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Glosarium AI

Kamus lengkap Kecerdasan Buatan

162
kategori
2.032
subkategori
23.060
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Instance segmentation

Advanced technique that segments each object individually in an image, distinguishing different instances of the same semantic class.

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Panoptic segmentation

Unified approach combining semantic segmentation and instance segmentation to provide a complete understanding of all pixels in the image.

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U-Net

Convolutional neural network architecture with encoder-decoder structure and skip connections, optimized for medical and biological segmentation.

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Superpixels

Groups of connected pixels sharing similar characteristics (color, texture), used as primitives to reduce computational complexity.

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Watershed

Segmentation algorithm based on topography that treats the image as a topographic relief to identify watersheds and dividing lines.

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DeepLab

Family of semantic segmentation models using atrous convolutions to capture multi-scale context without losing spatial resolution.

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FCN (Fully Convolutional Network)

First fully convolutional deep learning architecture enabling pixel-by-pixel segmentation by replacing fully-connected layers with convolutions.

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Active Contours

Parametric segmentation method using deformable curves that evolve under the influence of internal and external forces to delimit objects.

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Region Growing

Iterative segmentation algorithm that grows regions from seed points by adding neighboring pixels that meet homogeneity criteria.

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Graph Cut

Segmentation approach based on graph theory that formulates the problem as a cut energy minimization in a graph constructed from the image.

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Thresholding

Binary segmentation technique that classifies pixels into two categories by comparing their intensity to one or more predefined thresholds.

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Mean Shift

Non-parametric clustering algorithm that identifies modes in the distribution of pixels in color and spatial space for segmentation.

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GrabCut

Interactive segmentation algorithm based on graph cut using Gaussian mixture models to model foreground and background.

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CRF (Conditional Random Field)

Discriminative probabilistic model used to refine segmentation results by modeling spatial dependencies between neighboring pixels.

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Atrous Convolution

Convolution operation with holes that increases the receptive field without increasing parameters, essential for semantic segmentation.

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IoU (Intersection over Union)

Standard evaluation metric measuring the overlap between predicted segmentation masks and ground truths.

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