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HCIP - AI EI Developer V2.5 Exam

Last Update 19 hours ago Total Questions : 60

The HCIP - AI EI Developer V2.5 Exam content is now fully updated, with all current exam questions added 19 hours ago. Deciding to include H13-321_V2.5 practice exam questions in your study plan goes far beyond basic test preparation.

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Question # 4

Which of the following statements about the levels of natural language understanding are true?

A.

Syntactic analysis is to find out the meaning of words, structural meaning, their combined meaning, so as to determine the true meaning or concept expressed by a language.

B.

Semantic analysis is to analyze the structure of sentences and phrases to find out the relationship between words and phrases, as well as their functions in sentences.

C.

Speech analysis involves distinguishing independent phonemes from a speech stream based on phoneme rules, and then identifying syllables and their lexemes or words according to the phoneme form rules.

D.

Lexical analysis is to find the lexemes of a word and obtain linguistic information from them.

E.

Pragmatic analysis is to study the influence of the language's external environment on the language users.

Question # 5

The accuracy of object location detection can be evaluated using the intersection over union (IoU) value, which is a ratio. The denominator is the overlapping area between the prediction bounding box and ground truth bounding box, and the numerator is the area of union encompassed by both boxes.

A.

TRUE

B.

FALSE

Question # 6

How many parameters need to be learned when a 3 × 3 convolution kernel is used to perform the convolution operation on two three-channel color images?

A.

10

B.

9

C.

28

D.

55

Question # 7

The image saturation can be enhanced by processing the ________ component of the HSV color space. (Enter H, S, or V.)

Question # 8

In NLP tasks, transformer models perform well in multiple tasks due to their self-attention mechanism and parallel computing capability. Which of the following statements about transformer models are true?

A.

Transformer models outperform RNN and CNN in processing long texts because they can effectively capture global dependencies.

B.

Multi-head attention is the core component of a transformer model. It computes multiple attention heads in parallel to capture semantic information in different subspaces.

C.

A transformer model directly captures the dependency between different positions in the input sequence through the self-attention mechanism, without using the recurrent neural network (RNN) or convolutional neural network (CNN).

D.

Positional encoding is optional in a transformer model because the self-attention mechanism can naturally process the order information of sequences.

Question # 9

Transformer models outperform LSTM when analyzing and processing long-distance dependencies, making them more effective for sequence data processing.

A.

TRUE

B.

FALSE

Question # 10

Which audio file formats can Huawei Cloud text-to-speech (TTS) generate?

A.

AAC

B.

WAV

C.

MP3

D.

PCM

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