• ElderWendigo@sh.itjust.works
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    7 months ago

    In this scheme, new years day and leap days are not any day of the week or part of any month. They exist outside of the regular calendar as obvious and explicit resets to the remainder problem.

    • lugal
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      7 months ago

      My point exactly. So the programmer who commented above me is wrong in saying it makes it easier for them

      • ElderWendigo@sh.itjust.works
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        7 months ago

        No, still easier. They are still part of the year, so you can just count them, and the logic is still easier than the mess we currently have. If you really feel the need to you can call new years day the zeroth day in the zeroth month, the day of the week is Holiday, and periodically the zeroth month has one extra Holiday.

        • lugal
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          7 months ago

          Computers store the date as “days after January 1st 1970”. So you have a huge number, divide it with 7 and get the day of the week. If there are days that don’t belong to any week, you have to calculate January 1st of that year and substrate it in addition to the steps above. I don’t say it’s not manageable, but it’s not easier

          • ElderWendigo@sh.itjust.works
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            7 months ago

            They store the number of seconds since the epoch of 1970, but you’re always going to have leap days and even leap seconds. Even if you changed the definition of a second to match the current length of a year, it would be off again relatively soon and you’d need leap seconds again. It’s NEVER going to be as simple as you seem to think it should be. Chaos and complexity is inherent in the whole system.

            • lugal
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              7 months ago

              I never said it was simple. The comment above me was “oh, this makes it much easier” and I was like “it’s not really getting easier”. That’s all I said.