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nvmeof

nvmeof is a userspace NVMe over Fabrics RDMA initiator for Python. It is a separate package layered on ibverbs because NVMe controller and namespace policy do not belong in low-level verbs bindings.

The data path uses NVMe/RDMA keyed SGL descriptors that point at an existing ibverbs MR. The target transfers blocks directly to or from that MR, including CUDA memory registered by ibverbs.cuda; there is no host staging buffer in the NVMe-to-RDMA-to-GPU path.

Why this does not bundle SPDK

SPDK is a strong choice for a managed native storage service, but it includes an environment abstraction, hugepage/driver setup, native plugins, and a large dependency graph. Embedding it would not produce a self-contained, portable pip/manylinux wheel. This package instead implements the small NVMe/RDMA host protocol directly over the existing portable ibverbs ABI3 extension.

nvmeof itself is a pure-Python py3-none-any wheel. Its ibverbs dependency is an ABI3 manylinux wheel that dlopens the host's libibverbs.so.1 and, only when NVMe/RDMA is used, librdmacm.so.1.

Requirements

  • Linux, an RDMA NIC, and a reachable NVMe/RDMA target.
  • libibverbs.so.1, librdmacm.so.1, and the matching RDMA provider.
  • For GPU I/O: CUDA, an HCA with GPUDirect RDMA, and dma-buf support or the nvidia_peermem module.
  • The target must support keyed SGL data block descriptors. Separate namespace metadata and DH-HMAC-CHAP are not currently supported.

On Debian/Ubuntu the runtime packages are typically:

sudo apt-get install libibverbs1 librdmacm1 ibverbs-providers
pip install nvmeof

Controller options

Controller.connect(host, subsystem_nqn, **options) and the direct Controller(...) constructor accept the same options:

Option Default Meaning
port 4420 Target NVMe/RDMA service port.
host_id random UUID Initiator host identifier. Supply a stable UUID when target policy depends on host identity.
host_nqn derived from host_id Initiator NQN sent in Fabrics Connect.
queue_depth 128 Requested I/O depth from 2 through 256; the controller may negotiate it downward.
keep_alive_ms 0 Keep-alive timeout. Non-zero values are currently unsupported because there is no background command worker.
timeout 30.0 Per-command timeout in seconds.
source None Local initiator IP used to bind RDMA-CM and select the HCA.

Host memory

import nvmeof

with nvmeof.Controller.connect(
    "192.0.2.20",
    "nqn.2026-07.io.example:storage",
    source="192.0.2.21",
) as controller:
    namespace = controller.namespace(1)
    with controller.allocate(128 * 4096) as buffer:
        namespace.read(buffer, slba=0, blocks=128)
        payload = buffer.read()

controller.register(array_or_cpu_tensor) registers an existing contiguous host allocation instead.

Direct GPU memory

import os
os.environ["PYTORCH_CUDA_ALLOC_CONF"] = "expandable_segments:True"

import torch
import nvmeof

tensor = torch.empty(128 * 4096, dtype=torch.uint8, device="cuda:0")

with nvmeof.Controller.connect(
    "192.0.2.20", "nqn.2026-07.io.example:storage"
) as controller:
    namespace = controller.namespace(1)
    with controller.register_gpu(tensor) as gpu_mr:
        # Target NVMe -> target RDMA WRITE -> local GPU memory.
        # Namespace.read flushes completed GPUDirect writes before returning.
        with torch.cuda.device(tensor.device):
            namespace.read(gpu_mr, slba=0, blocks=128)

        # Local GPU memory -> target RDMA READ -> target NVMe.
        # Namespace.write synchronizes the current CUDA context first.
        with torch.cuda.device(tensor.device):
            namespace.write(gpu_mr, slba=1024, blocks=128)
            namespace.flush()

The CUDA context that owns the tensor must be current while issuing GPU I/O. The registered MR must be closed before its controller.

source is optional. Set it to an address on the intended initiator HCA when the host has multiple RDMA NICs. This makes an NVMe -> target NIC -> initiator NIC -> GPU route explicit and prevents route selection from silently choosing an HCA with poor GPU PCIe locality.

Reads and writes larger than the target's MDTS are split into multiple NVMe commands while retaining direct placement in the same registered buffer. The target used for the repository benchmarks advertises a 1 MiB MDTS; 4, 16, and 64 MiB GPU tensors were verified end to end.

Scope

The first implementation provides dynamic controller connection, controller enablement, Identify Controller/Namespace, one I/O queue, synchronous and low-level asynchronous command submission, block read/write splitting, and flush. It deliberately does not claim filesystem semantics, multipath, reconnect, keep-alive, protection information, authentication, or target functionality. KATO is therefore negotiated as zero.

Real-target tests use these environment variables:

Variable Default Meaning
NVME4PY_TARGET unset Target hostname or IP; required to enable integration tests.
NVME4PY_SUBSYSTEM_NQN unset Target subsystem NQN; required to enable integration tests.
NVME4PY_SOURCE unset Optional local initiator IP/HCA binding.
NVME4PY_NSID 1 Namespace ID used by integration tests.
NVME4PY_DESTRUCTIVE unset Must equal 1 to enable the write/read GPU round trip. Use only with a disposable namespace.
NVME4PY_TEST_SLBA 0 Starting LBA overwritten by the destructive test.

Measured multi-QP bandwidth, latency, QP scaling, and PCIe locality results are in BENCHMARKS.md.

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