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Kako generirati slučajni broj između 1 i 10 u C++

Generiranje nasumičnih brojeva čest je zahtjev u mnogim aplikacijama za programiranje, a C++ nudi nekoliko načina za generiranje nasumičnih brojeva unutar zadanog raspona. U ovom članku ćemo istražiti različite metode za generiranje nasumičnih brojeva između 1 i 10 u C++.

Metoda 1:

Korištenje funkcije rand():

Jedna od najjednostavnijih metoda za generiranje slučajnog broja između 1 i 10 u C++ je rand() funkcija. Ova je funkcija definirana u datoteku zaglavlja i generira nasumični cijeli broj unutar raspona od 0 do RAND_MAX . Vrijednost RAND_MAX ovisi o implementaciji i može se razlikovati od prevoditelja do prevoditelja.

Primjer:

Uzmimo primjer za generiranje slučajnog broja između 1 i 10 pomoću funkcije rand(), možemo upotrijebiti sljedeći kod:

 #include #include #include using namespace std; int main() { srand(time(0)); cout&lt;&lt; &apos;Random number between 1 and 10 is: &apos;&lt;<endl; for(int i="0;i&lt;10;i++)" cout << (rand() % 10) + 1<<' '; return 0; } < pre> <p> <strong>Output</strong> </p> <pre> Random number between 1 and 10 is: 4 5 7 10 7 5 1 7 10 2 </pre> <p>In this code, we have included the <strong> <em></em> </strong> and <strong> <em></em> </strong> header files. The <strong> <em>srand()</em> </strong> function is used to initialize the random number generator with the current time as the seed. It ensures that every time the program is run, a new sequence of random numbers is generated.</p> <p>The <strong> <em>rand()</em> </strong> function is used to generate a random integer between 0 and <strong> <em>RAND_MAX</em> </strong> . To limit the range between 1 and 10, we take the remainder of this number when divided by 10 and add 1 to it.</p> <h3>Method 2:</h3> <p> <strong>Using C++11 random library</strong> </p> <p>The <strong> <em>C++11</em> </strong> standard introduced a new library called <strong> <em></em> </strong> that provides a better way to generate random numbers. This library provides several random number generation engines and distributions that can generate random numbers with a uniform distribution.</p> <p> <strong>Example:</strong> </p> <p>Let&apos;s take an example to generate a random number between 1 and 10 using the <strong> <em></em> </strong> library, we can use the following code:</p> <pre> #include #include using namespace std; int main() { random_device rand; mt19937 gen(rand()); uniform_int_distributiondis(1, 10); int random_number = dis(gen); cout&lt;&lt; &apos;Random number between 1 and 10 is: &apos; &lt;<random_number<<endl; return 0; } < pre> <p>In this code, we have included the <strong> <em></em> </strong> header file. The <strong> <em>random_device</em> </strong> class is used to obtain a seed value for the random number generator. The <strong> <em>mt19937</em> </strong> class is a random number generation engine that produces random numbers with a uniform distribution. The <strong> <em>uniform_int_distribution</em> </strong> class is used to generate random integers within a given range.</p> <p>By default, the <strong> <em>mt19937</em> </strong> engine uses a seed value of <strong> <em>5489</em> </strong> , which can be changed using the <strong> <em>seed()</em> </strong> method. However, it is recommended to use a <strong> <em>random_device</em> </strong> to obtain a seed value for better randomness.</p> <p>The <strong> <em>uniform_int_distribution</em> </strong> class generates random integers with a uniform distribution within a given range. In this code, we have specified the range as <strong> <em>1</em> </strong> to <strong> <em>10</em> </strong> using the constructor.</p> <p>This method provides better randomness and a uniform distribution of generated numbers compared to the <strong> <em>rand()</em> </strong> function. However, it is slower and more complex to implement.</p> <h3>Method 3:</h3> <p> <strong>Using modulo operator with time():</strong> </p> <p>Another method to generate a random number between 1 and 10 is the <strong> <em>modulo operator</em> </strong> with the current time as a seed value. This method is similar to the first method using <strong> <em>rand()</em> </strong> function, but it uses a more random seed value and provides better randomness.</p> <p> <strong>Example:</strong> </p> <p>Let&apos;s take an example to generate a random number between 1 and 10 using the modulo operator with <strong> <em>time()</em> </strong> , we can use the following code:</p> <pre> #include #include using namespace std; int main() { srand(time(0)); cout&lt;&lt; &apos;Random number between 1 and 10 is: &apos; &lt;<endl; for(int i="0;i&lt;10;i++)" cout << (rand() % 10) + 1<<' '; return 0; } < pre> <p> <strong>Output</strong> </p> <pre> Random number between 1 and 10 is: 6 6 3 6 10 10 1 7 6 4 </pre> <p>In this code, we have used the <strong> <em>time()</em> </strong> function to obtain the current time as a seed value for the <strong> <em>srand()</em> </strong> function. The <strong> <em>srand()</em> </strong> function is used to initialize the random number generator. The <strong> <em>rand()</em> </strong> function generates a random integer between 0 and <strong> <em>RAND_MAX</em> </strong> , which is then limited to a range between 1 and 10 using the <strong> <em>modulo operator</em> </strong> and adding 1 to it.</p> <h2>Conclusion:</h2> <p>In conclusion, there are several methods to generate random numbers between 1 and 10 in C++. The choice of method depends on the requirements of the application, such as <strong> <em>speed, randomness</em> </strong> , and <strong> <em>uniformity</em> </strong> of generated numbers. While the <strong> <em>rand()</em> </strong> function is the simplest and easiest to implement, it may not provide good randomness and uniformity. The <strong> <em></em> </strong> library provides a better way to generate random numbers with a uniform distribution, but it is slower and more complex to implement. The <strong> <em>XORShift</em> </strong> algorithm provides good <strong> <em>randomness</em> </strong> and <strong> <em>uniformity</em> </strong> , but it is more complex to implement and may not be as fast as the <strong> <em>rand()</em> </strong> function.</p> <hr></endl;></pre></random_number<<endl;></pre></endl;>

U ovaj kod smo uključili i datoteke zaglavlja. The srand() funkcija se koristi za inicijalizaciju generatora slučajnih brojeva s trenutnim vremenom kao sjemenom. Osigurava da svaki put kad se program pokrene, generira se novi niz slučajnih brojeva.

The rand() funkcija se koristi za generiranje slučajnog cijelog broja između 0 i RAND_MAX . Da bismo ograničili raspon između 1 i 10, uzimamo ostatak ovog broja kada ga podijelimo s 10 i dodajemo mu 1.

Metoda 2:

Korištenje nasumične biblioteke C++11

The C++11 standard uveo novu biblioteku tzv koji pruža bolji način za generiranje nasumičnih brojeva. Ova biblioteka nudi nekoliko mehanizama za generiranje slučajnih brojeva i distribucija koje mogu generirati slučajne brojeve s jednolikom distribucijom.

Primjer:

Uzmimo primjer za generiranje slučajnog broja između 1 i 10 pomoću biblioteke, možemo koristiti sljedeći kod:

 #include #include using namespace std; int main() { random_device rand; mt19937 gen(rand()); uniform_int_distributiondis(1, 10); int random_number = dis(gen); cout&lt;&lt; &apos;Random number between 1 and 10 is: &apos; &lt;<random_number<<endl; return 0; } < pre> <p>In this code, we have included the <strong> <em></em> </strong> header file. The <strong> <em>random_device</em> </strong> class is used to obtain a seed value for the random number generator. The <strong> <em>mt19937</em> </strong> class is a random number generation engine that produces random numbers with a uniform distribution. The <strong> <em>uniform_int_distribution</em> </strong> class is used to generate random integers within a given range.</p> <p>By default, the <strong> <em>mt19937</em> </strong> engine uses a seed value of <strong> <em>5489</em> </strong> , which can be changed using the <strong> <em>seed()</em> </strong> method. However, it is recommended to use a <strong> <em>random_device</em> </strong> to obtain a seed value for better randomness.</p> <p>The <strong> <em>uniform_int_distribution</em> </strong> class generates random integers with a uniform distribution within a given range. In this code, we have specified the range as <strong> <em>1</em> </strong> to <strong> <em>10</em> </strong> using the constructor.</p> <p>This method provides better randomness and a uniform distribution of generated numbers compared to the <strong> <em>rand()</em> </strong> function. However, it is slower and more complex to implement.</p> <h3>Method 3:</h3> <p> <strong>Using modulo operator with time():</strong> </p> <p>Another method to generate a random number between 1 and 10 is the <strong> <em>modulo operator</em> </strong> with the current time as a seed value. This method is similar to the first method using <strong> <em>rand()</em> </strong> function, but it uses a more random seed value and provides better randomness.</p> <p> <strong>Example:</strong> </p> <p>Let&apos;s take an example to generate a random number between 1 and 10 using the modulo operator with <strong> <em>time()</em> </strong> , we can use the following code:</p> <pre> #include #include using namespace std; int main() { srand(time(0)); cout&lt;&lt; &apos;Random number between 1 and 10 is: &apos; &lt;<endl; for(int i="0;i&lt;10;i++)" cout << (rand() % 10) + 1<<\' \'; return 0; } < pre> <p> <strong>Output</strong> </p> <pre> Random number between 1 and 10 is: 6 6 3 6 10 10 1 7 6 4 </pre> <p>In this code, we have used the <strong> <em>time()</em> </strong> function to obtain the current time as a seed value for the <strong> <em>srand()</em> </strong> function. The <strong> <em>srand()</em> </strong> function is used to initialize the random number generator. The <strong> <em>rand()</em> </strong> function generates a random integer between 0 and <strong> <em>RAND_MAX</em> </strong> , which is then limited to a range between 1 and 10 using the <strong> <em>modulo operator</em> </strong> and adding 1 to it.</p> <h2>Conclusion:</h2> <p>In conclusion, there are several methods to generate random numbers between 1 and 10 in C++. The choice of method depends on the requirements of the application, such as <strong> <em>speed, randomness</em> </strong> , and <strong> <em>uniformity</em> </strong> of generated numbers. While the <strong> <em>rand()</em> </strong> function is the simplest and easiest to implement, it may not provide good randomness and uniformity. The <strong> <em></em> </strong> library provides a better way to generate random numbers with a uniform distribution, but it is slower and more complex to implement. The <strong> <em>XORShift</em> </strong> algorithm provides good <strong> <em>randomness</em> </strong> and <strong> <em>uniformity</em> </strong> , but it is more complex to implement and may not be as fast as the <strong> <em>rand()</em> </strong> function.</p> <hr></endl;></pre></random_number<<endl;>

U ovom kodu koristili smo vrijeme() funkcija za dobivanje trenutnog vremena kao početne vrijednosti za srand() funkcija. The srand() funkcija se koristi za pokretanje generatora slučajnih brojeva. The rand() funkcija generira slučajni cijeli broj između 0 i RAND_MAX , koji je zatim ograničen na raspon između 1 i 10 pomoću operaterski modul i dodajući mu 1.

Zaključak:

U zaključku, postoji nekoliko metoda za generiranje nasumičnih brojeva između 1 i 10 u C++. Izbor metode ovisi o zahtjevima aplikacije, kao što su brzina, slučajnost , i ujednačenost generiranih brojeva. Dok rand() je najjednostavnija i najlakša za implementaciju, možda neće pružiti dobru slučajnost i uniformnost. The knjižnica pruža bolji način za generiranje nasumičnih brojeva s ravnomjernom distribucijom, ali je sporija i složenija za implementaciju. The XORShift algoritam pruža dobar slučajnost i ujednačenost , ali je složeniji za implementaciju i možda neće biti tako brz kao rand() funkcija.