It is not as bad as it seems. Imagine that double links chain is stronger than single link and two minds is better than one and two hands always win at a tag-of-war. You hear two hands clapping but not one?
It is not as bad as it seems. Imagine that double links chain is stronger than single link and two minds is better than one and two hands always win at a tag-of-war. You hear two hands clapping but not one?
Time independence: [∂E(g)]²=[∂F(a)×∂r(a)]·[∂F(b)×∂r(b)] and Mass independence: ¶a(t)·¶r(t)=c²
OK you're right the Borromean Rings that you introduced me to has three links or circles and I really like those rings. Strings and rings are the foundation of my theory, also the areas in between those rings.
The areas are the ones that will give you headaches in the long run.
Time independence: [∂E(g)]²=[∂F(a)×∂r(a)]·[∂F(b)×∂r(b)] and Mass independence: ¶a(t)·¶r(t)=c²
As it stands right now I haven't gotten past the strings much less the quarks to even really consider the major problem of the areas or quadrants that are produced. Well nobody ever said it would be easy, but I do so appreciate your help.
Conventional wisdom says that where and when the balloon starts losing altitude then it is the moment to let go of all those deadweights: things you thought you need but really dont need to stay airborne.Originally Posted by Profpat
Time independence: [∂E(g)]²=[∂F(a)×∂r(a)]·[∂F(b)×∂r(b)] and Mass independence: ¶a(t)·¶r(t)=c²
I'll take that conventional wisdom and ponder it while I take my nap. Goodnight my friend.
One other options is to ponder the unconventional wisdom which is equivalent to a personal wisdom or Sinatra's wisdom: doing it my way.Originally Posted by Profpat
Time independence: [∂E(g)]²=[∂F(a)×∂r(a)]·[∂F(b)×∂r(b)] and Mass independence: ¶a(t)·¶r(t)=c²
Unconventionality was the normality for all geniuses of all time since the first cave dwellers of human evolution. The first brave fish to jump on dry ground became the first land animal. The first suicidal land animal to dive over a cliff became the first flying mammals.Originally Posted by Profpat
Time independence: [∂E(g)]²=[∂F(a)×∂r(a)]·[∂F(b)×∂r(b)] and Mass independence: ¶a(t)·¶r(t)=c²
The first suicidal land animal to dive over a cliff became the first flying mammals.
I thought they became lemings.
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