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How is Artificial Intelligence Changing Sports Industry? | 3.0TV

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Artificial Intelligence Reshaping World Of Sports

By Vishakha Thakur

Artificial intelligence has drastically revolutionised the way we consume and study sports over the last two decades. With real-time analytics, AI is making the globe smarter for athletes, broadcasters, advertising, and, finally, fans. Potential of AI in sports forecasting and improved decision making are the modern technology’s top applications.

How is artificial intelligence redefining sports industry?

Artificial intelligence is a broad word that encompasses a wide range of smart technology. AI gathers data and responds to it without the need for human intervention. Massive amounts of data can be analysed by technology for improved experience and learning. At the most complicated level, we are discussing drones and self-driving cars; nevertheless, in our daily sporting lives, it boils down to screen monitors, AI-based chatbots in smartphone apps, and much more.

As per recent studies, the global artificial intelligence sports market is forecasted to reach $19.9 billion by the year 2030.

Some of the factors impacting market growth are as follows:

  • Demand for player monitoring and tracking is increasing.
  • Demand for real-time data analytics is increasing.
  • Increasing need for AI forecasting and sports predictions
  • High demand for virtual assistants and chatbots

Use Cases of AI In Sports

Performance Of Players

AI is utilised in sports to improve performance and wellness. Athletes can obtain information on strain and tear levels with the use of wearable technology, allowing them to avoid major injuries. This also assists the team in developing strong tactics and methods to maximise their strength. Coaches can also acquire insights by using graphics and statistics to work on the strengths and weaknesses of their players and make changes to their game strategy.

Sports Predictions

For years, officials have been attempting to princess a mountain of data to predict events and win money. However, studying the first half of the match or the number of aces and scores is a false prediction if you rely solely on probability. AI in sports cannot anticipate perfect results, but it may come far closer using algorithms than human prediction.

Over 40% of sports categories may now use AI to forecast match results based on the following factors:

  • The team formation
  • Total number of goals scored
  • Important passes for scoring chances

Ticketing

At large athletic events, the audience frequently struggles to get inside stadiums in time for the game. Nothing could address the crowd problem until the AI intervened. The Columbus Crew has used AI-based face recognition technology to allow spectators to enter the stadium without first scanning their tickets. This reduced bottlenecks and increased the efficiency of the stadium entrance. Aside from that, predictive and cognitive analytics are employed to forecast stadium attendance as well as the timing schedule. This enables officials to meet demand with minimal effort. Furthermore, the items and food are delivered on schedule.

Scouting & Recruitment

By incorporating Artificial Intelligence into the scouting and recruitment toolbox, sports clubs are making competitions more rigorous and cutthroat. Everything that happens on the pitch, from the player’s movements to their body orientation, is tracked to make the best judgement. Furthermore, machine learning algorithms are used to collect data and assess players’ skills and overall potential in a variety of gaming categories. Not only are recruitment options increased in this manner, but countries also benefit from a strong and healthy team to accomplish the impossible.

Automated Sports Journalism

Sports journalism is a large business, and every major event must be covered. These specifics and updates are closely followed, particularly when it comes to data and statistics in tournaments and lower leagues. AI has simplified and facilitated sports journalism. AI-powered platforms, for example, can hard score data into tables using natural language. The platforms are built on automated insights that intelligently sync with computer vision to execute journal score hearing. This is an intriguing take on AI sports, in which technologies may cover even local events without officials on the pitch.  

Sports organisations will use strong technologies in all parts of their operations in the future. There will be new sports, competitive structures, and spectator experiences. Also, some more new sorts of content, engagement activities, and audience experiences. 

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