tf.cumsum
tf.cumsum(
x,
axis=0,
exclusive=False,
reverse=False,
name=None
)
Defined in tensorflow/python/ops/math_ops.py.
See the guide: Math > Scan
Compute the cumulative sum of the tensor x along axis.
By default, this op performs an inclusive cumsum, which means that the first element of the input is identical to the first element of the output:
tf.cumsum([a, b, c]) # [a, a + b, a + b + c]
By setting the exclusive kwarg to True, an exclusive cumsum is performed instead:
tf.cumsum([a, b, c], exclusive=True) # [0, a, a + b]
By setting the reverse kwarg to True, the cumsum is performed in the opposite direction:
tf.cumsum([a, b, c], reverse=True) # [a + b + c, b + c, c]
This is more efficient than using separate tf.reverse ops.
The reverse and exclusive kwargs can also be combined:
tf.cumsum([a, b, c], exclusive=True, reverse=True) # [b + c, c, 0]
Args:
x: ATensor. Must be one of the following types:float32,float64,int64,int32,uint8,uint16,int16,int8,complex64,complex128,qint8,quint8,qint32,half.axis: ATensorof typeint32(default: 0). Must be in the range[-rank(x), rank(x)).exclusive: IfTrue, perform exclusive cumsum.reverse: Abool(default: False).name: A name for the operation (optional).
Returns:
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