Laurawly commented on a change in pull request #6580:
URL: https://github.com/apache/incubator-tvm/pull/6580#discussion_r498607086



##########
File path: python/tvm/topi/cuda/sparse.py
##########
@@ -97,3 +94,287 @@ def _callback(op):
 
     traverse_inline(s, outs[0].op, _callback)
     return s
+
+
+def schedule_cuda_transpose(s, out):
+    """Schedule for transpose on the gpu.
+
+    Roughly follows this:
+    https://developer.nvidia.com/blog/efficient-matrix-transpose-cuda-cc/, but
+    without the padding for shared memory. For better performance, we could
+    rewrite it in tir to add the padding.
+    """
+
+    def _callback(op):
+        # pylint: disable=invalid-name
+        m, n = s[op].op.axis
+        warp_size = 
int(tvm.target.Target.current(allow_none=False).thread_warp_size)

Review comment:
       Did you compare the performance with one warp and multiple warps?




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