Difference between revisions of "0F0(;;z)=exp(z)"

Revision as of 21:36, 26 June 2016

The following formula holds: $$e^z={}_0F_0(;;z),$$ where ${}_0F_0$ denotes the hypergeometric pFq and $e^z$ denotes the exponential.

Revision as of 03:46, 6 June 2016 (view source) Tom (talk \| contribs) ← Older edit	Revision as of 21:36, 26 June 2016 (view source) Tom (talk \| contribs) m (Tom moved page Exponential in terms of hypergeometric 0F0 to 0F0(;;z)=exp(z)) Newer edit →
(No difference)