minimal-pandas-api-for-polars VS Datamancer

Compare minimal-pandas-api-for-polars vs Datamancer and see what are their differences.

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minimal-pandas-api-for-polars Datamancer
1 7
7 124
- 2.4%
3.2 8.7
over 2 years ago 2 months ago
Python Nim
- MIT License
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minimal-pandas-api-for-polars

Posts with mentions or reviews of minimal-pandas-api-for-polars. We have used some of these posts to build our list of alternatives and similar projects. The last one was on 2021-12-16.
  • Polars: Lightning-fast DataFrame library for Rust and Python
    13 projects | news.ycombinator.com | 16 Dec 2021
    https://github.com/austospumanto/minimal-pandas-api-for-pola...

    pip install minimal-pandas-api-for-polars

    I wrote a library that wraps polars DataFrame and Series objects to allow you to use them with the same syntax as with pandas DataFrame and Series objects. The goal is not to be a replacement for polars' objects and syntax, but rather to (1) Allow you to provide (wrapped) polars objects as arguments to existing functions in your codebase that expect pandas objects and (2) Allow you to continue writing code (especially EDA in notebooks) using the pandas syntax you know and (maybe) love while you're still learning the polars syntax, but with the underlying objects being all-polars. All methods of polars' objects are still available, allowing you to interweave pandas syntax and polars syntax when working with MppFrame and MppSeries objects.

    Furthermore, the goal should always be to transition away from this library over time, as the LazyFrame optimizations offered by polars can never be fully taken advantage of when using pandas-based syntax (as far as I can tell). In the meantime, the code in this library has allowed me to transition my company's pandas-centric code to polars-centric code more quickly, which has led to significant speedups and memory savings even without being able to take full advantage of polars' lazy evaluation. To be clear, these gains have been observed both when working in notebooks in development and when deployed in production API backends / data pipelines.

    I'm personally just adding methods to the MppFrame and MppSeries objects whenever I try to use pandas syntax and get AttributeErrors.

Datamancer

Posts with mentions or reviews of Datamancer. We have used some of these posts to build our list of alternatives and similar projects. The last one was on 2022-05-24.
  • Anyone attempted to make Nim serve R's role? How is it currently?
    3 projects | /r/nim | 24 May 2022
    I have been using Nim for all of my recent data munging and analysis. There's https://github.com/Vindaar/ggplotnim for plots (among others) and everything else has just been normal code. There's also https://github.com/SciNim/Datamancer if you need something more like tidyverse.
  • Nim Version 1.6.6 Released
    9 projects | news.ycombinator.com | 5 May 2022
  • Is Nim right for me?
    6 projects | /r/nim | 7 Mar 2022
    Check out Datamancer for your Pandas equivalent. If I recall correctly it does have the ability to read/write csv. If that doesn't suite you, there is a Python/Nim bridge called Nimpy. I do a lot of machine learning projects and have to use OpenCV and some other things from python because it doesn't exist yet. It's a pretty damn cool library.
  • daily report for Nim language
    2 projects | dev.to | 16 Jan 2022
    worked on the roadmap https://github.com/nim-lang/Nim/pull/19388 (enable -d:nimPreviewFloatRoundtrip and -d:nimPreviewDotLikeOps) and found that an important_packages (datamancer) failed. So I made a PR (https://github.com/SciNim/Datamancer/pull/23). It is not a bug of nimPreviewFloatRoundtrip(It seems like a precision problem to me) so alternatively datamancer can be disabled transiently.
  • Which dataframe library to use?
    2 projects | /r/nim | 21 Dec 2021
    There seems to be two major ones for Nim, NimData and Datamancer. Which one is better?
  • Polars: Lightning-fast DataFrame library for Rust and Python
    13 projects | news.ycombinator.com | 16 Dec 2021

What are some alternatives?

When comparing minimal-pandas-api-for-polars and Datamancer you can also consider the following projects:

vaex - Out-of-Core hybrid Apache Arrow/NumPy DataFrame for Python, ML, visualization and exploration of big tabular data at a billion rows per second 🚀

nimpy - Nim - Python bridge

dataframe-api - RFC document, tooling and other content related to the dataframe API standard

dtplyr - Data table backend for dplyr

polars - Dataframes powered by a multithreaded, vectorized query engine, written in Rust

nimskull - An in development statically typed systems programming language; with sustainability at its core. We, the community of users, maintain it.

Nim - Nim is a statically typed compiled systems programming language. It combines successful concepts from mature languages like Python, Ada and Modula. Its design focuses on efficiency, expressiveness, and elegance (in that order of priority).

db-benchmark - reproducible benchmark of database-like ops

ggplotnim - A port of ggplot2 for Nim

dataiter - Python classes for data manipulation

NimData - DataFrame API written in Nim, enabling fast out-of-core data processing