prompthunt / cog-with-tile

  • Public
  • 50 runs
  • L40S

Input

string
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Weights url

file

Optional Image to use for guidance based on posenet

file

Direct Pose image to use for guidance based on posenet, if available, ignores control_image

file

Optional Image to use for img2img guidance

file

Optional Mask to use for legacy inpainting

string
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Input prompt

Default: "photo of cjw person"

string
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Specify things to not see in the output. Supported embeddings: realisticvision-negative-embedding, EasyNegative, FastNegativeV2, BadDream, ng_deepnegative_v1_75t, UnrealisticDream, negative_hand-neg

Default: ""

integer

Width of output image

Default: 512

integer

Height of output image

Default: 512

integer
(minimum: 1, maximum: 40)

Number of images to output.

Default: 1

integer
(minimum: 1, maximum: 500)

Number of denoising steps

Default: 50

number
(minimum: 1, maximum: 50)

Scale for classifier-free guidance

Default: 7.5

number
(minimum: 0, maximum: 1)

Prompt strength when using init image. 1.0 corresponds to full destruction of information in init image

Default: 0.8

string

Choose a scheduler.

Default: "DPMSolverMultistep"

integer

Random seed. Leave blank to randomize the seed

boolean

Should swap face

Default: false

file

Source image for face swap

boolean

Show debug images

Default: false

string
Shift + Return to add a new line

Input prompt

string
Shift + Return to add a new line

Input prompt

string
Shift + Return to add a new line

Input prompt

file

Direct Pose image to use for guidance based on posenet, if available, ignores control_image

file

Direct Pose image to use for guidance based on posenet, if available, ignores control_image

file

Direct Pose image to use for guidance based on posenet, if available, ignores control_image

number

Tile strength

Default: 0.2

integer

Tile steps

Default: 32

number

Tile scale

Default: 1.5

Output

No output yet! Press "Submit" to start a prediction.

Run time and cost

This model costs approximately $0.026 to run on Replicate, or 38 runs per $1, but this varies depending on your inputs. It is also open source and you can run it on your own computer with Docker.

This model runs on Nvidia L40S GPU hardware. Predictions typically complete within 27 seconds. The predict time for this model varies significantly based on the inputs.

Readme

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