No, this is not a good way to think about relativity and its implications.
When we talk about time in the sense of things happening "now" or "in the past" or "after", we have to think about reference frame, _not_ location. Reference frames are inherently global, as opposed to an "event", which encodes both location and time relative to all possible inertial reference frames.
The typical metaphor is imagine that you infiltrate space with a three-dimensional grid of clocks that are kept a fixed distance from each other (say by a rigid rod). Those clocks are not moving relative to each other, and it is trivial to synchronize them, because the distance between them is fixed -- fire a light pulse to your neighbor with the current time, and you neighbor will know when you sent the symbol by subtracting off the time it takes light to travel the distance. This grid, that covers all of space, represents a single reference frame.
So if Betelgeuse had in fact exploded six hundred years ago, then the clock grid in Earth's inertial frame would have recorded the event of the Battle of Orewin Bridge on Earth at the same time as the event of the beginning of the Betelgeusian supernova in the Betelgeuse system.
The complexity of this comes in the fact that the inertial frame travelling towards Betelgeuse from Earth at some significant fraction of the speed of light would, with its clock grid, measured Orewin Bridge well before the supernova's start. That's independent of the amount of time it would take for those two clocks to communicate with each other -- we can almost imagine a scientist who finally downloads the logs for all the clocks in a given reference frame collating the data.
What we _can_ say, though, is that once the event of someone on Earth seeing the supernova occurs, then that event is strictly _after_ the supernova -- no inertial reference frame will ever see that event, "observation of supernova", occur before the "initiation of supernova".