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Results 1 - 3 of 3 for num_split (0.09 sec)
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tensorflow/c/c_test_util.cc
TF_OperationDescription* desc = TF_NewOperation(graph, "Split", name); TF_AddInput(desc, {zero, 0}); TF_AddInput(desc, {input, 0}); TF_SetAttrInt(desc, "num_split", 3); TF_SetAttrType(desc, "T", TF_INT32); // Set device to CPU since there is no version of split for int32 on GPU // TODO(iga): Convert all these helpers and tests to use floats because
Registered: Tue Nov 05 12:39:12 UTC 2024 - Last Modified: Fri Oct 15 03:16:52 UTC 2021 - 17.8K bytes - Viewed (0) -
src/bufio/scan_test.go
// Create a split function that delivers a little data, then a predictable error. numSplits := 0 const okCount = 7 errorSplit := func(data []byte, atEOF bool) (advance int, token []byte, err error) { if atEOF { panic("didn't get enough data") } if numSplits >= okCount { return 0, nil, testError } numSplits++ return 1, data[0:1], nil } // Read the data.
Registered: Tue Nov 05 11:13:11 UTC 2024 - Last Modified: Fri Sep 22 16:22:42 UTC 2023 - 14.3K bytes - Viewed (0) -
RELEASE.md
`tf.split(value, num_or_size_splits, axis)`. * `tf.sparse_split` now takes arguments in reversed order and with different keywords. In particular we now match NumPy order as `tf.sparse_split(sp_input, num_split, axis)`. NOTE: we have temporarily made `tf.sparse_split` require keyword arguments. * `tf.concat` now takes arguments in reversed order and with different keywords. In particular we
Registered: Tue Nov 05 12:39:12 UTC 2024 - Last Modified: Tue Oct 22 14:33:53 UTC 2024 - 735.3K bytes - Viewed (0)