Thursday, July 8, 2021

De Rham Cohomology/Dolbeault Cohomology -- Homeomorphic Field

 A given arbitrary Hamiltonian Operator, that works to form a De Rham cohomology, will tend to have a higher potential of working to form a homeomorphic field, -- than the chances of a given arbitrary Hamiltonian Operator, that works to form a Dolbeault cohomology, will. SINCERELY, SAM ROACH. 

Posted by samsphysicsworld at 8:05 AM Labels: , , , , , ,

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