pandas reset_index() method.
  • Deploying a Serverless Dash App with AWS SAM and Lambda
    3 projects | dev.to | 4 Mar 2024
    Dash is a Python framework that enables you to build interactive frontend applications without writing a single line of Javascript. Internally and in projects we like to use it in order to build a quick proof of concept for data driven applications because of the nice integration with Plotly and pandas. For this post, I'm going to assume that you're already familiar with Dash and won't explain that part in detail. Instead, we'll focus on what's necessary to make it run serverless.
  • Help Us Build Our Roadmap – Pydantic
    2 projects | news.ycombinator.com | 19 Feb 2024
    there is pull request to integrate in both pydantic extra types and into pandas cose [1]

    [1]: https://github.com/pandas-dev/pandas/issues/53999

  • Stuff I Learned during Hanukkah of Data 2023
    5 projects | dev.to | 18 Dec 2023
    Last year I worked through the challenges using VisiData, Datasette, and Pandas. I walked through my thought process and solutions in a series of posts.
  • Introducing Flama for Robust Machine Learning APIs
    11 projects | dev.to | 18 Dec 2023
    pandas: A library for data analysis in Python
  • Exploring Open-Source Alternatives to Landing AI for Robust MLOps
    18 projects | dev.to | 13 Dec 2023
    Data analysis involves scrutinizing datasets for class imbalances or protected features and understanding their correlations and representations. A classical tool like pandas would be my obvious choice for most of the analysis, and I would use OpenCV or Scikit-Image for image-related tasks.
  • Mastering Pandas read_csv() with Examples - A Tutorial by Codes With Pankaj
    1 project | dev.to | 9 Dec 2023
    Pandas, a powerful data manipulation library in Python, has become an essential tool for data scientists and analysts. One of its key functions is read_csv(), which allows users to read data from CSV (Comma-Separated Values) files into a Pandas DataFrame. In this tutorial, brought to you by CodesWithPankaj.com, we will explore the intricacies of read_csv() with clear examples to help you harness its full potential.
  • What Would Go in Your Dream Documentation Solution?
    2 projects | /r/technicalwriting | 9 Dec 2023
    So, what I'd like to do is write a documentation package in Python to recreate what I've lost. I plan to build upon the fantastic python-docx and docxtpl packages, and I'll probably rely on pandas from much of the tabular stuff. Here are the features I intend to include:
  • How do people know when to use what programming language?
    1 project | /r/AskProgramming | 6 Dec 2023
    Weirdly most of my time spent with data analysis was in the C layers in pandas.

What are some alternatives?

When comparing SQLAlchemy and Pandas you can also consider the following projects:

tortoise-orm - Familiar asyncio ORM for python, built with relations in mind

Cubes - [NOT MAINTAINED] Light-weight Python OLAP framework for multi-dimensional data analysis

PonyORM - Pony Object Relational Mapper

tensorflow - An Open Source Machine Learning Framework for Everyone

Peewee - a small, expressive orm -- supports postgresql, mysql, sqlite and cockroachdb

orange - 🍊 :bar_chart: :bulb: Orange: Interactive data analysis

Orator - The Orator ORM provides a simple yet beautiful ActiveRecord implementation.

Airflow - Apache Airflow - A platform to programmatically author, schedule, and monitor workflows

prisma-client-py - Prisma Client Python is an auto-generated and fully type-safe database client designed for ease of use

Keras - Deep Learning for humans

pyDAL - A pure Python Database Abstraction Layer

Pytorch - Tensors and Dynamic neural networks in Python with strong GPU acceleration