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In terms of 'proof of work' my novice understanding is that miners are tying to come up with a 64-digit hexadecimal number, "hash," that is less than or equal to the target hash.
Can't miners always get lower than the target has by inputting "63 zeros followed by a 1?
Beginner here, I apologize for my simplistic understanding.
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Possible duplicate of What is preventing me from simply constructing a hash that's lower than the current target?
– chytrik – 2019-08-29T20:50:13.220