• Create a new figure or activate an existing figure using figure() method.
  • Add an <">

    Creating a 3D plot in Matplotlib from a 3D numpy array



    To create a 3D plot from a 3D numpy array, we can create a 3D array using numpy and extract the x, y, and z points.

    • Create a new figure or activate an existing figure using figure() method.
    • Add an '~.axes.Axes' to the figure as part of a subplot arrangement using add_subplot() method.
    • Create a random data of size=(3, 3, 3).
    • Extract x, y, and z data from the 3D array.
    • Plot 3D scattered points on the created axis
    • To display the figure, use show() method.

    Example

    import numpy as np
    from matplotlib import pyplot as plt
    plt.rcParams["figure.figsize"] = [7.00, 3.50]
    plt.rcParams["figure.autolayout"] = True
    fig = plt.figure()
    ax = fig.add_subplot(111, projection='3d')
    data = np.random.random(size=(3, 3, 3))
    z, x, y = data.nonzero()
    ax.scatter(x, y, z, c=z, alpha=1)
    plt.show()

    Output

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