ggml-vulkan: chunk host-memory imports + bound-check pinned reads
The mmap region kept in system RAM for -ncmoe can be tens of GB, larger than device->max_buffer_size (~4 GiB), so importing it as a single Vulkan buffer failed and pinning silently no-op'd. Import in page-aligned chunks up to max_buffer_size, registering each in device->pinned_memory. Add a bound check in the pinned copy path so a tensor that straddles a chunk boundary falls back to staging instead of reading out of bounds. Assisted-by: opencode
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@@ -3173,7 +3173,7 @@ static vk_buffer ggml_vk_create_buffer(vk_device& device, size_t size, const std
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import_info.setPNext(&mem_flags_info);
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buf->device_memory = device->device.allocateMemory({ size, memory_type_idx, &import_info });
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} catch (const vk::SystemError& e) {
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fprintf(stderr, "PROBE import allocateMemory threw: %s\n", e.what());
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GGML_LOG_WARN("ggml_vulkan: host pointer memory import failed (%s)\n", e.what());
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}
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} else {
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for (auto it = req_flags_list.begin(); it != req_flags_list.end(); it++) {
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@@ -7857,25 +7857,32 @@ static bool ggml_vk_buffer_write_2d_async(vk_context subctx, vk_buffer& dst, siz
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ggml_vk_host_get(dst->device, src, buf, buf_offset);
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if (buf != nullptr) {
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// Memory is pinned, use as staging buffer
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std::vector<vk::BufferCopy> slices(1);
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if (width == spitch && width == dpitch) {
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// Only do single write if stride is equal
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slices[0].srcOffset = buf_offset;
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slices[0].dstOffset = offset;
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slices[0].size = width * height;
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} else {
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slices.resize(height);
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for (size_t i = 0; i < height; i++) {
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slices[i].srcOffset = buf_offset + i * spitch;
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slices[i].dstOffset = offset + i * dpitch;
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slices[i].size = width;
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// extent of the read in pinned source memory; guard against tensors that
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// straddle a pinned-chunk boundary (they fall back to staging below)
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size_t src_extent = (width == spitch) ? (size_t) width * height
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: (height > 0 ? (height - 1) * spitch + width : 0);
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if (buf_offset + src_extent <= buf->size) {
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// Memory is pinned, use as staging buffer
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std::vector<vk::BufferCopy> slices(1);
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if (width == spitch && width == dpitch) {
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// Only do single write if stride is equal
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slices[0].srcOffset = buf_offset;
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slices[0].dstOffset = offset;
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slices[0].size = width * height;
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} else {
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slices.resize(height);
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for (size_t i = 0; i < height; i++) {
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slices[i].srcOffset = buf_offset + i * spitch;
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slices[i].dstOffset = offset + i * dpitch;
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slices[i].size = width;
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}
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}
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}
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ggml_vk_sync_buffers(nullptr, subctx);
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subctx->s->buffer->buf.copyBuffer(buf->buffer, dst->buffer, slices);
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return true;
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ggml_vk_sync_buffers(nullptr, subctx);
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subctx->s->buffer->buf.copyBuffer(buf->buffer, dst->buffer, slices);
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return true;
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}
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// straddles a chunk boundary: fall through to staging
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}
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VK_LOG_DEBUG("STAGING");
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@@ -17813,17 +17820,14 @@ static void ggml_backend_vk_device_event_synchronize(ggml_backend_dev_t dev, ggm
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static vk_buffer ggml_vk_buffer_from_host_ptr(vk_device & device, void * ptr, size_t size) {
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if (!device->external_memory_host) {
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fprintf(stderr, "PROBE from_host_ptr: ext_mem_host disabled\n");
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return {};
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}
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uintptr_t uptr = reinterpret_cast<uintptr_t>(ptr);
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if (uptr & (device->min_imported_host_pointer_alignment - 1)) {
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fprintf(stderr, "PROBE from_host_ptr: ptr %p not aligned to %zu\n", ptr, device->min_imported_host_pointer_alignment);
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return {};
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}
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if (size & (device->min_imported_host_pointer_alignment - 1)) {
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fprintf(stderr, "PROBE from_host_ptr: size %zu not aligned to %zu\n", size, device->min_imported_host_pointer_alignment);
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return {};
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}
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@@ -17833,10 +17837,9 @@ static vk_buffer ggml_vk_buffer_from_host_ptr(vk_device & device, void * ptr, si
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try {
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buf = ggml_vk_create_buffer(device, size, { property_flags }, ptr);
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} catch (vk::SystemError& e) {
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fprintf(stderr, "PROBE from_host_ptr: create_buffer threw (%s)\n", e.what());
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GGML_LOG_WARN("ggml_vulkan: Failed ggml_vk_create_buffer (%s)\n", e.what());
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}
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fprintf(stderr, "PROBE from_host_ptr: ptr=%p size=%zu -> buf=%p buf->buffer=%p\n", ptr, size, buf.get(), buf ? (void*)buf->buffer.operator VkBuffer() : nullptr);
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return buf;
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}
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@@ -17927,9 +17930,13 @@ static ggml_backend_dev_t ggml_backend_vk_reg_get_device(ggml_backend_reg_t reg,
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// instead of bouncing through the staging buffer + host memcpy. Mirrors the
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// GGML_CUDA_REGISTER_HOST path; populates device->pinned_memory, which the
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// existing pinned fast path in ggml_vk_buffer_write_2d_async looks up.
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//
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// A single Vulkan buffer cannot cover a whole multi-GB mmap (it is capped at
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// device->max_buffer_size), so the region is imported in page-aligned chunks.
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// ggml_vk_host_get resolves a tensor pointer to the chunk that contains it,
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// and ggml_vk_buffer_write_2d_async falls back to staging for any tensor that
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// straddles a chunk boundary, so correctness is preserved.
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static bool ggml_backend_vk_register_host_buffer(void * buffer, size_t size) {
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fprintf(stderr, "PROBE register_host CALLED buffer=%p size=%zu cuda_env=%d vk_env=%d\n", buffer, size,
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getenv("GGML_CUDA_REGISTER_HOST") != nullptr, getenv("GGML_VK_REGISTER_HOST") != nullptr);
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if (getenv("GGML_CUDA_REGISTER_HOST") == nullptr && getenv("GGML_VK_REGISTER_HOST") == nullptr) {
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return false;
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}
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@@ -17940,20 +17947,36 @@ static bool ggml_backend_vk_register_host_buffer(void * buffer, size_t size) {
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bool success = false;
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for (size_t i = 0; i < GGML_VK_MAX_DEVICES; i++) {
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vk_device& device = vk_instance.devices[i];
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if (!device || !device->external_memory_host) {
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if (!device || !device->external_memory_host || device->max_buffer_size == 0) {
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continue;
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}
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vk_buffer buf = ggml_vk_buffer_from_host_ptr(device, buffer, size);
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if (!buf || !buf->buffer) {
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const size_t align = device->min_imported_host_pointer_alignment;
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size_t chunk = device->max_buffer_size & ~(align - 1);
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if (chunk == 0) {
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continue;
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}
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{
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std::lock_guard<std::shared_mutex> guard(device->pinned_memory_mutex);
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device->pinned_memory.emplace_back(buffer, size, buf);
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uint8_t * p = static_cast<uint8_t *>(buffer);
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size_t remaining = size;
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bool dev_success = false;
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while (remaining > 0) {
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size_t cur = std::min(remaining, chunk);
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vk_buffer buf = ggml_vk_buffer_from_host_ptr(device, p, cur);
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if (!buf || !buf->buffer) {
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break;
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}
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{
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std::lock_guard<std::shared_mutex> guard(device->pinned_memory_mutex);
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device->pinned_memory.emplace_back(p, cur, buf);
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}
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dev_success = true;
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p += cur;
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remaining -= cur;
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}
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if (dev_success) {
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success = true;
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}
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success = true;
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}
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return success;
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}
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