| name | video-extend |
| description | Extend / continue a video temporally with Pusa 2.2 in ComfyUI — temporal flowmatching (the flowmatch_pusa scheduler + WanVideoAddPusaNoise) on the WanVideoWrapper stack with WAN 2.2 T2V A14B (HIGH/LOW) models and the Pusa V1 LoRAs, conditioning on the loaded clip via WanVideoEncode so the existing motion carries into the continuation. Covers the kijai wanvideo_2_2_14B_Pusa_extension graph, model/LoRA slots + downloads, noise/length/scheduler settings, chaining multiple extensions, VRAM tiers, gotchas, and the extend→upscale handoff. |
| globs | ["**/*.json","**/packs/**"] |
Video Extension (Pusa 2.2 — temporal flowmatching)
Overview
Pusa extends a video temporally — it continues / lengthens an existing clip
rather than regenerating it from scratch. It does this on the
ComfyUI-WanVideoWrapper stack (kijai) using the WAN 2.2 T2V A14B dual
HIGH/LOW models you already have for wan-t2v-video, plus the small Pusa V1
LoRAs and a Pusa-specific sampling path: the flowmatch_pusa scheduler and
the WanVideoAddPusaNoise node. The input clip is encoded with
WanVideoEncode and injected as the first latents of the generation — that
is what carries the existing motion/content into the continuation.
The official reference graph is kijai's
wanvideo_2_2_14B_Pusa_extension_example_01.json (in
ComfyUI-WanVideoWrapper/example_workflows/). This skill is built directly from
that workflow plus the live node schemas.
Relationship to wan-t2v-video: Pusa rides on the exact same WanVideoWrapper
stack — same T2V A14B HIGH/LOW fp8 models, same UMT5 text encoder, same WAN
VAE, same block-swap/torch-compile machinery. The only new downloads are the
two Pusa V1 LoRAs (~1.9 GB total). Read wan-t2v-video first for the base
stack; this skill is the temporal-extension delta on top of it.
⚠️ Verification note: every node, model, LoRA filename and setting below was
confirmed against the live ComfyUI /object_info (WanVideoWrapper installed)
and against kijai's example workflow JSON + HF repo (June 2026). Where a value
is a starting recommendation rather than a hard requirement it's flagged. Don't
substitute a node you can't confirm with list_installed_nodes /
get_node_info.
What "temporal flowmatching" means here (why it extends, not regenerates)
WAN is a flow-matching video model: sampling integrates a velocity field from
noise to a clean latent, and every frame normally shares the same denoising
timestep. Pusa's contribution (Vectorized Timestep Adaptation) is to make the
timestep per-frame: the frames you already have can be held at (or near)
t = 0 (clean) while the new frames start from t = 1 (noise), and the model
flow-matches the noisy tail conditioned on the clean head.
Concretely in the graph:
WanVideoEncode turns the tail of your loaded clip into a clean latent.
- That latent is placed at the front of an otherwise-empty embed
(
WanVideoEmptyEmbeds + WanVideoAddExtraLatent), so the generation's first
latents are your real footage.
WanVideoAddPusaNoise assigns small, ramping per-latent noise
multipliers to those conditioning latents (so they stay mostly clean) and
full noise to the new latents — this per-frame noise schedule is the
"vectorized timestep."
flowmatch_pusa on WanVideoSampler integrates that mixed-timestep field.
Because the conditioning latents are real (not just a single start image like
I2V), the continuation inherits the existing motion, subject, camera and
color, then keeps going. That's the difference from plain T2V (no memory of any
clip) and from I2V (conditions on one still frame only).
⭐ Recommended pipeline (the kijai extension graph)
VHS_LoadVideo (your clip)
│ IMAGE (all frames)
▼
ImageResizeKJv2 ◄── resize to 832×480 (divisible by 16), get W/H
│
├─► GetImageRangeFromBatch (tail N frames) ─► WanVideoEncode (vae, image)
│ │ LATENT = clean
│ ▼ conditioning latents
│ GetLatentSizeAndCount ─► count
│ │
WanVideoEmptyEmbeds (W,H, total_frames=81) ▼
│ WANVIDIMAGE_EMBEDS CreateScheduleFloatList
└────────► WanVideoAddExtraLatent ◄────────┘ (per-latent noise multipliers,
│ (encoded clip latent at front) ramp e.g. 0→0.2)
▼ WANVIDIMAGE_EMBEDS
WanVideoAddPusaNoise ◄── noise_multipliers (list), noisy_steps
│
┌──────────────┴───────────────┐
▼ (pass 1, HIGH) ▼ (pass 2, LOW)
WanVideoSampler (HIGH model WanVideoSampler (LOW model
+ Pusa HIGH LoRA + distill, + Pusa LOW LoRA + distill,
flowmatch_pusa, steps 6, cfg 1, flowmatch_pusa, steps 6, cfg 1,
shift 5, start 0 / end 3) shift 5, start 3 / end -1)
└──────────────┬───────────────┘
▼ LATENT
WanVideoDecode (WAN VAE)
│ IMAGE
▼
VHS_VideoCombine ─► MP4 (16 fps)
VHS_LoadVideo / VHS_VideoCombine come from ComfyUI-VideoHelperSuite
(installed). VHS_VideoCombine is preferred for the encode (audio passthrough).
- Everything
WanVideo* is ComfyUI-WanVideoWrapper (installed).
ImageResizeKJv2, GetImageRangeFromBatch, GetLatentSizeAndCount,
CreateScheduleFloatList are ComfyUI-KJNodes (installed alongside the
wrapper). They're convenience nodes — see "Minimal wiring" if you want fewer.
The two load-bearing nodes (confirmed schemas)
WanVideoAddPusaNoise — "Adds latent and timestep noise multipliers when
using flowmatch_pusa."
| Input | Type | Meaning |
|---|
embeds | WANVIDIMAGE_EMBEDS | the embeds carrying your encoded clip latents |
noise_multipliers | FLOAT (list) | per-input-latent noise; 0 = keep that latent fully clean, higher = let the model change it. In the example this is a ramp [0.0, 0.07, 0.13, 0.17, 0.19, 0.2] fed from CreateScheduleFloatList (one value per conditioning latent), so the oldest conditioning frame stays cleanest and the seam frame gets a touch of noise for smooth blending. |
noisy_steps | INT (default −1) | how many sampling steps the extra noise is applied for; the example uses 0 on the HIGH pass and 2 on the LOW pass. −1 = all steps. |
It outputs WANVIDIMAGE_EMBEDS straight into WanVideoSampler's image_embeds.
flowmatch_pusa — a value in WanVideoSampler.scheduler (confirmed present
in the dropdown: ...flowmatch_distill, flowmatch_pusa, multitalk...). It must
be selected on the sampler(s) for the Pusa noise schedule to be interpreted
correctly. The example also wires explicit WanVideoScheduler nodes set to
flowmatch_pusa, steps 6, shift 5 (one per pass, split 0–3 / 3–end).
How the input clip conditions the extension (the key wire)
WanVideoEncode(vae, image=<tail frames of clip>) → LATENT →
WanVideoAddExtraLatent (or WanVideoEmptyEmbeds.extra_latents, tooltip:
"First latent to use for the Pusa -model"). This places the real clip's
latents at the head of the embed window. The sampler then only has to generate
the tail, flow-matched onto that clean head — that is the entire trick. No
CLIPVision, no WanFirstLastFrameToVideo.
In practice: load → strip → re-point (DON'T hand-build) ⭐ preferred
The kijai wanvideo_2_2_14B_Pusa_extension_example_01.json is a 56-node graph
thick with GetNode/SetNode buses, Reroutes, and an alternate (dead) text
branch. Hand-wiring the Pusa noise / extra-latent / frame-stitch path is slow and
error-prone. The reliable flow is load the real graph, then adapt ~7 widgets:
- Stage the example anywhere on disk (e.g. copy into the ComfyUI workflows
folder).
panel_load_workflow(path: …) — drops it on the canvas server-side (no
150KB JSON through chat).
panel_strip_workflow(path: …) — returns the resolved API graph
(Get/Set/Reroute/bypass collapsed to real links). This is how you SEE what is
actually wired — it exposes both the dead text branch and the silently-reset
dropdowns below. (Raw UI JSON hides them.)
⚠️ TRAP 1 — the example's model paths reset to the WRONG file on load
The example references models by subfolder (WanVideo\2_2\…,
WanVideo\Lightx2v\…, wanvideo\Wan2_1_VAE_bf16…). On a flat local models/
layout those don't resolve, so ComfyUI silently falls each dropdown back to the
first entry in the list — e.g. both WanVideoModelLoaders land on
Qwen_Image_Edit-Q8_0.gguf and the WanVideoVAELoader on LTX23_audio_vae_bf16.
It looks wired but errors (wrong arch) or renders garbage. After loading, set
each explicitly:
| Node | Set to (local) |
|---|
WanVideoModelLoader HIGH | Wan2_2-T2V-A14B_HIGH_fp8_e4m3fn_scaled_KJ.safetensors — note underscore before HIGH |
WanVideoModelLoader LOW | Wan2_2-T2V-A14B-LOW_fp8_e4m3fn_scaled_KJ.safetensors — note dash before LOW |
WanVideoVAELoader | wan_2.1_vae.safetensors |
WanVideoLoraSelectMulti ×2, slot lora_0 | Pusa HIGH/LOW — these DO resolve if you downloaded to loras/WanVideo/Pusa/ |
WanVideoLoraSelectMulti ×2, slot lora_1 | lightx2v_T2V_14B_cfg_step_distill_v2_lora_rank128_bf16.safetensors @ 1.0 |
VHS_LoadVideo | your clip |
WanVideoTextEncodeCached positive_prompt | your continuation prompt |
The official HIGH-underscore / LOW-dash filename inconsistency is a real
trap — verify each one rather than copy-pasting.
⚠️ TRAP 2 — the distill LoRA silently drops to none
The example's lightx2v path is WanVideo\Lightx2v\…rank64_bf16_.safetensors (note
the trailing _). Locally you usually have rank128 (…rank128_bf16), so the
slot resets to none on load — which removes the speed LoRA, and 6-step /
cfg-1 sampling then produces mush. Re-add it to lora_1 (strength 1.0) on both
WanVideoLoraSelectMulti nodes. Keep merge_loras=false on both (fp8 gotcha
above).
⚠️ TRAP 3 — the active prompt is on WanVideoTextEncodeCached, not CLIPTextEncode
The example also contains a CLIPLoader → CLIPTextEncode → WanVideoTextEmbedBridge
branch (the "red panda" prompt). It is NOT wired to the samplers — both
WanVideoSampler.text_embeds come from WanVideoTextEncodeCached
(umt5-xxl-enc-bf16). Edit the prompt THERE; the CLIPTextEncode pair is a decoy
that strip_workflow will show dangling.
⚠️ TRAP 4 — match the conditioning fps to WAN-native (16)
If your source clip was frame-interpolated (e.g. RIFE'd to 32/50 fps), set
VHS_LoadVideo.force_rate = 16 so the conditioning frames carry motion at
WAN's native cadence. Otherwise the encoded "past" runs at 2–3× the model's pace
and you get a velocity jump at the seam — the exact artifact Pusa exists to
avoid. Best practice: extend the pre-interpolation 16fps master, then
interpolate/upscale the combined result afterwards, not before.
⚠️ TRAP 5 — the example assumes SageAttention + torch.compile (triton)
WanVideoModelLoader in the example sets attention_mode: sageattn and wires
a WanVideoTorchCompileSettings (inductor) into compile_args. Both are
optional accelerators with extra deps that a stock Windows ComfyUI usually lacks:
sageattn → needs the sageattention package. Missing → the model loader
hard-fails with ValueError: Can't import SageAttention: No module named 'sageattention' before any sampling. Fix: set attention_mode → sdpa
on both WanVideoModelLoaders (always available; a bit slower).
- inductor
torch.compile → needs triton (no official Windows build).
Missing → compile errors later. Fix: disconnect WanVideoTorchCompileSettings
from each model loader's compile_args (or don't load it). Only re-enable
these two if you've actually installed sageattention / triton-windows.
Check first with the ComfyUI startup log (it prints Could not load sageattention… and triton: unavailable) or list_installed_nodes.
Preferred end-to-end order
generate (or Krea2→WAN/LTX i2v) → Pusa-extend at 832×480/16fps → THEN
upscale+interpolate (hand the extended clip to the video-upscale block / a
saved Upscale4x-RIFE-1080p subgraph). Upscaling/interpolating before extending
wastes the work and feeds Pusa an off-cadence, harder-to-match conditioning clip.
Models, LoRAs & where to get them
UNET — WAN 2.2 T2V A14B (already installed for wan-t2v-video)
| Model | Loader | Notes |
|---|
Wan2_2-T2V-A14B-HIGH_fp8_e4m3fn_scaled_KJ.safetensors | WanVideoModelLoader | HighNoise expert, fp8. Quantization fp8_e4m3fn_scaled. |
Wan2_2-T2V-A14B-LOW_fp8_e4m3fn_scaled_KJ.safetensors | WanVideoModelLoader | LowNoise expert, fp8. |
Text encoder + VAE: same as wan-t2v-video — UMT5
(umt5_xxl_fp8_e4m3fn_scaled / umt5_xxl_fp16) via the wrapper's text-embed
path, and the WAN VAE (wan_2.1_vae) via WanVideoVAELoader. The example uses
WanVideoTinyVAELoader + taew2_1.safetensors for fast preview decode; use
the full WAN VAE for final-quality decode.
Pusa V1 LoRAs — the ONLY new download (~1.9 GB)
From kijai's HF repo Kijai/WanVideo_comfy, folder Pusa/ → place in
models/loras/ (the example expects them under loras/WanVideo/Pusa/):
| LoRA file | ~Size | Applies to | Strength (example) |
|---|
Wan22_PusaV1_lora_HIGH_resized_dynamic_avg_rank_98_bf16.safetensors | ~956 MB | HIGH T2V model | 1.5 |
Wan22_PusaV1_lora_LOW_resized_dynamic_avg_rank_98_bf16.safetensors | ~968 MB | LOW T2V model | 1.4 |
There is also a single-file Wan21_PusaV1_LoRA_14B_rank512_bf16.safetensors
(~4.9 GB) in the same folder — that's the Wan 2.1 single-model Pusa LoRA.
For the 2.2 dual HIGH/LOW extension graph, use the two Wan22_...rank_98
files above, matched to the correct expert. Upstream weights / paper:
RaphaelLiu/PusaV1 on HF.
Speed LoRA (paired with Pusa in the example)
The example also stacks the lightx2v T2V distill LoRA on each model via
WanVideoLoraSelectMulti, so 6-step low-CFG sampling works:
| LoRA | Strength | From |
|---|
lightx2v_T2V_14B_cfg_step_distill_v2_lora_rank64_bf16_.safetensors | 1.0 | Kijai/WanVideo_comfy/Lightx2v/ |
LoRAs are selected with WanVideoLoraSelectMulti (multi-slot) and fed into
each WanVideoModelLoader's lora input — one select feeds HIGH (Pusa HIGH +
distill), one feeds LOW (Pusa LOW + distill).
⚠️ CRITICAL — merge_loras=false on fp8 models (same gotcha as wan-t2v-video)
Pusa loads LoRAs onto the fp8-quantized T2V A14B models
(quantization=fp8_e4m3fn_scaled). As documented in wan-t2v-video: when a LoRA
is applied to an fp8 model via the wrapper's LoRA select, set merge_loras to
false. The default merge_loras=true tries to bake the LoRA into the
already-quantized fp8 weights and hard-crashes ComfyUI during LoRA loading with
no Python traceback (looks like an unexplained restart/OOM). false applies
the LoRA as a runtime patch, which is fp8-safe. This applies to both the Pusa
LoRAs and the lightx2v distill LoRA. Use merge_loras=true only on
non-quantized bf16/fp16 models.
Settings
Sampler (from the example — distilled 6-step, two-pass HIGH→LOW)
| Param | HIGH pass | LOW pass | Notes |
|---|
| model | HIGH + Pusa HIGH (1.5) + distill (1.0) | LOW + Pusa LOW (1.4) + distill (1.0) | |
| scheduler | flowmatch_pusa | flowmatch_pusa | required for Pusa |
| steps | 6 | 6 | distilled; raise to ~20–30 for the non-distill path |
| cfg | 1.0 | 1.0 | distilled low-CFG; ~5–6 without distill |
| shift | 5.0 | 5.0 | flow-matching shift |
| start_step / end_step | 0 / 3 | 3 / −1 | HIGH does early steps, LOW finishes |
noisy_steps (on AddPusaNoise) | 0 | 2 | extra-noise duration per pass |
If you drop the distill LoRA: use steps ~20–30, cfg ~5–6, keep
flowmatch_pusa and shift 5, single-pass unipc-style splitting still works
HIGH→LOW.
Pusa noise (WanVideoAddPusaNoise.noise_multipliers)
This is the dial that controls how strictly the continuation honors the input
clip vs. how free it is to diverge:
- Lower multipliers (→ 0) = conditioning latents stay clean = the
continuation clings tightly to the source frames (less drift, but can look
"stuck"/repeat).
- Higher multipliers = more noise on the conditioning latents = the model is
freer to evolve the scene (more new motion, more drift risk).
- The example ramps them
[0.0 … 0.2] across the conditioning latents (one
per encoded latent, via CreateScheduleFloatList driven by
GetLatentSizeAndCount) so the oldest frame is locked and the seam frame
gets a little noise for a smooth blend. Start there; nudge the top of the ramp
up (~0.3) if continuations feel frozen, down if they drift.
Seam color/saturation drift → ColorMatch the generated frames ⭐
The most common quality complaint with a Pusa extension: the moment you cross
the seam, the color saturates / shifts. The conditioning frames are your real
footage (near-clean latents), but the generated tail comes purely from the
model's prior — which biases toward higher contrast/saturation (worse with the
distill LoRA and fp16_fast). Motion carries fine; the palette pops.
Two fixes, best applied together:
-
base_precision: bf16 on both WanVideoModelLoaders instead of
fp16_fast. fp16_fast's reduced precision drifts over the generated tail
and compounds the saturation; bf16 is more color-stable (small speed cost).
-
Re-grade the generated frames to the source palette with a ColorMatchV2
(KJNodes) between WanVideoDecode and the final stitch/save:
image_target ← WanVideoDecode (the generated window)
image_ref ← the resized original clip (ImageResizeKJv2 output — your
real footage)
method: hm-mkl-hm (histogram→MKL→histogram; strongest at removing a
palette jump while keeping per-frame variation), strength 1.0.
- Re-route the downstream consumers (
ImageBatchMulti / ImageConcatMulti's
image_1) to take the ColorMatch output instead of the raw decode.
Tune: if under-corrected, raise strength; if washed/over-corrected, drop to
~0.6; for an even tighter temporal lock use a single clean reference frame
(the last conditioning frame) instead of the whole clip. Use ColorMatchV2
(not the deprecated ColorMatch).
This also matters for chaining — color-match every new segment to the
previous one before concat or the drift compounds hop-to-hop.
Length, frame counts & fps
WanVideoEmptyEmbeds.num_frames is the total window (conditioning frames +
new frames). The example uses 81 total (the WAN-native 4n+1 length, ~5 s
@16 fps).
- The number of new frames added = total − conditioning frames. With ~13
tail frames conditioned and 81 total, you add ~68 new frames (~4 s) per pass.
num_frames step is 4 in the node; keep total on the WAN 4n+1 grid
(49 / 81 / 121 …). frame_rate for output is 16 fps (WAN 2.2 native).
- Resolution: 832×480 default (divisible by 16).
ImageResizeKJv2 with
crop/center and divisor 16 keeps the loaded clip on-grid.
Chaining multiple extensions (making a long video)
Pusa adds a bounded window (~4 s) per run. To go longer, feed the output back
in:
- Confirm the prior clip actually rendered — via the filesystem, not
/history.
VHS_VideoCombine writes the .mp4 but frequently does NOT
register the output in ComfyUI's /history (the prompt shows done with no
output and no error). Do NOT decide the render "silently dropped" from
get_history / get_job_status alone — confirm the file with
list_output_images (it now lists videos, each tagged kind: "video"):
match the filename_prefix and check the mtime is fresh, then stage it.
- Stage the output clip as the next run's input with
stage_output_as_input (pass the rendered clip's
{ filename, subfolder?, type? }); use the returned input filename in
VHS_LoadVideo. NEVER copy the output .mp4 into, or guess, a filesystem
input/ path — ComfyUI's input/output dirs may be CUSTOM
(--input-directory / --output-directory), so a guessed path makes
VHS_LoadVideo fail to find/decode the file and wastes the run. The tool
routes through the server API (/view → /upload/image), which resolves the
real dirs correctly. (For a clip already on local disk, upload_video.)
- Run the extension → decode → save (or keep the frames in-graph).
- Take the tail of the new output (the last ~13 frames) as the next
WanVideoEncode input.
- Re-run with the same graph; the fresh tail becomes the new conditioning head.
- Repeat.
ImageConcatMulti / ImageBatchMulti (KJNodes, used in the example's
preview) stitch the segments into one continuous clip.
Practical chaining tips:
- Always condition on the newest frames, not the original clip, or you'll
"rewind."
- Drift compounds across hops (color/identity slowly wander). Keep
noise_multipliers modest and re-state the subject in the prompt each hop.
- Overlap a few frames between segments and drop duplicates at concat to hide
the seam.
- Keep the same seed discipline (fixed or deliberately varied) so motion
cadence stays consistent.
- Each hop is an independent generation —
clear_vram is not needed between
hops, but decode/cache long chains to disk so you don't hold every segment
in VRAM.
VRAM tiers
Same envelope as wan-t2v-video (dual A14B fp8 + UMT5) — Pusa adds only ~1.9 GB
of LoRA. Use the wrapper's offload tooling.
| VRAM | Setup |
|---|
| 24 GB+ | Dual fp8 A14B + Pusa LoRAs + distill. WanVideoBlockSwap (offload some blocks) for headroom; WanVideoTorchCompileSettings (inductor) for speed; sageattn. 81 frames @832×480 fits. |
| 12–16 GB | More aggressive WanVideoBlockSwap; enable VAE tiling on WanVideoEncode (enable_vae_tiling=true, 272/144 tiles) and on WanVideoDecode; drop total frames to 49; consider single-pass. |
| 8 GB | Tight — heavy block swap + tiled VAE + 49 frames + tiny VAE preview decode. Expect slow. |
WanVideoModelLoader quant fp8_e4m3fn_scaled, base precision fp16_fast,
offload_device, sageattn (the example's settings).
- Always
clear_vram before switching to this from another model family.
- Encoder VAE tiling (
WanVideoEncode) matters here because you're VAE-encoding
real footage in addition to decoding output.
Gotchas
- Loading the example silently resets model/VAE/distill-LoRA dropdowns to the
wrong first entry (subfolder paths don't resolve on a flat layout) — the #1
cause of a Pusa run that errors or generates wrong content. See "In practice:
load → strip → re-point" and re-point ALL of them. Use
strip_workflow to spot
it.
- The prompt lives on
WanVideoTextEncodeCached, not the CLIPTextEncode
"decoy" branch (which isn't wired to the samplers).
- Interpolated source → seam speed jump — set
VHS_LoadVideo.force_rate = 16,
or condition on the pre-interpolation 16 fps master.
sageattn / torch.compile errors — the example assumes SageAttention +
triton. On a box without them, set attention_mode=sdpa and disconnect
WanVideoTorchCompileSettings from both model loaders (TRAP 5).
- Saturation/color pop after the seam — re-grade the generated frames with a
ColorMatchV2 (hm-mkl-hm) referencing the source clip, and use bf16 not
fp16_fast (see "Seam color/saturation drift").
- Scheduler must be
flowmatch_pusa. Leaving it on unipc/euler ignores
the Pusa per-latent noise schedule → the conditioning latents don't behave as
clean anchors and you get a hard cut / regeneration instead of a smooth
continuation.
merge_loras=false on fp8 (see CRITICAL above) — applies to the Pusa
and distill LoRAs; default true silently kills the process.
- Match Pusa LoRA to expert:
...HIGH... → HIGH model, ...LOW... → LOW
model. Crossing them degrades quality. Don't substitute the Wan 2.1
single-file rank512 LoRA into the 2.2 dual graph.
- Frame-count grid: keep
num_frames on 4n+1 (49/81/121). Off-grid
totals can error or pad oddly. num_frames UI step is 4.
- Motion drift / "frozen" continuation: tune
noise_multipliers. Too low =
stuck/looping; too high = subject/scene wanders. The 0→0.2 ramp is the safe
middle.
- Color/exposure drift across chained hops is the most common long-video
artifact. Mitigate: modest noise, restate the prompt, and optionally
color-match each new segment to the previous before concat.
- Audio: WAN/Pusa generate silent video. The original clip's audio is
not extended. Re-attach/curate audio at the end with
VHS_VideoCombine
(pass the source audio through) or in an editor — and note the new section
has no native sound.
- ffmpeg required for the final mux (same as the other video skills): if
VHS_VideoCombine errors ffmpeg ... could not be found, run
<comfy-venv>/python -m pip install imageio-ffmpeg and reboot.
- Preview vs final VAE:
taew2_1 (TinyVAE) is for fast preview decode; decode
the final with the full WAN VAE for quality.
Minimal wiring (if you want fewer KJNodes)
The KJNodes (GetImageRangeFromBatch, GetLatentSizeAndCount,
CreateScheduleFloatList, ImageResizeKJv2) are conveniences. The irreducible
chain is:
load clip → (resize to 16-grid) → WanVideoEncode(vae, tail frames) → LATENT
WanVideoEmptyEmbeds(W,H,total) [extra_latents = that LATENT] → embeds
embeds → WanVideoAddPusaNoise(noise_multipliers, noisy_steps) → embeds
WanVideoSampler(model+Pusa LoRA, embeds, scheduler=flowmatch_pusa, shift 5) → LATENT
WanVideoDecode(WAN VAE) → VHS_VideoCombine
You can hand a constant list to noise_multipliers instead of building a ramp;
the ramp just smooths the seam. Two-pass HIGH→LOW is recommended (matches WAN
2.2's MoE) but a single LOW-model pass works for quick tests.
See also
wan-t2v-video — the base WAN 2.2 T2V stack this builds on (model/encoder/
VAE loading, the merge_loras=false fp8 gotcha in full, block-swap/VRAM).
Read it first.
video-upscale — the natural next step: extend, then upscale. Generate
/ extend at 832×480, then run the result through the
downscale → SeedVR2 (temporal restore+upscale) → RIFE → VHS encode pipeline
for a clean, higher-res, higher-fps final. Do the extension first, upscale
last (upscaling then extending wastes the restorer's work and risks re-drift).
ltxv2-video — an alternative video family with its own extender variant;
Pusa/WAN is the path when you want to continue an existing WAN-style clip.
Packs
No dedicated video-extend installer pack ships yet. Since Pusa reuses the
installed WanVideoWrapper + KJNodes + VideoHelperSuite stack, a pack only needs to
ensure those custom_nodes[] (kijai/ComfyUI-WanVideoWrapper,
Kijai/ComfyUI-KJNodes, Kosinkadink/ComfyUI-VideoHelperSuite) plus the two Pusa V1
LoRAs in models[] (from Kijai/WanVideo_comfy/Pusa/). The big T2V A14B models
are shared with wan-t2v-video — don't re-download. Install nodes ad-hoc with
panel_install_node or apply a manifest with apply_manifest. Contribute a
finished pack upstream (github.com/artokun/comfyui-mcp).