Computes the sum along sparse segments of a tensor.
tf.raw_ops.SparseSegmentSum( data, indices, segment_ids, name=None )
Read the section on segmentation for an explanation of segments.
Like SegmentSum
, but segment_ids
can have rank less than data
's first dimension, selecting a subset of dimension 0, specified by indices
.
c = tf.constant([[1,2,3,4], [-1,-2,-3,-4], [5,6,7,8]]) # Select two rows, one segment. tf.sparse_segment_sum(c, tf.constant([0, 1]), tf.constant([0, 0])) # => [[0 0 0 0]] # Select two rows, two segment. tf.sparse_segment_sum(c, tf.constant([0, 1]), tf.constant([0, 1])) # => [[ 1 2 3 4] # [-1 -2 -3 -4]] # Select all rows, two segments. tf.sparse_segment_sum(c, tf.constant([0, 1, 2]), tf.constant([0, 0, 1])) # => [[0 0 0 0] # [5 6 7 8]] # Which is equivalent to: tf.segment_sum(c, tf.constant([0, 0, 1]))
Args | |
---|---|
data | A Tensor . Must be one of the following types: float32 , float64 , int32 , uint8 , int16 , int8 , int64 , bfloat16 , uint16 , half , uint32 , uint64 . |
indices | A Tensor . Must be one of the following types: int32 , int64 . A 1-D tensor. Has same rank as segment_ids . |
segment_ids | A Tensor . Must be one of the following types: int32 , int64 . A 1-D tensor. Values should be sorted and can be repeated. |
name | A name for the operation (optional). |
Returns | |
---|---|
A Tensor . Has the same type as data . |
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Licensed under the Creative Commons Attribution License 3.0.
Code samples licensed under the Apache 2.0 License.
https://www.tensorflow.org/versions/r2.3/api_docs/python/tf/raw_ops/SparseSegmentSum