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Data Science

Data science is an inter-disciplinary field that uses scientific methods, processes, algorithms, and systems to extract knowledge from structured and unstructured data. Data scientists perform data analysis and preparation, and their findings inform high-level decisions in many organizations.

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adrinjalali
adrinjalali commented Nov 8, 2021

These examples take quite a long time to run, and they make our documentation CI fail quite frequently due to timeout. It'd be nice to speed the up a little bit.

To contributors: if you want to work on an example, first have a look at the example, and if you think you're comfortable working on it and have found a potential way to speed-up execution time while preserving the educational message

superset
cccs-Dustin
cccs-Dustin commented Jan 13, 2022

When using the Superset cli, the import-datasources command using the "-s"/"--sync" flag does not work as intended. It seems as though the command runs as if the flag is not present.

How to reproduce the bug

  1. Add an existing yaml file to superset by using the Superset cli
    superset import-datasources -p ~/datasets/data.yaml
  2. Once the yaml file has been added, try using the comm

Data science Python notebooks: Deep learning (TensorFlow, Theano, Caffe, Keras), scikit-learn, Kaggle, big data (Spark, Hadoop MapReduce, HDFS), matplotlib, pandas, NumPy, SciPy, Python essentials, AWS, and various command lines.

  • Updated Nov 4, 2021
  • Python
matthewdeng
matthewdeng commented Jan 6, 2022

Problem: Currently JsonLoggerCallback.handle_result will load in the entirety of the existing results, append the new result, and then rewrite the entire file. This may not scale when running long-running jobs or jobs with large results.

https://github.com/ray-project/ray/blob/4e8f90aca20aa7bb87a4e84039889444824382ca/python/ray/train/callbacks/logging.py#L138-L142

Potential Fix:

pytorch-lightning
dash
tirkarthi
tirkarthi commented Jan 12, 2022

Python 3.10 added suggestions for AttributeError and NameError in the error messages. It seems the suggestions are not stored in the exception object but calculated when Error is displayed. There is a note that that this won't work with IPython but it will be good to see if it's feasible. Opening an issue for discussion.

https://bugs.python.org/issue38530
https://docs.python.org/3/whatsnew/3.

jklymak
jklymak commented Jan 4, 2022

Bug summary

imshow extents cannot be expressed with units.

Code for reproduction

fig, ax = plt.subplots()
dates = np.arange("2020-01-01","2020-01-10 23:00", dtype='datetime64[h]')
ys = np.random.random(dates.size)
arr = np.random.random((10, 10))

ax.imshow(arr, extent=[dates[0], dates[1], 0, 10])

Actual outcome

Traceback (most recent call last):
  File "
gensim
nni
danieldeutsch
danieldeutsch commented Jun 2, 2021

Is your feature request related to a problem? Please describe.
I typically used compressed datasets (e.g. gzipped) to save disk space. This works fine with AllenNLP during training because I can write my dataset reader to load the compressed data. However, the predict command opens the file and reads lines for the Predictor. This fails when it tries to load data from my compressed files.