* ci : run test-backend-ops as a dedicated gg test
Run test-backend-ops as a separate gg test in ci/run.sh so it is executed outside ctest. With GG_BUILD_HIGH_PERF it keeps the existing CPU-only invocation (-b CPU); otherwise it runs all available backends without a backend filter.
Remove the dedicated backend-ops workflow and keep test-backend-ops as a built target that is not registered with ctest to avoid duplicate runs.
Assisted-by: pi:llama.cpp/DeepSeek-V4-Flash-Vision-Exp
* ci : run test-backend-ops earlier and enable high-perf on kleidiai
Move the test-backend-ops gg test before test-llama-archs.
Enable GG_BUILD_HIGH_PERF and LLAMA_ARG_THREADS on the Graviton4 KleidiAI job and use the standard self-hosted results/mnt paths.
Add TODO markers for decoupling tests from libllama.
Assisted-by: pi:llama.cpp/DeepSeek-V4-Flash-Vision-Exp
* ci : run test-backend-ops in parallel
Pass -j $(nproc) to test-backend-ops in both high-perf and all-backend modes.
Assisted-by: pi:llama.cpp/DeepSeek-V4-Flash-Vision-Exp
* ci : disable parallel tests for ROCm
* cont : disable parallel tests with MoltenVK
* Test for nrc=2 as well | i8mm kernels
* Trigger only on supported HW
* Remove trailing whitespace
* Address review comment
* test: properly prepare nrc=2 inputs with independent data per row
* tests : make nrc=2 dot product inputs distinct
Assisted-by: Kiro
* tests : use non-trivial strides in nrc=2 dot product test
* tests : fail nrc=2 dot product test on non-finite errors
kernel_mul_mm_id splits its NR1 = 32 token tile into two 16-row halves and skips
the upper half when the expert did not fill it, on both the tensor and simdgroup
paths. The tB extents are corrected to (NK, NR1H) for the [NR1][NK] row-major tile.
The B tile is staged unconditionally, as on master: rows past nr1 restage a clamped
duplicate of a valid row, lie in the output-row dimension so they never contribute
to a valid row, and are dropped by the final store loop.
test-backend-ops: re-draw the expert ids between perf iterations of test_mul_mat_id
so MoE perf numbers are not warm-cache, and add token-tile boundary coverage using
n_used == n_mats, which routes every token to every expert so each expert receives
exactly n rows; n = 32, 33, 47, 48, 49 reach mul_mm_id and leave a last tile of 32,
1, 15, 16 and 17 rows.
* scripts : add initial profiling script (wip)
* src : add precompile headers (PCH) for models.h
* common : add common.h as PCH
* ggml : add PCH for ggml-impl.h
* mtmd : use PCH for models.h
* scripts : add script to build with Server/Tools/Tests
* server : add PCH for common.h
* docs: add profiling progress notes (wip)
* ggml : add exclude for GCC + SVE on ARM
Refs: https://github.com/ggml-org/llama.cpp/actions/runs/33393906061/job/99493756214?pr=28091
* ggml : attempt to fix use of std::hardware_destructive_inference_size
Refs: https://github.com/ggml-org/llama.cpp/actions/runs/33396221677/job/99501265689?pr=28091
* squash! ggml : attempt to fix use of std::hardware_destructive_inference_size
Add a version check for GCC 12 to conditionally apply the `-Winterference-size`
pragma.
* editorconfig : exclude profiling reports dir
This directory will not be included in the merge later and this commit
can be ignore at that point. Just fixing to keep CI happy.
* ggml : skip PCH for gcc on non-x86 architectures
* tests : add PCH for peg-parser/tests.h
There are 7 peg-parser tests that can share one PCH instead of then each
parsing the full tests.h.
* common : add PCH for chat.h
* docs : update linux build profiling full results
Just updating after a number of PCH additions. These are not exact
figures and will vary a bit from run to run, but they give a general idea
of the performance impact of PCH.
* cmake : introduce unity build for models
This commit introduces a unity build for the models to improve
compilation time.
The improvements were roughly the following:
```console
+------------------------+-----+------------+------------+------------+
| Build | TUs | Frontend | Backend | Total |
+------------------------+-----+------------+------------+------------+
| Full, master | 396 | 811.0 s | 692.2 s | 1,503.2 s |
| Full, with PCH | 405 | 380.0 s | 664.7 s | 1,044.7 s |
| Full, with PCH + UB | 264 | 357.7 s | 635.7 s | 993.4 s |
+------------------------+-----+------------+------------+------------+
TU = Translation Unit.
Full = includes Server, Tools, and Tests.
PCH = precompiled headers.
UB = unity build for models.
```
* docs : update linux profiling table with unitiy build results
* docs : update mac profiling results to include unity build [no ci]
* docs: remove profiling reports
* scripts : merge build profile scripts into one script
I was lazy before and just copied the first script to enable Tests,
Server, and Tools. This now merges them into a single script.
* Revert "editorconfig : exclude profiling reports dir" [no ci]
This reverts commit 2922a12118.
* src : rename ggml_view_2d_slice to gemma3n_view_2d_slice
This is to be consistent with the rename in gemma4.cpp which was
required to avoid a name clash.
* cmake : add build profile script for windows [no ci]
This commit adds a port of the scripts/build-profile.sh script to
windows powershell.
This was developed on Windows on ARM but should work on X64 as well but
needs to be tested there as well.
* metal : rework fusion patterns into a single table
All fusable op patterns for the Metal backend are now declared once in a
fusion table (ggml-metal-fuse.cpp) and consumed by both the graph optimizer
(ggml_metal_fuse_max, packing) and the op encoders (ggml_metal_fuse_next,
compute). The two phases share the same pattern table plus ggml_can_fuse_subgraph_ext
for the structural checks, and differ only in the mode used for the pattern
check (STRUCTURAL at optimize time, since tensors are not allocated yet, and
FULL at compute time, including Metal buffer placement). This also protects the
snake activation (MUL + SIN + SQR + MUL + ADD) from being reordered during graph
optimization, which was previously unprotected.
Assisted-by: pi:llama.cpp/DeepSeek-V4-Flash-0731
* metal : fix absolute output indices in fusion patterns
ggml_can_fuse_subgraph_ext expects the outputs array to contain absolute graph
node indices (it indexes cgraph->nodes[outputs[i]]), but the fusion table query
was passing a relative index (n_ops - 1). As a result the last node of every
pattern was not recognized as an output and was subjected to the elidable
use-count check, which failed for essentially all fusions. This silently
disabled the norm/MUL fusion and caused a ~5% token-generation regression.
Pass the absolute graph index of the last node instead.
Assisted-by: pi:llama.cpp/DeepSeek-V4-Flash-0731
* metal : fuse gated_delta_net with cache cpy
Add GGML_METAL_FUSE_GDN_CACHE to the fusion table: when the gated_delta_net
kernel is followed by a cpy that scatters its recurrent state snapshots into
the KV cache, the kernel writes the snapshots straight into the cache buffer
and the trailing cpy is elided.
The gdn output has other consumers (the attn scores view), so unlike the
elision-chain patterns this is not a simple chain: a 'raw' flag on the fusion
pattern skips the generic chain/shape and ggml_can_fuse_subgraph_ext checks,
making the pattern-specific check callback the sole validator. Packing
(ggml_metal_fuse_max) now matches on the same view-transparent node sequence
that the compute phase uses, so the gdn + cache cpy group is packed along with
any intermediate views and stays adjacent through the reorder.
The fused cpy is a view consumer of the gdn (it writes the cache directly),
so its mem-range is skipped in the encoder; the skip is restricted to CPY
nodes consuming the previous fused node through a view so other fusions are
unaffected.
Add test_gated_delta_net_cache_fusion and register 5 cases.
Assisted-by: pi:llama.cpp/DeepSeek-V4-Flash-0731
* metal : drop is_view_consumer mem-range skip
The is_view_consumer skip was carried over from the upstream gated_delta_net
cache-fusion draft, but it is not needed: keeping the elided cpy's mem-range in
the concurrency tracker only ever adds a (conservative) memory barrier at the
fusion point. It can never remove a barrier, so it cannot introduce a race. The
worst case is one spurious barrier per gdn+cache-cpy fusion, which is within
run-to-run noise on Qwen3.5-0.8B Q8_0.
Dropping the check keeps the mem-range loop uniform for all fused groups.
Assisted-by: pi:llama.cpp/DeepSeek-V4-Flash-0731
* metal : rename gated_delta_net fused state output args
Rename the fused cache-write kernel argument to match the rest of the kargs:
state_out_stride -> nb_out (and widen it to uint64_t), and the local buffer id
bid_state_out -> bid_out.
Assisted-by: pi:llama.cpp/DeepSeek-V4-Flash-0731
* metal : rename raw fusion flag to unsafe
raw did not convey that the flag opts a fusion pattern out of the generic
elision-chain safety net (ggml_can_fuse_subgraph_ext + chain/shape checks).
rename it to 'unsafe' to make explicit that the pattern's check callback is the
sole validator and must re-establish the safety guarantees itself.
Assisted-by: pi:llama.cpp/DeepSeek-V4-Flash-0731
* metal : tidy fusion pattern checks and table
- const-correct ggml_metal_fuse_outputs buffer
- annotate unused check-callback parameters
- drop a redundant size_t cast
- align the ops/table initializers and add blank-line separation
Assisted-by: pi:llama.cpp/DeepSeek-V4-Flash-0731
* metal : add generic fusion stats via ad-hoc proc-address API
Add a device-owned fusion context that lets a test tool count how many
times each fusion pattern fires and toggle fusion. It is exposed through
the ad-hoc ggml_backend_reg_get_proc_address mechanism with generic names
so the testing tool is backend-agnostic:
- ggml_backend_fusion_stats_init: start collecting fusion stats; when a
context is created afterwards it registers the labels/counters and
encodes single-threaded (n_cb == 0) so the counters are race-free
- ggml_backend_fusion_stats_reset / _get_stats / _set_enabled
The context lives on the metal device (not on the last backend context),
so counters accumulate across contexts and reads are always consistent.
The enable/disable toggle is initialized from GGML_METAL_FUSION_DISABLE
and can be overridden by the test through set_enabled. Labels are
synthesized from the fuse table via ggml_metal_fuse_label (e.g.
"GATED_DELTA_NET+CPY").
Assisted-by: pi:llama.cpp/DeepSeek-V4-Flash-0731
* tests : add fusion count regression test with per-backend baseline
test-fusion runs every dummy model generated by test-llama-archs on a
single backend (single-threaded encoding, n_cb == 0) with fusion enabled
and disabled, and for each mode (prefill / decode) reports the per-fusion
counters and the NMSE between the fused and unfused logits, plus the NMSE
against a CPU reference.
A fusion pattern that silently stops matching (or fires when it should
not) is caught as a regression by comparing the counters against a
committed per-backend TSV baseline:
- --record writes the golden baseline, --check (default) validates it
- the unfused run doubles as a control: its counters must be all-zero
- NMSE is skipped when it is NaN or the arch is already broken on the
device (e.g. plamo2 on Metal), so the count check is the hard gate
- baseline counts depend only on graph structure, not weights (verified
stable across weight seeds)
- the fusion stats API is resolved through the ad-hoc get_proc_address
mechanism with generic names; a backend that does not export it makes
the test fail with an error
The committed MTL0.tsv baseline covers 110 dummy archs (298 rows).
Assisted-by: pi:llama.cpp/DeepSeek-V4-Flash-0731
* tests : rename fusion api helpers to match stats_init signature
Align the test with the ad-hoc fusion stats API: fusion_stats_init no
longer takes an enable bool (stats are turned on by calling it), so the
proc-address wrappers and typedefs are renamed to the api_* convention.
Assisted-by: pi:llama.cpp/DeepSeek-V4-Flash-0731
* tests : rename backend to device in fusion test CLI
The fusion test operates on a compute device (e.g. MTL0), not a backend,
so rename the --backend argument to --device and the backend_name
variable to device_name. Keep "backend" where it refers to the ggml
backend interface (the ad-hoc proc-address mechanism).
Assisted-by: pi:llama.cpp/DeepSeek-V4-Flash-0731
* tests : add --model and --help to fusion test
--model FILE runs the fusion regression test over a single model file
instead of enumerating a --models DIR. --models and --model are mutually
exclusive. Also add a --help/-h option that prints the usage.
Assisted-by: pi:llama.cpp/DeepSeek-V4-Flash-0731
* tests : use backend base name for fusion baseline output
The fusion test is invoked with a specific device name (e.g. MTL0), but
its output - the recorded baseline and the header it writes - should be
named after the backend base name (e.g. MTL, via ggml_backend_reg_name),
since the counters depend on the backend, not on the specific device
index. Rename the committed baseline to MTL.tsv.
Assisted-by: pi:llama.cpp/DeepSeek-V4-Flash-0731
* tests : run fusion test from ci instead of ctest
The fusion test needs Metal and generates a lot of dummy models, so it
does not belong in the generic ctest suite. Move it to ci/run.sh as
gg_run_test_fusion, gated on GG_BUILD_METAL like
gg_run_test_llama_archs_tensor_split: it generates the dummy models with
test-llama-archs -o and then validates the fusion counts against the
committed baseline. test-fusion.cpp is still built (llama_build) but no
longer registered as a ctest.
Assisted-by: pi:llama.cpp/DeepSeek-V4-Flash-0731
* tests : align fusion baseline TSV columns
Pad the TSV fields to fixed widths so the columns line up regardless of
the variable arch and fusion-label lengths, and trim each field on parse
so the padded file is still accepted. Regenerate the committed MTL.tsv
baseline in the padded format (data unchanged, verified identical modulo
padding).
Assisted-by: pi:llama.cpp/DeepSeek-V4-Flash-0731
* tests : widen label column and align fusion TSV header
Give the label column more room (28 chars) and fix the column header
widths so they match the data rows (moe/mode/label), keeping the header
aligned with the values. Regenerate the MTL.tsv baseline in the new
format (data unchanged).
Assisted-by: pi:llama.cpp/DeepSeek-V4-Flash-0731
* tests : switch fusion baseline from TSV to CSV
Use comma-separated values like the rest of the project, keeping the
padded, aligned columns. Split on ',' and trim on parse. Rename the
committed baseline to MTL.csv (data unchanged, verified identical modulo
padding/separator). Update the ci/run.sh check path accordingly.
Assisted-by: pi:llama.cpp/DeepSeek-V4-Flash-0731
* cont : rebase + update MTL stats
* tests : avoid graph reallocations for some archs
* metal : tidy fusion debugging context and op init
- simplify the shared fusion debugging context comments
- shorten the ggml_metal_fusion struct comment
- align the ggml_metal_fuse struct fields and comments
- move the fusion parameter of ggml_metal_op_init right after dev
Assisted-by: pi:llama.cpp/DeepSeek-V4-Flash-0731
* tests : dedup fusion baseline into any mode
prefill and decode always produce the same per-graph fusion count, so
store a single row per label with mode = "any" and the per-graph count
instead of two rows. this halves the baseline size and keeps the check
stable.
Assisted-by: pi:llama.cpp/DeepSeek-V4-Flash-0731
* ci : move fusion model generation to a separate step
the dummy models generated by test-llama-archs are reused by other tests,
so generate them once in their own step instead of inside test_fusion.
Assisted-by: pi:llama.cpp/DeepSeek-V4-Flash-0731
* tests : bump nmse thold
* models : fix plamo2 graph
* tests : remove "skip" logic from test-fusion
* tests : set qwen3tts dummy vocab to codec head size
the dummy qwen3tts model used a vocab of 4096 while the codec head is
3072, so the graph padded the output with -inf which made the NMSE in
test-fusion produce NaN. use the exact codec head size instead so the
padding is not generated at all.
Assisted-by: pi:llama.cpp/DeepSeek-V4-Flash-0731
* tests : regen fusion baseline
reflect the plamo2 graph fix, which changed its fusion pattern split
(RMS_NORM+MUL 11->10, RMS_NORM+MUL+ADD 3->4; same total).
Assisted-by: pi:llama.cpp/DeepSeek-V4-Flash-0731
* ci : skip dummy model generation on OpenVINO
test-llama-archs does not build on the OpenVINO platform, so do not try
to generate the dummy models there.
Assisted-by: pi:llama.cpp/DeepSeek-V4-Flash-0731
* cont : minor
* tests : enable test-llama-archs on windows
* cont : disable on windows + workaround
* metal : naming nits
* test-fusion : add instructions to update baseline
* context : fix Kimi-K3 graph reserve
* fusion : update MTL
* cont : fix naming
* metal : rework fusion info storage
Assisted-by: pi:llama.cpp/DeepSeek-V4-Flash-Vision-Exp
* metal : align fusion info API
Assisted-by: pi:llama.cpp/DeepSeek-V4-Flash-Vision-Exp
* metal : use opaque fusion handle in ad-hoc API
Assisted-by: pi:llama.cpp/DeepSeek-V4-Flash-Vision-Exp
* ci : move fusion test to dedicated workflow
Assisted-by: pi:llama.cpp/DeepSeek-V4-Flash-Vision-Exp
* cont : run only on ggml changes
* cont : simplify
* fusion : remove multi-output stuff for now
* ci : fix typo
* HIP: enable mma FA for head size 256 on RDNA4, tune configs
Assisted-by: Claude
Assisted-by: Codex
* HIP: prefer whole-tile FA grids over stream-k on AMD WMMA
Assisted-by: Claude
Assisted-by: Codex
* revise stream_k logic
* revise kernel selection logic
---------
Co-authored-by: Johannes Gäßler <johannesg@5d6.de>
* vulkan: optimize m=1 mul_mat by swapping A/B
* vulkan: Improve small M perf
Allow split_k with small M.
Make small vs med tile selection (for coopmat2) depend on M, not just N.
Templates that default an optional variable to none and then test its
membership in a map hit an error, while the same expression is a normal
lookup returning false in Jinja. The undefined counterpart of this case
was already handled just above.
* vulkan : fuse UNARY(SIGMOID|SILU|SOFTPLUS) + MUL
* vulkan : fuse UNARY(SIGMOID|SILU|SOFTPLUS) + MUL
- implement fusion in unary.comp behind UNARY_MUL_FUSION ifdef,
specialized pipelines per op instead of runtime branching
- fuse adjacent nodes only, ordering handled by graph_optimize
- drop runtime consumer scan and pending_unary_mul deferral
* vulkan : fuse UNARY(GELU|SIGMOID|SILU|SOFTPLUS) + MUL
1. GELU: gelu_mul_f32/f16 pipelines registered, CREATE_UNARY_MUL(gelu), GELU in dispatch + fuse gate + perf fusion name
2. Renamed/moved: gate is now ggml_vk_can_fuse_unary_mul(cgraph, unary_idx, mul_idx), placed with the other can-fuse helpers
3. norepeat both variants: each op gets plain (spec {0}) + _norepeat (spec {1}) pipelines from the same SPIR-V, selected via ggml_are_same_shape(src0, src1); the shape gate now allows broadcast (other dims equal-or-1)
4. graph_optimize: lambda deleted; standard "// UNARY + MUL: pull the consuming MUL forward" block added alongside the SSM_CONV/ROPE/MUL_MAT reorderings, with the same "other src must be weights or already processed" readiness check
* vulkan : align unary_mul fusion with binary kernel layout, relax gelu test tolerance
- schedule the fused kernel like mul.comp (256 threads x 2 unrolled
iterations), recovering a 10-18% prompt-processing regression
- allow 5e-7 f32 error for gelu_mul: the shader evaluates gelu with an
exp-based tanh identity while the CPU reference uses tanhf (~1 ulp)
* vulkan : use ggml_can_repeat in UNARY+MUL fusion shape check
The fused kernel indexes src1 via per-dim fastmod (generic_binary_head.glsl),
which is exact whenever the other operand tiles into the unary result -- not
just when its dims are equal or 1. Replace the hand-rolled loop with
ggml_can_repeat(other, unary) so the check matches the kernel's actual
capability and reuses the standard helper. Argument order matters: reversed,
it would wrongly admit graphs where the unary result is mul->src[1] and the
other operand is larger, producing truncated output.
Also add a rep_ne0 layout to the fused unary+mul backend tests covering a
non-1 repeat factor along dim 0.
* vulkan : fuse UNARY+MUL pairs separated by zero-compute nodes
gemma4's per-layer embedding gating builds gelu -> view_2d_slice -> mul,
where the intervening view is a zero-compute node aliasing an input that
was computed much earlier. Strict adjacency requirements meant neither
CUDA nor the vulkan unary+mul fusion handled this pattern.
Extend ggml_vk_graph_optimize to detect a UNARY whose consuming MUL is
separated only by unscheduled zero-compute nodes (GGML_OP_NONE, VIEW,
RESHAPE, TRANSPOSE, PERMUTE) and schedule those nodes ahead of the pair,
making it adjacent so the existing fusion applies. The reorder is guarded
by ggml_vk_can_fuse_unary_mul, a source-availability check for every
interleaved node, and the protected fusion patterns (topk_moe*, snake);
if fusion is later rejected the reordered graph still executes correctly,
just unfused.
Add a view_mid layout to the fused unary+mul backend tests replicating
the gemma4 pattern.
* vulkan : support OP-on-B in UNARY+MUL fusion
Some models apply the unary activation to the smaller MUL operand, e.g.
qwen3next/qwen35moe shared-expert gating builds ffn_shexp * sigmoid(gate)
with a [1,n_tokens] gate tensor. This shape was correctly rejected before:
the fused kernel derives its iteration extent from the unary tensor and
would leave most of the destination unwritten, and the generic same-shape
requirement in ggml_can_fuse blocked the pair outright.
Add UNARY_MUL_B_FUSION shader variants computing dst = src0 * OP(src1):
the OP operand rides the existing per-dim fastmod indexing, while the
iteration extent now comes from mul. Route {UNARY, MUL} pairs through a
local can-fuse variant that drops the generic same-shape rule and instead
requires the unary result to tile into mul->src[0] (ggml_can_repeat);
pairs with the unary as src0 keep the previous direction check, and
equal-shape pairs keep using the original pipelines.
Add a "gate" layout to the fused unary+mul backend tests covering the
shared-expert gate shape for gelu/sigmoid/silu/softplus in f32 and f16.
* vulkan : fold unary+mul view-hoisting into graph_optimize dep checks
Replace the dedicated UNARY + EMPTY* + MUL scanning block with two small
extensions to the existing scheduling logic:
- a consuming MUL may now join its in-set UNARY across a gap of unused
zero-compute nodes (NONE/VIEW/RESHAPE/TRANSPOSE/PERMUTE), instead of
requiring strict adjacency
- while doing so, such zero-compute blockers are ignored for this pair
Fusion validity is still decided later by ggml_vk_can_fuse at dispatch
time, so a rejected pair simply executes adjacent-but-unfused. Note the
relaxation must stay scoped to this pattern: exempting zero-compute
blockers globally reproduces silent output corruption on gemma3n.
* vulkan : select unary_mul OP-on-B via specialization constant
Replace the UNARY_MUL_B_FUSION compile-time shader variants with an
op_on_b specialization constant on the existing unary_mul SPIR-V,
mirroring how the norepeat flag is handled. The four {op}_mul_b_{f32,f16}
shader artifacts are gone - the OP-on-B pipelines reuse the base SPIR-V
with two-entry {norepeat, op_on_b} spec lists - and the duplicated store
expression is collapsed into a single runtime branch that the driver
prunes per specialization.
The constant is declared only under UNARY_MUL_FUSION so every other
binary pipeline keeps its single-entry specialization list.
* vulkan : replace unary_mul pipeline switches with a lookup table
Collapse the four nested selection switches in ggml_vk_unary_mul into a
single indexed lookup against a pipeline_unary_mul[4][2][2][2] table
([unary op][f16][norepeat][op_on_b]), whose trailing dims mirror the
{norepeat, op_on_b} spec constant list. The op axis uses a small shared
index helper that also replaces the switch in ggml_vk_can_fuse_unary_mul,
making it the only place that maps ops to the table.
Pipeline names are unchanged. Adding another supported op now requires
one macro invocation line and one helper case instead of edits in four
separate switches.
* vulkan : use ggml_can_fuse_subgraph for unary_mul pairs
Replace the hand-rolled pair validation in ggml_vk_can_fuse_unary_mul_pair
(bounds, op match, compute flags, single-use elision) with the shared
ggml_can_fuse_subgraph helper; backend-specific shape/type rules remain in
ggml_vk_can_fuse_unary_mul. Unlike ggml_can_fuse, the subgraph helper has
no same-shape requirement, so it covers both operand slots including
OP-on-B gates, and additionally rejects intermediates flagged as graph
outputs and validates view-source confinement.
The outputs parameter takes absolute node indices into the cgraph.
* Fix Whitespace
* vulkan : drop redundant unary_mul gap check in graph_optimize
The zero-compute nodes separating a UNARY from its consuming MUL are
already scheduled ahead of the pair by pass 2 of an earlier
optimization window, so the scoped gap tolerance added for this pattern
is unreachable in practice - disabling it leaves gemma-3n dispatch
counts unchanged (841 GELU_MUL per pass). Remove the flag, the empty
blocker exemption, and the now-unused gap helper, restoring the strict
adjacency requirement of the UNARY -> MUL pull-forward.
Keep the relaxation scoped out entirely: generalizing "zero-compute
nodes never block" beyond this pattern previously reproduced silent
output corruption on gemma3n.
* vulkan: fix whitespace (tab in indent)
* vulkan: fix whitespace (extra blank line)
* vulkan : move op_on_b spec constant to unary.comp
op_on_b is only used by the fused unary*mul path. Keep
generic_binary_head.glsl generic by defining it in unary.comp
instead. Same constant_id=1 and guard, no functional change.
* vulkan : make RMS_NORM/UNARY fusion gap-tolerant for views
Strict j==c+1 blocked RMS_NORM->MUL and UNARY->MUL when a
VIEW sits between (e.g. rms_norm -> view -> mul). Allow
c==back() with an empty-or-scheduled gap, matching the
review suggestion to check src linkage instead of adjacency.
Scoped to the two blessed pairs; safe because gaps can only
contain zero-compute nodes.
* vulkan : trim comments in UNARY+MUL fusion
Assisted-by: Muse Spark
* tests: bind the L2_NORM batch count to a local
GCC cannot prove the loop fills norms up to the index read after it
while the bound is a class member, so it reports a maybe uninitialized
use. Reading the count once into a local restores the tracking.
* tests: initialize the L2_NORM batch array
The read after the fill loop is only provably defined once the array
carries an initializer, which GCC 12 requires on the aarch64 Release
build where warnings are fatal.
* vulkan: add DeepSeek-V4 hyper-connection fused ops (DSV4_HC_COMB/PRE/POST)
CUDA has these ops from the DeepSeek-V4 merge and Metal gained them in
PR 26459. Vulkan was the last major backend running the unfused primitive
chain. On DeepSeek-V4-Flash the unfused Sinkhorn comb chain alone takes
about 32% of decode op time on gfx1151 (Strix Halo), spread over roughly
16k dispatches per token.
dsv4_hc_comb runs the full 20-iteration Sinkhorn in registers. A token's
4x4 comb matrix lives in 16 consecutive subgroup lanes, with idst in bits
0-1 and isrc in bits 2-3 to match the CPU reference layout, so
subgroupShuffleXor by 1|2 reduces rows and by 4|8 reduces columns. One
dispatch replaces about 137 strictly ordered node executions per site.
The shuffle masks never cross a 16-lane boundary, so a subgroup of size
64 packs 4 independent tokens.
dsv4_hc_pre and dsv4_hc_post handle the elementwise stream collapse and
fan-out, with per-token coefficients staged in shared memory.
GGML_VK_DISABLE_DSV4_HC disables all three ops. The _COMB, _PRE and
_POST variants gate each op independently so a single kernel can be
bisected against the unfused graph.
Adds eval cases at the production n_iter=20 across batch sizes that
cross subgroup and workgroup boundaries.
* vulkan: dsv4 hc review fixes
Drop the per-op env-var disables and device flags, the stride divisibility
check (ggml guarantees it) and the workgroup-count fallback in supports_op.
Trim the comb shader comments to the lane layout.
---------
Co-authored-by: Kevin Hopper <no-reply@maestro.press>
* vulkan: fall back to CPU for GET_ROWS with misaligned offsets
The Vulkan GET_ROWS shader asserts when a tensor's backing-buffer offset
plus view_offs is misaligned w.r.t. minStorageBufferOffsetAlignment
(see init_pushconst_tensor_offsets). Previously this caused a hard crash
on models using ggml_view + ggml_get_rows (e.g. Qwen3-TTS, Qwen3-VL).
Return false from supports_op() in the misaligned case so the scheduler
falls back to CPU, matching the existing pattern for PAD_REFLECT_1D and
other unsupported op/shape combinations.
Repro: llama-tts -m Qwen3-TTS-*.gguf -mm mmproj-*.gguf -ngl 99
Crash: GGML_ASSERT(dst->op != GGML_OP_GET_ROWS || (a_offset == 0 && ...)) failed
* vulkan: trim comment for GET_ROWS misalign fallback
* vulkan: fix file corruption in gated_linear_attn struct
* vulkan: properly handle misaligned offsets in GET_ROWS quantized path
- get_rows_quant.comp was missing get_aoffset()/get_boffset()/get_doffset()
calls that are already present in get_rows.comp, causing GGML_ASSERT crashes
when GET_ROWS operates on views with non-zero view_offs, as produced by
KV cache slices in Qwen3-TTS and Qwen3-VL.
- Remove the defensive misalignment GGML_ASSERT in init_pushconst_tensor_offsets
for the binary push-constants specialization, since both get_rows.comp and
get_rows_quant.comp now correctly apply per-tensor base offsets.
- Remove the workaround CPU fallback in supports_op() for GET_ROWS, since the
Vulkan backend now handles misaligned offsets natively (no more bailout).
- Add backend test coverage with view_src0=true (ggml_view_4d into a padded
tensor) for F32, F16, Q4_0, Q4_K, Q8_0, and I32 types, exercising both the
non-quantized (get_rows.comp) and quantized (get_rows_quant.comp) paths
with non-zero view_offs that reproduce the original Qwen3-TTS crash.
* tests: trim redundant comments in test_get_rows vs0 region
* tests: trim redundant comments in test_get_rows vs0 region (follow-up)
* vulkan: bind tensor base for binary ops, pass full view_offs via push constants
For ops using vk_op_binary_push_constants (GET_ROWS, ADD, SUB, MUL, etc.),
bind the view_src base and pass the full view_offs divided by type_size via
push constant misalign_offsets. This avoids truncation when misalign_bytes is
not a multiple of quantized block size.
ggml_vk_tensor_subbuffer gains a use_view_offs parameter. When false, the
binding points to vk_tensor_offset (base) and size includes view_offs.
init_pushconst_tensor_offsets<binary> computes a/b/d_offset directly from
tensor->view_offs, which is always row-aligned and therefore exact.
Added non-zero view offset (offset_rows=3) backend tests for GET_ROWS across
all_types with be1={1,7}, v={false,true}, skipping gradient setup for view
tensors (GGML_OP_VIEW fails ggml_set_param).
All 223 GET_ROWS tests pass on Vulkan (NVIDIA RTX 5060 Ti).
* vulkan: bind aligned offset for binary ops, pass adjusted misalign via push constants
For ops using vk_op_binary_push_constants (GET_ROWS, ADD, SUB, etc.), bind
the buffer to an aligned position near the view offset (not the tensor base)
and pass the adjusted misalignment via push constants.
ggml_vk_get_adjusted_misalign finds the smallest misalign that is both a
multiple of minStorageBufferOffsetAlignment and type_size, ensuring
misalign/type_size is exact (no truncation for quantized block types).
ggml_vk_tensor_subbuffer gains use_view_offs parameter. When false, binds
to (target - adjusted_misalign) instead of the view_src base, keeping the
offset small enough for 16-bit/8-bit push constant fields.
Added non-zero view offset (offset_rows=3) backend tests for GET_ROWS across
all_types with be1={1,7}, v={false,true}, skipping gradient setup for view
tensors (GGML_OP_VIEW fails ggml_set_param).
All 223 GET_ROWS tests pass on Vulkan (NVIDIA RTX 5060 Ti).
* vulkan: bind aligned offset for binary ops, fix UMA offset mismatch
For ops using vk_op_binary_push_constants (GET_ROWS, ADD, SUB, etc.), bind
the buffer to an aligned position near the view offset (not the tensor base)
and pass the adjusted misalignment via push constants.
Added ggml_vk_tensor_physical_offset to unify physical offset lookup across
UMA and non-UMA devices. On UMA, resolves via ggml_vk_host_get(tensor->data);
otherwise uses vk_tensor_offset(t) + t->view_offs. Both get_misalign_bytes and
the new ggml_vk_get_adjusted_misalign helper build on top of this function,
so buffer bindings and push constant offsets are always consistent regardless
of device memory model.
ggml_vk_get_adjusted_misalign finds the smallest misalign that is both a
multiple of minStorageBufferOffsetAlignment and type_size, ensuring
misalign/type_size is exact (no truncation for quantized block types) while
remaining small enough for 16-bit/8-bit push constant fields
(adjusted_misalign < lcm(align, type_size)).
ggml_vk_tensor_subbuffer gains use_view_offs parameter. When false, binds
to (physical_offset - adjusted_misalign) on both UMA and discrete GPUs,
fixing a bug where the UMA host_get path previously skipped the adjusted
misalign binding and returned the target offset directly.
Added non-zero view offset (offset_rows=3) backend tests for GET_ROWS across
all_types with be1={1,7}, v={false,true}, skipping gradient setup for view
tensors (GGML_OP_VIEW fails ggml_set_param).
All 223 GET_ROWS tests pass on Vulkan (NVIDIA GeForce RTX 5060 Ti).
* finish misalignment fix
* supports_op changes for openvino/webgpu
---------
Co-authored-by: AiChiTuDouPian <15327701848@qq.com>
Support RMS_NORM + MUL + ADD (+ MUL) and RMS_NORM + VIEW + SET_ROWS.
Extend ROPE + VIEW + SET_ROWS to support IMROPE.
Worth around 4% in gemma4 on my system.
* vulkan: add TQ1_0 support (mm, mat-vec, dequant, get_rows)
* vulkan: pack TQ1_0 powers of 3 into a 32-bit constant
Replaces the constant array with a packed 32-bit value (7 bits per entry,
max 81 < 128) extracted with shift/mask, as suggested in review — avoids a
constant array that may not be kept in registers.
test-backend-ops on gfx1151: tq1_0 MUL_MAT 11/11, MUL_MAT_ID 6/6,
GET_ROWS 4/4, unchanged.
* vulkan: address review - shared TQ1_0 decode helpers, fix standalone dequant shader
Review feedback from jeffbolznv, all points:
- Move the packed-pow3 decode into shared helpers in types.glsl
(tq1_0_byte_of / tq1_0_digit_of / tq1_0_trit) and use them from
dequant_funcs.glsl, mul_mm_funcs.glsl, dequant_funcs_cm2.glsl and
dequant_tq1_0.comp instead of repeating the logic. The cm2 path also
drops its constant array for the packed-constant extraction.
- Translate all remaining comments to English.
- dequant_tq1_0.comp: use dequant_head.glsl. The shader previously declared
its own single-field push constant while the pipeline is created with the
5-field layout, so p.ne read the wrong field - confirmed broken, as
suspected in review.
- Fix wg_denoms for the standalone dequant pipeline: one invocation decodes
4 elements with local_size 256, so a workgroup covers 256*4 elements, not
256*16. With the old value the dispatcher launched a quarter of the
required workgroups.
Verified by temporarily forcing the dequant + f16 matmul path for TQ1_0
(hack not committed): test-backend-ops MUL_MAT passes through the rewritten
standalone shader, and the standard MUL_MAT / MUL_MAT_ID / GET_ROWS
tq1_0 cases still pass on Vulkan (AMD gfx1151).
* vulkan: address review — English comments, shared tq1_0_trit, trim TQ1_0 test cases
- mul_mat_vec_tq1_0.comp: drop leftover non-English comment and the local
POW3_PACKED constant; all decode sites now call tq1_0_trit() from types.glsl
- types.glsl / dequant_funcs_cm2.glsl: ASCII-only, drop stale reviewer note
- test-backend-ops: remove the oversized MUL_MAT_ID case (432 MiB A tensor,
~172 GFLOP reference); move the two remaining ones next to the other
backend-specific mul_mat_id one-offs and document why they are needed
* metal: decline TQ1_0 for GET_ROWS and mat-mul in supports_op
The new TQ1_0 cases in test-backend-ops exposed that the Metal backend
claimed support for GET_ROWS/MUL_MAT/MUL_MAT_ID with TQ1_0 sources while
having no such kernels (ggml_metal_library_compile_pipeline aborted on the
missing kernel_get_rows_tq1_0). Decline the type so the ops fall back to
the CPU, matching the existing NVFP4 handling on the same lines.
Assisted-by: Claude Fable 5
* vulkan: trim the TQ1_0 comments
Addresses @0cc4m's review: keep only what the code does not already say.
Removed the block-format recaps (the layout is right there in the struct) and
the step-by-step decode walkthrough. Kept the two facts a reader cannot infer:
the 8-bit truncation is part of the format, not an optimisation, and the powers
of 3 are packed into one uint so they do not end up in a constant array that
may miss the registers.
No functional change.
* vulkan: address review — trim comments, fold Metal check, drop unused _v
Per @0cc4m's review:
- dequant_funcs.glsl, dequant_funcs_cm2.glsl: drop the "see types.glsl"
pointers — they apply to every quant and say nothing specific.
- dequant_tq1_0.comp: drop the wg_denoms note. It is a precondition, not
information.
- mul_mm_funcs.glsl: same pointer removed.
- types.glsl: the comment on tq1_0_trit is down to the one fact the code
cannot show — the 8-bit truncation is part of the format, matching the C
reference, not an optimisation.
- dequant_funcs_cm2.glsl: removed dequantFuncTQ1_0_v and its define. You were
right that it is optional: it wrapped four scalar decodes and vectorised
nothing, and mul_mm_cm2.comp already guards the path with
`#if defined(dequantFuncA_v)` (DATA_A_F32 omits it the same way).
- ggml-metal-device.m: folded TQ1_0 into the existing NVFP4 check instead of a
separate block, and dropped both comments.
- test-backend-ops.cpp: the two mul_mat_id cases stay — they cover the
block-stride loop and the per-expert base offset that k == 256 alone never
reaches — but the comment is now one line instead of five.
Kept: the one-line labels on the three block regions in mul_mat_vec_tq1_0.comp
and on tq1_0_byte_of(). Those state the 5-trits-per-byte packing, which the
loop bounds do not show. Happy to remove them too if you prefer.
Re-verified on AMD gfx1151 (Vulkan), test-backend-ops, 2/2 backends passed:
MUL_MAT 9 TQ1_0 cases, MUL_MAT_ID 5, GET_ROWS 4 — all OK, no failures.
The coopmat2 path is unchanged apart from the removed _v define.
* Reapply "sycl : add Kronecker product FWHT support for sizes 384, 640, 768, 12…" (#28184)
This reverts commit c845263f8b.
* tests : fix unused variable M in test-backend-ops
* tests: fix trailing space error and isolate kronecker tests for sycl backend only
* model: add Tencent Hy 4 (hy_v4) preview architecture support
Adds support for the Tencent Hy 4 model (Hugging Face architecture
HYV4ForCausalLM, GGUF arch hy_v4):
Add HF -> GGUF conversion script (conversion/hy_v4.py) and wire it into the conversion registry
Register hy_v4 GGUF constants, arch enum, and writer support
Implement the hy-v4 model graph, hparams, vocab and context changes
Register the new arch in llama-arch and models registry
Extend arch tests to cover hy_v4
Assisted by Claude Opus 5
* Update convert_hf_to_gguf_update.py
Co-authored-by: fairydreaming <166155368+fairydreaming@users.noreply.github.com>
* Update conversion/base.py
Co-authored-by: fairydreaming <166155368+fairydreaming@users.noreply.github.com>
* convert : move hy_v4 entry to the same place as in convert_hf_to_gguf_update.py
* model : apply changes related to n_ff_exp becoming per-layer in Hy4-preview
* n_layer_all
---------
Co-authored-by: fairydreaming <166155368+fairydreaming@users.noreply.github.com>
Co-authored-by: Stanisław Szymczyk <sszymczy@gmail.com>
Co-authored-by: Sigbjørn Skjæret <sigbjorn.skjaeret@huggingface.co>
Fuse RMS_NORM+MUL+ADD and ADD+ADD under GGML_SYCL_ENABLE_FUSION.
ADD+ADD uses the same binbcast indexing and type matrix as standalone
add() (f32, f16, f16/f32, i32, i16, bf16, including broadcast and
non-contiguous). Unsupported combinations fall back to two add() launches.
* metal : support n_kv_max sparse mask hint in flash attention vec kernel
- add kernel_flash_attn_ext_vec_idx: compacts finite mask entries into
a per-row index list (Hillis-Steele scan, one threadgroup per row)
- extend vec FA kernel with optional sparse index gathering (FC slot 5)
- add host-side gate: sparse path when n_kv_max > 0, mask present,
supported head sizes / KV types, n_kv_max <= 4096
- new buffer region extra_idx for the index list
- pipeline getter extended with has_sparse param
- add test cases: head sizes, quant types, nb>1, nr23 variants,
sinks, ALiBi, softcap, permute, v_view_of_k, no-mask fallback
Note: multi-row (nb*nr23[1] > 1) cases still failing - rid mapping
in the store phase needs revisiting for the sparse path.
Assisted-by: pi:llama.cpp/Qwen3.8-27B
* metal : fix sparse flash attention row addressing
- kernel_flash_attn_ext_vec_idx: mask param is half* but nb31 is a byte
stride, so the per-row mask offset was scaled by 2x; cast to char*
before applying the byte strides
- kernel_flash_attn_ext_vec: sparse pidx param is char* so the per-row
element offset was under-scaled by sizeof(int); scale it by sizeof(int)
to get the correct byte offset
- fixes the multi-row (nb*nr23[1] > 1) sparse flash attention failures
Assisted-by: pi:llama.cpp/DeepSeek-v4-0731
* cont : use sparse vec FA for prefill
* metal : single-pass flash attention sparse index compaction
The idx kernel previously read the mask row twice: once to count the finite
entries (for the prefix scan) and again to recover their positions. Since the
kernel is memory-bound, this doubled the mask traffic.
Keep the finite positions in a per-thread register array during the count
pass and write them out directly, avoiding the second mask read. A dense
mask with more than NLOCAL finite entries in a slice falls back to re-reading
the mask to write the remaining positions.
Assisted-by: pi:llama.cpp/DeepSeek-v4-0731
* tests : add perf cases for sparse flash attention prefill
Measure the sparse vec FA kernel across KV sizes, n_kv_max hints and batch
sizes. Run with:
./build/bin/test-backend-ops -b MTL0 -o FLASH_ATTN_EXT -p "n_kv_max=[1-9]" perf
Assisted-by: pi:llama.cpp/DeepSeek-v4-0731
* qwen4 : enable sparse attention
* cont : adjust nsg
* cont : sync test-backend-ops
* cont : disable Qwen4 for now
* cont : clean-up + tests
* sycl: Q4_K Weight unpack optimization and reuse between destination Columns
* sycl: Q4_K small N (N=2..4) + two output rows by subgroup reuse of activation between two rows.
* sycl: gate Q4_K two-row reuse for small N=2
* sycl: Fix on magic number now uses Q4_K_MMVQ_ROW_PAIR_MIN_NROWS=6272 for it, added tests for coverage around Q4_K_MMVQ_ROW_PAIR_MIN_NROWS with perf support to test Q4_K MUL_MAT, applied the same reuse pattern to the activation as the weights.
Assisted-by: GPT-5.6 Sol
---------
Co-authored-by: RaulAbejonDelgado <raul.abejon.delgado@gmail.com>
* vulkan: handle larger batch sizes (>4) efficiently for IQ3_S mat-vec when NUM_COLS > 4. 5x perf at n=8
Assisted-by: Claude Opus 5
* adds 2 cases per quant type at `k=16*256` to the `all_types` mat-vec sweep
---------
Co-authored-by: Marshall <assistant@llama.cpp>
* cuda : fuse MoE weighted reduction (mul + view + add)
The MoE combine tail currently writes weighted expert outputs to
global memory before reducing them. That intermediate global-memory
traffic is the main cost. The production baseline generally runs two
physical fused kernels; this path runs one.
This change matches the full expert-weighting plus ordered-reduction
subgraph and replaces it with one weighted-reduction kernel.
Supported graphs:
- unscaled: experts * router_weights
- scaled: (experts * expert_scale) * router_weights
k = 2..15 is handled by one runtime-k kernel.
Matching is structural: op sequence, shapes, strides, expert views,
and the left-to-right ADD chain. The fused kernel keeps that same
reduction order. Results are not claimed bit-identical; CUDA FP32
contraction can change rounding slightly.
Allocator integration uses add_alloc_dep from the graph-optimizer
API so experts, router weights, and optional expert scales stay live
until the fused destination is written. Memory ranges are rechecked
before the fused kernel runs.
Unrecognized or unsafe graphs are left alone and keep the existing
per-op path. Set GGML_CUDA_MOE_WEIGHTED_REDUCTION=0 to disable the
fusion.
test-backend-ops covers scaled/unscaled, aligned/unaligned, and
representative values across k=2..15, plus a k=16 case that must
stay on the per-op path.
* Pruned the test matrix from 15 to 6
* Addressed the aman and olivers review comments
* qwen4exp: follow up fixes
* -kvu NaN collapse fix
Assisted-by: Claude
* indexer cache ext.x/ext.y restore fix
Assisted-by: Claude
* kv-cells: rename seq_set to seq_get_all
seq_get is already taken by the single-id getter, so the suggested name
cannot be overloaded on return type alone.
Assisted-by: Claude
* memory-hybrid-idx: implement set_input_qsa on the memory class
The context held the whole implementation, where the pattern elsewhere is a
thin context forwarding to the memory class, as llama_kv_cache_context does
for set_input_kq_mask. The body reads no context state, so it moves unchanged
and the context keeps a forwarder.
Also shortens the seq_get_all comment as suggested.
* tests: check that a sequence state survives a save/restore round-trip
Saves seq 0, erases it, restores the blob and saves again, requiring the two
blobs to match. Compares blobs rather than generated text, which cannot see a
field dropped on the way back in.
Note this passes on master for qwen4exp, so it does not demonstrate the
ext.x/ext.y drop this PR fixes; reaching that needs 2D mrope content.
* tests: give the synthetic qwen4exp a PLE so the state test bites
has_cell_ext() is n_pos_per_embd() > 1 || ple_n_heads > 0, and the indexer
cache sets rope_type = NONE, so without a PLE it serializes no cell ext at
all and the round-trip test cannot see a dropped ext.x/ext.y. With one,
removing the ext_set restore in state_read_meta fails the test: 198 of
335692 bytes differ, first at offset 282092.
Loading such a model needed two fixes:
- the row count of per_layer_token_embd came from require_weight(), which a
model synthesised from metadata alone has no file to answer. Derive it
from the head ranges and prefer the file's padded count where there is one.
- the PLE conv history is a row of the recurrent cache, so a PLE on a full
attention layer dereferenced a null p_l. Reject it at load time instead.
The meta mirror is skipped for qwen4exp. It returned NaN logits before this
fixture carried a PLE, which the nmse check passes since a NaN comparison is
false, and aborts with one. -sm tensor on real devices works.
Assisted-by: Claude
* llama: disable -sm tensor for qwen4exp
test-llama-archs skipped the tensor split for this arch from inside the
test, so the arch still advertised support it does not have. Declare it in
llm_arch_supports_sm_tensor instead and drop the test-side exception; the
existing llm_arch_supports_sm_tensor branch then does the skipping.
Assisted-by: Claude
* metal : request Metal 4.0 language version for the tensor API
* metal : load the tensor API kernels from a separate metallib
* tests : add external-metallib tensor API regression test
* metal : fix metallib build order for the tensor API kernels
* Batched gemm for grid IQ quants
Style updates and a bit more performance
Clean up comments
Move code around
Vectorize IQ panel decode, lower threshold for speedup
IQ panel: single-source gather layout, gate bias, vectorize interleave
Add ggml_gemm_iqp_8x8_q8_K_p4 kernel, remove gather buffer
Move IQ panel code out of repack into iqp.cpp, clean up comments
Another comment sweep
* Add myself as iqp.* codeownder
* Remove ggml_cpu_iqp_scratch_offset and ggml_cpu_iqp_src1_conv_size
* Renaming and moving
* The other half of renaming and moving
* Move macros and ggml_cpu_iqp_mul_mat_id_min_batch definition
* Update ggml/src/ggml-cpu/iqp.h
Co-authored-by: Georgi Gerganov <ggerganov@gmail.com>
* Add iqp_rows work buffer
* Revert "Add iqp_rows work buffer"
This reverts commit 425542991e.
* Add NUMA fallback
* Add 10 row batch tests for IQP coverage on all grid IQ types
* Swap assert for return false in support check
* Move IQP mul_mat_id test
---------
Co-authored-by: Georgi Gerganov <ggerganov@gmail.com>
* kv cache : batch state restore scatter reads per contiguous run
When restoring state into non-contiguous destination cells (e.g. a
prompt-cache snapshot into a fragmented ring), state_read_data issued
one small copy per KV cell - ~1.4M copies of a few KiB each for a
40k+ token restore, taking 25-63 s on the CUDA backend.
The snapshot stores cell rows in cell order, so a maximal run of
consecutive destination indices maps to one contiguous block and can
be restored with a single copy. Precompute the runs once and use them
in all three scatter loops (K, V, transposed V). Byte-identical.
The on-device reader copies with a byte cursor when the read and
write chunking differs, so the batched reads are safe for it as well.
Batching makes equal tensor counts with a different split reachable
(save ranges [2,1] vs restore runs [1,2]); the next commit teaches the
reader's 1:1 path to fall back to the byte cursor in that case.
Verified in a production setup: 1,363,616 copies / 25-63 s -> 224
copies / 221-424 ms for the same restores (42,603 cells, 4 runs).
Assisted-by: Claude Code (unsloth/qwen3.8-27b)
* context : fall back to the byte cursor when read and write chunking differ
the on-device reader copies saved state back with a 1:1 copy by tensor
index whenever the write and read sides recorded the same number of
tensors, guarded by a per-tensor size assert.
equal tensor counts do not imply equal chunking: a state restore may
batch its reads per contiguous run of destination cells while the save
used per-range reads, so both sides can record two tensors that split
the same data differently, and the assert aborts in all builds.
compare the per-tensor sizes and only take the 1:1 path when the
chunking actually matches, otherwise fall through to the existing
byte-cursor copy. both sides enumerate the same logical data in the
same order, so the cursor copy is well-defined across tensor
boundaries.
Assisted-by: Claude Code (unsloth/qwen3.8-27b)
* tests : cover state restore scatter reads on host and on-device paths
decode the same prefix on two sequences, interleaving the seq 0 cells
between the seq 1 cells, so the seq 1 cells are isolated from each
other in the kv cache (three cells, two saved ranges). save the seq 1
state, free the interleaved seq 0 cells, and restore: the destination
is then non-contiguous (two runs), and the restore-side chunking has
the same tensor count as the save-side with a different split, so the
scatter path is batched per contiguous run and the on-device reader's
byte-cursor fallback is exercised.
the restored state is saved again on the host and compared byte for
byte with the first save: the blob is serialized in sequence cell
order, so the two saves are identical if and only if the scatter
restore wrote exactly the same KV content. this documents the
byte-identical guarantee of the run-batched scatter reads.
one test per io backend: the host (CPU) path and the on-device path.
Assisted-by: Claude Code (unsloth/qwen3.8-27b)
* rpc: avoid serializing buffers from other servers
Only include remote buffer pointers when the buffer belongs to the RPC dispatcher receiving the graph. Add a two-server regression test for cross-server tensor serialization.
Assisted-by: Codex
* cont : add ref
---------
Co-authored-by: Georgi Gerganov <ggerganov@gmail.com>
The N padding is needed for mul_mat, but not mul_mat_id. For mul_mat_id,
we indirect the row index through a shared memory lookup table which avoids
any OOB row coordinate. But that callback doesn't bounds check K, so we
actually need K padding instead.
* ggml : fix conv_transpose_2d for multiple batches
ggml_compute_forward_conv_transpose_2d_impl only computed the first
batch (ne[3] of the destination); every batch after the first was left
as zero. Both the src1 permutation and the main compute loop now iterate
over the batch dimension, and the work buffer size in ggml_graph_plan is
scaled by the src1 batch count so the extra permuted batches fit. A
multi-batch test case is added to test-backend-ops.
Fixesggml-org/ggml#1448
* metal : fix conv_transpose_2d for multiple batches
The kernel only computed batch 0 of the input (src1->ne[3]); every
output batch after the first was left as zero, so multi-batch
conv_transpose_2d results diverged from the CPU reference.
The grid now covers all batches (OW x OH x OC x N), the kernel decodes
the batch from the grid z coordinate and offsets both the input and
destination indices accordingly. nb3 is passed in the kernel args.
Assisted-by: pi:llama.cpp/Qwen3.8-27B
---------
Co-authored-by: Georgi Gerganov <ggerganov@gmail.com>