Standardize the sample format to CSR sparse tensor.#200
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liruilong940607 wants to merge 19 commits intomasterfrom
Open
Standardize the sample format to CSR sparse tensor.#200liruilong940607 wants to merge 19 commits intomasterfrom
liruilong940607 wants to merge 19 commits intomasterfrom
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* Fixed traversal with far_plane * test added for traversal with near and far planes * More correct test * black formatting for test
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I recently realize that the current way of using the
packed_infoto represent sparse samples along rays, is very similar to the standard CSR sparse matrix formula, but not entirely the same. And various toolboxes either already or on the way to support this formula with operations, including:So it would be great to switch to the standard CSR formula in this repo as well, to benefit from the existing and future supports in the PyTorch community.
For example, the conversion between
packed_infoandray_indiceswere required some CUDA programming, but with CSR formula it is already supported bytorch_scatter.segment_csrandtorch_scatter.gather_csr.Also, hopefully it will be less difficult for users to get hands on using this repo, when it comes to understanding how batched data is packed. Following the CSR standard there would be tones of tutorial / docs users can refer to, and for users that are already familiar with CSR sparse matrix there will be zero learning curve.
However, this would inevitably leads to some API changes, which we want to minimize as we go.
This PR is to start a trial on the migration and see how it goes.