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@@ -175,52 +175,52 @@ const configSchema = {
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description: 'A basic credential holding the sdcpp-restapi username and password',
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dynamicOptions: { source: 'credentials', filter: { type: ['sdcpp', 'basic'] } }
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},
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- batchCount: { title: "Batch Count", description: "Number of independent images to produce in this single job. Each image gets a different seed (`seed`, `seed+1`, …). Total VRAM doesn't grow with batch_count — sd.cpp serializes. Recommended: 1 for interactive, higher when you want a grid of variations from one prompt. Leave empty for the architecture default.", type: "number" },
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- cacheMode: { title: "Cache Mode", description: "DiT-model intermediate caching strategy. Skips redundant computation across consecutive sampler steps when the model's intermediate state hasn't changed enough to matter. `easycache` is the simplest; `spectrum` is the newest, generally best for Flux/SD3/Z-Image. Recommended: spectrum for Flux/SD3/Z-Image when generation is too slow. Off for SD1.5/SDXL (UNet is too small for caching to win). Leave empty for the architecture default.", type: "string", enum: ["", "easycache", "spectrum"], enumLabels: ["(architecture default)", "EasyCache — single threshold, simple", "Spectrum — frequency-domain analysis (best quality/speed tradeoff)"], default: "" },
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- cfgScale: { title: "CFG Scale", description: "Classifier-Free Guidance scale. Strength of pushing the cond toward the prompt vs the uncond. Higher = follows prompt more aggressively but can over-saturate. Set to 1.0 to disable CFG (skips the uncond pass — twice as fast). Recommended: SD1.5: 7. SDXL: 4–8. Flux Dev: 1 (CFG bypassed in flow models). Z-Image: 1. Schnell/Turbo: 1. Leave empty for the architecture default.", type: "number" },
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+ batchCount: { title: "Batch Count", description: "Number of independent images to produce in this single job. Each image gets a different seed (`seed`, `seed+1`, …). Total VRAM doesn't grow with batch_count - sd.cpp serializes. Recommended: 1 for interactive, higher when you want a grid of variations from one prompt. Leave empty for the architecture default.", type: "number" },
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+ cacheMode: { title: "Cache Mode", description: "DiT-model intermediate caching strategy. Skips redundant computation across consecutive sampler steps when the model's intermediate state hasn't changed enough to matter. `easycache` is the simplest; `spectrum` is the newest, generally best for Flux/SD3/Z-Image. Recommended: spectrum for Flux/SD3/Z-Image when generation is too slow. Off for SD1.5/SDXL (UNet is too small for caching to win). Leave empty for the architecture default.", type: "string", enum: ["", "easycache", "spectrum"], enumLabels: ["(architecture default)", "EasyCache - single threshold, simple", "Spectrum - frequency-domain analysis (best quality/speed tradeoff)"], default: "" },
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+ cfgScale: { title: "CFG Scale", description: "Classifier-Free Guidance scale. Strength of pushing the cond toward the prompt vs the uncond. Higher = follows prompt more aggressively but can over-saturate. Set to 1.0 to disable CFG (skips the uncond pass - twice as fast). Recommended: SD1.5: 7. SDXL: 4-8. Flux Dev: 1 (CFG bypassed in flow models). Z-Image: 1. Schnell/Turbo: 1. Leave empty for the architecture default.", type: "number" },
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clipSkip: { title: "CLIP Skip", description: "Skip the last N layers of CLIP when encoding the prompt. -1 = use the model's recommended default. 2 is the classic anime-model setting. Recommended: -1 (auto). Set to 2 for anime/cartoon SD1.5 fine-tunes. Leave empty for the architecture default.", type: "number" },
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- controlImageBase64: { title: "ControlNet Image (base64)", description: "Base64-encoded pre-processed control image. Must match the ControlNet model loaded — Canny edges for canny model, depth map for depth model, etc. sd.cpp does not pre-process; you do that client-side. Recommended: Required when using ControlNet. Leave empty for the architecture default.", type: "string" },
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- controlStrength: { title: "ControlNet Strength", description: "How much the ControlNet influences the diffusion process (0.0–1.0). Lower = looser following, higher = tighter following at cost of overall coherence. Recommended: 0.6–0.9 for most uses. Lower for creative prompts where control should be a hint, not a constraint. Leave empty for the architecture default.", type: "number" },
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- customSigmas: { title: "Custom Sigma Schedule", description: "Replace the scheduler's noise sigma sequence with a hand-tuned one. Bypasses `scheduler`. Empty array = use the chosen scheduler. Recommended: Empty unless you're hand-tuning per-step noise levels — niche. Leave empty for the architecture default.", type: "array", items: {"type": "number"} },
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+ controlImageBase64: { title: "ControlNet Image (base64)", description: "Base64-encoded pre-processed control image. Must match the ControlNet model loaded - Canny edges for canny model, depth map for depth model, etc. sd.cpp does not pre-process; you do that client-side. Recommended: Required when using ControlNet. Leave empty for the architecture default.", type: "string" },
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+ controlStrength: { title: "ControlNet Strength", description: "How much the ControlNet influences the diffusion process (0.0-1.0). Lower = looser following, higher = tighter following at cost of overall coherence. Recommended: 0.6-0.9 for most uses. Lower for creative prompts where control should be a hint, not a constraint. Leave empty for the architecture default.", type: "number" },
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+ customSigmas: { title: "Custom Sigma Schedule", description: "Replace the scheduler's noise sigma sequence with a hand-tuned one. Bypasses `scheduler`. Empty array = use the chosen scheduler. Recommended: Empty unless you're hand-tuning per-step noise levels - niche. Leave empty for the architecture default.", type: "array", items: {"type": "number"} },
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distilledGuidance: { title: "Distilled Guidance", description: "Distilled-CFG scale for models that bake the CFG behavior into the diffusion model itself (Flux). Replaces the runtime CFG split. Recommended: Flux Dev: 3.5 (sd.cpp default). Other architectures: ignored. Leave empty for the architecture default.", type: "number" },
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easycacheEnd: { title: "EasyCache End (% of steps)", description: "Fraction of steps after which EasyCache turns off (last few steps fully recomputed for sharpness). Recommended: 0.95. Leave empty for the architecture default.", type: "number" },
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easycacheStart: { title: "EasyCache Start (% of steps)", description: "Fraction of steps before EasyCache becomes active. Small to skip the early high-noise steps where caching hurts. Recommended: 0.15. Leave empty for the architecture default.", type: "number" },
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- easycacheThreshold: { title: "EasyCache Threshold", description: "Reuse threshold for EasyCache. Higher = more aggressive reuse (faster but more quality loss). Range typically 0.05–0.4. Recommended: 0.2 starting point. Tune up for more speed, down for more quality. Leave empty for the architecture default.", type: "number" },
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+ easycacheThreshold: { title: "EasyCache Threshold", description: "Reuse threshold for EasyCache. Higher = more aggressive reuse (faster but more quality loss). Range typically 0.05-0.4. Recommended: 0.2 starting point. Tune up for more speed, down for more quality. Leave empty for the architecture default.", type: "number" },
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eta: { title: "Eta", description: "Stochasticity parameter for DDIM-family samplers. 0 = deterministic, 1 = max stochasticity (matches DDPM noise schedule). Most other samplers ignore this. Recommended: 0 (deterministic, reproducible). Raise only with DDIM-trailing for some variation. Leave empty for the architecture default.", type: "number" },
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expandPrompt: { title: "Expand Prompt Template", description: "If true, parse `prompt` for a1111-style dynamic-prompts syntax (`{a|b|c}`, `{N$$a|b|c}`) and create one queue item per variation. The response then carries `group_id` + `variation_count` + `job_ids[]` instead of a single `job_id`. Hard cap: 200 variations per request. Recommended: Enable when your prompt actually contains `{…}` syntax. Leave empty for the architecture default.", type: "boolean" },
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flowShift: { title: "Flow Shift", description: "Per-generation flow-matching shift parameter for Flux / SD3 / Z-Image models. Higher values shift sampling toward larger noise levels longer. Per-call override; the load-time `flow_shift` is the default if this isn't set. Recommended: Flux Dev: 1.0. Z-Image: 3.0. SD3 Medium: 3.0. Leave empty for the architecture default.", type: "number" },
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height: { title: "Height (px)", description: "Output image height in pixels. Same divisibility constraint as `width`. Recommended: Match training resolution. For non-square: total pixel count close to native is more important than aspect ratio. Leave empty for the architecture default.", type: "number" },
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negativePrompt: { title: "Negative Prompt", description: "What to push the model away from. Has effect only when `cfg_scale > 1` (CFG is what compares cond vs uncond). Ignored on architectures that don't use CFG (most flow-matching models default to `cfg_scale = 1`). Recommended: Optional. Empty is a fine default for Flux / SD3 / Z-Image. Leave empty for the architecture default.", type: "string", format: "textarea" },
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pmIdEmbedPath: { title: "PhotoMaker ID Embed Path", description: "Server-side path to a pre-computed PhotoMaker ID embedding. Skips per-generation ID encoding. Recommended: Empty unless you've pre-computed an embedding for repeated use. Leave empty for the architecture default.", type: "string" },
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- pmIdImages: { title: "PhotoMaker ID Images (base64)", description: "Reference images for PhotoMaker identity preservation. Multiple faces of the same person. Recommended: 3–5 images of the same person from different angles when using PhotoMaker. Leave empty for the architecture default.", type: "array", items: {"type": "string"} },
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+ pmIdImages: { title: "PhotoMaker ID Images (base64)", description: "Reference images for PhotoMaker identity preservation. Multiple faces of the same person. Recommended: 3-5 images of the same person from different angles when using PhotoMaker. Leave empty for the architecture default.", type: "array", items: {"type": "string"} },
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pmStyleStrength: { title: "PhotoMaker Style Strength", description: "PhotoMaker style-vs-identity tradeoff. Higher = more style influence, less identity preservation. Recommended: 20 (sd.cpp default). Drop to 10 for stronger identity preservation. Leave empty for the architecture default.", type: "number" },
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- prompt: { title: "Prompt", description: "Text prompt fed to the model's text encoder (CLIP / T5 / LLM). Supports inline `<lora:name:weight>` tags — these are auto-extracted into the LoRA list before being sent to the encoder. Supports a1111-style dynamic-prompts (`{a|b|c}`) when `expand_prompt: true` is set. Recommended: Required. Leave empty for the architecture default.", type: "string", format: "textarea" },
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+ prompt: { title: "Prompt", description: "Text prompt fed to the model's text encoder (CLIP / T5 / LLM). Supports inline `<lora:name:weight>` tags - these are auto-extracted into the LoRA list before being sent to the encoder. Supports a1111-style dynamic-prompts (`{a|b|c}`) when `expand_prompt: true` is set. Recommended: Required. Leave empty for the architecture default.", type: "string", format: "textarea" },
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refImageArgs: { title: "Reference Image Args", description: "Comma-separated k=v flags controlling reference-image preprocessing (e.g. `resize_before_vae=0,ref_index_mode=increase`). Replaces the previous auto_resize_ref_image / increase_ref_index bools. See sd.cpp docs. Recommended: Leave empty unless you need to override defaults. Leave empty for the architecture default.", type: "string" },
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refImages: { title: "Reference Images (base64)", description: "Base64-encoded reference images for Flux Kontext / image-edit. Each image gets encoded into the conditioner alongside the text prompt. Recommended: Use for Flux Kontext or models that accept reference images. Leave empty for the architecture default.", type: "array", items: {"type": "string"} },
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- sampler: { title: "Sampler", description: "Sampling algorithm. Different samplers can produce different images at the same seed; quality and speed differ too. Recommended: euler_a (general), dpmpp2m (SD1.5/SDXL), euler (Flux/SD3/Z-Image), lcm (LCM models). Leave empty for the architecture default.", type: "string", enum: ["", "ddim_trailing", "dpm2", "dpmpp2m", "dpmpp2mv2", "dpmpp2s_a", "er_sde", "euler", "euler_a", "heun", "ipndm", "ipndm_v", "lcm", "res_2s", "res_multistep", "tcd"], enumLabels: ["(architecture default)", "DDIM trailing — required for some fine-tunes", "DPM2 — 2nd-order, balanced", "DPM++ 2M — fast, good quality", "DPM++ 2M v2 — improved schedule", "DPM++ 2S ancestral — popular for SDXL", "ER SDE — SDE sampler (added recently)", "Euler — simple, fast, deterministic", "Euler ancestral — adds noise each step (less reproducible, more variet", "Heun — 2nd-order, slower, sometimes higher quality", "IPNDM", "IPNDM-V", "LCM — for LCM-finetuned models (4–8 step generation)", "RES 2S", "RES multistep — flow-model variant", "TCD — for TCD-finetuned models"], default: "" },
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- scheduler: { title: "Scheduler", description: "Determines the noise schedule (the timesteps the sampler walks through). Pairs with the sampler — some combinations (e.g. karras+dpmpp2m) are well-tested, others may be off. Recommended: discrete or karras for SD1.5/SDXL; simple for Flux/SD3; smoothstep for Z-Image. Leave empty for the architecture default.", type: "string", enum: ["", "ays", "bong_tangent", "discrete", "exponential", "gits", "karras", "kl_optimal", "lcm", "sgm_uniform", "simple", "smoothstep"], enumLabels: ["(architecture default)", "Align Your Steps (AYS) — auto-tuned", "Bong Tangent", "Discrete — uniform across model timesteps (default)", "Exponential", "GITS", "Karras — concentrates more steps near the end, common for SDXL", "KL optimal", "LCM — for LCM samplers", "SGM uniform — for SGM-trained models", "Simple — used by Flux / SD3 flow models", "Smoothstep — Z-Image's recommended scheduler"], default: "" },
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+ sampler: { title: "Sampler", description: "Sampling algorithm. Different samplers can produce different images at the same seed; quality and speed differ too. Recommended: euler_a (general), dpmpp2m (SD1.5/SDXL), euler (Flux/SD3/Z-Image), lcm (LCM models). Leave empty for the architecture default.", type: "string", enum: ["", "euler", "euler_a", "heun", "dpm2", "dpm++2s_a", "dpm++2m", "dpm++2mv2", "ipndm", "ipndm_v", "lcm", "ddim_trailing", "tcd", "res_multistep", "res_2s", "er_sde", "euler_cfg_pp", "euler_a_cfg_pp", "euler_ge", "dpm++2m_sde", "dpm++2m_sde_bt", "lms"], enumLabels: ["(architecture default)", "Euler - simple, fast, deterministic", "Euler ancestral - adds noise each step (less reproducible, more variet", "Heun - 2nd-order, slower, sometimes higher quality", "DPM2 - 2nd-order, balanced", "dpm++2s_a", "dpm++2m", "dpm++2mv2", "IPNDM", "IPNDM-V", "LCM - for LCM-finetuned models (4-8 step generation)", "DDIM trailing - required for some fine-tunes", "TCD - for TCD-finetuned models", "RES multistep - flow-model variant", "RES 2S", "ER SDE - SDE sampler (added recently)", "euler_cfg_pp", "euler_a_cfg_pp", "euler_ge", "dpm++2m_sde", "dpm++2m_sde_bt", "lms"], default: "" },
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+ scheduler: { title: "Scheduler", description: "Determines the noise schedule (the timesteps the sampler walks through). Pairs with the sampler - some combinations (e.g. karras+dpmpp2m) are well-tested, others may be off. Recommended: discrete or karras for SD1.5/SDXL; simple for Flux/SD3; smoothstep for Z-Image. Leave empty for the architecture default.", type: "string", enum: ["", "discrete", "karras", "exponential", "ays", "gits", "sgm_uniform", "simple", "smoothstep", "kl_optimal", "lcm", "bong_tangent", "ltx2", "logit_normal", "flux", "flux2", "beta", "normal"], enumLabels: ["(architecture default)", "Discrete - uniform across model timesteps (default)", "Karras - concentrates more steps near the end, common for SDXL", "Exponential", "Align Your Steps (AYS) - auto-tuned", "GITS", "SGM uniform - for SGM-trained models", "Simple - used by Flux / SD3 flow models", "Smoothstep - Z-Image's recommended scheduler", "KL optimal", "LCM - for LCM samplers", "Bong Tangent", "ltx2", "logit_normal", "flux", "flux2", "beta", "normal"], default: "" },
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seed: { title: "Seed", description: "RNG seed for the initial noise tensor (and stochastic samplers). -1 = pick a random one each generation. Same seed + same prompt + same model = same image. Recommended: -1 for variety. Pin a specific number for A/B comparing prompt or sampler changes. Leave empty for the architecture default.", type: "number" },
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- shiftedTimestep: { title: "Shifted Timestep", description: "Start the sampling schedule from a non-final timestep (used by NitroFusion and similar fast-sampling fine-tunes). 0 = standard schedule. 250–500 = NitroFusion's range. Recommended: 0 unless you're explicitly running a NitroFusion-style fine-tune. Leave empty for the architecture default.", type: "number" },
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+ shiftedTimestep: { title: "Shifted Timestep", description: "Start the sampling schedule from a non-final timestep (used by NitroFusion and similar fast-sampling fine-tunes). 0 = standard schedule. 250-500 = NitroFusion's range. Recommended: 0 unless you're explicitly running a NitroFusion-style fine-tune. Leave empty for the architecture default.", type: "number" },
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skipLayers: { title: "SLG Skip Layers", description: "Which transformer layers to skip during the SLG unconditional pass. SD3.5 Medium uses [7, 8, 9]. Recommended: [7,8,9] for SD3.5 Medium. Other models: leave default, ignored when slg_scale=0. Leave empty for the architecture default.", type: "array", items: {"type": "number"} },
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- slgEnd: { title: "SLG End (% of steps)", description: "Fraction of the sampler schedule at which SLG turns off. Recommended: 0.2 (early-cycle only — late-cycle SLG hurts quality). Leave empty for the architecture default.", type: "number" },
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- slgScale: { title: "SLG Scale", description: "Skip Layer Guidance scale. Selectively zeros out a few diffusion layers when computing the unconditional pass — improves anatomy / coherence on SD3.5-medium and similar. 0 = disabled. Recommended: 0 for most models. 2.5 for SD3.5 Medium with the recommended skip layers. Leave empty for the architecture default.", type: "number" },
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- slgStart: { title: "SLG Start (% of steps)", description: "Fraction of the sampler schedule (0.0–1.0) at which SLG kicks in. Recommended: 0.01 (almost from the start). Leave empty for the architecture default.", type: "number" },
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- spectrumFlexWindow: { title: "Spectrum Cache: flex window", description: "Spectrum-cache flexibility window (0.0–1.0). Recommended: 0.5. Leave empty for the architecture default.", type: "number" },
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+ slgEnd: { title: "SLG End (% of steps)", description: "Fraction of the sampler schedule at which SLG turns off. Recommended: 0.2 (early-cycle only - late-cycle SLG hurts quality). Leave empty for the architecture default.", type: "number" },
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+ slgScale: { title: "SLG Scale", description: "Skip Layer Guidance scale. Selectively zeros out a few diffusion layers when computing the unconditional pass - improves anatomy / coherence on SD3.5-medium and similar. 0 = disabled. Recommended: 0 for most models. 2.5 for SD3.5 Medium with the recommended skip layers. Leave empty for the architecture default.", type: "number" },
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+ slgStart: { title: "SLG Start (% of steps)", description: "Fraction of the sampler schedule (0.0-1.0) at which SLG kicks in. Recommended: 0.01 (almost from the start). Leave empty for the architecture default.", type: "number" },
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+ spectrumFlexWindow: { title: "Spectrum Cache: flex window", description: "Spectrum-cache flexibility window (0.0-1.0). Recommended: 0.5. Leave empty for the architecture default.", type: "number" },
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spectrumLam: { title: "Spectrum Cache: λ", description: "Spectrum-cache regularization λ. Recommended: 0.5. Leave empty for the architecture default.", type: "number" },
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spectrumM: { title: "Spectrum Cache: m", description: "Spectrum-cache moving-average length. Recommended: 5. Leave empty for the architecture default.", type: "number" },
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spectrumStopPercent: { title: "Spectrum Cache: stop percent", description: "Fraction of steps after which spectrum cache disengages (last steps recomputed). Recommended: 0.8. Leave empty for the architecture default.", type: "number" },
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spectrumW: { title: "Spectrum Cache: w", description: "Spectrum-cache `w` weight (frequency cutoff). Higher = retains more spectrum, less speedup. Recommended: 0.5 default. See sd.cpp PR #1322 for tuning. Leave empty for the architecture default.", type: "number" },
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spectrumWarmupSteps: { title: "Spectrum Cache: warmup steps", description: "Steps at the start of sampling before spectrum cache becomes active. Recommended: 2. Leave empty for the architecture default.", type: "number" },
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spectrumWindowSize: { title: "Spectrum Cache: window size", description: "Spectrum-cache analysis window size in steps. Recommended: 3. Leave empty for the architecture default.", type: "number" },
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- steps: { title: "Sampling Steps", description: "Number of denoising steps the sampler runs. More steps = closer to the model's converged output, with diminishing returns. Distilled models (Flux Schnell, SDXL Turbo, Z-Image Turbo) need only 4–8. Recommended: 20–30 for SD1.5/SDXL, 20 for Flux Dev, 4–8 for *-Turbo or Schnell variants. Leave empty for the architecture default.", type: "number" },
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+ steps: { title: "Sampling Steps", description: "Number of denoising steps the sampler runs. More steps = closer to the model's converged output, with diminishing returns. Distilled models (Flux Schnell, SDXL Turbo, Z-Image Turbo) need only 4-8. Recommended: 20-30 for SD1.5/SDXL, 20 for Flux Dev, 4-8 for *-Turbo or Schnell variants. Leave empty for the architecture default.", type: "number" },
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upscale: { title: "Upscale After Generate", description: "Run the loaded ESRGAN upscaler on the output image after generation. Requires an upscaler to be loaded via POST /upscaler/load. Recommended: On for one-shot 'generate then upscale' workflows. Leave empty for the architecture default.", type: "boolean" },
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upscaleAutoUnload: { title: "Auto-unload Upscaler", description: "Free upscaler VRAM right after the upscale step. Useful when you generated with `upscale: true` and want VRAM back for other work. Recommended: On. Leave empty for the architecture default.", type: "boolean" },
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- upscaleRepeats: { title: "Upscale Repeats", description: "Number of post-generation auto-upscale passes (each with the upscaler's native factor — 4× ESRGAN × 2 passes = 16×). DISTINCT from the `/upscale` endpoint's own `repeats` field, which controls passes inside a single upscale job. `upscale_repeats` only chains additional /upscale calls after txt2img / img2img finish. Recommended: 1. Two passes amplify artifacts, but produces large outputs from small inputs. Leave empty for the architecture default.", type: "number" },
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+ upscaleRepeats: { title: "Upscale Repeats", description: "Number of post-generation auto-upscale passes (each with the upscaler's native factor - 4× ESRGAN × 2 passes = 16×). DISTINCT from the `/upscale` endpoint's own `repeats` field, which controls passes inside a single upscale job. `upscale_repeats` only chains additional /upscale calls after txt2img / img2img finish. Recommended: 1. Two passes amplify artifacts, but produces large outputs from small inputs. Leave empty for the architecture default.", type: "number" },
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vaeTileOverlap: { title: "VAE Tile Overlap", description: "Overlap fraction between VAE tiles for seam blending. Recommended: 0.5. Leave empty for the architecture default.", type: "number" },
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vaeTileSizeX: { title: "VAE Tile Width", description: "Width of VAE tiles when tiling is on. 0 = use load-time default. Recommended: 0. Leave empty for the architecture default.", type: "number" },
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vaeTileSizeY: { title: "VAE Tile Height", description: "Height of VAE tiles. 0 = use load-time default. Recommended: 0. Leave empty for the architecture default.", type: "number" },
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vaeTiling: { title: "VAE Tiling", description: "Per-generation override of the model-load `vae_tiling`. Process VAE encode/decode in tiles to reduce peak VRAM. Recommended: Enable for ≥2048 px outputs. Otherwise leave to the load-time default. Leave empty for the architecture default.", type: "boolean" },
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- width: { title: "Width (px)", description: "Output image width in pixels. Must be divisible by the model's patch size (typically 8 or 16). Architectures have native resolutions they were trained at — going far off them can degrade quality. Recommended: Match the architecture's training resolution: SD1.5=512, SDXL=1024, Flux/SD3/Z-Image=1024, Wan video=832. Leave empty for the architecture default.", type: "number" },
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+ width: { title: "Width (px)", description: "Output image width in pixels. Must be divisible by the model's patch size (typically 8 or 16). Architectures have native resolutions they were trained at - going far off them can degrade quality. Recommended: Match the architecture's training resolution: SD1.5=512, SDXL=1024, Flux/SD3/Z-Image=1024, Wan video=832. Leave empty for the architecture default.", type: "number" },
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ipAdapterImageBase64: { title: "IP-Adapter Image (base64)", description: "A reference image whose style and subject guide the result, as base64. Needs an IP-Adapter loaded alongside the model - see the Load Model node. Recommended: Take it from a Download or Fetch Output node rather than pasting one in. Leave empty for the architecture default.", type: "string" },
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ipAdapterStrength: { title: "IP-Adapter Strength", description: "How strongly the reference image guides the result. Recommended: 1.0 is the upstream default. Lower it when the reference is overwhelming the prompt. Leave empty for the architecture default.", type: "number" },
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title: { type: "string", title: "Job Title", description: "Optional label stored with the job, useful for finding it again in the queue" },
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@@ -387,6 +387,14 @@ const GENERATION_OPTIONS = [
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{ setting: "ipAdapterStrength", server: "ip_adapter_strength" }
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];
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+// What the server accepts for each choice, as it described them when this
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+// file was generated. See scripts/gen-sdcpp-generation-options.py.
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+const KNOWN_CHOICES = {
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+ "cacheMode": ["easycache", "spectrum"],
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+ "sampler": ["ddim_trailing", "dpm2", "dpmpp2m", "dpmpp2mv2", "dpmpp2s_a", "er_sde", "euler", "euler_a", "heun", "ipndm", "ipndm_v", "lcm", "res_2s", "res_multistep", "tcd"],
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+ "scheduler": ["ays", "bong_tangent", "discrete", "exponential", "gits", "karras", "kl_optimal", "lcm", "sgm_uniform", "simple", "smoothstep"]
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|
|
+};
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|
|
+
|
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async function execute(config, input, context) {
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const server = normalizeServer(config.serverUrl);
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const timeout = config.timeout || 30000;
|