Update README.md
Signed-off-by: David Rotermund <54365609+davrot@users.noreply.github.com>
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@ -84,3 +84,141 @@ A (2d array): 2 x 1
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B (3d array): 8 x 4 x 3 # second from last dimensions mismatched
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B (3d array): 8 x 4 x 3 # second from last dimensions mismatched
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```
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```
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## at least
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{: .topic-optional}
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This is an optional topic!
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### [numpy.atleast_1d](https://numpy.org/doc/stable/reference/generated/numpy.atleast_1d.html)
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```python
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numpy.atleast_1d(*arys)
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```
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> Convert inputs to arrays with at least one dimension.
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>
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> Scalar inputs are converted to 1-dimensional arrays, whilst higher-dimensional inputs are preserved.
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### [numpy.atleast_2d](https://numpy.org/doc/stable/reference/generated/numpy.atleast_2d.html)
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```python
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numpy.atleast_2d(*arys)
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```
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> View inputs as arrays with at least two dimensions.
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### [numpy.atleast_3d](https://numpy.org/doc/stable/reference/generated/numpy.atleast_3d.html)
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```python
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numpy.atleast_3d(*arys)
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```
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> View inputs as arrays with at least three dimensions.
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### Example
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```python
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import numpy as np
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a = np.atleast_1d(5)
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print(a.shape) # -> (1,)
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a = np.atleast_1d(a)
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print(a.shape) # -> (1,)
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a = np.atleast_2d(a)
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print(a.shape) # -> (1, 1)
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a = np.atleast_2d(a)
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print(a.shape) # -> (1, 1)
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a = np.atleast_3d(a)
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print(a.shape) # -> (1, 1, 1)
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a = np.atleast_3d(a)
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print(a.shape) # -> (1, 1, 1)
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a = np.atleast_1d(np.zeros((2)))
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print(a.shape) # -> (2,)
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a = np.atleast_2d(a)
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print(a.shape) # -> (1, 2)
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a = np.atleast_3d(a)
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print(a.shape) # -> (1, 2, 1)
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a = np.atleast_1d(np.zeros((2, 3)))
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print(a.shape) # -> (2, 3)
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a = np.atleast_2d(a)
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print(a.shape) # -> (2, 3)
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a = np.atleast_3d(a)
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print(a.shape) # -> (2, 3, 1)
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```
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## Manual broadcast : [numpy.broadcast_to](https://numpy.org/doc/stable/reference/generated/numpy.broadcast_to.html)
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{: .topic-optional}
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This is an optional topic!
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```python
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numpy.broadcast_to(array, shape, subok=False)
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```
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> Broadcast an array to a new shape.
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```python
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import numpy as np
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a = np.arange(0, 3)
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print(a) # -> [0 1 2]
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print(a.shape) # -> (3,)
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b = np.broadcast_to(a, (3,3))
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print(b)
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print(b.shape) # -> (3,3)
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```
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Output:
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```python
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[[0 1 2]
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[0 1 2]
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[0 1 2]]
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```
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## Manual broadcast : [numpy.broadcast_arrays](https://numpy.org/doc/stable/reference/generated/numpy.broadcast_arrays.html)
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{: .topic-optional}
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This is an optional topic!
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```python
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numpy.broadcast_arrays(*args, subok=False)
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```
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> Broadcast any number of arrays against each other.
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```python
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import numpy as np
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a = np.arange(0, 3).reshape(3, 1)
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b = np.arange(0, 5).reshape(1, 5)
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print(a.shape) # -> (3, 1)
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print(b.shape) # -> (1, 5)
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c, d = np.broadcast_arrays(a, b)
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print(c.shape) # -> (3, 5)
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print(d.shape) # -> (3, 5)
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print(c)
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print()
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print(d)
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```
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Output:
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```python
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[[0 0 0 0 0]
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[1 1 1 1 1]
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[2 2 2 2 2]]
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[[0 1 2 3 4]
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[0 1 2 3 4]
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[0 1 2 3 4]]
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```
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