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H13-321_V2.5 HCIP - AI EI Developer V2.5 Exam Questions and Answers

Questions 4

The jieba ------() method can be used for word segmentation.

Options:

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Questions 5

In the field of deep learning, which of the following activation functions has a derivative not greater than 0.5?

Options:

A.

SeLU

B.

Sigmoid

C.

ReLU

D.

Tanh

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Questions 6

------- is a model that uses a convolutional neural network (CNN) to classify texts.

Options:

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Questions 7

The deep neural network (DNN)–hidden Markov model (HMM) does not require the HMM–Gaussian mixture model (GMM) as an auxiliary.

Options:

A.

TRUE

B.

FALSE

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Questions 8

Which of the following statements about the multi-head attention mechanism of the Transformer are true?

Options:

A.

The dimension for each header is calculated by dividing the original embedded dimension by the number of headers before concatenation.

B.

The multi-head attention mechanism captures information about different subspaces within a sequence.

C.

Each header's query, key, and value undergo a shared linear transformation to obtain them.

D.

The concatenated output is fed directly into the multi-headed attention mechanism.

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Questions 9

Which of the following methods are useful when tackling overfitting?

Options:

A.

Using dropout during model training

B.

Using more complex models

C.

Data augmentation

D.

Using parameter norm penalties

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Questions 10

In cases where the bright and dark areas of an image are too extreme, which of the following techniques can be used to improve the image?

Options:

A.

Inversion

B.

Grayscale stretching

C.

Grayscale compression

D.

Gamma correction

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Questions 11

If a scanned document is not properly placed, and the text is tilted, it is difficult to recognize the characters in the document. Which of the following techniques can be used for correction in this case?

Options:

A.

Perspective transformation

B.

Grayscale transformation

C.

Rotational transformation

D.

Affine transformation

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Questions 12

Which of the following are object detection algorithms?

Options:

A.

R-CNN

B.

YOLO

C.

SSD

D.

Faster-R-CNN

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Questions 13

What are the advantages of deep learning–based speech recognition algorithms?

Options:

A.

Forced alignment of annotated data

B.

Automated feature extraction

C.

End-to-end task processing

D.

No data training

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Questions 14

The attention mechanism in foundation model architectures allows the model to focus on specific parts of the input data. Which of the following steps are key components of a standard attention mechanism?

Options:

A.

Calculate the dot product similarity between the query and key vectors to obtain attention scores.

B.

Compute the weighted sum of the value vectors using the attention weights.

C.

Apply a non-linear mapping to the result obtained after the weighted summation.

D.

Normalize the attention scores to obtain attention weights.

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Questions 15

In an image preprocessing experiment, the cv2.imread("lena.png", 1) function provided by OpenCV is used to read images. The parameter "1" in this function represents a --------- -channel image. (Fill in the blank with a number.)

Options:

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Questions 16

In the image recognition algorithm, the structure design of the convolutional layer has a great impact on its performance. Which of the following statements are true about the structure and mechanism of the convolutional layer? (Transposed convolution is not considered.)

Options:

A.

In the convolutional layer, each neuron only collects some information. This effectively reduces the memory required.

B.

The convolutional layer uses parameter sharing so that features at different positions share the same group of parameters. This reduces the number of network parameters required but reduces the expression capabilities of models.

C.

A stride in the convolutional layer can control the spatial resolution of the output feature map. A larger stride indicates a smaller output feature map and simpler calculation.

D.

The convolutional layer slides over the input feature map using a convolution kernel of a fixed size to extract local features without explicitly defining their features.

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Questions 17

Which of the following has never been used as a method in the history of NLP?

Options:

A.

Recursion-based method

B.

Deep learning-based method

C.

Rule-based method

D.

Statistics-based method

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Questions 18

In natural language processing tasks, word vector evaluation is an important aspect for measuring the performance of a word embedding model. Which of the following statements about word vector evaluation are true?

Options:

A.

Word similarity tasks typically employ manually labeled datasets to evaluate word vectors, compute the cosine similarity between word vectors, and compare it with the manual labeling result.

B.

Word vector evaluation can be performed through intrinsic evaluation. Common methods include word similarity tasks and word analogy tasks.

C.

The word analogy task evaluates the capability of word vectors in capturing semantic relationships between words, for example, by determining whether "king - man + woman = ?" is close to "queen".

D.

Extrinsic evaluation is the main method used for evaluating word vectors because it directly reflects the performance of word vectors in real-world application tasks.

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Exam Code: H13-321_V2.5
Exam Name: HCIP - AI EI Developer V2.5 Exam
Last Update: Sep 12, 2025
Questions: 60

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