NSDecimalNumber 的绝对值 (abs) 没有精度损失 [英] Absolute Value (abs) of NSDecimalNumber without loss of precision

问题描述

我需要在不损失精度的情况下获得 NSDecimalNumber 的绝对值.我似乎无法找到一种方法来做到这一点而不转换为十进制或浮点数(精度损失).有没有办法做到这一点?

I need to get the absolute value of an NSDecimalNumber without loss of precision. I can't seem to find a way to do this without converting to decimal or float (with a loss of precision). Is there a method to do this?

推荐答案

您可以使用 NSDecimalNumber 类的内置函数将数字与零进行比较，然后根据需要乘以 -1.例如:

You can use the built-in functions of the NSDecimalNumber class to compare the number to zero, then multiply by -1 as appropriate. For example:

- (NSDecimalNumber *)abs:(NSDecimalNumber *)num {
    if ([num compare:[NSDecimalNumber zero]] == NSOrderedAscending) {
        // Number is negative. Multiply by -1
        NSDecimalNumber * negativeOne = [NSDecimalNumber decimalNumberWithMantissa:1
                                                                          exponent:0
                                                                        isNegative:YES];
        return [num decimalNumberByMultiplyingBy:negativeOne];
    } else {
        return num;
    }
}

由于此方法仅适用于 NSDecimalNumbers，因此不会损失精度.

Since this method works solely with NSDecimalNumbers, there's no loss of precision.

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