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catsim-0.9.2


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توضیحات

Computerized Adaptive Testing Simulator
ویژگی مقدار
سیستم عامل -
نام فایل catsim-0.9.2
نام catsim
نسخه کتابخانه 0.9.2
نگهدارنده []
ایمیل نگهدارنده []
نویسنده -
ایمیل نویسنده Douglas De Rizzo Meneghetti <douglasrizzo@gmail.com>
آدرس صفحه اصلی -
آدرس اینترنتی https://pypi.org/project/catsim/
مجوز -
<p align="center"> <img src="sphinx/logo_text.svg?sanitize=true" alt="Logo" /> </p> ------------------------------------------------------------------------ [![Unit tests](https://github.com/douglasrizzo/catsim/actions/workflows/test-on-push.yml/badge.svg)](https://github.com/douglasrizzo/catsim/actions/workflows/test-on-push.yml) [![Test Coverage](https://coveralls.io/repos/github/douglasrizzo/catsim/badge.svg?branch=master)](https://coveralls.io/github/douglasrizzo/catsim?branch=master) [![Latest Version](https://badge.fury.io/py/catsim.svg)](https://badge.fury.io/py/catsim) [![Requirements Status](https://requires.io/github/douglasrizzo/catsim/requirements.svg?branch=master)](https://requires.io/github/douglasrizzo/catsim/requirements/?branch=master) [![Digital Object Identifier](https://zenodo.org/badge/doi/10.5281/zenodo.46420.svg)](http://dx.doi.org/10.5281/zenodo.46420) **catsim** is a Python package for computerized adaptive testing (CAT) simulations. It provides multiple methods for: - [test initialization](https://douglasrizzo.com.br/catsim/initialization.html) (selecting the initial ability of the examinees) - [item selection](https://douglasrizzo.com.br/catsim/selection.html) - [ability estimation](https://douglasrizzo.com.br/catsim/estimation.html) - [test stopping](https://douglasrizzo.com.br/catsim/stopping.html) These methods can either be used in a standalone fashion [\[1\]](https://douglasrizzo.com.br/catsim/introduction.html#autonomous-usage) to power other software or be used with *catsim* to simulate the application of computerized adaptive tests [\[2\]](https://douglasrizzo.com.br/catsim/introduction.html#running-simulations), given a sample of examinees, represented by their ability levels, and an item bank, represented by their parameters according to some [logistic Item Response Theory model](https://douglasrizzo.com.br/catsim/introduction.html#item-response-theory-models). ## What's a CAT Computerized adaptive tests are educational evaluations, usually taken by examinees in a computer or some other digital means, in which the examinee\'s ability is evaluated after the response of each item. The new ability is then used to select a new item, closer to the examinee\'s real ability. This method of test application has several advantages compared to the traditional paper-and-pencil method or even linear tests applied electronically, since high-ability examinees are not required to answer all the easy items in a test, answering only the items that actually give some information regarding his or hers true knowledge of the subject at matter. A similar, but inverse effect happens for those examinees of low ability level. More information is available [in the docs](https://douglasrizzo.com.br/catsim/introduction.html) and over at [Wikipedia](https://en.wikipedia.org/wiki/Computerized_adaptive_testing). ## Installation Install it using `pip install catsim`. ## Basic Usage **NEW:** there is now [a Colab Notebook](https://colab.research.google.com/drive/1dBcpXxHuc9YXv9yGllxlahx585hEmdbn?usp=sharing) teaching the basics of catsim! 1. Have an [item matrix](https://douglasrizzo.com.br/catsim/item_matrix.html); 2. Have a sample of examinee proficiencies, or a number of examinees to be generated; 3. Create an [initializer](https://douglasrizzo.com.br/catsim/initialization.html), an item [selector](https://douglasrizzo.com.br/catsim/selection.html), a ability [estimator](https://douglasrizzo.com.br/catsim/estimation.html) and a [stopping criterion](https://douglasrizzo.com.br/catsim/stopping.html); 4. Pass them to a [simulator](https://douglasrizzo.com.br/catsim/simulation.html) and start the simulation. 5. Access the simulator\'s properties to get specifics of the results; 6. [Plot](https://douglasrizzo.com.br/catsim/plot.html) your results. ```python from catsim.initialization import RandomInitializer from catsim.selection import MaxInfoSelector from catsim.estimation import NumericalSearchEstimator from catsim.stopping import MaxItemStopper from catsim.simulation import Simulator from catsim.cat import generate_item_bank initializer = RandomInitializer() selector = MaxInfoSelector() estimator = NumericalSearchEstimator() stopper = MaxItemStopper(20) Simulator(generate_item_bank(100), 10).simulate(initializer, selector, estimator, stopper) ``` ## Dependencies All dependencies are listed on `setup.py` and should be installed automatically. To run the tests, you\'ll need to install the testing requirements `pip install catsim[testing]`. To generate the documentation, install the necessary dependencies with `pip install catsim[docs]`. To ensure code is valid and formatted before submission, install the necessary development dependencies with `pip install catsim[dev]`. ## Compatibility *catsim* is compatible and tested against Python 3.5, 3.6, 3.7, 3.8 and 3.9. ## Important links - Official source code repo: <https://github.com/douglasrizzo/catsim> - HTML documentation (stable release): <https://douglasrizzo.com.br/catsim> - Issue tracker: <https://github.com/douglasrizzo/catsim/issues> ## Citing catsim You can cite the package using the following bibtex entry: ```bibtex @article{catsim, author = {Meneghetti, Douglas De Rizzo and Aquino Junior, Plinio Thomaz}, title = {Application and simulation of computerized adaptive tests through the package catsim}, year = 2018, month = jul, archiveprefix = {arXiv}, eprint = {1707.03012}, eprinttype = {arxiv}, journal = {arXiv:1707.03012 [stat]}, primaryclass = {stat} } ``` ## If you are looking for IRT item parameter estimation... _catsim_ does not implement item parameter estimation. I have had great joy outsourcing that functionality to the [mirt](https://cran.r-project.org/web//packages/mirt/) R package along the years. However, since many users request packages with item parameter estimation capabilities in the Python ecosystem, here are a few links. While I have not used them personally, specialized packages like these are hard to come by, so I hope these are helpful. - [eribean/girth](https://github.com/eribean/girth) - [eribean/girth_mcmc](https://github.com/eribean/girth_mcmc) - [nd-ball/py-irt](https://github.com/nd-ball/py-irt)


نیازمندی

مقدار نام
- scipy
- numexpr
- matplotlib
- scikit-learn
- json-tricks
- tqdm
- numpy
- mypy
- pylama
- yapf
- black
- isort
- Sphinx
- numpydoc
- sphinx-autodoc-annotation
- sphinx-rtd-theme
- m2r2
- bibtex-pygments-lexer
- matplotlib
- nose
- nose-cov
- sklearn
- flake8
- yapf
- twine
- build


زبان مورد نیاز

مقدار نام
>=3.5 Python


نحوه نصب


نصب پکیج whl catsim-0.9.2:

    pip install catsim-0.9.2.whl


نصب پکیج tar.gz catsim-0.9.2:

    pip install catsim-0.9.2.tar.gz