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Co-authored-by: j143 <53068787+j143@users.noreply.github.com>
Co-authored-by: j143 <53068787+j143@users.noreply.github.com>
Co-authored-by: j143 <53068787+j143@users.noreply.github.com>
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[WIP] Add operators support for ML algorithm capabilities
Add OOCMatrix API for out-of-core operations with NumPy/SciPy backend orchestration
Oct 28, 2025
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Provides high-level API for out-of-core matrix operations that wraps existing NumPy/SciPy operations rather than reimplementing mathematical kernels. Focuses on orchestration: lazy evaluation, block-wise processing, buffer management, and streaming.
New API
OOCMatrix- NumPy-like wrapper for out-of-core operations:blockwise_apply(),blockwise_reduce(),iterate_blocks()matmul()with custom operation support, lazy operators (+,*,@)sum(),mean(),std(),min(),max()computed block-wisePlaninfrastructure for lazy evaluation and operator fusionExample
Implementation
paper/operators.py: OOCMatrix class (380 lines)tests/test_operators.py: 16 tests covering API surfaceexamples_oocmatrix.py: 6 examples demonstrating usage patternsOPERATORS.md: API reference and design rationaleREADME.md: Quick start guideAll mathematical operations delegate to NumPy/SciPy. Framework handles block orchestration, lazy DAG building, buffer management, and scheduling only.
Original prompt
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