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Atlas de IA

GLOSSARY

Glossário

Todos os termos-chave dispersos pelas entradas, reunidos em um único índice.

193 termos

3 1

3D Gaussian Splatting

Representing a scene with many 3D Gaussian ellipsoids for fast rendering

EmGeração multimodal

A 9

Accelerator

A high-throughput parallel unit such as a GPU or TPU

EmInfraestrutura de treinamento e inferência
Action A

What the agent can do; either discrete or continuous

EmProcesso de decisão de Markov
Action value Q(s, a)

Expected discounted return after forcing the first action to be a

EmFunções de valor e Q-learning
Activation function

A function that applies a nonlinear transform to the weighted sum

EmNeurônio e perceptron
Actor / Critic

The policy network and the value network: one acts, one scores

EmGradientes de política
Advantage A(s, a)

How much better an action is than the average at that state

EmGradientes de política
Alignment

Making model behaviour match human intent and values

EmSegurança, alinhamento e injeção de prompt
Anomaly detection

Finding the few samples that deviate from the bulk distribution

EmAprendizagem não supervisionada
Automatic differentiation

Letting a framework compute exact gradients automatically, not by numerical approximation

EmRetropropagação

B 8

Batch size

How many samples estimate the gradient per step

EmGradiente e descida do gradiente
Bias

How far the model’s average prediction departs from the true regularity

EmCompromisso viés-variância
Bias

A learnable offset applied to the threshold

EmNeurônio e perceptron
Bit depth

How many bits encode each channel; 8 bits give 256 levels

EmRepresentação digital de imagens
Bottleneck

The low-dimensional layer holding the latent code, limiting its bandwidth

EmAutoencoders e VAE
Bounding box

A rectangle represented as (x, y, w, h) or corner points

EmDetecção de objetos
BPE

Byte-Pair Encoding: bottom-up merging of frequent symbol pairs

EmTokenização
BPTT

Backpropagation through time after unrolling

EmRedes neurais recorrentes

C 20

Catastrophic forgetting

Rapid loss of old abilities while learning a new task

EmPré-treinamento e ajuste fino
Chain rule

The derivative of a composition is the product of the local derivatives

EmRetropropagação
Chain-of-thought (CoT)

Making the model write out intermediate reasoning steps

EmEngenharia de prompts e alinhamento
Channel

A distinct measurement at the same location, such as R/G/B or alpha

EmRepresentação digital de imagens
Chunking

Splitting long documents into retrievable pieces

EmGeração aumentada por recuperação
Classifier-free guidance

Extrapolating between conditional and unconditional predictions to control prompt fidelity

EmModelos de difusão
Clustering

Grouping samples by similarity (k-means, hierarchical clustering)

EmAprendizagem não supervisionada
Colour space

A coordinate system for colour values, such as sRGB, HSV or Lab

EmRepresentação digital de imagens
Computation graph

A computation expressed as nodes and directed edges over which derivatives propagate

EmRetropropagação
Confusion matrix

A cross-tabulation of true versus predicted classes

EmAvaliação de modelos e validação cruzada
Continuous batching

Re-forming the batch every step to keep the GPU busy

EmOtimização e serviço de inferência
Contrastive learning

Learning representations by pulling positives together and pushing negatives apart

EmVisão auto-supervisionada e aprendizado contrastivo multimodal
Contrastive loss

A loss that pulls same-class embeddings together and pushes different-class ones apart

EmFunções de perda
ControlNet

A bypass network guiding structure from a condition map

EmDifusão latente e controle condicional
Cosine similarity

The alignment of two vector directions, from −1 to 1

EmEmbeddings de palavras
Cross-attention

Query from one sequence, Key/Value from another

EmMecanismo de atenção
Cross-attention

The attention mechanism letting image features query text vectors

EmDifusão latente e controle condicional
Cross-entropy

The information needed to encode data from P using distribution Q

EmEntropia e teoria da informação
Cross-entropy

Negative log-probability of the correct class; the default classification loss

EmFunções de perda
Cross-entropy loss

The standard objective for classification training

EmClassificação de imagens

D 12

DDIM

Deterministic sampling achieving comparable quality in a few dozen steps

EmModelos de difusão
DDPM

Discrete Markov diffusion, typically needing a thousand sampling steps

EmModelos de difusão
Degradation problem

Deeper networks with higher training error, and not from overfitting

EmNormalização e conexões residuais
Density estimation

Estimating the probability distribution the data follows

EmAprendizagem não supervisionada
Dimension

The number of entries in a vector

EmVetores e espaços vetoriais
Dimensionality reduction

Compressing high-dimensional data to fewer dimensions while preserving structure (PCA, t-SNE, UMAP)

EmAprendizagem não supervisionada
Discount factor γ

Between 0 and 1; how much future rewards are valued

EmProcesso de decisão de Markov
Discriminator

The network judging real versus fake, serving as the loss

EmRedes generativas adversárias
Double descent

The modern counterexample where test error falls again past the interpolation point

EmCompromisso viés-variância
DPO

Direct preference optimisation without an explicit reward model

EmEngenharia de prompts e alinhamento
Dropout

Randomly silencing units during training to prevent co-adaptation

EmSobreajuste e regularização
Dying ReLU

A neuron stuck in the negative region with zero gradient, no longer updating

EmFunções de ativação

E 10

Early stopping

Halting training before validation loss turns upward

EmSobreajuste e regularização
Eigenvector / eigenvalue

A vector whose direction is unchanged by the map, and the factor by which it is scaled

EmOperações matriciais e transformações lineares
ELBO

A lower bound on the log-likelihood: the reconstruction term minus the KL term; a VAE’s actual objective

EmAutoencoders e VAE
Embedding

The layer, or its output, that maps a discrete object into a continuous vector

EmVetores e espaços vetoriais
Embedding model

A model that encodes text into vectors

EmGeração aumentada por recuperação
Empirical risk

The model’s average loss on the training samples

EmAprendizagem supervisionada
Equivariance

When the input shifts, the output shifts accordingly rather than changing

EmRedes neurais convolucionais
Evidence

The total probability of the data across all hypotheses; it normalises the result

EmTeorema de Bayes
Experience replay

Store past transitions and sample randomly to break correlation

EmAprendizado por reforço profundo
Explicit density

A model that writes down or approximates p(x), e.g. autoregressive or diffusion

EmVisão geral dos modelos generativos

F 3

F1

The harmonic mean of precision and recall

EmAvaliação de modelos e validação cruzada
FID

Fréchet distance between generated and real distributions in Inception feature space; lower is better

EmVisão geral dos modelos generativos
Function calling

The model emitting structured arguments to invoke an external function

EmAgentes e uso de ferramentas

G 5

Gating

Using 0–1 coefficients from Sigmoid to control how much information passes

EmRedes neurais recorrentes
Generalisation

Performance on data the model has not seen

EmSobreajuste e regularização
Generator

The network mapping noise to samples

EmRedes generativas adversárias
Gradient flow

The magnitude and stability of gradients as they propagate layer by layer

EmRetropropagação
Guardrail

Checks and constraints bounding what an agent may do

EmAgentes e uso de ferramentas

H 3

Hidden state

A continuously updated "summary so far" vector

EmRedes neurais recorrentes
Hinge loss

Requires the correct class to win by a margin; the heart of the SVM

EmFunções de perda
Hypothesis space

The set of all functions the model can represent

EmAprendizagem supervisionada

I 9

Identity shortcut

The path in a residual connection that adds the input straight back to the output

EmNormalização e conexões residuais
Implicit density

A model that offers only a sampler, not a probability, e.g. a GAN

EmVisão geral dos modelos generativos
In-context learning

Solving a task from prompt examples without updating parameters

EmEngenharia de prompts e alinhamento
InfoNCE

The standard contrastive loss; essentially a multi-class cross-entropy

EmVisão auto-supervisionada e aprendizado contrastivo multimodal
Inner product

Element-wise product summed over entries; the numerator of cosine similarity

EmVetores e espaços vetoriais
Input x

The feature vector fed to the model

EmAprendizagem supervisionada
Internal covariate shift

The shifting distribution of inputs to later layers during training

EmNormalização e conexões residuais
IoU

The ratio of the intersection to the union of two boxes

EmDetecção de objetos
Irreducible error

The unavoidable error floor caused by label noise

EmCompromisso viés-variância

J 1

Jailbreak

Inducing a model past its safety training

EmSegurança, alinhamento e injeção de prompt

K 7

Kernel / filter

A set of learnable weights that slides over the input

EmRedes neurais convolucionais
Kernel / filter

The small weight matrix that is learned

EmOperações de convolução
KL divergence

Cross-entropy minus true entropy; non-negative and asymmetric

EmEntropia e teoria da informação
KL divergence

Measures how far the encoded distribution deviates from a standard normal; acts as a regulariser

EmAutoencoders e VAE
KL penalty

Penalises divergence from the reference policy to prevent degeneration

EmAprendizado por reforço a partir de feedback humano
Knowledge distillation

Training a small model on a large model’s soft outputs

EmCompressão de modelos
KV cache

Caching past tokens’ keys and values to avoid recomputation

EmOtimização e serviço de inferência

L 12

Label y

The correct output for each sample; the source of supervision

EmAprendizagem supervisionada
Latent space

The low-dimensional representation space produced by the autoencoder

EmDifusão latente e controle condicional
Learning rate η

How far each step moves

EmGradiente e descida do gradiente
Likelihood

The probability of the observed data under given parameters

EmProbabilidade e distribuições
Likelihood

The probability of observed data given that the hypothesis is true

EmTeorema de Bayes
Linearly separable

A hyperplane exists that separates the two classes perfectly

EmNeurônio e perceptron
Log-derivative trick

Turns the gradient of an expectation into a weighted sum of log-probabilities

EmGradientes de política
Long-range dependency

Influence between elements far apart in a sequence

EmRedes neurais recorrentes
LoRA

Low-rank adapters training only a tiny number of new parameters

EmPré-treinamento e ajuste fino
LoRA

Low-rank adaptation increments for low-cost customisation

EmDifusão latente e controle condicional
Loss surface

The high-dimensional terrain of loss values over parameter space

EmGradiente e descida do gradiente
Low-rank factorisation

Approximating a large matrix by a product of two smaller ones

EmCompressão de modelos

M 9

mAP

Mean average precision across classes and IoU thresholds

EmDetecção de objetos
Masked language modelling

Hide random words and recover them, a bidirectional objective

EmPré-treinamento e ajuste fino
MCTS

An algorithm that evaluates moves via sampled rollouts to guide search

EmAprendizado por reforço profundo
Mean squared error (MSE)

The average squared difference between prediction and label; the default regression loss

EmFunções de perda
mIoU

The mean of per-class IoU, the primary segmentation metric

EmSegmentação semântica
Mode collapse

When a generator covers only a few modes of the data distribution

EmVisão geral dos modelos generativos
Mode collapse

The generator covers few modes and loses diversity

EmRedes generativas adversárias
Multi-armed bandit

The simplest sequential model: unknown reward distributions, one pull per round

EmExploração e explotação
Multi-head attention

Several attentions in parallel, each learning a different focus

EmMecanismo de atenção

N 5

Negative sampling

Replacing full-vocabulary softmax with a few random negatives

EmEmbeddings de palavras
NeRF

A neural network representing a scene’s radiance field for novel-view synthesis

EmGeração multimodal
NMS

Non-maximum suppression, removing duplicate boxes

EmDetecção de objetos
Noise schedule

The timetable of noise added per step, described by βₜ or ᾱₜ

EmModelos de difusão
Norm

A function measuring a vector’s "length"; L2 is the common choice

EmVetores e espaços vetoriais

O 3

Off-policy

The behaviour policy may differ from the policy being learned

EmFunções de valor e Q-learning
One-hot

A sparse vector with a single 1; distinct words are fully orthogonal

EmEmbeddings de palavras
Out-of-vocabulary (OOV)

A word absent from the vocabulary, spelled out from subwords

EmTokenização

P 16

Padding

Adding zeros at the border to control output size

EmOperações de convolução
Perplexity

The exponential of the cross-entropy; the effective number of options the model hesitates among per step

EmEntropia e teoria da informação
Pipeline parallelism

Placing different layers on different devices and filling bubbles with micro-batches

EmInfraestrutura de treinamento e inferência
Pixel

The smallest sampling unit of an image, carrying one or more channel values

EmRepresentação digital de imagens
Policy π

A mapping from states to actions, or to a distribution over actions

EmProcesso de decisão de Markov
Positional encoding

An explicit order signal, sinusoidal or RoPE

EmArquitetura Transformer
Posterior

The updated degree of belief after incorporating the evidence

EmTeorema de Bayes
Pre-activation

A layout placing normalisation before the convolution, which trains more stably

EmNormalização e conexões residuais
Pre-LN

Placing layer norm before each sublayer for stability

EmArquitetura Transformer
Precision & recall

Precision asks how many alerts are real; recall asks how many real cases were caught

EmAvaliação de modelos e validação cruzada
Preference pair

Two candidate outputs for one input plus the human’s choice between them

EmAprendizado por reforço a partir de feedback humano
Prior

The degree of belief in a hypothesis before seeing data

EmTeorema de Bayes
Probability density

The "thickness" of probability for a continuous variable; its integral over an interval is the probability

EmProbabilidade e distribuições
Projection head

The MLP the contrastive loss is applied to, usually discarded after training

EmVisão auto-supervisionada e aprendizado contrastivo multimodal
Prompt injection

Smuggling malicious instructions as data for the model to follow

EmSegurança, alinhamento e injeção de prompt
Pruning

Removing low-impact weights or whole structures

EmCompressão de modelos

Q 2

Quantisation

Representing float weights and activations with low-bit integers

EmCompressão de modelos
Query / Key / Value

The three vector roles: what you seek, what is on offer, what is carried

EmMecanismo de atenção

R 14

Random variable

A function mapping outcomes of a random experiment to numbers

EmProbabilidade e distribuições
Rank

The number of independent directions the map actually spans; at most rows or columns

EmOperações matriciais e transformações lineares
ReAct

A prompting paradigm alternating reasoning and action

EmAgentes e uso de ferramentas
Receptive field

The region of the original input that a given output covers

EmRedes neurais convolucionais
Receptive field

The input region that one output pixel depends on

EmOperações de convolução
Red teaming

Actively hunting for failure and misuse paths

EmSegurança, alinhamento e injeção de prompt
Regret

The gap between realised cumulative reward and always picking the best arm

EmExploração e explotação
Reparameterisation

Writing sampling as a deterministic transform plus external noise so gradients flow

EmAutoencoders e VAE
Reranking

Rescoring candidate passages with a more accurate model

EmGeração aumentada por recuperação
Residual connection

Adding the input past a sublayer to ease vanishing gradients in depth

EmArquitetura Transformer
Reward hacking

Exploiting the proxy reward instead of genuinely completing the task

EmAprendizado por reforço a partir de feedback humano
Reward model

A model fitting human preferences and emitting a differentiable score

EmAprendizado por reforço a partir de feedback humano
ROC-AUC

Area under the ROC curve, measuring ranking ability across all thresholds

EmAvaliação de modelos e validação cruzada
RoPE

Rotary Position Embedding: relative position with better extrapolation

EmArquitetura Transformer

S 19

Saturation

A function whose derivative tends to 0 at the extremes, blocking gradients

EmFunções de ativação
Self-attention

Attention whose Q, K and V all come from one sequence

EmMecanismo de atenção
Self-information

The information of a single event, −log p

EmEntropia e teoria da informação
Self-play

Generating training data by having an agent play against its past selves

EmAprendizado por reforço profundo
Self-supervised

Labels manufactured from the data itself, no manual annotation

EmPré-treinamento e ajuste fino
Semantic / instance / panoptic

Class → class + instance → the two unified

EmSegmentação semântica
SentencePiece

A subword toolkit that runs directly on the character/byte stream

EmTokenização
SFT

Supervised fine-tuning on instruction–response pairs

EmEngenharia de prompts e alinhamento
SGD

Approximating the full gradient with a mini-batch

EmGradiente e descida do gradiente
Shannon entropy

The average information, or uncertainty, of a random variable

EmEntropia e teoria da informação
Singular value decomposition

Writing any matrix as the product "rotate · stretch · rotate"

EmOperações matriciais e transformações lineares
Skip connection

Routing shallow high-resolution features into deep layers to preserve boundaries

EmSegmentação semântica
Skip-gram

A training objective that predicts surrounding words from the centre

EmEmbeddings de palavras
Softmax

Turns a set of real scores into a probability distribution summing to 1

EmProbabilidade e distribuições
Spatiotemporal patch

A local unit spanning frames in video, used to model motion

EmGeração multimodal
Speculative decoding

A small model drafts and the large model verifies in parallel to speed up generation

EmOtimização e serviço de inferência
State S

The variables describing the present situation; must satisfy the Markov property

EmProcesso de decisão de Markov
State value V(s)

Expected discounted return from s under policy π

EmFunções de valor e Q-learning
Stride

How many pixels the window jumps each step

EmOperações de convolução

T 11

Target network

A slowly updated copy of the network providing stable bootstrap targets

EmAprendizado por reforço profundo
TD error

The gap between the fresh target and the old estimate

EmFunções de valor e Q-learning
Tensor parallelism

Splitting a single layer’s large matrices across devices

EmInfraestrutura de treinamento e inferência
Thompson sampling

Sample from the posterior and pick the max, auto-directing exploration to uncertainty

EmExploração e explotação
Time to first token (TTFT)

Time from sending a request to receiving the first token

EmOtimização e serviço de inferência
Tool

One external capability an agent may invoke

EmAgentes e uso de ferramentas
Top-1 / top-5 error

Whether the top prediction / top five include the true label

EmClassificação de imagens
Transfer learning

Pre-train on a large dataset, then fine-tune on a small task

EmClassificação de imagens
Transpose

Flip a matrix across its diagonal so rows become columns

EmOperações matriciais e transformações lineares
Transposed convolution

An upsampling operation common in segmentation decoders

EmSegmentação semântica
Trust region / KL constraint

Bounds how far the new policy may drift from the old

EmGradientes de política

V 6

Vanishing gradient

Gradients shrinking exponentially as they are multiplied across layers

EmFunções de ativação
Variance

How sensitive the model is to perturbations of the training set

EmCompromisso viés-variância
Vector database

A store providing nearest-neighbour search over high-dimensional vectors

EmGeração aumentada por recuperação
ViT

An architecture that applies a Transformer to image patches

EmClassificação de imagens
Vocabulary

The fixed set of all tokens and their indices

EmTokenização
Vocoder

The component that turns acoustic features back into a waveform

EmGeração multimodal

W 4

Wasserstein distance

An earth-mover distance between distributions, better behaved for training than JS divergence

EmRedes generativas adversárias
Weight

How strongly an input influences the output; may be positive or negative

EmNeurônio e perceptron
Weight decay (L2)

Adding a squared-weight penalty to the loss to suppress large weights

EmSobreajuste e regularização
Weight sharing

Reusing one set of weights across all spatial positions

EmRedes neurais convolucionais

Z 3

ZeRO

Sharding optimiser states, gradients and parameters to cut per-device memory

EmInfraestrutura de treinamento e inferência
Zero-centred

Outputs symmetric about 0, which aids optimisation

EmFunções de ativação
Zero-shot classification

Classifying directly with text prompts, without fine-tuning

EmVisão auto-supervisionada e aprendizado contrastivo multimodal

Ε 1

ε-greedy

Explore at random with probability ε, exploit the current best otherwise

EmExploração e explotação