Convert numpy ndarray to matlab mlarray in python

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Gan Lee
Gan Lee el 14 de Abr. de 2022
Comentada: Christopher Wunder el 23 de Ag. de 2022
mlarray to ndarray: np.asarray(x._data, dtype=dtype)
but inversely, ndarray to mlarray: matlab.double(x.tolist()), which is extremely slow, is there a more efficient way to do this? Thank u for answering.

Respuesta aceptada

Al Danial
Al Danial el 28 de Abr. de 2022
Looks like you're making the data load unnecessarily complicated. The file actually loads cleanly into a NumPy array:
from scipy.io import loadmat
data = loadmat('data.mat', squeeze_me=True)
x = data['data']
print(x)
produces
array([[0.00000000e+00, 5.90000000e+01, 5.90000000e+01, 2.25296241e+05],
[1.00000000e+00, 6.20000000e+01, 5.81599120e+01, 5.93159561e+04],
[2.00000000e+00, 1.00000000e+02, 9.47518190e+01, 3.22666379e+04],
...,
[2.04500000e+03, 4.00000000e+00, 4.88991300e+00, 3.01840538e+04],
[2.04600000e+03, 2.00000000e+00, 2.26899200e+00, 6.46032757e+04],
[2.04700000e+03, 1.00000000e+00, 1.00000000e+00, 1.18671912e+05]])
Simplify your function load_mat to
def load_mat(pth_mat, key=None):
data = loadmat(pth_mat, squeeze_me=True)
print(data.keys()) if key is None else None
return data[key]
then call it like this
x1 = load_mat('data.mat', 'data')

Más respuestas (3)

Al Danial
Al Danial el 21 de Abr. de 2022
Which version of MATLAB? 2020a and newer (I don't have easy access to older versions) should just be able to do
>> mx = double(x);
without a conversion to a list.
  2 comentarios
Gan Lee
Gan Lee el 24 de Abr. de 2022
Thanks. Its 2021b , I tried this but not available.
Christopher Wunder
Christopher Wunder el 23 de Ag. de 2022
This is not possible for me either.
The function _is_initializer in matlab._internal.mlarray_utils.py checks for the input to be of type collections.abc.Sequence and a numpy.ndarray fails to be of such a type. The only way (without altering the package) is to convert the array beforehand or pass any kind of Sequence to it instead of an array.

Iniciar sesión para comentar.


Al Danial
Al Danial el 24 de Abr. de 2022
Now I'm curious what is in your variable x. Can you make a small version of this data, write it to a .mat file, then attach the .mat file?

Gan Lee
Gan Lee el 27 de Abr. de 2022
Editada: Gan Lee el 27 de Abr. de 2022
Here is part of my python code:
# -*- coding: utf-8 -*-
import numpy as np
from scipy.io import loadmat
import h5py
import matlab
from matlab import engine
from matlab import mlarray
def load_mat(pth_mat, key=None):
data = loadmat(pth_mat)
print(data.keys()) if key is None else None
return data.get(key)[:].astype(np.double)
def mlarray2ndarray(x: mlarray):
return np.asarray(x._data, dtype=np.double)
def ndarray2mlarray(x: np.ndarray):
return matlab.double(x)
if __name__ == "__main__":
eng = engine.start_matlab()
pth_mat = r".\data.mat"
# np to matlab
x1: np.ndarray = load_mat(pth_mat, key="data")
# mx1: mlarray = ndarray2mlarray(x1) #WRONG
mx1 = matlab.double(x.tolist()) #OK, BUT VERY SLOWLY
# matlab to np
mx2: mlarray = eng.load(pth_mat).get("data")
x2: np.ndarray = mlarray2ndarray(mx2) #OK
# ......
eng.exit()
here is errcode:
ValueError
initializer must be a rectangular nested sequence

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