| 1. | We can try and solve congruences modulo pn for higher and higher value of n .
我们可以对越来越大的n去试解modpn的同余式。
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| 2. | Addition , subtraction , multiplication , division , and modulo
加法、减法、乘法、除法和取模。
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| 3. | Class to perform a modulo operation on the hash code returned by the
方法返回的哈希代码执行求模操作。
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| 4. | We can try and solve congruences modulo pn for higher and higher value of n
我们可以对越来越大的n去试解mod pn的同余式。
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| 5. | Steganography using dual - modulo arithmetic without introducing histogram abnormality
采用两次模运算的无直方图异常安全密写法
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| 6. | In a modulo check , the number by which the summed digits are divided
在模数检验法中,一个和数用某个数来除,其中的除数称为模数。
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| 7. | The fmod ( ) function divides x by y and returns the remainder ( modulo ) of the division
函数的作用是:返回通过除法求得的浮点数余数。
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| 8. | Reduces the total seconds modulo 86 , 400 , which is the number of seconds in a day
从总秒数中减去86 , 400的最大整数倍数。 86 , 400是一天的秒数。
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| 9. | To ensure normalized values inches 12 . 0 , the constructor performs modulo 12 arithmetic
为了确保使用标准形式的值(英寸< 12 . 0 ) ,构造函数执行对12的求模运算。
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| 10. | Generally , this problem is reduced to quadratic residue problem of modulo a big prime number
一般而言,该问题归结为模大素数的二次剩余问题,但这种归结不能用于最优扩域oef 。
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