Artificial Intelligence: An In-Depth Analysis by Huawei

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Artificial Intelligence

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Huawei Confidential

AI Overview

Foreword

⚫ Mankind is welcoming the fourth industrial revolution represented by intelligent technology. New

technologies such as AI, IoT, 5G and bioengineering are integrated into all aspects of human society;

driving changes in global macro trends, such as sustainable social development and economic growth.

New kinetic energy, smart city upgrading, industrial digital transformation, consumer experience, etc.

⚫ As the world‘s leading provider of ICT (information and communications) infrastructure and smart

terminals, Huawei actively participates in the transformation of artificial intelligence and proposes

Huawei’s full-stack full-scenario AI strategy. This chapter will mainly introduce AI Overview, Technical

Fields and Application Fields of AI, Huawei's AI Development Strategy, AI Disputes, Future Prospects of

AI.

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Objectives

Upon completion of this course, you will be able to:

 Understand basic concepts of AI.

 Understand AI technologies and their development history.

 Understand the application technologies and application fields of AI.

 Know Huawei's AI development strategy.

 Know the development trends of AI.

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Contents

1. AI Overview

2. Technical Fields and Application Fields of AI

3. Huawei's AI Development Strategy

4. AI Disputes

5. Future Prospects of AI

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AI in the Eyes of the Society

⚫ People get to know AI through news, movies, and actual applications in daily life. What is

AI in the eyes of the public?

Haidian Park: First AI-themed Park in the World StarCraft

II: AlphaStar Beat Professional Players

AI-created Edmond de Belamy Sold at US$430,000

Demand for AI Programmers:↑ 35 Times! Salary: Top 1!

50% Jobs Will be Replaced by AI in the future

Winter is Coming? AI Faces Challenges

The Terminator

2001: A Space Odyssey

The Matrix

I, Robot

Blade Runner

Elle

Bicentennial Man

Self-service security check

Spoken language evaluation

Music/Movie recommendation

Smart speaker

News

AI Applications

AI industry outlook

Challenges faced by AI

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Movies

AI Control over human beings

Fall in love with AI

Self-awareness of AI

Applications in daily life

Security protection

Entertainment

Smart Home

Finance

AI in the Eyes of Researchers

"I propose to consider the question, 'Can machines think?'"

— Alan Turing 1950

The branch of computer science concerned with making computers behave like humans.

— John McCarthy 1956

The science of making machines do things that would require intelligence if done by men.

— Marvin Minsky

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What Are Intelligences?

⚫ Howard Gardner's Multiple Intelligences

⚫ Human intelligences can be divided into seven categories:

 Verbal/Linguistic

 Logical/Mathematical

 Visual/Spatial

 Bodily/Kinesthetic

 Musical/Rhythmic

 Inter-personal/Social

 Intra-personal/Introspective

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What Is AI?

⚫ Artificial Intelligence (AI) is a new technical science that studies and develops theories, methods, techniques,

and application systems for simulating and extending human intelligence. In 1956, the concept of AI was first

proposed by John McCarthy, who defined the subject as "science and engineering of making intelligent

machines, especially intelligent computer program". AI is concerned with making machines work in an

intelligent way, similar to the way that the human mind works. At present, AI has become an interdisciplinary

course that involves various fields.

Computer

science

Philosophy

Brain

science

Cognitive

science

AI

Psychology

Logic

Linguistics

Identification of concepts related to AI and machine learning

AI Development Report 2020

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Relationship of AI, Machine Learning, and Deep Learning

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Relationship of AI, Machine Learning and Deep Learning

⚫ AI: A new technical science that focuses on the research and development of theories, methods,

techniques, and application systems for simulating and extending human intelligence.

⚫ Machine learning: A core research field of AI. It focuses on the study of how computers can obtain

new knowledge or skills by simulating or performing learning behavior of human beings, and

reorganize existing knowledge architecture to improve its performance. It is one of the core

research fields of AI.

⚫ Deep learning: A new field of machine learning. The concept of deep learning originates from the

research on artificial neural networks. The multi-layer perceptron (MLP) is a type a deep learning

architecture. Deep learning aims to simulate the human brain to interpret data such as images,

sounds, and texts.

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Three Major Schools of Thought: Symbolism

⚫ Basic thoughts

 The cognitive process of human beings is the process of inference and operation of various

symbols.

 A human being is a physical symbol system, and so is a computer. Computers, therefore, can be

used to simulate intelligent behavior of human beings.

 The core of AI lies in knowledge representation, knowledge inference, and knowledge

application. Knowledge and concepts can be represented with symbols. Cognition is the process

of symbol processing while inference refers to the process of solving problems by using heuristic

knowledge and search.

⚫ Representative of symbolism:

inference,

including symbolic inference and machine

inference

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Three Major Schools of Thought: Connectionism

⚫ Basic thoughts

 The basis of thinking is neurons rather than the process of symbol processing.

 Human brains vary from computers. A computer working mode based on connectionism is proposed to

replace the computer working mode based on symbolic operation.

• Representative of connectionism: neural networks and

deep learning

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Three Major Schools of Thought: Behaviorism

⚫ Basic thoughts:

 Intelligence depends on perception and action. The perception-action mode of intelligent

behavior is proposed.

 Intelligence requires no knowledge, representation, or inference. AI can evolve like human

intelligence. Intelligent behavior can only be demonstrated in the real world through the

constant interaction with the surrounding environment.

⚫ Representative of behaviorism: behavior control, adaptation, and evolutionary computing

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Brief Development History of AI

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1956-1976First period of boomThe concept and development target of AI were determined at the Dartmouth conference.1950s1960s1970s1980s1990s2000s2010s2020s1976-1982First period of low ebbAI suffered from questioning and criticism due to insufficient computing capabilities, high computing complexity, and great difficulty of inference realization.1982-1987Second period of boomExpert system capable of logic rule inference and answering questions of specific fields went popular and fifth-generation computers developed.1987-1997Second period of low ebbTechnical fields faced bottlenecks, people on longer focused on abstract inference, and models based on symbol processing were rejected.1997-2010Period of recoveryComputing performance was improved and Internet technologies got popularized quickly.2010-Period of rapid growthNew-generation information technologies triggered transformation of information environment and data basis. Multi-model data such as massive images, voices, and texts emerged continuously. Computing capabilities were improved.1956: AI was proposed at the Dartmouth Conference.1959: Arthur Samuel proposed machine learning.1976: Due to failure of projects such as machine translation and negative impact of some academic reports, the fund for AI was decreased in general.1985: Decision-making tree models with better visualization effect and multi-layer ANNs which broke through the limit of early perceptron.1987: The market of LISP machines collapsed.1997: Deep Blue defeated the world chess champion Garry Kasparov.2006: Hinton and his students started deep learning.2010: The era of big data came.2014: Microsoft released the first individual intelligent assistant Microsft Cortana in the world.2016 March: AlphaGo defeated the world champion Go player Lee Sedol by 4-1.2017 October: The Deep Mind team released AlphaGo Zero, the strongest version of AlphaGo.Overview of AI Technologies

⚫ AI

technologies are multi-layered, covering the application, algorithm mechanism,

toolchain, device, chip, process, and material layers.

Application

Algorithm

Device

Chip

Process

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Types of AI

⚫ Strong AI

 The strong AI view holds that it is possible to create intelligent machines that can really reason

and solve problems. Such machines are considered to be conscious and self-aware, can

independently think about problems and work out optimal solutions to problems, have their

own system of values and world views, and have all the same instincts as living things, such as

survival and security needs. It can be regarded as a new civilization in a certain sense.

⚫ Weak AI

 The weak AI view holds that intelligent machines cannot really reason and solve problems.

These machines only look intelligent, but do not have real intelligence or self-awareness.

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Classification of Intelligent Robots

⚫ Currently, there is no unified definition of AI research. Intelligent robots are generally

classified into the following four types:

 "Thinking like human beings": weak AI, such as Watson and AlphaGo

 "Acting like human beings": weak AI, such as humanoid robot, iRobot, and Atlas of Boston

Dynamics

 "Thinking rationally": strong AI (Currently, no intelligent robots of this type have been created

due to the bottleneck in brain science.)

 "Acting rationally": strong AI

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AI Industry Ecosystem

⚫ The four elements of AI are data, algorithm, computing power, and scenario. To meet requirements of these

four elements, we need to combine AI with cloud computing, big data, and IoT to build an intelligent society.

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Sub-fields of AI

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AI Development Report 2020

Contents

1. AI Overview

2. Technical Fields and Application Fields of AI

3. Huawei's AI Development Strategy

4. AI Disputes

5. Future Prospects of AI

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Technical Fields and Application Fields of AI

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Global AI Development White

Paper 2020

Distribution of AI Application Technologies in Enterprises Inside

and Outside China

⚫ At present, application directions of AI technologies mainly

include:

Computer vision: a science of how to make computers "see"

Speech processing: a general term for various processing

technologies used to research the voicing process, statistical

features of speech signals, speech recognition, machine-based

speech synthesis, and speech perception

 Natural language processing (NLP): a subject that use computer

technologies to understand and use natural language

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Distribution of AI application technologies in

enterprises inside and outside China

China AI Development Report 2018

Voice Processing Application Scenario (1)

⚫ The main topics of voice processing research include voice recognition, voice synthesis, voice wakeup,

voiceprint recognition, and audio-based incident detection. Among them, the most mature technology is voice

recognition. As for near field recognition in a quite indoor environment, the recognition accuracy can reach

96%.

⚫ Application scenarios:

Question Answering Bot (QABot)

Voice navigation

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Voice Processing Application Scenario (2)

Return Visit

Real-time conference

records

⚫ Other applications:

Spoken language evaluation

 Diagnostic robot

Voiceprint recognition

Smart sound box

...

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NLP Application Scenario (1)

The main topics of NLP research include machine translation, text mining, and sentiment analysis. NLP imposes high requirements

on technologies but confronts low technology maturity. Due to high complexity of semantics, it is hard to reach the human

understanding level using parallel computing based on big data and parallel computing only.

In future, NLP will achieve more growth: understanding of shallow semantics → automatic extraction of features and understanding

of deep semantics; single-purpose intelligence (ML) → hybrid intelligence (ML, DL, and RL)

Application scenarios:

Public opinion

analysis

Theme

mining

Trend

analysis

Evaluation

analysis

Public opinion

analysis

Emotional

analysis

Hotspot

event

Information

distribution

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NLP Application Scenario (2)

Machine

translation

Text

classification

⚫ Other applications:

Knowledge graph

Intelligent copywriting

Video subtitle

...

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AI Application Field - Intelligent Healthcare

Medicine mining: quick development of personalized medicines by AI assistants

Health management: nutrition, and physical/mental health management

Hospital management: structured services concerning medical records (focus)

Assistance for medical research: assistance for biomedical researchers in research

Virtual assistant: electronic voice medical records, intelligent guidance, intelligent diagnosis, and

medicine recommendation

Medical image: medical image recognition, image marking, and 3D image reconstruction

Assistance for diagnosis and treatment: diagnostic robot

Disease risk forecast: disease risk forecast based on gene sequencing

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AI Application Field - Smart Home

⚫ Based on IoT technologies, a smart home ecosystem is formed with hardware, software, and cloud

platforms, providing users personalized life services and making home life more convenient,

comfortable, and safe.

Okay, the

temperature's set.

Set the temperature to

26 degrees.

Control smart home products with voice

processing such as air conditioning

temperature adjustment, curtain switch

control, and voice control on the lighting

system.

Develop user profiles and recommend

content to users with the help of machine

learning and deep learning technologies

and based on historical records of smart

speakers and smart TVs.

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AI Application Field - Retail

AI will bring revolutionary changes to the retail industry. A typical symptom is unmanned supermarkets. For example, Amazon Go, unmanned

supermarket of Amazon, uses sensors, cameras, computer vision, and deep learning algorithms to completely cancel the checkout process,

allowing customers to pick up goods and "just walk out".

⚫ One of the biggest challenges for unmanned supermarket is how to charge the right fees to the right customers. So far, Amazon Go is the only

successful business case and even this case involves many controlled factors. For example, only Prime members can enter Amazon Go. Other

enterprises, to follow the example of Amazon, have to build their membership system first.

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AI Application Field - Autonomous Driving

⚫ The Society of Automotive Engineers (SAE) in the U.S. defines 6 levels of driving automation ranging from 0

(fully manual) to 5 (fully autonomous). L0 indicates that the driving of a vehicle completely depends on the

driver's operation. The system above L3 can implement the driver's hand-off operation in specific cases, L5

depends on the system when vehicles are driving in all scenarios.

⚫ Currently, only some commercial passenger vehicle models, such as Audi A8, Tesla, and Cadillac, support L2

and L3 Advanced driver-assistance systems (ADAS). It is estimated that by 2020, more L3 vehicle models will

emerge with the further improvement of sensors and vehicle-mounted processors. L4 and L5 autonomous

driving is expected to be first implemented on commercial vehicles in closed campuses. A wider range of

passenger vehicles require advanced autonomous driving, which requires further

improvement of

technologies, policies, and infrastructure. It is estimated that L4 and L5 autonomous driving will be supported

by common roads in 2025–2030.

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Contents

1. AI Overview

2. Technical Fields and Application Fields of AI

3. Huawei's AI Development Strategy

4. AI Disputes

5. Future Prospects of AI

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Huawei's Full-Stack, All-Scenario AI Portfolio

AI Applications

HiAI Engine

ModelArts

TensorFlow

PyTorch

Advertisement

PaddlePaddle

MindSpore

Full Stack

CANN

Application

Enablement

Framework

Chip

Enablement

Ascend-Nano

Ascend-Tiny

Ascend-Lite

Ascend

Ascend-Mini

Ascend-Max

IP & Chip

IP and Chip

Atlas

All Scenarios

Application enablement: provides end-to-end

services (ModelArts), layered APIs, and pre-

integrated solutions.

MindSpore: supports the unified training and

inference framework that is independent of the

device, edge, and cloud.

CANN: a chip operator library and highly automated

operator development tool.

Ascend: provides a series of NPU IPs and chips based

on a unified, scalable architecture.

Atlas: enables an all-scenario AI infrastructure solution

that is oriented to the device, edge, and cloud based

on the Ascend series AI processors and various product

forms.

Consumer Device

Public Cloud

Private Cloud

Edge Computing

Industrial IoT Device

Huawei's "all AI scenarios" indicate different deployment scenarios for AI, including public clouds, private

clouds, edge computing in all forms, industrial IoT devices, and consumer devices.

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Full Stack - ModelArts Full-Cycle AI Workflow

EI Intelligent Twins

EI Cognition Service AI Service

AI data

framework

Efficient filtering and

semi-automated

labeling, data

preprocessing

Efficiency improved by

100 times

Data

Algorithm

development

Out-of-the-box

development

environment compatible

with mainstream

frameworks

MoXing library,

simplifying model

development

Built-in model algorithms,

improving development

efficiency

Training

Deployment

Market

Distributed training,

shortening training

period from weeks to

minutes

Wizard-based

AutoLearning, code-

free development,

enabling model

training from scratch

One-click deployment

on device, edge, and

cloud

All-scenario

deployment

Inference on the

Ascend AI processor

AI sharing platform

helps enterprises build

internal and external

AI ecosystems

AI applications

Visualized Workflow Management

Version management, traceable and worry-free development

ModelArts

AI data framework

accelerates data processing

by 100 folds.

Visualized workflow

management

makes development

worry-free.

Distributed training

shortens training from

weeks to minutes.

One-click deployment on

device, edge, and cloud

supports various deployment

scenarios.

Automatic learning

enables you to start

from scratch.

AI sharing platform

builds internal and external

AI ecosystems for

enterprises.

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Full Stack — MindSpore (Huawei AI Computing Framework)

⚫ MindSpore provides automatic parallel capabilities. With MindSpore, senior algorithm engineers and data scientists who

focus on data modeling and problem solving can run algorithms on dozens or even thousands of AI computing nodes with

only a few lines of description.

The MindSpore framework supports both large-scale and small-scale deployment, adapting to independent deployment in

all scenarios. In addition to the Ascend AI processors, MindSpore also supports other processors such as GPUs and CPUs.

AI application ecosystem for all scenarios

MindSpore

Unified APIs for all scenarios

MindSpore intermediate representation (IR) for computational

graph

On-demand collaborative distributed architecture across device-edge-cloud

(deployment, scheduling, and communications)

Processors: Ascend, GPU, and CPU

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Full Stack — CANN

AI applications

HiAI Service

General APIs

Advanced APIs

Pre-integrated Solutions

HiAI Engine

ModelArts

Application

enablement

Full

stack

MindSpore

TensorFlow

PyTorch

PaddlePaddle

Framework

CANN

Processor

enablement

Ascend-

Nano

Ascend-

Tiny

Ascend-

Lite

Ascend

Ascend-

Mini

Ascend-

Max

IP and Chip

Consumer device

Public

cloud

Private

cloud

Edge

computing

Industrial

devices

All scenarios

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CANN:

A chip operators library and highly automated operator

development toolkit

Optimal development efficiency, in-depth optimization of the

common operator library, and abundant APIs

Operator convergence, best matching the performance of the

Ascend chip

CANN

Compute Architecture for Neural Networks

FusionEngine

TBE operator

development tool

CCE Operator

Library

Advertisement

CCE Compiler

Full Stack — Ascend 310 AI Processor and Da Vinci Core

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Ascend AI Processors: Infusing Superior Intelligence for

Computing

Ascend 310

AI SoC with ultimate

energy efficiency

Ascend-Mini

Architecture: Da Vinci

Half-precision (FP16): 8 TFLOPS

Integer precision (INT8): 16 TOPS

16-channel full-HD video decoder: H.264/265

1-channel full-HD video encoder: H.264/265

FLOPS

256T

125T

90T

45T

4

3

2

1

Ascend 910

Ascend 910

Most powerful AI

processor

Ascend-Max

Architecture: Da Vinci

Half-precision (FP16): 256 TFLOPS

Integer precision (INT8): 512 TOPS

128-channel full HD video decoder: H.264/265

Max. power: 8 W

Max. power: 310 W

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Atlas AI Computing Platform Portfolio

Internet, security, finance, transportation, power, etc.

Application

Enablement

Framework

CANN

Chips &

Hardware

Atlas intelligent edge platform

Industry SDK/Container

engine/Basic service repository

MindSpore

AscendCL

Atlas deep learning platform

Cluster management/Model

management/Data pre-processing

TensorFlow/PyTorch/Caffe/MxNet

Framework Adapter

Framework Adapret

Common

components

Operator/Acceleration/Communication libraries (BLAS, FFT, DNN, Rand, Solver, Sparse, HCCL)

Graph engine for graph optimization

Atlas 200

16 TOPS INT8

Atlas 300 inference

accelerator card

64 TOPS INT8

Runtime

Driver

Atlas 800 AI inference server

512 TOPS INT8

Atlas 500

16 TOPS INT8

Atlas 900

256–1024 PFLOPS FP16

Atlas 200 developer kit

Atlas 300 training card

256 TFLOPS FP16

Atlas 800 AI training server

2 PFLOPS FP16

Ascend 310

Da Vinci

Architecture

Ascend 910

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Contents

1. AI Overview

2. Technical Fields and Application Fields of AI

3. Huawei's AI Development Strategy

4. AI Disputes

5. Future Prospects of AI

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Seeing = Believing?

⚫ With the development of computer vision technologies, reliability of images and videos is decreasing. Fake

images can be produced with technologies such as PS and generative adversarial networks (GAN), making it

Advertisement

hard to identify whether images are true or not.

⚫ Example:

 A suspect provided fake evidence by forging an image in which the suspect is in a place where he has never been to or

with someone he has never seen using PS technologies.

In advertisements for diet pills, people's appearances before and after weight loss can be changed with PS technologies

to exaggerate the effect of the pills.

Lyrebird, a tool for simulating voice of human beings based on recording samples of minutes, may be used by criminals.

 Household images released on rent and hotel booking platforms may be generated through GAN.

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AI Development = Rising Unemployment?

Looking back, human beings have always been seeking ways to improve efficiency, that is, obtain more with

less resources. We used sharp stones to hunt and collect food more efficiently. We used steam engines to

reduce the need for horses. Every step in achieving automation will change our life and work. In the era of AI,

what jobs will be replaced by AI?

⚫ The answer is repetitive jobs that involve little creativity and social interaction.

Jobs Most Likely to Be Replaced by AI

Jobs Most Unlikely to Be Replaced by AI

Courier

Taxi driver

Soldier

Accounting

Telesales personnel

Customer service

...

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Writer

Management personnel

Software engineers

HR manager

Designer

Activity planner

...

Problems to Be Solved

⚫ Are AI-created works protected by copyright laws?

⚫ Who gives authority to robots?

⚫ What rights shall be authorized to robots?

...

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Contents

1. AI Overview

2. Technical Fields and Application Fields of AI

3. Huawei's AI Development Strategy

4. AI Disputes

5. Future Prospects of AI

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Development Trends of AI Technologies

⚫ Framework: easier-to-use development framework

⚫ Algorithm: algorithm models with better performance and smaller size

⚫ Computing power: comprehensive development of device-edge-cloud computing

⚫ Data: more comprehensive basic data service industry and more secure data sharing

⚫ Scenario: continuous breakthroughs in industry applications

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Easier-to-Use Development Framework

⚫ Various AI development frameworks are evolving towards ease-of-use and omnipotent,

continuously lowering the threshold for AI development.

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Tensorflow 2.0

⚫ TensorFlow 2.0 has been officially released. It integrates Keras as its high-level API, greatly

improving usability.

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Pytorch vs Tensorflow

⚫ PyTorch is widely recognized by academia for its ease of use.

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Comparison between PyTorch and TensorFlow usage

statistics of top academic conferences

Smaller Deep Learning Models

⚫ A model with better performance usually has a larger quantity of parameters, and a large model

has lower running efficiency in industrial applications. More and more model compression

technologies are proposed to further compress the model size while ensuring the model

performance, meeting the requirements of industrial applications.

Low rank approximation

 Network pruning

 Network quantification

 Knowledge distillation

 Compact network design

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Network

architecture

design

Low rank

approximation

Network

pruning

Model

compression

Network

quantification

Knowledge

distillation

Computing Power with Comprehensive Device-Edge-Cloud

Development

⚫ The scale of AI chips applied to the cloud, edge devices, and mobile devices keeps increasing,

further meeting the computing power demand of AI.

Sales revenue (CNY100 million)

Growth rate

China AI Chip Industry Development White Paper 2020

Market Scale and Growth Prediction of AI Chips in China from 2020 to 2021

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More Secure Data Sharing

⚫ Federated learning uses different data sources to train models, further breaking data bottlenecks

while ensuring data privacy and security.

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Federated Learning White Paper V1.0

Continuous Breakthroughs in Application Scenarios

⚫ With the continuous exploration of AI in various verticals, the application scenarios of AI

will be continuously broken through.

 Mitigating psychological problems

 Automatic vehicle insurance and loss assessment

 Office automation

...

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Mitigating Psychological Problems

⚫ AI chat robots help alleviate mental health problems such as autism by combining psychological

knowledge.

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Automatic Vehicle Insurance and Loss Assessment

⚫ AI technologies help insurance companies optimize vehicle insurance claims and complete vehicle

insurance loss assessment using deep learning algorithms such as image recognition.

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Office Automation

⚫ AI is automating management, but the different nature and format of data makes it a challenging

task. While each industry and application has its own unique challenges, different industries are

gradually adopting machine learning-based workflow solutions.

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Summary

⚫ This chapter introduces the definition and development history of AI, describes the

technical

fields and application fields of AI, briefly introduces Huawei's AI

development strategy, and finally discusses the disputes and the development trends

of AI.

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Quiz

1.

(Multiple-answer question) Which of the following are AI application fields?

A. Smart household

B. Smart healthcare

C. Smart city

D. Smart education

2.

(True or False) By "all AI scenarios", Huawei means different deployment scenarios for AI, including

public clouds, private clouds, edge computing in all forms, industrial IoT devices, and consumer

devices.

A. True

B. False

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More Information

Online learning website

 https://e.huawei.com/en/talent/#/home

Huawei Knowledge Base

 https://support.huawei.com/enterprise/en/knowledge?lang=en

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Thank you.

把数字世界带入每个人、每个家庭、

每个组织,构建万物互联的智能世界。

Bring digital to every person, home, and

organization for a fully connected,

intelligent world.

Copyright©2020 Huawei Technologies Co., Ltd.

All Rights Reserved.

The information in this document may contain predictive

statements including, without limitation, statements regarding

the future financial and operating results, future product

portfolio, new technology, etc. There are a number of factors that

could cause actual results and developments to differ materially

from those expressed or implied in the predictive statements.

Therefore, such information is provided for reference purpose

only and constitutes neither an offer nor an acceptance. Huawei

may change the information at any time without notice.