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told dirty jokes in mixed company. К вашему внимаю, представлены домашние эротические фото красивой девушки, на которых милашка будет позировать голой, тем самым показывая все свои интимные места. She moaned with ecstasy as my tongue stabbed her cunt. Не замужем. "Hi.
Потом возбужденный мистер начал дрючить искусницу в киску и попку, по очереди засовывая свой огромный агрегат то в одну, то в другую девичью дырочку. Тогда налил в два бокала.
Занятия в спортзале перешли в еблю между красивой девчонкой и накаченным спортсменом. Маромойка без комплексов с удовольствием позирует и оголяет свою разработанную письку в любом месте, даже если вокруг люди.
Computers have made remarkable progress when it comes to beating their programmers at a number of games. Checkers, Chess, and Jeopardy have all seen their champions fall to silicon opponents. In fact, for two games—checkers and Connect Four—computers have calculated the optimal move for every single possible board combination. The best a human can hope for is a draw. But the games computers have done well with are what are called "perfect information games," where both players have full access to all the knowledge there is to have about the game.
Think of it this way: Lots of games that attract players have imperfect information: It's not possible to solve these in the same sense; you can't know the ideal path forward from a given state because you simply don't fully know what the state is. But it is possible to figure out strategies that make it very difficult for an opponent to exploit them.
And, for a specific form of poker, researchers have now done so. In essence, it simplifies the game of poker to the point where the possible actions aren't beyond the realm of our current computational abilities. To tackle it, the authors turned to a combination of game theory and some computational work that came out of an event called the Annual Computer Poker Competition. Game theory comes in because the approach involves what are called Nash equilibria.
These are a collection of strategies that are optimized such that no player could come out ahead of another by switching to a different strategy. This doesn't mean that a player couldn't win a game or even a string of games if the cards fall their way.
The imperfect information aspect makes that likely. But, in the long run, things will eventually swing the other way and balance out. So how do you create a set of strategies that ensure a Nash equilibrium is reached? To do this, the authors turn to a computational approach that came out of earlier work at the Annual Computer Poker Competition: The idea here is that you have negative regrets if your strategy loses and positive regrets if you win.